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1.
Eur J Nutr ; 62(3): 1479-1492, 2023 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-36651990

RESUMO

PURPOSE: The high-meat, low-fibre Western diet is strongly associated with colorectal cancer risk. Mycoprotein, produced from Fusarium venanatum, has been sold as a high-fibre alternative to meat for decades. Hitherto, the effects of mycoprotein in the human bowel have not been well considered. Here, we explored the effects of replacing a high red and processed meat intake with mycoprotein on markers of intestinal genotoxicity and gut health. METHODS: Mycomeat (clinicaltrials.gov NCT03944421) was an investigator-blind, randomised, crossover dietary intervention trial. Twenty healthy male adults were randomised to consume 240 g day-1 red and processed meat for 2 weeks, with crossover to 2 weeks 240 g day-1 mycoprotein, separated by a 4-week washout period. Primary end points were faecal genotoxicity and genotoxins, while secondary end points comprised changes in gut microbiome composition and activity. RESULTS: The meat diet increased faecal genotoxicity and nitroso compound excretion, whereas the weight-matched consumption of mycoprotein decreased faecal genotoxicity and nitroso compounds. In addition, meat intake increased the abundance of Oscillobacter and Alistipes, whereas mycoprotein consumption increased Lactobacilli, Roseburia and Akkermansia, as well as the excretion of short chain fatty acids. CONCLUSION: Replacing red and processed meat with the Fusarium-based meat alternative, mycoprotein, significantly reduces faecal genotoxicity and genotoxin excretion and increases the abundance of microbial genera with putative health benefits in the gut. This work demonstrates that mycoprotein may be a beneficial alternative to meat within the context of gut health and colorectal cancer prevention.


Assuntos
Neoplasias Colorretais , Carne , Adulto , Masculino , Humanos , Carne/efeitos adversos , Dieta , Ácidos Graxos Voláteis , Dano ao DNA , Compostos Nitrosos
2.
Biotechnol Appl Biochem ; 68(4): 823-831, 2021 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-32776353

RESUMO

Tyrosinase starts melanogenesis and determines its course, catalyzing the oxidation by molecular oxygen of tyrosine to dopa, and that of dopa to dopaquinone. Then, nonenzymatic coupling reactions lead to dopachrome, which evolves toward melanin. Recently, it has been reported that d-tyrosine acts as tyrosinase inhibitor and depigmenting agent. The action of tyrosinase on the enantiomers of tyrosine (l-tyrosine and d-tyrosine) and dopa (l-dopa and d-dopa) was studied for the first time focusing on quantitative transient phase kinetics. Post-steady-state transient phase studies revealed that l-dopachrome is formed more rapidly than d-dopachrome. This is due to the lower values of Michaelis constants for l-enantiomers than for d-enantiomers, although the maximum rates are equal for both enantiomers. A deeper analysis of the inter-steady-state transient phase of monophenols demonstrated that the enantiomer d-tyrosine causes a longer lag period and a lower steady-state rate, than l-tyrosine at the same concentration. Therefore, d-melanogenesis from d-tyrosine occurs more slowly than does l-melanogenesis from l-tyrosine, which suggests the apparent inhibition of melanin biosynthesis by d-tyrosine. As conclusion, d-tyrosine acts as a real substrate of tyrosinase, with low catalytic efficiency and, therefore, delays the formation of d-melanin.


Assuntos
Di-Hidroxifenilalanina/química , Proteínas Fúngicas/química , Melaninas/síntese química , Monofenol Mono-Oxigenase/química , Tirosina/química , Catálise , Cinética , Melaninas/química , Oxirredução , Estereoisomerismo
4.
Nature ; 517(7533): 165-169, 2015 Jan 08.
Artigo em Inglês | MEDLINE | ID: mdl-25567280

RESUMO

Yeasts, which have been a component of the human diet for at least 7,000 years, possess an elaborate cell wall α-mannan. The influence of yeast mannan on the ecology of the human microbiota is unknown. Here we show that yeast α-mannan is a viable food source for the Gram-negative bacterium Bacteroides thetaiotaomicron, a dominant member of the microbiota. Detailed biochemical analysis and targeted gene disruption studies support a model whereby limited cleavage of α-mannan on the surface generates large oligosaccharides that are subsequently depolymerized to mannose by the action of periplasmic enzymes. Co-culturing studies showed that metabolism of yeast mannan by B. thetaiotaomicron presents a 'selfish' model for the catabolism of this difficult to breakdown polysaccharide. Genomic comparison with B. thetaiotaomicron in conjunction with cell culture studies show that a cohort of highly successful members of the microbiota has evolved to consume sterically-restricted yeast glycans, an adaptation that may reflect the incorporation of eukaryotic microorganisms into the human diet.


Assuntos
Bacteroidetes/metabolismo , Trato Gastrointestinal/microbiologia , Mananas/metabolismo , Modelos Biológicos , Leveduras/química , Animais , Bacteroidetes/citologia , Bacteroidetes/enzimologia , Bacteroidetes/genética , Evolução Biológica , Configuração de Carboidratos , Dieta , Enzimas/genética , Enzimas/metabolismo , Feminino , Loci Gênicos/genética , Vida Livre de Germes , Glicoproteínas/química , Glicoproteínas/metabolismo , Humanos , Masculino , Mananas/química , Manose/metabolismo , Camundongos , Modelos Moleculares , Oligossacarídeos/química , Oligossacarídeos/metabolismo , Periplasma/enzimologia
5.
Biochem J ; 416(3): 431-40, 2008 Dec 15.
Artigo em Inglês | MEDLINE | ID: mdl-18647136

RESUMO

The suicide inactivation mechanism of tyrosinase acting on its substrates has been studied. The kinetic analysis of the proposed mechanism during the transition phase provides explicit analytical expressions for the concentrations of o-quinone against time. The electronic, steric and hydrophobic effects of the substrates influence the enzymatic reaction, increasing the catalytic speed by three orders of magnitude and the inactivation by one order of magnitude. To explain the suicide inactivation, we propose a mechanism in which the enzymatic form E(ox) (oxy-tyrosinase) is responsible for such inactivation. A key step might be the transfer of the C-1 hydroxyl group proton to the peroxide, which would act as a general base. Another essential step might be the axial attack of the o-diphenol on the copper atom. The rate constant of this reaction would be directly related to the strength of the nucleophilic attack of the C-1 hydroxyl group, which depends on the chemical shift of the carbon C-1 (delta(1)) obtained by (13)C-NMR. Protonation of the peroxide would bring the copper atoms together and encourage the diaxial nucleophilic attack of the C-2 hydroxyl group, facilitating the co-planarity with the ring of the copper atoms and the concerted oxidation/reduction reaction, and giving rise to an o-quinone. The suicide inactivation would occur if the C-2 hydroxyl group transferred the proton to the protonated peroxide, which would again act as a general base. In this case, the co-planarity between the copper atom, the oxygen of the C-1 and the ring would only permit the oxidation/reduction reaction on one copper atom, giving rise to copper(0), hydrogen peroxide and an o-quinone, which would be released, thus inactivating the enzyme.


Assuntos
Monofenol Mono-Oxigenase/metabolismo , Fenóis/metabolismo , Agaricales/enzimologia , Antioxidantes/química , Antioxidantes/metabolismo , Proteínas Fúngicas/metabolismo , Estrutura Molecular , Ressonância Magnética Nuclear Biomolecular , Oxirredução , Fenóis/química , Pirogalol/química , Pirogalol/metabolismo , Quinonas/química , Quinonas/metabolismo , Especificidade por Substrato
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