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Human bioavailability of flavanols and phenolic acids from cocoa-nut creams enriched with free or microencapsulated cocoa polyphenols

Published online by Cambridge University Press:  10 October 2012

Paola Vitaglione*
Affiliation:
Department of Food Science, University of Naples, via Università 100, Parco Gussone Ed. 84, Portici80055, NA, Italy
Roberta Barone Lumaga
Affiliation:
Department of Food Science, University of Naples, via Università 100, Parco Gussone Ed. 84, Portici80055, NA, Italy
Rosalia Ferracane
Affiliation:
Department of Food Science, University of Naples, via Università 100, Parco Gussone Ed. 84, Portici80055, NA, Italy
Sereno Sellitto
Affiliation:
Department of Food Science, University of Naples, via Università 100, Parco Gussone Ed. 84, Portici80055, NA, Italy
José Ramón Morelló
Affiliation:
La Morella Nuts, Reus, 43206Tarragona, Spain
Jordi Reguant Miranda
Affiliation:
La Morella Nuts, Reus, 43206Tarragona, Spain
Eyal Shimoni
Affiliation:
Technion – Israel Institute of Technology, Faculty of Biotechnology and Food Enginerring, IL-32000Haifa, Israel
Vincenzo Fogliano
Affiliation:
Department of Food Science, University of Naples, via Università 100, Parco Gussone Ed. 84, Portici80055, NA, Italy
*
*Corresponding author: P. Vitaglione, email paola.vitaglione@unina.it
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Abstract

Human bioavailability of cocoa flavanols and phenolic acids from a cocoa-nut cream (CC) and from CC enriched with a 1·5 % (w/w) cocoa polyphenol extract in free form (FPC) or encapsulated with a gastric-resistant high-amylose maize starch (EPC), was studied. In a randomised cross-over protocol, with 1-week wash-out in between, twelve healthy volunteers had three portions/d of each cream, providing approximately 190 μmol/d of total flavanols and 12 μmol/d of total phenolic acids with CC and 385 and 28 μmol/d with both FPC and EPC, respectively. Blood, urine and faecal samples were analysed by HPLC/MS/MS. Serum (epi)catechin was absent at baseline and after CC consumption, while 22·1 (sem 2·62) and 1·59 (sem 0·22) nmol (P <0·05) were found after FPC and EPC, respectively. The EPC increased faecal excretion of total flavanols compared to FPC (151·0 (sem 54·6) v. 28·0 (sem 14·0) nmol; P <0·05). Within 6 h after consumption, serum phenolic acid content was 50-fold higher than (epi)catechin; no difference between CC and FPC was observed, but a significant reduction after EPC (1954 (sem 236·3) and 1459 (sem 137·6) v. 726·8 (sem 73·4) nmol, P <0·05) was recorded. Short-term phenolic acid urinary excretions were significantly higher after FPC than CC and EPC, the values being 11·4 (sem 5·1) v. 3·1 (sem 1·7) and 0·9 (sem 0·5) μmol, respectively. Faecal phenolic acids were approximately 60-fold reduced after FPC (8·1 (sem 0·13) nmol) and EPC (14·7 (sem 2·7) nmol) consumption compared to CC (641·4 (sem 99·1) nmol) consumption. The data demonstrated that: (i) (epi)catechin was absorbed from CC; (ii) cocoa polyphenols' consumption increased circulating phenolic acids; and (iii) encapsulated ingredient increased flavanol delivering into the gut. Further studies should evaluate whether encapsulated cocoa polyphenols may be a functional prebiotic ingredient.

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Type
Full Papers
Copyright
Copyright © The Authors 2012 
Figure 0

Table 1 Composition of experimental creams (per 100 g) (Mean values with their standard errors (n 3))

Figure 1

Table 2 MS parameters, negative ions and transition product ions analysed by HPLC/MS/MS

Figure 2

Table 3 Amount (nmol) of serum-free native flavanols and phenolic acids over the time intervals 0–6 h following consumption of the three cocoa creams (Mean values with their standard errors (n 12))

Figure 3

Table 4 Amount (nmol) of parental flavanols and phenolic acids excreted in urine collected over the time intervals 0–6 and 6–24 h following consumption of the three nut-cocoa creams (Mean values with their standard errors (n 12))

Figure 4

Table 5 Amount (nmol) of parental flavanols and phenolic acids excreted in faeces collected the day after consumption of the three nut-cocoa creams (Mean values with their standard errors (n 12))

Figure 5

Table 6 Summary of bioavailability of cocoa polyphenols from the three cocoa-nut creams‡

Figure 6

Fig. 1 Hedonic profile of control cream (), and experimental creams enriched with 1·5 % of free (FP, ) and encapsulated (EP, ) cocoa polyphenol extract. Values are mean scores (n 30) anchored by 0 (extremely disliking) to 9 (extremely liking).

Figure 7

Fig. 2 Study design. Each subject followed the time schedule for each type of cocoa-nut cream by a cross-over randomised design. After a 1-week wash-out period during which subjects returned to their habitual diet, they switched to the 3-d polyphenol-free diet and were randomised for another treatment. A total of three portions (33 g each) of the cocoa-nut cream were consumed upon each treatment.

Figure 8

Fig. 3 Serum concentration–time curves of (a) (epi)catechin and (b) total phenolic acids over 24 h following consumption of the three types of cream (CC, control cream; FPC, free cocoa polyphenol cream; EPC, encapsulated cocoa polyphenol cream). (a) , FPC; , EPC. (b) , FPC; , EPC; , CC. Values are means, with their standard errors represented by vertical bars (n 12). * Mean values were significantly different from that of time 0 (P< 0·05; Bonferroni test). † Mean values were significantly different from that of CC (P< 0·05; Bonferroni test).

Figure 9

Fig. 4 Urinary excretions of (a) (epi)catechin, (b) procyanidins and (c) total phenolic acids over 24 h following consumption of the three types of cream (CC, control cream; FPC, free cocoa polyphenol cream; EPC, encapsulated cocoa polyphenol cream). Values are means, with their standard errors represented by vertical bars (n 12). (a) , FPC; , CC. (b) , FPC; , EPC; , CC. (c) , FPC; , EPC; , CC. * Mean values were significantly different from that of time 0 (P< 0·05; Bonferroni test). † Mean values were significantly different from that of CC (P< 0·05; Bonferroni test).