Peptides DB
Research-centric peptide and protocol reference hub
Study 11 of 13Snap-8 literatureGut microbes · Observational2026

Gut microbial metabolism of Flutamide attenuates its therapeutic efficacy against prostate cancer.

Gut bacteria can significantly alter the metabolism of Flutamide, potentially impacting its effectiveness in prostate cancer treatment, but the clinical implications require further investigation.

Read at Gut microbesAdd to compare

Where it sits

this study against the rest of the snap-8 corpus
2
Preclinical
11
Observational · this one
0
Open-label
0
Randomised
0
Reviews

Summary and findings

This study investigates the role of gut microbiota in the metabolism of Flutamide, a first-generation antiandrogen used in prostate cancer treatment. It was conducted in an antibiotic-treated mouse model and included clinical sample analysis to assess interpatient variability in metabolic capability. The study found that gut bacteria metabolize Flutamide into various products, which may affect its therapeutic efficacy.

How much of this paper we could read: full text read (0.70). We had a clear abstract, so the summary below closely tracks the paper. What this means →
Not reported in abstract.2026

Abstract

The authors’ words, as Gut microbes supplied them

Endocrine drugs serve as the cornerstone of prostate cancer treatment. Flutamide, a representative first-generation antiandrogen, has been relegated to the treatment of recurrent prostate cancer due to novel drug development and therapeutic resistance. Our study shows the gut microbiota contributes to this resistance. Specifically, gut bacteria metabolize Flutamide into FLU-6 (a nitroreduction product) and FLU-9 (an acetylation product), involving species like <i>Escherichia coli</i>. Gene knockout revealed <i>E. coli nfsA</i> and <i>nfsB</i> as essential for Flutamide nitroreduction, while heterologous expression confirmed acetyltransferases mediate the production of acetylated metabolites. In the antibiotic-treated mouse model, antibiotic intervention significantly reduced microbial metabolites of Flutamide. In addition, FLU-6 was further metabolized by the host into FLU-5. Synthesized FLU-6, FLU-9, and FLU-5 showed no anticancer activity in prostate cancer cell lines. In a xenograft model, oral administration of <i>E. coli</i> diminished Flutamide's efficacy by altering its metabolic profile. Clinical sample analysis revealed substantial interpatient variability, and patients could be categorized into subgroups with high or low metabolic capability. These findings provide new insights into personalized prostate cancer therapy, highlight the role of the gut microbiota in Flutamide response and suggest a strategy for optimizing antiandrogen treatments.

Elsewhere in the Snap-8 corpus

BTargeted Long-Read sequencing provides functional validation of variants predicted to alter splicingbiorxiv-preprint · 2026 · Not reported in abstract.HumanBThe vaginal microbiota varies by self-identified ethnicity and HIV status throughout pregnancy and relates to preterm birth risk in a United Kingdom observational cohortbiorxiv-preprint · 2026 · 18.2% PTB rate among Black PWLWH, n=55.HumanCAMD1-mediated polyamine metabolism governs tubular repair fate by restraining senescence after kidney injury.Renal failure · 2026 · Spermidine supplementation reduced fibrosis by 75.3%, n=Not reported in abstract.AnimalBNavigating the diagnostic 'gray zone': prospective evaluation of an integrated MRI-Biomarker model for renal allograft triage.Annals of medicine · 2026 · AUC of integrated model: 0.941.HumanBExploring the mechanisms of biofield therapy through joint electrophysiological recordings in humans and mice.IBRO neuroscience reports · 2026 · Not reported in abstract.HumanCThe RNA binding protein ZFP36L2 displays tissue-selective mRNA targeting in mice.RNA biology · 2026 · Not reported in abstract.Animal