This review will discuss recent progress in the chemistry of secondary polyphenols produced during food processing. The production mechanism of the secondary polyphenols in black tea, whisky, cinnamon, and persimmon fruits will be introduced. In the process of black tea production, tea leaf catechins are enzymatically oxidized to yield a complex mixture of oxidation products, including theaflavins and thearubigins. Despite the importance of the beverage, most of the chemical constituents have not yet been confirmed due to the complexity of the mixture. However, the reaction mechanisms at the initial stages of catechin oxidation are explained by simple quinone–phenol coupling reactions.
Recent studies have revealed various health benefits of plant polyphenols, and their importance in foods, beverages and natural medicine [
Enzymatic or non-enzymatic oxidation is the most common reaction involved in the production of secondary polyphenols. Polyphenols having
The polyphenols from fresh tea leaf are quite unique. Their concentrations in the leaf are very high (13–25% of dry weight [
Oxidation of a mixture of these four catechins in the tea leaf proceeds in different ways from that observed for (+)-catechin alone. Coupling products between A- and B-rings as observed in the oxidation of (+)-catechin have not been found so far in black tea polyphenols. The most important catechin oxidation products in black tea are theaflavin and its mono and digallates [
Theaflavins are not final products and thus, are further oxidized (
Compared with B-rings, the reactivity of the galloyl esters is low. However, oxidative coupling between EC-quinone and the galloyl groups of the theaflavin gallates has been observed (
Pyrogallol-type B-rings of EGC and EGCg have the lowest redox potential among the aromatic rings of tea catechins [
The oxidations of EGC and EGCg are important because these two catechins account for over 70% of total tea catechins in tea leaves. The following
The results indicated that the theasinensins are produced by degradation of heat-susceptible intermediates. The presence of the intermediates was first confirmed by trapping them as phenazine derivatives by condensation with
The major oxidation product of EGC is dehydrotheasinensin C, a desgalloyl form of dehydrotheasinensin A, which decomposes to give theasinensins C and E and desgalloyl oolongtheanin, which are desgalloyl analogs of the products generated from dehydrotheasinensin A. Oxidation of EGC is partly different from that of EGCg, and a characteristic oxidation product named proepitheaflagallin was isolated (
In addition to epitheaflagallin, hydroxytheaflavin was also produced by the degradation. This product has not been identified in commercial black tea. Recently, production of proepitheaflagallin B having a bicyclo[3.2.1]octane-type structure was demonstrated by
Interestingly, oxidation of EGC with a 2(
Davis
Some oxidation products related to theasinensins were produced by
EGCg dimer A was first isolated as an
When thinking about the health benefits of black tea polyphenols as antioxidant [
Activity guided separation of black tea extract indicated that polymer-like polyphenols, in addition to theaflavins, have strong inhibitory activities towards lipase [
Many plants have the ability to oxidize catechins even though the plants do not contain catechins [
During black tea production, enzymatic oxidative dimerization of pyrogallol-type catechins is important because of their high susceptibility to oxidation and abundance in the tea leaf. Production of unstable intermediates, such as dehydrotheasinensins and proepitheaflagallin, was demonstrated. However, degradation of the intermediates remained to be clarified as the major degradation products, such as the theasinensins, only account for about half of the total degradation products. The unknown degradation products may hold the key to the solution of thearubigin formation in black tea chemistry.
In whisky production, distilled spirits are aged for several years in oak barrels, and the constituents of the wood dissolve into the spirit to determine its color, flavor and taste. The wood of oak species, such as
To mimic the oxidation occurring during the charring process of barrel making, pyrolysis of ellagitannins was examined. Pyrolysis of castalagin, as a mimic of decomposition during the charring process in barrel production, yielded ellagic acid, dehydrocastalagin, castacrenin F, and phenolcarboxylic acid trislactone having an isocoumarin structure (
During the tea fermentation process, coupling of the catechin A-ring with coexisting carbonyl compounds occurs. 8-C-Ascorbyl-(−)-epigallocatechin-3-
EGCg dimers produced by reaction with formaldehyde were also isolated from the oolong tea, and named oolonghomobisflavans [
Aldehydes are also produced from amino acids by Strecker degradation in the presence of carbonyl compounds. Tea contains a characteristic amino acid named
Some plants use animals to disperse their seeds in exchange for delicious and nutritious fruit flesh. In the case of persimmon fruits, until the seeds acquire germinating ability, the fruits are protected by the bitter and astringent taste of proanthocyanidins. After the seeds acquire the germinating ability, the astringency decreases and the color of the fruits change to reddish orange. At this stage, acetaldehyde is secreted from the seeds and penetrates into the tannin cell [
Reaction of proanthocyanidins with aldehydes has also been observed when plant tissues are wounded. When the fresh bark of Japanese cinnamon (
We found that a similar color change was also observed when a mixture of (+)-catechin and cinnamaldehyde, a dominant essential oil of the cinnamon bark, was heated at 100 °C [
The production of dimeric product B indicated that dimerization and oligomerization of procyanidins occurs. This was supported by the MALDI-TOF MS of the reaction products of procyanidin B1 [(−)-epicatechin-(4β→8)-(+)-catechin] and cinnamaldehyde (
It is well known that tea catechins show strong radical scavenging activities [
Recently, the reaction of a conjugated aldehyde with a C-8(6) carbon and C-7(5) hydroxyl group of flavan-3-ols was applied to prepare lipid-soluble derivatives of catechins [
Polyphenols in red wine undergo complex reactions with coexisting substances. Dimerization and polymerization of catechin, procyanidin, and anthocyanins in the presence of various aldehydes have been demonstrated in wine-like model solutions [
Cocoa and coffee beans contain proanthocyanidins and caffeoyl esters, respectively. Cocoa beans (the seeds of the
From the cocoa liquor produced from fermented and roasted cocoa beans, the catechin C-glycoside and A-type procyanidins glycosides were isolated [
Roasting of coffee beans is an interesting issue from the view point of food processing. The major phenolic constituent is chlorogenic acid and related hydroxycinnamoyl quinic acids. Frank
The reason why plants accumulate polyphenols is thought to be related to the plant defense system [
Structures of dehydrodicatechin A and related compounds [
Color changes during enzymatic oxidation of EC and EGC [
Structures of oxidation products produced by condensation between catechol-type B-rings and galloyl groups [
HPLC of crushed tea leaf (a) before heating (b) after heating (80 °C). DTS: dehydrotheasinensins, TS: theasinensins [
Structures of oxidation products produced from EGCg [
HPLC of AcOEt and n-BuOH layers of black tea extract [
Pyrolysis products of castalagin and vescalagin [
Structures of oolonghomobisflavans and an unstable dimer of EGCg produced by reaction with acetaldehyde [
Surface of Japanese cinnamon wood after the bark was peeled off. (a) Fresh cinnamon (b) cinnamon heated with microwave oven for 30 seconds [
Possible structures of the fragment ion peaks observed in the MALDI-TOF MS of the reaction products of procyanidin B1 and cinnamaldehyde [
Structures of hydrophobic derivatives of EGCg [
Structures of the conjugates of catechins with naturally occurring aldehydes [
Structures of a condensation product of acetaldehyde and malvidin 3-glucoside, two glyoxylic acid-catechin condensation products, a catechinpyrylium product (oaklin) obtained by reaction with coniferyl aldehyde, and dimeric products produced by reaction with furfural in wine-like model solution.
Structures of catechin and procyanidin glycosides isolated from cocoa liquor [
Production of dehydrotheasinensin A from (+)-catechin.
Production of theaflavins from epicatechin and epigallocatechin [
Oxidation of theaflavins [
Production and decomposition of dehydrotheasinensin A [
Quinoxaline derivatives of proepitheaflagallin [
Production and decomposition of proepitheaflagallin [
Difference of oxidative coupling of EGC and GC [
Production and decomposition of theacitrin C [
Production of whisky tannins A and B from castalagin [
Formation of 8-C-ascorbyl-(−)-epigallocatechin-3-
Reaction of theasinensin A with theanine Strecker aldehyde [
Insolubilization of proanthocyanidins in persimmon fruits [
Reaction of (+)-catechin and cinnamaldehyde and generation of red pigment [
Decomposition of chlorogenic acid upon roasting of coffee beans [