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Screening of Human Gut Bacterial Culture Collection Identifies Species That Biotransform Quercetin into Metabolites
Ranjini Sankaranarayanan1, Prabhjot Kaur Sekhon2, Achuthan Ambat2
1Department of Pharmaceutical Sciences and Translational Cancer Research Center, College of Pharmacy and Allied Health Professions, South Dakota State University, Brookings, SD 57007, USA.
Abstract:
We previously demonstrated that flavonoid metabolites inhibit cancer cell proliferation through both CDK-dependent and -independent mechanisms. The existing evidence suggests that gut microbiota is capable of flavonoid biotransformation to generate bioactive metabolites including 2,4,6-trihydroxybenzoic acid (2,4,6-THBA), 3,4-dihydroxybenzoic acid (3,4-DHBA), 3,4,5-trihyroxybenzoic acid (3,4,5-THBA) and 3,4-dihydroxyphenylacetic acid (DOPAC). In this study, we screened 94 human gut bacterial species for their ability to biotransform flavonoid quercetin into different metabolites. We demonstrated that five of these species were able to degrade quercetin including Bacillus glycinifermentans, Flavonifractor plautii, Bacteroides eggerthii, Olsenella scatoligenes and Eubacterium eligens. Additional studies showed that B. glycinifermentans could generate 2,4,6-THBA and 3,4-DHBA from quercetin while F. plautii generates DOPAC. In addition to the differences in the metabolites produced, we also observed that the kinetics of quercetin degradation was different between B. glycinifermentans and F. plautii, suggesting that the pathways of degradation are likely different between these strains. Similar to the antiproliferative effects of 2,4,6-THBA and 3,4-DHBA demonstrated previously, DOPAC also inhibited colony formation ex vivo in the HCT-116 colon cancer cell line. Consistent with this, the bacterial culture supernatant of F. plautii also inhibited colony formation in this cell line. Thus, as F. plautii and B. glycinifermentans generate metabolites possessing antiproliferative activity, we suggest that these strains have the potential to be developed into probiotics to improve human gut health.
Insights
Certain gut bacteria transform flavonoids into compounds that inhibit cancer cell growth. Researchers identified specific bacterial species, like Bacillus glycinifermentans and Flavonifractor plautii, that produce these anti-cancer metabolites, suggesting probiotic potential.
Area of Science:
- Microbiology
- Cancer Biology
- Metabolomics
Background:
- Flavonoid metabolites are known to inhibit cancer cell proliferation via CDK-dependent and -independent pathways.
- Gut microbiota plays a crucial role in biotransforming flavonoids into bioactive metabolites such as 2,4,6-trihydroxybenzoic acid (2,4,6-THBA), 3,4-dihydroxybenzoic acid (3,4-DHBA), 3,4,5-trihyroxybenzoic acid (3,4,5-THBA), and 3,4-dihydroxyphenylacetic acid (DOPAC).
Purpose of the Study:
- To screen human gut bacterial species for their ability to biotransform the flavonoid quercetin.
- To identify specific bacterial strains and their resultant metabolites with antiproliferative activity against colon cancer cells.
Main Methods:
- Screening of 94 human gut bacterial species for quercetin biotransformation.
- Identification of specific metabolites produced by bacterial strains using analytical methods.
- Assessment of the antiproliferative effects of bacterial metabolites and culture supernatants on HCT-116 colon cancer cells ex vivo.
Main Results:
- Five bacterial species, including Bacillus glycinifermentans and Flavonifractor plautii, were found to degrade quercetin.
- B. glycinifermentans produced 2,4,6-THBA and 3,4-DHBA, while F. plautii produced DOPAC.
- DOPAC and the culture supernatant of F. plautii demonstrated significant inhibition of HCT-116 colon cancer cell colony formation.
Conclusions:
- Gut bacteria Bacillus glycinifermentans and Flavonifractor plautii possess the capability to metabolize quercetin into antiproliferative compounds.
- The identified bacterial strains and their metabolites hold potential for development as probiotics to enhance gut health and combat colon cancer.
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