Gut microbial metabolites of dietary polyphenols and their potential role in human health and diseases

被引:30
作者
Gade, Anushree [1 ]
Kumar, Maushmi S. [1 ]
机构
[1] Somaiya Vidyavihar Univ, Somaiya Inst Res & Consultancy, Mumbai 400077, India
关键词
Pharmacological activities; Marine polyphenols; Phenolic acids; Flavonoids; Non-flavonoids; Polyphenolic amides; ORANGE JUICE (POLY)PHENOLS; IN-VITRO; LIQUID-CHROMATOGRAPHY; PHENOLIC METABOLITES; ANTIOXIDANT ACTIVITY; ALZHEIMERS-DISEASE; CHLOROGENIC ACIDS; FUNCTIONAL FOOD; FERULIC ACID; ELLAGIC ACID;
D O I
10.1007/s13105-023-00981-1
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Polyphenols contribute as one of the largest groups of compounds among all the phytochemicals. Common sources of dietary polyphenols are vegetables, fruits, berries, cereals, whole grains, etc. Owing to their original form, they are difficult to get absorbed. Dietary polyphenols after undergoing gut microbial metabolism form bioaccessible and effective metabolites. Polyphenols and derived metabolites are all together a diversified group of compounds exhibiting pharmacological activities against cardiovascular, cancer, oxidative stress, inflammatory, and bacterial diseases. The formed metabolites are sometimes even more bioavailable and efficacious than the parent polyphenols. Studies on gut microbial metabolism of dietary polyphenols have introduced new approach for the use of polyphenol-rich food in the form of supplementary diet. This review provides insights on various aspects including classification of polyphenols, gut microbiota-mediated metabolism of polyphenols, chemistry of polyphenol metabolism, and pharmacological actions of gut microbial metabolites of polyphenols. It also suggests the use of polyphenols from marine source for the microbial metabolism studies. Till date, gut microbial metabolism of polyphenols from terrestrial sources is extensively studied as compared to marine polyphenols. Marine ecosystem is a profound but partially explored source of phytoconstituents. Among them, edible seaweeds contain high concentration of polyphenols, especially phlorotannins. Hence, microbial metabolism studies of seaweeds can unravel the pharmacological potential of marine polyphenol-derived metabolites.
引用
收藏
页码:695 / 718
页数:24
相关论文
共 158 条
[1]   Gut Microbiota and Obesity: A Role for Probiotics [J].
Abenavoli, Ludovico ;
Scarpellini, Emidio ;
Colica, Carmela ;
Boccuto, Luigi ;
Salehi, Bahare ;
Sharifi-Rad, Javad ;
Aiello, Vincenzo ;
Romano, Barbara ;
De Lorenzo, Antonino ;
Izzo, Angelo A. ;
Capasso, Raffaele .
NUTRIENTS, 2019, 11 (11)
[2]  
Acevedo VG, COLONIC CATABOLISM D
[3]   Stilbenes and resveratrol metabolites improve mitochondrial fatty acid oxidation defects in human fibroblasts [J].
Aires, Virginie ;
Delmas, Dominique ;
Le Bachelier, Carole ;
Latruffe, Norbert ;
Schlemmer, Dimitri ;
Benoist, Jean-Francois ;
Djouadi, Fatima ;
Bastin, Jean .
ORPHANET JOURNAL OF RARE DISEASES, 2014, 9
[4]   Enzymatic Metabolism of Flavonoids by Gut Microbiota and Its Impact on Gastrointestinal Cancer [J].
AL-Ishaq, Raghad Khalid ;
Liskova, Alena ;
Kubatka, Peter ;
Busselberg, Dietrich .
CANCERS, 2021, 13 (16)
[5]   Metabolomics reveals diet-derived plant polyphenols accumulate in physiological bone [J].
Alldritt, Isabelle ;
Whitham-Agut, Beatrice ;
Sipin, Miguel ;
Studholme, Jacob ;
Trentacoste, Angela ;
Tripp, Jennifer A. ;
Cappai, Maria Grazia ;
Ditchfield, Peter ;
Deviese, Thibaut ;
Hedges, Robert E. M. ;
McCullagh, James S. O. .
SCIENTIFIC REPORTS, 2019, 9 (1)
[6]   Protective effects of (-)-epicatechin and the colonic metabolite 3,4-dihydroxyphenylacetic acid against glucotoxicity-induced insulin signalling blockade and altered glucose uptake and production in renal tubular NRK-52E cells [J].
Alvarez-Cilleros, David ;
Angeles Martin, Maria ;
Ramos, Sonia .
FOOD AND CHEMICAL TOXICOLOGY, 2018, 120 :119-128
[7]   Free radical scavenging and COX-2 inhibition by simple colon metabolites of polyphenols: A theoretical approach [J].
Amic, Ana ;
Markovic, Zoran ;
Markovic, Jasmina M. Dimitric ;
Jeremic, Svetlana ;
Lucic, Bono ;
Amic, Dragan .
COMPUTATIONAL BIOLOGY AND CHEMISTRY, 2016, 65 :45-53
[8]   Bioavailability of curcumin: Problems and promises [J].
Anand, Preetha ;
Kunnumakkara, Ajaikumar B. ;
Newman, Robert A. ;
Aggarwal, Bharat B. .
MOLECULAR PHARMACEUTICS, 2007, 4 (06) :807-818
[9]   Multi-Therapeutic Potential of Naringenin (4′,5,7-Trihydroxyflavonone): Experimental Evidence and Mechanisms [J].
Arafah, Azher ;
Rehman, Muneeb U. ;
Mir, Tahir Maqbool ;
Wali, Adil Farooq ;
Ali, Rayeesa ;
Qamar, Wajhul ;
Khan, Rehan ;
Ahmad, Ajaz ;
Aga, Syed Sameer ;
Alqahtani, Saeed ;
Almatroudi, Nada M. .
PLANTS-BASEL, 2020, 9 (12)
[10]   Bioconversion of anthocyanin glycosides by Bifidobacteria and Lactobacillus [J].
Avila, Marta ;
Hidalgo, Maria ;
Sanchez-Moreno, Concepcion ;
Pelaez, Carmen ;
Requena, Teresa ;
de Pascual-Teresa, Sonia .
FOOD RESEARCH INTERNATIONAL, 2009, 42 (10) :1453-1461