Saturday, June 22, 2019





by M Camps-Bossacoma - ‎2017 - ‎Cited by 7 - ‎Related articles
In particular, in mesenteric lymph nodes, a cocoa-enriched diet for 3 or 4 weeks ..... in the biological processes related to the immune system and inflammation.



Cocoa Influences Systemic Antibody Synthesis

Preclinical studies performed 10 years ago showed for the first time the in vivo influence of a cocoa diet on the immune system (1418). These studies were carried out in young rats that were fed a diet containing 10% cocoa or in rats that were orally administered with a dose equivalent to 4% cocoa in food intake for 3 weeks. Results showed that the 10% cocoa-enriched diet, but not the 4% dose, was able to decrease serum immunoglobulin (Ig) G, IgM, and IgA concentrations (18) (Table 1). A further analysis of IgG isotypes showed that 3-week-old rats fed a 10% cocoa diet for 3 weeks resulted in attenuated levels of IgG2b antibodies but increased levels of IgG2a (19) (Table 1). However, in a study in which the cocoa diet was given later, at 6 weeks of age, the 10% cocoa-enriched diet was associated with lower values of serum IgG2a but higher serum IgG2c concentrations than those present in animals fed the standard diet (20) (Table 1). Moreover, it was observed that the minimum dose to achieve such an effect was 5% cocoa in the diet (20) and, at any rat age, a 5 or 10% cocoa diet attenuated the serum levels of IgM and IgA (1920), the effects being clearer when animals were younger and the diet lasted longer. Therefore, these studies in rats showed that a cocoa diet influences systemic immunoglobulin production but the effect depends on the antibody isotype, the age of the animal, and the length of the cocoa intervention.
TABLE 1
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Table 1. Summary of the effects of cocoa diet in serum immunoglobulins and specific antibodies in healthy rats.
Apart from the cocoa’s influence on basal serum immunoglobulin levels, it was interesting to shed some light on the antibody response in rats after a specific challenge, i.e., in immunized rats. In these conditions, animals were fed cocoa before and during an immunization process, and the overall synthesis of specific antibodies was also lowered (21) (Table 1). Specifically, the accurate analysis of antibodies revealed that the most attenuated isotypes were specific IgM, IgG1, IgG2a, and IgG2c antibodies, whereas specific IgG2b concentrations held steady or even increased with the 10% cocoa diet. As IgG rat isotypes can be associated with Th1 (IgG2b) or Th2 (IgG1 and IgG2a) immune response (22), these results may suggest a regulatory effect of cocoa in Th2-immune responses. This lowering effect on specific IgG1 and IgG2a, and therefore on Th2-related response, could be associated with cocoa polyphenols given that other polyphenols, such as genistein, chrysin, and apigenin (2324), and those from apple or soybean caused similar results (2325).
After establishing cocoa’s influence on immunoglobulin synthesis, the reason why this diet produced such an effect remained to be studied.

Cocoa Influences Composition and Functionality of Primary and Secondary Lymphoid Tissues

To ascertain the mechanisms induced by cocoa on the antibody immune response, lymphoid tissue composition and lymphocyte functionality were then determined. In addition, as cocoa intake can interact with gut-associated lymphoid tissue (GALT), several investigations were carried out to ascertain the influence of cocoa in this particular compartment of the immune system. Preclinical studies carried out in rats demonstrated that a cocoa diet modifies lymphoid tissue composition and function (13). Lymphoid tissues are considered as primary or secondary depending on whether they are devoted either to the formation of the lymphocyte repertoire or to the development of the immune response, respectively (26). Thymus is a primary lymphoid tissue where T-cell maturation takes place, whereas lymph nodes, spleen, and mucosal lymphoid tissue belong to the secondary lymphoid tissue category (27).

Cocoa and Systemic Lymphoid Tissue Composition

It was demonstrated that Wistar rats receiving a 10% cocoa diet for 3 weeks accumulate cocoa polyphenol metabolites in immune tissues, such as the thymus, lymph nodes, and spleen (28). In particular, the highest accumulation was in the thymus, where phenotypic changes were found due to the diet. In particular, cocoa intake resulted in an enhancement of the progression of immature thymocytes (those with low expression of the αβ T-cell receptor—TCR αβ, and expressing or non-expressing the clusters of differentiation CD4 and CD8, i.e., TCRαβlowCD4CD8 or TCRαβlowCD4+CD8+) toward more mature stages (TCRαβhighCD4+CD8) (29) (Table 2). In spite of this increase in CD4+ (Th) cells in the thymus, the analysis of a secondary lymphoid tissue, such as the spleen, revealed that a 10% cocoa diet in young rats for 3 weeks increased the proportion of spleen B cells and decreased that of Th lymphocytes (18) (Table 2).
TABLE 2
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Table 2. Summary of the effects of cocoa diet in lymphocyte composition of lymphoid tissues.
Lymph nodes were also affected by a cocoa diet. In particular, in mesenteric lymph nodes, a cocoa-enriched diet for 3 or 4 weeks in rats increased the proportion of innate cytotoxic lymphocytes, such as cells expressing γδ T-cell receptor (TCRγδ+) and NK cells, and also that of the Tc lymphocytes and B cells, whereas the proportion of Th cells decreased (3031) (Table 2). These effects were only produced by a 10% cocoa diet whereas a 4% cocoa dose was insufficient to influence the phenotype of mesenteric lymph nodes (30). Similarly, the intake of a 10% cocoa-enriched diet given to rats for 6 weeks decreased the proportion of TCRαβ+ cells but did not modify that of regulatory T cells (Treg) in inguinal lymph nodes in rats (32) (Table 2).
A more in-depth analysis of lymphocytes in mesenteric lymph nodes revealed that the increase of TCRγδ+ cells was attributed to the presence of a higher amount of CD8αα+ cells, a typical intestinal phenotype, which could be due to the migration of this cellular type from the intestine (34). The increase of Tc cells in mesenteric lymph nodes was accompanied by a higher proportion of activated cells (CD25+CD8+ cells) and cells expressing the αE-integrin (CD103+CD8+ cells) and a lower proportion of cells bearing L-selectin (CD62L+CD8+ cells) (31) (Table 2). CD103 is a subunit of the αE-integrin that can mediate cell adhesion and migration to the gut (35), whereas L-selectin is involved in lymphocyte rolling on the endothelium and the homing to secondary lymphoid tissues (36). These results could mean that the cocoa diet decreased the arrival of blood lymphocytes to mesenteric lymph nodes whereas it may favor intestinal cells entering. As cocoa compounds can reach the small intestine and even the colon (3738), they can affect the intestinal lymphocytes and promote their migration to mesenteric lymph nodes.
Overall, the increased proportion of CD8αα+TCRγδ+ cells, NK cells, and CD103+ Tc cells in mesenteric lymph nodes could be involved in cocoa’s influence on antibody immune response. TCRγδ+ cells have been associated with an attenuating effect on the synthesis of antibodies (39), and NK cells could also contribute to the regulation of antibody synthesis (40). Moreover, CD103+ cells have been associated with a regulatory function given that their proportion increased after treatment with immunosuppressive agents (41).
After feeding a cocoa-enriched diet, cocoa flavonoid metabolites are stored in the lymphoid tissues (thymus, lymph nodes, and spleen) as well as in the liver. In fact, epicatechin metabolites have been reported to be accumulated in concentrations twofold higher in the thymus, testes, and liver than in lymph nodes and spleen (28). With regard to the liver, the 10% cocoa intake in rats enhanced hepatic antioxidant capacity, without modifying hepatic superoxide dismutase and catalase activities (29).

Cocoa and Lymphocyte Function

The development of the acquired immune response implies the involvement of complex interactions between immune cells by means of particular surface molecules and the secretion of cytokines. The gene or protein expression of those molecules involved in the immune synapses, as well as cytokines and other molecules secreted by immune cells, can be evaluated.
In vitro studies carried out in lymphoid cell lines showed the ability of cocoa to reduce the synthesis of interleukin 2 (IL-2) involved in early T lymphocyte proliferation (4243). This cytokine is mainly produced by Th cells after antigen activation (44) and plays a crucial role in immune response, enhancing Tc cell, NK cell cytotoxic activities, T cell differentiation, and stimulating the proliferation and the antibody synthesis (45). These effects could be responsible for the cocoa downregulation of the antibody synthesis. However, the results obtained in vivo on IL-2 secretion or lymphocyte proliferation could not confirm such a mechanism (182130) (Figure 1A). In particular, IL-2 secretion was not modified in spleen cells from rats fed 10% cocoa for 3 weeks, even though lymphocyte proliferation increased (18). On the other hand, higher or unmodified amounts of IL-2 secretion were detected after the stimulation of lymph node cells of rats fed a 10% cocoa diet for 3 or 9 weeks (2130). Therefore, the interaction of a cocoa diet in the initial phases of immune activation seems not to explain the attenuating effect on antibody synthesis. However, a recent study on the gene expression of mesenteric lymph node cells shows that certain molecules present on antigen-presenting cells (dendritic cells) were modified by this diet. In particular, a cocoa diet increased the gene expression of CD11c and OX40L (31) (Figure 1A). It has been suggested that, in a model of oral sensitization, a subset of dendritic cells (CD11c+, CD103+, and CD8+) that migrates and activates in the mesenteric lymph nodes seems responsible for the Th2 polarization in this model (46). OX40L–OX40 interaction has been related to follicular Th cells and promotes the generation of Th2 response during antigen presentation (4748), and it was increased in an oral sensitization process (31). Despite these results, the cocoa diet attenuated the antibody synthesis and, therefore, this diet must interact with downstream pathways of the Th2-immune responses that would eventually inhibit antibody synthesis.
FIGURE 1
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Figure 1. Summary of the mechanisms involved by cocoa diet on lymphocyte function: (A) Cocoa effect on the induction of acquired immune response, involving from antigen presentation until the development of effector T cells. (B) Cocoa effect on the B-cell activation and antibody production. Arrows indicate increases or decreases, equals sign means no changes. Th, T helper cells; Treg, T regulatory cells; IL, interleukin; IFN, interferon; CD, cluster of differentiation.
In general, the cytokine pattern secreted by activated lymphocytes reveals the stimulation of Th1, Th2, Th17, or Treg cells (49). Interferon γ (IFN-γ) is the most representative cytokine in Th1 activation (50). No changes were detected either in serum levels of IFN-γ in rats fed cocoa for 4 weeks (32) or in the secretion of IFN-γ by activated splenocytes or lymph node cells from rats fed a cocoa diet for 3 weeks (18) or 4 weeks (31). Nevertheless, an increase of IFN-γ was observed in lymph node lymphocytes from rats fed a cocoa diet for 8 weeks (21) (Figure 1A). Therefore, it seems that a cocoa intake over longer periods promotes Th1 immune response.
More interesting results were found in IL-4, the most representative Th2 cytokine (51). A reduction of IL-4 was found in activated lymph node cells from rats fed cocoa for 3 weeks (30) and in splenocytes from rats fed cocoa for 3 or 8 weeks (1821). However, no changes in IL-4 were found after 4 weeks of nutritional intervention (31). On the other hand, this downregulation on IL-4 secretion did not match with previous data in vitro (424352) but it partially explains the down-modulatory role of the cocoa diet on antibody synthesis (Figure 1A). IL-4 promotes IgE upregulation and increases intestinal permeability (5354); therefore, the decrease in IL-4, along with the TCRγδ+ cell increase induced by the cocoa diet, may be beneficial in reducing certain stages of hypersensitivity, such as food allergy. However, some reports focused on IL-10, a regulatory cytokine (55), did not detect any modification by the 10% cocoa diet (3031).
The effects of cocoa lowering IL-4 secretion in some lymphocytes populations agree with those found when the specific antibody-secreting cells after an immunization were enumerated. A significant decrease in the specific IgG-secreting cell numbers was reported by 5 and 10% cocoa diets, either in spleen or lymph node tissues, although no changes were observed in specific IgM-secreting cells (21) (Figure 1B). In summary, a cocoa-enriched diet plays an immune-regulatory role in the antibody immune response to an antigen that involves a lower number of specific antibody-secreting cells and, therefore, a decrease in antibody synthesis.

Cocoa Intake Influences Intestinal Immune System

Cocoa Intake and Intestinal Immunoglobulins

Several years ago, Ramiro-Puig et al. first demonstrated that a cocoa-enriched diet influences the GALT by means of the modulation of the intestinal secretory IgA (S-IgA) (30). Feeding just a 4% cocoa-enriched diet caused a decrease in the fecal S-IgA levels in the second week of the diet, but they were restored at the end of the third one. The 10% cocoa intervention caused lower fecal S-IgA secretion throughout the study (30), and this effect remained when the diet was maintained for 7 weeks (19). However, when a dose–effect study was performed with diets containing 2, 5, or 10% cocoa, the 2% diet was not enough to modify intestinal immunoglobulins (20). With regards to the gut wash—a typical sample used to evaluate intestinal immunoglobulins that consists of incubating the intestine with saline buffer at 37°C in a shaker for a few minutes to allow the release of the mucosa-linked antibodies—a lower secretion of S-IgA and S-IgM was detected (19203056). These results evidence a lack of the S-IgM compensatory mechanism in certain states of S-IgA deficiency (57), probably because cocoa is also acting on S-IgM. Other studies have confirmed the previous attenuating effect of a 10% cocoa diet on S-IgA levels both in fecal samples and in gut washes (3158). Moreover, the immunoglobulin content has also been determined in intestinal tissues, such as Peyer’s patches (PP) and mesenteric lymph nodes; and, in both tissues, the 10% cocoa diet for 3 weeks was able to decrease the levels of IgA and IgM (56).
The downregulation of intestinal immunoglobulins produced by a cocoa diet may be due to the influence of some cocoa compounds on the complex immune response developed in the GALT. This immune compartment includes inductive sites (PP and mesenteric lymph nodes) and effector sites [lamina propria (LPL) and intraepithelial lymphocytes (IEL)] (59). As explained, cocoa intake induced some changes in mesenteric lymph nodes, but the cocoa effect is not only restricted to that particular compartment. Therefore, further studies were then focused on looking in more depth the effect of a cocoa diet on PP as well as LPL and IEL.

Cocoa Intake and Lymphocyte Composition in Small Intestine and Colon

The attenuation of serum or intestinal immunoglobulin synthesis may be the result of multitude pathways, but the reduction of mucosal IgA observed after cocoa dietary intervention may possibly involve specific mechanisms located at the intestinal site.
The rat intake of 10% cocoa for 4 weeks modified the composition of lymphocytes in the PP and in the intraepithelial compartment whereas no modifications were seen in LPL (33) (Table 2). With regard to PP, cocoa-enriched diets were able to reduce the proportion of TCRαβ+ T cells and to increase the proportion of B lymphocytes and TCRγδ+ cells (3033), results that agree with changes detected in the mesenteric lymph nodes (3031). Analyzing in depth TCRαβ+ cells in the intestine, the cocoa diet decreased the proportion of Th cells and increased that of natural killer T cells (NKT). In addition, after cocoa intake, PP also had higher proportions of CD4+CD25+ cells, CD4+CD103+ cells, CD8+CD103+cells, and CD4+CD62L+ cells. Apart from the influence of cocoa intake on PP composition, the intraepithelial compartment was also affected by this diet. In IEL from the small intestine of rats fed cocoa, there was a higher percentage of TCRγδ+ cells (both CD8αα+and CD8αβ+) and NK cells (33).
In summary, in the GALT, the lower production of intestinal antibodies was accompanied by a relative increase in B cell numbers and a relative decrease in TCRαβ+ or Th cell numbers in the inductive sites (mesenteric lymph nodes and PP). These results suggest that the antibody synthesis in B cells might be depleted by a lower stimulation from Th cells and/or a higher regulatory effect induced by cells, such as TCRγδ+, NK, NKT, CD4+CD25+, CD4+CD103+, CD8+CD103+, and CD4+CD62L+, which is in agreement with the role of some of these cells in the regulation of the antibody synthesis (254060). In whatever way the activation and differentiation of intestinal B cells was attenuated, a depletion of the high-capacity IgA-secretory cells was produced as reported when they were counted by Enzyme-Linked ImmunoSpot in PP (30) or by an immunofluorescence analysis in the small intestine lamina propria (33). These results agree with a lower IgA gene expression in PP and small intestine seen after 4 and 7 weeks of cocoa intake (1933).

Effects of Cocoa Diet on T Cell-Dependent Intestinal Immune Function

The gene expression of molecules involved in the intestinal immune response can shed some light on the mechanisms induced by cocoa on the regulation of the intestinal immune system. In this context, the mRNA levels of IgA, transforming growth factor (TGF) β1, IL-6, CD40, C–C chemokine receptor (CCR) 9, retinoic acid receptor (RAR) α, and RARβ have been reported in GALT tissues, such as mesenteric lymph nodes, PP, and small intestine after 3 or 7 weeks of a cocoa diet (1920).
CD40 is involved in the interaction between B and Th cells to begin the antibody immune response (61), and cocoa intake did not modify the expression of this molecule in any of the tissues considered (1920) suggesting that cocoa had no influence in this phase of the antibody synthesis. The main pathway that brings differentiation of B cells into IgA-secreting cells takes place in PP or mesenteric lymph nodes (62) and depends on cytokines, such as TGF-β1 and IL-6, among others (63). The 10% cocoa diet significantly decreased the TGF-β1 expression in the small intestine after 3 and 4 weeks (2033), although no changes were found after 7 weeks of nutritional intervention (19) (Figure 2). On the contrary, the longest nutritional intervention, but not the shortest one, was able to downregulate the IL-6 synthesis in mesenteric lymph nodes (1920). Therefore, the effect on these two cytokines, TGF-β1 and IL-6, involved in the S-IgA secretion at different periods (64), might be partly responsible for the downregulatory effect of cocoa. Neither TGF-β1 nor IgA gene expressions were downregulated by the 5% cocoa diet (20), which also caused a reduction in intestinal S-IgA, indicating that additional mechanisms may be interfering in the intestinal S-IgA content.
FIGURE 2
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Figure 2. Summary of the mechanisms involved by cocoa diet on intestinal immune function in both T-dependent and T-independent pathways. Arrows indicate increases or decreases, equals sign means no changes. Ig, immunoglobulin; PP, Peyer’s patches; pIgR, polymeric immunoglobulin receptor; TLR, toll-like receptor; CCR, C–C chemokine receptor.
The next stage occurs when the activated B cells leave the inductor sites (PP and mesenteric lymph nodes) and home to the effector sites (i.e., lamina propria), where the differentiation into IgA plasma cells takes place (65). Intestinal homing is regulated, among others, by chemokine-mediated interactions including the chemokine receptor CCR9, which binds to CCL25 and the CCL28 chemokines in the intestine (66). While 3 weeks of diet did not modify the expression of the CCR9 receptor nor the CCL25 but did increase the expression of CCL28 in the small intestine (20), 7 weeks of cocoa diet resulted in a downregulation of CCR9 and CCL28 gene expression in the same compartment (19) (Figure 2). In addition, retinoic acid produced by intestinal dendritic cells also plays a key role in gut homing (66) through the interaction with nuclear RAR (67). The gene expression of both RARα and RARβ was not modified in the intestinal tissue of rats fed cocoa for 3 weeks (20) but both decreased after 7 weeks (19) (Figure 2). Overall, these results could indicate that after being fed a cocoa diet over a long time there was an impairment of the arrival of IgA-secreting cells to the intestine because of the lack of gut-homing receptors observed. However, they do not explain the early decrease in S-IgA that was observed.
Finally, delivering IgA into the intestinal lumen depends on the transmembrane epithelial protein polymeric immunoglobulin receptor (pIgR) (68). This receptor was not modified by the cocoa intake (20), thus indicating that cocoa-induced S-IgA reduction did not occur as a consequence of a decreased transport across the epithelium.

Effects of Cocoa Diet on T Cell-Independent Intestinal Immune Function

Apart from these IgA-secreting mechanisms that depend on T-cell activation, IgA+ B cells can be alternatively generated in a T-cell-independent manner involving toll-like receptor (TLR) signaling.
The gene and protein expression of other TLR has been modified both in the inductive sites of GALT (PP and mesenteric lymph nodes) and the effector sites (intestinal wall) after cocoa intake (192033). In this context, among other components present in the cocoa, flavonoids have been suggested as dietary factors able to modulate TLR-mediated signaling pathways (69). TLR pathways can be modulated by flavonoids at different levels, and there are evidences of several flavonoids interfering at gene/protein expression level, in subsequent activation pathways such as the myeloid differentiation primary response 88 (MyD88), TIR-domain-containing adaptor protein inducing interferon beta (TRIF), and even downstream-associated signal transduction cascades (i.e., MAPK) (69). In this sense, alternative mechanisms in TLR regulation by cocoa flavonoids have been also suggested such as the direct modulation of their intracellular negative regulators such as the interleukin-1 receptor associated kinase (IRAK), toll interacting protein (TOLLIP), etc. To date, in vitro studies demonstrate the upregulation of IRAK-M by procyanidin dimer B2 (70), similarly to the effect described by other flavonoids like epigallocatechin-galate in TOLLIP expression (70). Anyway, the synergistic action of cocoa on all these TLR-activating signaling could also contribute to the attenuation of S-IgA synthesis.
Cocoa intake for 4 weeks reduced the proportion of TLR4+ cells in the IEL compartment (33) which agrees with a decrease of TLR4 mRNA in small intestine observed in previous studies (Figure 2). Nonetheless, higher TLR4 gene expression was found in PP (19). The TLR4 is the receptor of bacterial endotoxin lipopolysaccharide, and its signaling has implications for IgA production (71), becoming another pathway to attenuate intestinal S-IgA synthesis.
Toll-like receptors are expressed preferentially in tissues that are in constant contact with microorganisms (7273), and changes in the TLR expression induced by flavonoids could reflect changes in the intestinal microbiota and/or in its relation with intestinal immune cells (6974). Accordingly, several studies have shown that cocoa (587576), cocoa flavonoids (5877), or cocoa fiber (78) induce changes in gut microbiota composition. Moreover, a lower proportion of IgA-coated bacteria have been observed after cocoa intake (79).
In summary, it could not be discarded that the influence of cocoa on GALT was partially mediated by its effect on the intestinal microbiota, which can lead to differential TLR activation and, therefore, may also influence the lowering IgA effect of cocoa.
Recently, an analysis of an untargeted 1H NMR spectroscopy-based metabolomic approach in 24-h urine samples have been carried out in order to correlate urine cocoa metabolites with cocoa effects on immunity and the gut microbiota (80). The results of this analysis demonstrate that cocoa intake, besides affecting microbiota composition, also alters the host and bacterial metabolism concerning energy and amino acid pathways leading to a particular metabolic signature that correlates with the S-IgA lowering effect of cocoa. Accordingly, a different pattern of intestinal and serum short-chain fatty acids, with increasing amounts of butyric acid, has been reported (78).
Finally, and in order to have a broader view of the molecules involved in the intestinal immune response modulated by cocoa, the changes in colonic gene expression by a microarray analysis after a cocoa nutritional intervention has been carried out (81). This study shows that a cocoa diet downregulated an extensive number of genes, many of them involved in the biological processes related to the immune system and inflammation. Specifically, the most downregulated gene after cocoa intake was tachykinin 4 (81), described as the promoter of B lineage cells (82), which could explain the attenuating effect of cocoa on antibody synthesis, despite the fact that the proportion of B cells did not decrease but, on the contrary, increased in some lymphoid tissues. Moreover, other genes involved in pathways related to the mast cell-mediated immunity, its activation, and its degranulation were downregulated (81), pointing out the possible role of cocoa in inducing tolerance in allergic processes as observed in some studies next reported.

Cocoa Intake Also Influences Another Mucosal Lymphoid Tissue

The mucosal immune system is interconnected (59). Due to cocoa’s influence on the intestinal immune system, it became of interest to know whether this effect was also extended to other mucosal compartments, such as the salivary glands. The IgA and IgM content in the salivary glands (submaxillary and parotid salivary glands) was quantified after a 10% cocoa intake in rats for 3 weeks. The cocoa diet induced a decrease in the IgA and IgM content in both glands (56). This attenuating effect was associated with a drastic reduction in the IgA gene expression together with a lower expression of some molecules involved in the maturation and differentiation of B cells, such as IL-6 and TGF-β1 (56), as previously observed in the small intestinal samples (1920). However, in agreement with what was detected at intestinal level, no changes were detected in pIgR gene expression in the salivary glands. Therefore, in conclusion, this study shows that cocoa intake not only has an influence on the gut intestinal compartment and the systemic immunity but also on other mucosal sites in rats.

Effect of Cocoa Diet on Antibody-Mediated Diseases

Due to the attenuating properties of cocoa on immunoglobulin levels after cocoa intake in rats, it was of interest to test its impact on diseases in which antibodies play a harmful effect. Therefore, this nutritional intervention was tested on animal models of arthritis and allergy.

Effect of Cocoa Diet on Experimental Arthritis

Rheumatoid arthritis is a symmetric, polyarticular, systemic, and autoimmune inflammatory disease in which multiple factors, including genetic, immune, and environmental ones are involved (83). Diet components such as n-3 fatty acids, vitamins D and K, and antioxidants are protective compounds against rheumatoid arthritis (84). In this context, diets containing 5 or 10% cocoa were tested on adjuvant arthritis, a model of rheumatoid arthritis widely used for the screening of anti-inflammatory drugs (85). In this animal model, cocoa diet decreased the synthesis of antibodies against the pathology inducer (Table 3) and was also able to decrease the proportion of Th cells in both blood and regional lymphoid tissues (86). This latter effect is important because, as anti-CD4 therapy has been shown to prevent or ameliorate adjuvant arthritis (8788), the cocoa-induced decrease in Th cells could be beneficial to the arthritic process. Moreover, a 10% cocoa diet avoided the Th/Tc imbalance and the reduction of the proportion of NKT cells produced by the disease (86). However, the effect of cocoa on hind-paw inflammation was very poor (86), which did not agree with the protective effect of other flavonoids in a similar inflammatory model when given by oral (quercetin) or by intraperitoneal routes (quercetin, rutin, hesperidin, and morin) (8991). Nevertheless, a cocoa extract inhibited mice ear edema (92) and acute paw edema in rat (9394). Moreover, cocoa flavonoids such as epicatechin, catechin, and procyanidin B2, among others, are able to attenuate the synthesis of inflammatory mediators, such as tumor necrosis factor (TNF)-α, monocyte chemoattractant protein-1, IL-6, and IL-8 (95100).
TABLE 3
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Table 3. Summary of the effects of cocoa diet in specific antibodies in rat models of arthritis and allergy.
The influence of a 10% cocoa diet was also analyzed in collagen-induced arthritis, another model of arthritis. This inflammatory model requires T- and B-cell responses to autologous collagen (102). B cells from animals with collagen-induced arthritis produce a strong specific immune response against triple helical epitopes of collagen type II (103). Anti-collagen autoantibodies bind to the joint cartilage, activate the complement cascade, and mediate the inflammatory attack on the joints, thus contributing to the disease development (104). Susceptible Louvain rats were fed with a 10% cocoa diet for 2 weeks before arthritis induction and during the latency period (2 weeks after induction), and thereafter with a 5% cocoa diet until the end of the study (an additional 2 weeks). In this case, the cocoa-enriched diet was able to reduce the synthesis of specific antibodies against type II collagen, differentially according to their isotype (Table 3), decrease the Th lymphocyte proportion in regional lymph nodes, and reduce the release of inflammatory mediators from peritoneal macrophages. However, these immunomodulatory effects were not enough to reduce the hind-paw swelling in arthritic animals (32). It must be taken into account that the decrease in anti-collagen antibody concentration in that rat strain was only observed at the end of the study, and it was in a lesser extent and more slowly than that expected and observed in healthy rats as shown before. In a similar context, other authors reported the beneficial effect of isolated flavonoids in improving the paw swelling in animals in long-term studies (105107). Otherwise a nutritional intervention with the flavonoid genistein had no success (108).

Effect of Cocoa Diet on Hypersensitivity Animal Models

Cocoa on Allergy Models

The effect of the consumption of a 10% cocoa diet over 4 weeks was studied in a model of allergy induced by an intraperitoneal (i.p.) injection of ovalbumin (OVA) and toxin of Bordetella pertussis in alum in young Brown Norway rats (22). The cocoa diet reduced the levels of anti-OVA IgG1 and IgG2a antibodies (Table 3), i.e., immunoglobulins related to Th2-immune response in rats, as previously mentioned. In addition, cocoa consumption decreased the serum concentrations of total and specific IgE (Table 3), which is the main immunoglobulin involved in allergic reactions. These results agree with studies performed in animal models of allergy treated with polyphenols, such as baicalein (109), quercetin (110), silibinin (111), sesamin (112), or an extract of Kalanchoe pinnata(Crassulaceae) containing several flavonoids such as quercetin (113).
To analyze the mechanisms involved in such action, cytokine secretion was quantified in mesenteric lymph nodes. Contrary to what was expected, cocoa diet increased the release of IL-4, a Th2 cytokine, and decreased that of IL-10, a cytokine related to immune-regulatory responses (22). In addition, cocoa intake induced a lower secretion of TNF-α, which has been described as a contributor to the development of Th2-mediated allergic inflammation by means of promoting the homing of Th2 cells to the site of allergic inflammation. These effects of IL-10 and TNF-α agree with those reported by other flavonoids in allergic conditions (113115).
The influence of cocoa on the GALT makes it particularly interesting to test the effect of this nutritional intervention on a food allergy process. A model of food allergy using OVA as allergen was carried out in Brown Norway rats, combining an i.p. and oral administration of the allergen. The quantification of serum anti-OVA IgG1, IgG2a, and IgE antibodies revealed that the synthesis of these antibodies was completely prevented by the cocoa diet (101) (Table 3). In this study, a product that was richer in cocoa flavonoids was included, but it was not able to totally reproduce the same effects as the conventional cocoa-enriched diet. Therefore, it seems that cocoa flavonoids are only partially responsible for cocoa’s anti-allergy properties.
In addition, after anaphylactic shock, the increase of the serum mast cell protease II was partially prevented in the allergic group fed a cocoa diet (101). Nevertheless, other markers of anaphylaxis were not modified by the cocoa intake (body temperature and motor activity), suggesting that its modifications were not enough to prevent the food allergy reaction induced (101).
In order to shed light on cocoa’s anti-allergy properties, the expression of some small intestinal genes were quantified (101). The food allergy induction increased the IgA gene expression, an effect that was prevented by a cocoa diet. Moreover, the allergic animals fed a cocoa diet also had lower mRNA levels of high-affinity IgE receptors (FcεRI), mast cell protease-II, and TGF-β1 than reference animals, molecules which could be involved in the protective effect of cocoa on food allergy. Accordingly, the inhibitory effects of flavonoids on the FcεRI surface molecule or gene expression in vitro were described (116117), and the genetic analysis of colon from rats fed cocoa assessed by microarray analysis showed the downregulation of genes involved in pathways related to mast cell activation and degranulation (81). The cytokine production of food-allergic animals was also determined in mesenteric lymph nodes and spleen (101). In these tissues, the food allergy induction increased the secretion of Th2-cytokines, such as IL-4, IL-5, and IL-13. However, the cocoa diet prevented an increase in IL-5 and IL-13 in lymph node cells and that of IL-4 and IL-13 in splenocytes.
In conclusion, in models of Th-2 immune response stimulation, the intake of cocoa prevents the secretion of typical Th2-cytokines, the synthesis of IgE involved in mast cell degranulation, and also downregulates the IgE receptors in mast cells and intestinal mast cell activation, which are the cells responsible for the most allergy symptoms. However, such effects were not able to totally prevent anaphylactic shock.

Cocoa on an Oral Sensitization Model

Although cocoa intake prevented the allergic sensitization in a model of food allergy induced by i.p. and oral allergen administration (101), it remained to find out what happened when the sensitization with the allergen was produced using only the oral route. Therefore, a 10% cocoa-enriched diet was given to 3-week-old Lewis rats submitted to an oral sensitization model induced by the oral administration of OVA together with the cholera toxin (CT) as adjuvant (118). The oral administration of OVA/CT, three times per week and for 3 weeks, was able to break down oral tolerance and induce the synthesis of specific antibodies after 4 weeks from the beginning of the sensitization protocol. Although this model did not induce detectable specific IgE synthesis, Th2-immune response related antibodies were produced (118) (Table 3). Feeding 10% cocoa from the beginning of the study and throughout 4 weeks attenuated the development of specific antibodies in sensitized rats fed the cocoa diet (31). In particular, the 10% cocoa diet prevented the production of anti-OVA IgG1, IgG2b, and IgM in agreement with the effect of cocoa in a food allergy model in Brown Norway rats (101).
In addition, although the IgA concentrations were not increased in this rat oral sensitization model, in contrast to other models using the same adjuvant (63119), the cocoa diet decreased the total IgA in both serum and intestinal compartments. As stated in previous sections, a cocoa diet influences the proliferation, differentiation, and gut homing of IgA+ B cells (193133), thus inducing a lower presence of these cells in the intestinal lamina propia (33) and, consequently, reducing the intestinal IgA development in line with what was reported in many studies (2079101). Additionally, the changes produced by the cocoa diet in both inductive and effector lymphoid tissues (see Cocoa Intake and Lymphocyte Composition in Small Intestine and Colon) might be responsible for the prevention of the oral sensitization. It is worth noting that the cocoa diet increased the proportion of TCRγδ+ and NK cells in three intestinal compartments (mesenteric lymph nodes, PP, and IEL), suggesting their role in the tolerogenic process. In line with this, unripe apple polyphenols induced an increase in the proportion of TCRγδ+ IEL in association with the inhibition of the development of an oral sensitization model (25), and it was also reported that the reduction of TCRγδ+ cells by the anti-TCRγβ antibody favors an oral sensitization in mice (120). Furthermore, NK cells could have regulatory functions contributing to the avoidance of sensitization in line with the reported prevention of allergic disease (121122).
Other changes induced by a cocoa diet could contribute to its tolerogenic effect (3133). Such changes include a reduced proportion of Th cells in mesenteric lymph nodes, PP in IEL, an increase in the percentage of CD103+ cells, a reduction of CD62L+cells, and an increase in the percentage of CD25+ cells in PP. Cocoa intake also modulated the gene expression of several molecules both in mesenteric lymph nodes and in the small intestine (3133). In particular, cocoa consumption was associated with an increase in the gene expression of CD11c—a dendritic cell marker (123)—in mesenteric lymph nodes, whereas the mRNA levels of CD11c and CD11b were reduced in small intestinal samples; cocoa also upregulated the expression of OX40L in mesenteric lymph nodes (31)—mainly expressed on antigen-presenting cells (124). In this sense, the interaction of OX40–OX40L regulates cytokine production from T cells, antigen-presenting cells, NK cells, NKT cells, and cytokine receptor signaling (125). Additionally, cocoa decreased the gene expression of IL-1β—a potent pro-inflammatory cytokine (126)—in mesenteric lymph nodes, although no modifications were seen in the production of Th1 (IFN-γ and TNF-α), Th2 (IL-4), or Treg (IL-10) cytokines.
Overall, a cocoa intake, by means of its influence on the intestinal immune system, is able to avoid the sensitization to oral allergens, thus contributing to the downregulation of this hypersensitivity reaction.

Cocoa on an Atopic Dermatitis Model

Recently the role of a cocoa extract on atopic dermatitis has been published (127). The cocoa extract decreased the IgE levels induced by a Dermatophagoides farinae extract together with a reduction of atopic dermatitis symptoms. Particularly, the cocoa decreased the severity of the skin lesions, the loss of skin hydration and suppressed the infiltration of eosinophils and mast cells into the skin lesions. Moreover, an extract containing 0.25% cocoa downregulated IL-4 mRNA levels on the skin tissues, whereas an extract containing 1% cocoa decreased IL-5 gene expression at this level.

Conclusion

In this review, we summarize the effect of a cocoa diet on the immune system of rats, particularly in the antibody response, both in systemic and mucosal (intestinal and extraintestinal) compartments. The analyses of cells involved in such responses, as well as molecules, such as cytokines and receptors, demonstrate that the effects of a cocoa diet are exerted at multiple sites: in the antigenic presentation, in the cytokines produced by effector Th cells, and in the intestinal homing of activated cells. Eventually, these actions will reduce the synthesis of most antibody isotypes, in particular Th2-associated antibodies as IgE. The relative decrease of Th lymphocytes associated with an increase in TCRγδ+ cells and NK cells detected in most lymphoid tissues studied suggest the involvement of these cells in the regulatory role of cocoa. The immunomodulatory potential of cocoa can be very beneficial in those diseases that involve hypersensitivity, such as allergy and autoimmune diseases. Nevertheless, although no signs of immunodeficiency were observed in the described studies, it must be considered that the attenuation of antibodies can be harmful when antibodies are needed to counteract a pathogenic antigen, such as infections, and to induce antibody-dependent cytotoxicity, phagocytosis, and complement activation. Although further research must characterize the particular cocoa components responsible for such effects, and nutritional studies in humans need to be carried out, cocoa has potential as a nutraceutical agent in some hypersensitivity status.

Author Contributions

MC-B, MM-C, MA-G, and AF were responsible for the manuscript preparation. MM-C and MA-G contributed to the manuscript draft. MC-B mainly wrote the manuscript. FP-C and MC contributed to its critical revision.

Conflict of Interest Statement

The authors declare that this study was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.

Funding

The present study was supported by a grant from the Spanish Ministry of Economy and Competitivity (AGL2011-24279) and a grant from the Agencia Estatal de Investigación (AEI, Spain) and European funds (Fondo Europeo de Desarrollo Regional, FEDER) (AGL2016-76972-R). MC-B is a recipient of a doctoral fellowship from the University of Barcelona (APIF2014).

Thursday, January 24, 2019



Ancient Amazonian Chocolate Culture  Predates Olmec And Maya Of Central America

https://www.forbes.com/sites/kristinakillgrove/2018/10/31/archaeologists-find-earliest-chocolate-ingredient/#7a4568c3242a

Archaeologists Find Earliest Chocolate Ingredient In Ecuador  Kristina Killgrove Kristina Killgrove Senior Contributor

On the edge of the Amazon River basin, in southeast Ecuador, a team of archaeologists and other researchers have recently discovered that the origin of the world's chocolate supply dates to 5,300 years ago, long before cacao-based drinks were made in Mesoamerica.
Since cacao - or the seed of a tropical evergreen tree - is well known to have figured prominently in the Olmec and Maya cultures of Mesoamerica, researchers had long assumed that domestication and early use of the plant happened around 3,900 years ago in Central America, with the practice of chocolate-making spreading to the southwest US by about 1000 AD. A new DNA study, however, changes that thinking.

Writing this week in Nature Ecology and Evolution, archaeologists Sonia Zarrillo and Michael Blake of the University of British Columbia led a team of more than a dozen international researchers to investigate the earliest evidence of cacao -- which they found in the upper Amazon site of Santa Ana-La Florida dating to 5,300 years ago.

Santa Ana-La Florida is the earliest known archaeological site belonging to the Mayo-Chinchipe Culture, which existed in the highlands of Ecuador from about 5500 through 1700 BC. An ancient settlement, Santa Ana-La Florida was located in an ecologically transitional zone, or the type of area where archaeologists often find evidence of first domestication of plants and animals. This site, which has been excavated since 2002, has produced the remains of maize, beans, manioc, sweet potato, chili peppers, and cacao, in addition to material objects such as ceramics, stone bowls, and jewelry. The village of Santa Ana-La Florida was likely a ceremonial center, with a couple dozen small buildings situated around a central plaza.
"To test for the presence of Theobroma [cacao] residues at SALF," the researchers write, "we analysed artefacts from the tombs, middens, the sunken plaza floor, construction fill deposits, and a ceremonial hearth," including "ceramic bowls, jars, and bottles, as well as stone bowls, mortars, and one pestle."


Using 28 residue samples from 19 artifacts, Zarrillo and her team recovered starch grains characteristic of Theobroma species in six out of the 19 artifacts, which included low-fired pots whose porous nature retained this chemical, likely during processing of cacao beans...........



https://www.archaeology.org/issues/325-1901/trenches/7219-trenches-ecuador-cacao-seeds


Ancient Amazonian Chocolatiers

January/February 2019
Trenches Ecuador Santa Ana La Florida Block Real
(Courtesy Michael Blake, The University of British Columbia; Courtesy Sonia Zarrillo)
Hearth and tomb, Santa Ana-La Florida, Ecuador
Cacao seeds, the raw material used to make chocolate, were being consumed in southeastern Ecuador much earlier than archaeologists have thought. The evidence comes from chemical analysis of bottles found at an ancient village now called Santa Ana-La Florida. "We were surprised at how clear the evidence of cacao use is 5,300 years ago and that it continues throughout the 3,000-year history of the site," says archaeologist Michael Blake of the University of British Columbia.

Trenches Ecuador Bottles
(Courtesy Francisco Valdez)
Bottles with chocolate residue, Santa Ana-La Florida
Ancient Ecuadorean cacao was, in all likelihood, not made into candy bars or anything else resembling modern chocolate. The people fermented the seeds and then dried and ground them to make a beverage. Modern indigenous people in Ecuador use cacao as a medicine and a stimulant, as well as an ingredient in food and drink. Domesticated cacao, researchers suggest, was traded from South American to Meso-american cultures, such as the Maya and Aztecs, starting at least 3,900 years ago.

Monday, October 22, 2018


plant sources vitamin d precursers


https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4981617/




Plant Oils as Potential Sources of Vitamin D

Introduction

Food sources of vitamin D are scarce. Although oily fish is considered to be a good source of vitamin D3 (), its consumption and its vitamin D content is not high enough to significantly improve the vitamin D status of humans (). Besides fish, mushrooms are often considered as another valuable source of vitamin D, in particular of vitamin D2. However, the major natural vitamin D metabolite in fungi and yeast is the vitamin D precursor ergosterol, which can be converted to vitamin D2 by UVB irradiation (). The UVB-exposed baker’s yeast, which has been approved by the European Food Safety Authority as a reliable ingredient to enrich bakery products with vitamin D, is a prominent example for a successful application of UVB irradiation to enhance vitamin D in natural foods (). However, less data are available on vitamin D precursors and metabolites in plants. Yellow oat grass (Trisetum flavescens) is well described for its capability to synthesize bioactive vitamin D. It contains vitamin D glycosides which can be hydrolyzed in the gut or by the gastrointestinal microflora to the biologically active 1,25-dihydroxyvitamin D (). Other so-called calcinogenic plants that contain active vitamin D forms are Solanum malacoxylon, Cestrum diurnum, and Nierembergia veitchii of the Solanaceae family (). These plants are presumed to cause calcinosis in grazing animals due to the hypercalcemic effect of toxic 1,25-dihydroxyvitamin D levels (). Vitamin D metabolites were also found in Cucurbitaceae, Fabaceae, and Poaceae (). Besides that, certain plants are associated with fungal endophytes () or are capable to produce the vitamin D3precursor 7-dehydrocholesterol (7-DHC) on its own via the lanosterol pathway (). Based on these data, we hypothesized that plant oils could also contain vitamin D precursors or metabolites. The main aims of this investigation were [1] to identify and quantify precursors and metabolites of vitamin D in plant oils that are used in human nutrition and [2] to investigate whether a short-term exposure of selected oils to UVB light could increase their vitamin D content. To elucidate possible adverse effects of UVB exposure on the quality of the oils, we analyzed oxidative biomarkers and tested the sensory quality of the UVB-exposed oils. Additional tests were conducted to assess the stability of these vitamin D metabolites subsequent to thermal treatment and storage of the UVB-exposed oil. Finally, we aimed to elucidate the efficacy of plant-derived vitamin D to improve the vitamin D status by feeding an UVB-exposed plant oil to mice......................................
ng/g; 25-hydroxyvitamin D3, 2.1 ng/g).

Discussion

The presented studies demonstrated that plant oils contain high amounts of ergosterol, but comparatively low amounts of 7-DHC. It was striking that the ergosterol concentrations in the plant oils were on average 100 times higher than the 7-DHC concentrations. It is assumed that plants are per se not capable of producing ergosterol or vitamin D2 (), and that any of these metabolites are synthesized by endophytic fungi or by superficial fungal infections (). Regarding 7-DHC, the analyses revealed 10 times higher concentration of this cholesterol precursor in the WGO than in the other oils. 7-DHC is an intermediate of the cholesterol synthesis pathway. It is well described that plants from the Solanaceae, Fabaceae, and Poacaea families are capable of producing cholesterol (), which is assumed to be used for the synthesis of glycoalkaloids and ecdysteroids (). The 7-DHC has also been proposed to function as an UV light protector (), because the 7-DHC absorbs UVB irradiation that would otherwise damage the ribonucleic acids. The detectable amounts of 7-DHC in the linseed, rapeseed, and pumpkinseed oil suggest that cholesterol is also synthesized in plants from the Linaceae, Brassicaceae, and Cucurbitaceae families. However, in contrast to other researchers, who measured vitamin D in certain parts of the plant (), we were not able to detect vitamin D in untreated plant oils.
The detection of vitamin D precursors in the plant oils prompted us to speculate that exposure of oils to UVB irradiation could convert ergosterol and 7-DHC into vitamin D2and vitamin D3, respectively. Among the analyzed plant oils, the highest levels of vitamin D2 and vitamin D3 in response to an UVB irradiation were found in the WGO. After an 8-min exposure of thin-layered WGO, 1 g of this oil contained 1.5 μg vitamin D2 and 0.08 μg vitamin D3. We further found that the conversion rate of vitamin D precursors to vitamin D in the WGO was reduced by 40% if the oil layer thickness was increased from 1.0 to 3.2 mm. One gram of this thick-layered WGO provided in total a vitamin D content of 885 ng. With an average consumption of 12 g oil/day (), a total of 10.6 μg vitamin D could be supplied by intake of UVB-exposed WGO, which matches 50% of the recommended daily vitamin D intake ().
An interesting finding of this study was that the vitamin D content in the oils increased with the time of storage and a moderate thermal treatment. It is well described that the UVB photon converts the precursors, 7-DHC and ergosterol, to pre-vitamin D which in turn isomerizes to vitamin D by a thermal reaction (). Therefore, we assume that the preformed pre-vitamin D can convert to vitamin D in conditions with absent UVB irradiation. Our data further indicate that taste and aroma, and also biomarkers that are indicative of autoxidation such as the tocopherol concentration, peroxides, and free acids were not significantly influenced by a short-term exposure of the plant oils to UVB irradiation. This makes the short-term UVB treatment of plant oils to a safe and reliable technique to produce vitamin D supplements.
To evaluate the efficiency of UVB-exposed plant oils to improve the vitamin D status in vivo, we conducted a study with mice that were fed diets with either UVB-exposed WGO, untreated WGO, or WGO with supplemented vitamin D3. Here, we found that the UVB-exposed WGO is suitable to improve the vitamin D status of the mice as the group fed the UVB-exposed oil developed higher 25(OH)D plasma levels than the group fed the untreated oil. Compared with the group fed the vitamin D3-supplemented WGO, the UVB-exposed oil was less effective in increasing the 25(OH)D plasma concentrations. However, it should be noted that the livers of mice that received the UVB-exposed WGO stored huge amounts of vitamin D2 in comparison to that of mice fed the vitamin D3 supplemented oil. The increased storage of hepatic vitamin D2 in combination with the reduced plasma concentration of 25(OH)D2 in the group fed the UVB-exposed oil suggests that vitamin D2 is less appropriate as a substrate for hepatic hydroxylation than vitamin D3. It has been a debate for many years whether both forms of vitamin D are bioequivalent. A series of studies has shown that vitamin D2 does not increase 25(OH)D serum concentrations to the same amount as vitamin D3 does (). The current data confirm the different efficacy of both vitamin D isoforms. However, we cannot exclude at this stage, that photo-isomers that are produced by the UVB treatment may also impact the bioavailability of the vitamin D form in UVB-exposed oil.
To conclude, plant oils that are commonly used in human nutrition contain considerable quantities of ergosterol, but small amounts of 7-DHC. Among the different analyzed oils, WGO has the highest amounts of vitamin D precursors. A short-term UVB irradiation was successful in increasing the vitamin D content of the selected oils. The in vivo study has shown that UVB-exposed WGO can improve the vitamin D status, although less effective than vitamin D3.

Author Contributions

CB, BK, and GS conceived and designed the experiment. AB performed the experiment. AB and FH analyzed the data. AB, CB, and GS wrote the manuscript. BK and FH critically reviewed the manuscript

Sunday, October 21, 2018

Counterintuitive:Cacao,(Chocolate),Fungus A  Source Of Vitamin D ?



http://www.freshplaza.com/article/9031121/mushrooms-a-weapon-in-fight-against-global-vitamin-d-shortage/

Mushrooms + UV light = Vitamin D bombs

Mushrooms a weapon in fight against global vitamin D shortage

Vitamin D mushrooms. After three years of effort, the European Commission approved the claim
this summer. With the aid of UV light, mushrooms change into small vitamin D bombs. Scelta
Mushrooms and Banken Champignons made an effort to also be allowed to use the claim in Europe. Now what? Are consumers ready for ‘functional foods?’ How do you market a product like this?
The technique is simple in theory. Mushrooms contain the substance ergosterol, which is turned
 into vitamin D under the influence of UV light. “Mushrooms naturally produce vitamin D under the
influence of sunlight (UV radiation),” Alex Bos of Banken Champignons explains. Chanterelles and
other wild mushrooms picked in forests naturally contain vitamin D. But that’s the theory, the practice
 is more stubborn. “No vitamin D is produced because mushrooms are grown indoors, and never
see sunlight. Illumination occurs after the harvest. The complexity of this can be found in the
consistency,” Roy Janssen of Scelta Mushrooms mentions another bottleneck. “To remain within
legislation and regulations, the lamps have to constantly be readjusted.”
Claim’s burden of proof important


“It sounds simple,” says Alex. “But you have to give proper shape to the process to guarantee the
claim that the mushrooms contain vitamin D. We use patented lamps.” The claim isn’t exclusive to
 Banken Champignons or Scelta Mushrooms. Other players within the framework of the EFSA
process can also get started with UV lamps. “We have a first mover advantage because we gained
a lot of knowledge and skill in recent years,” Roy says. “It’s still calm in this field on the market for
processed mushrooms, and we’re the only ones to offer these mushrooms.”............


..........................................................................................................

https://www.timesnownews.com/health/article/dark-chocolate-cocoa-butter-important-source-of-vitamin-d/291996

Berlin: Cocoa butter and dark chocolate can be a significant source of Vitamin D 
and may help reduce the risk of respiratory diseases and brittle bones, a study has 
found. Vitamin D is crucial for the human body. It comes in two types: vitamin D2 
and D3. Vitamin D3 is produced in the human skin through exposure to the sun. 
Humans get 90 per cent of their vitamin D requirements this way. The rest is ideally 
consumed through food, such as fatty fish or chicken eggs. Vitamin D2, which can 
also be utilised by the human body, is found in fungi. 
The study, published in the journal Food Chemistry, found that cocoa and foods 
containing cocoa have significant amounts of vitamin D2. "Many people do not get 
enough vitamin D. The problem increases in the winter months when sunshine is 
scarce," said Gabriele Stangl from Martin Luther University Halle-Wittenberg (MLU) in 
Germany.Researchers investigated the vitamin D content of cocoa and products 
containing cocoa because they suspected that they contained a previously unknown 
source of the vitamin. Cocoa beans are dried after fermentation. They are placed 
on mats and exposed to the Sun for one to two weeks. The precursors of vitamin D, 
which presumably originate from harmless fungi, are transformed by the sunlight 
into vitamin D2.In order to test their theory, the research group analysed various 
cocoa products and powders using state-of-the-art mass spectrometry. What they 
found is that products containing cocoa are indeed a source of vitamin D2, but the 
amount varies greatly from food to food. While dark chocolate has a relatively high 
vitamin D2 content, researchers found very little in white chocolate.


Dark chocolate, cocoa butter important 

source of vitamin D

Health
Updated Sep 29, 2018 | 23:27 IST | PTI

According to studies, cocoa butter and dark chocolate can be a significant source of 

Vitamin D and may help in reducing the risk of respiratory diseases and brittle bones.

Dark Chocolate
Dark chocolate, cocoa butter important source of vitamin D (Representational Image)  |  Photo Credit: Thinkstock











Berlin: Cocoa butter and dark chocolate can be a significant source of Vitamin D 
and may help reduce the risk of respiratory diseases and brittle bones, a study has 
found. Vitamin D is crucial for the human body. It comes in two types: vitamin D2 
and D3. Vitamin D3 is produced in the human skin through exposure to the sun. 
Humans get 90 per cent of their vitamin D requirements this way. The rest is ideally 
consumed through food, such as fatty fish or chicken eggs. Vitamin D2, which can 
also be utilised by the human body, is found in fungi. 
The study, published in the journal Food Chemistry, found that cocoa and foods 
containing cocoa have significant amounts of vitamin D2. "Many people do not get 
enough vitamin D. The problem increases in the winter months when sunshine is 
scarce," said Gabriele Stangl from Martin Luther University Halle-Wittenberg (MLU) in 
Germany.Researchers investigated the vitamin D content of cocoa and products 
containing cocoa because they suspected that they contained a previously unknown 
source of the vitamin. Cocoa beans are dried after fermentation. They are placed 
on mats and exposed to the Sun for one to two weeks. The precursors of vitamin D, 
which presumably originate from harmless fungi, are transformed by the sunlight 
into vitamin D2.In order to test their theory, the research group analysed various 
cocoa products and powders using state-of-the-art mass spectrometry. What they 
found is that products containing cocoa are indeed a source of vitamin D2, but the 
amount varies greatly from food to food. While dark chocolate has a relatively high 
vitamin D2 content, researchers found very little in white chocolate.
"This is not surprising as the cocoa content in white chocolate is significantly lower. 
It confirms our assumption that cocoa is the source of vitamin D2," said Stangl. 
The findings do not prompt researchers to recommend consuming large quantities 
of chocolate.
"You would have to eat enormous amounts of chocolate to cover your vitamin D2 
requirements. That would be extremely unhealthy because of the high sugar and 
fat content," said Stangl. Instead, the results of the study are important for obtaining accurate data on the average nutrients consumed by the population. 

................................
http://www.freshplaza.com/article/9031121/mushrooms-a-weapon-in-fight-against-global-vitamin-d-shortage/

Mushrooms + UV light = Vitamin D bombs

Mushrooms a weapon in fight against global vitamin D shortage

Vitamin D mushrooms. After three years of effort, the European Commission approved the claim
this summer. With the aid of UV light, mushrooms change into small vitamin D bombs. Scelta
Mushrooms and Banken Champignons made an effort to also be allowed to use the claim in Europe. Now what? Are consumers ready for ‘functional foods?’ How do you market a product like this?
The technique is simple in theory. Mushrooms contain the substance ergosterol, which is turned
 into vitamin D under the influence of UV light. “Mushrooms naturally produce vitamin D under the
influence of sunlight (UV radiation),” Alex Bos of Banken Champignons explains. Chanterelles and
other wild mushrooms picked in forests naturally contain vitamin D. But that’s the theory, the practice
 is more stubborn. “No vitamin D is produced because mushrooms are grown indoors, and never
see sunlight. Illumination occurs after the harvest. The complexity of this can be found in the
consistency,” Roy Janssen of Scelta Mushrooms mentions another bottleneck. “To remain within
legislation and regulations, the lamps have to constantly be readjusted.”
Claim’s burden of proof important


“It sounds simple,” says Alex. “But you have to give proper shape to the process to guarantee the
claim that the mushrooms contain vitamin D. We use patented lamps.” The claim isn’t exclusive to
 Banken Champignons or Scelta Mushrooms. Other players within the framework of the EFSA
process can also get started with UV lamps. “We have a first mover advantage because we gained
a lot of knowledge and skill in recent years,” Roy says. “It’s still calm in this field on the market for
processed mushrooms, and we’re the only ones to offer these mushrooms.”
Three years of literature and practical research preceded the approval. In those years, Scelta
Mushrooms and Banken Champignons worked together to prove the claim. “We worked in a
controlled environment for three years so as not to harm the quality of the product, but also to be
able to guarantee a percentage of vitamin D,” Alex explains. Other producers are free to market
vitamin D mushrooms, but they’ll also have the burden of proof. Companies have to show that the
mushrooms contain a certain number of micrograms of vitamin D. “Banken Champignons and
Scelta offer their customers the comfort that these claim has been proven, and that it has been
officially approved by the European Commission.”
Available this autumn
“It would technically also work with other mushrooms, but that isn’t in our scope,” Roy explains.
Scelta Mushrooms practically only works with white mushrooms. That’s not the case for Banken
Champignons. With an assortment of various mushrooms, it became an interesting matter. “For
now, the claim can only be made for white and brown mushrooms (Agaricus bisporus),” Alex says.
“However, considering these are the mushroom varieties sold most, it offers prospects for the
continued growth of the category.”
Now that approval has been granted, production can get started. Scelta starts the production of the
vitamin D mushrooms at one of their production locations in October. From there, the process will
be rolled out to the other branches, until all white mushrooms contain the additional vitamin D in
principle. “Not all parts of the mushrooms are as susceptible to this technique. For example, we
have a factory where we make flavour enhancers from the stems of the mushrooms. These stems
contain less ergosterol, and therefore have less vitamin D than the caps.”

Alex expects that the first fresh mushrooms with vitamin D will be available in supermarkets from
September. They couldn’t be available soon enough. When Rob Banken talked to BNR about the
new mushrooms earlier this year, the article was picked up by various media. Questions soon
started arriving at the company about where the mushrooms would be available. “Health is
becoming more and more important,” Alex explains the major interest both nationally and
internationally.
Functional foods and meat replacers
The category was already benefiting from the growing number of flexible vegetarians who think
mushrooms are a good alternative to meat. Both Banken and Scelta respond to that trend by
presenting mushrooms as a meat replacer and meat enhancer. “We’re too far removed from the
final consumer to directly influence this trend, we’re looking more at what’s important to our
customers,” Roy explains. A new trend is added to that because of the vitamin D claim: functional
foods. Banken Champignons responds to that directly. A packaging has been developed for six
mushrooms. “This can be offered as a two-person portion, three mushrooms contain 10 micrograms
of vitamin D, which is equal to the recommended daily amount of vitamin D.”
Communicating about the new product is one of the biggest challenges. “We have to get the
message across,” Alex says. For the communication, the company introduces a new packaging,
among other things. “Traditionally, mushrooms are packed in a blue punnet, but we developed a
cardboard punnet with a top seal. The advantage of this is that we can inform the consumers using
five sides of the punnet, and even the top seal, if necessary.”
International ambition
“We’re constantly in contact with our customers to inform them about the vitamin D mushrooms,”
Roy says. Most of the customers of the eco-pouch are active in food service. “They consider it a
good addition.” Customers can choose to use the claim and communicate to their customers when
offering, for example, a mushroom burger enhanced with vitamin D. “It’s up to the customer to
decide to what extent they want to inform final users. Up till now, we haven’t spoken to anyone who
objects to the vitamin D mushrooms.”
The vitamin D mushrooms have been available abroad for a while now. The UK and the US have a
 longer tradition of enhancing food with vitamins and minerals. “It’s a global trend that’s also headed
for Europe,” Roy says. It’s therefore not surprising Roy mentions North America as a market where
the vitamin D mushrooms will likely be absorbed without any problems. In Europe, the UK will
probably be the frontrunner, although interest is increasing in other countries. The British chain
Tesco has decided to offer brown mushrooms enhanced with vitamin D as a standard. “This trend
can also be seen in Australia and Canada,” Alex adds.
Why is there a vitamin D shortage?
Mushrooms as a source of vitamin D sounds positive, but why is vitamin D so important? Do we
have a chronic shortage of vitamin D? Alex: “The body gets vitamin D in two ways. The first is from
 food, this is good for about one-third of vitamin D in bodies. Two-thirds of the vitamin D is produced
by the body itself under influence of sunlight on our skin.” This isn’t a problem in the summer
 months, when the sun is shining and people tend to be outside more, so the body produces plenty
of vitamin D. This changes as days grow shorter, when the sun is less high in the sky and it’s often
hidden behind grey clouds, in short, when autumn starts. It becomes more difficult for bodies to
produce plenty of vitamin D. An addition is needed. “Vitamin D is important for calcium intake, for
instance,” Alex continues. Calcium is necessary for the production and maintenance of bones and
teeth.
“It’s a major theme that’s often talked about, and that’s why we’re seeing it in more and more
products. Mushrooms are the only natural source of vitamin D,” Roy adds. Globally, a shift can be
seen. As a result of the economic development and the fact people spend more time indoors, the
number of people with a vitamin D shortage is increasing globally.Besides, there’s increasing
interest in functional foods.

Vitamin D life buoy for white mushrooms?
In recent months, the discussion regarding the pricing of white mushrooms in retail flared up in the
national media. Due to pressure on the prices, the Dutch mushroom production is in danger of
disappearing. Can the vitamin D enhancement change this?
“We’re considering this to be one of the great things we found in our mushrooms, and we can offer
something wonderful to the market from a social point of view with it,” Roy says. “People have a
global shortage of vitamin D. We can help find a solution this way,” he says.
It’s different for the fresh market, not least because that’s where the discussion is most intense.
Alex thinks the price discussion won’t disappear. “The discussion has been held before, but we’ve
now reached a point when something has to happen. Otherwise there won’t be any mushroom
growers left in the Netherlands.” Due to the pressure on prices, a lot of mushroom growers were
forced to quit in recent years. Despite the decreasing numbers of growers, total production
remained at the same level. That scaling-up, however, has now reached its limit. The existing
production companies are so large that if a grower collapses, a large part of the area is lost to the
market. “It’s hard, because the Netherlands is a pioneer in the field of mushroom production,” Alex
says. The European retailers have also become increasingly larger, so they can put more pressure
on prices. “It’s a shame when the Netherlands has to lose out because of competition from Poland.”
“The positive thing about the vitamin D mushrooms, is that we have the knowledge,” Alex says
about the positive developments on the market. “Because of that, there will always be demand for
Dutch product.” Zooming out, he describes the total sector more positively. “The product group has
grown in recent years. Chestnut mushrooms and exotic mushrooms are sold more often.” The
market for white mushrooms also appears to be stabilising after a few years of decreasing. “We
even see a slight plus,” Alex says, hopefully. “The biggest growers are the mixed packaging,
chestnut mushrooms and shiitake.” Vitamin D could break the downward pricing spiral of the white
mushrooms, he thinks. “It is an added value for retailers, which could be good for prices.”
A.vos@bankenchampignons.com
RoyJanssen@sceltamushrooms.com