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Biology subjects

Lai, Y.-L.

Publications and source records attributed to Lai, Y.-L..

4 recordsLinked to original sources

Clostridium innocuum, an opportunistic gut pathogen, inactivates host gut progesterone and arrests ovarian follicular development

HighlightsO_LIWe identified Clostridium innocuum as a key player in gut progesterone metabolism. C_LIO_LIProgesterone is converted into epipregnanolone with negligible progestogenic activity. C_LIO_LIWe identified the enzyme and mechanisms of microbial epipregnanolone production. C_LIO_LIC. innocuum caused decreased serum progesterone and follicular arrest in female mice. C_LIO_LIC. innocuum is a causal factor of progesterone resistance in women taking progesterone. C_LI O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=93 SRC="FIGDIR/small/585140v1_ufig1.gif" ALT="Figure 1"> View larger version (33K): org.highwire.dtl.DTLVardef@14cceaborg.highwire.dtl.DTLVardef@1946432org.highwire.dtl.DTLVardef@13e46d2org.highwire.dtl.DTLVardef@19b9a25_HPS_FORMAT_FIGEXP M_FIG O_FLOATNOGraphical AbstractC_FLOATNO C_FIG In briefChen et al. identified Clostridium innocuum as a major species involved in gut progesterone metabolism, with epipregnanolone as the main product, and elucidated the molecular mechanisms. C. innocuum inactivates gut progesterone in female mice, leading to decreased circulating progesterone levels. C. innocuum is also a causal factor of follicular arrest. Levels of progesterone, an endogenous female hormone, increase after ovulation; progesterone is crucial in the luteal phase to maintain successful pregnancy and prevent early miscarriage. Both endogenous and exogenous progesterone are recycled between the liver and gut; thus, the gut microbiota regulate host progesterone levels by inhibiting enterohepatic progesterone circulation. Our data indicated Clostridium innocuum as a major species involved in gut progesterone metabolism in women with infertility. C. innocuum converts progesterone into the neurosteroid epipregnanolone (with negligible progestogenic activity). We purified and characterized the corresponding enzyme, namely NADPH-dependent 5{beta}-dihydroprogesterone reductase, which is highly oxygen sensitive and whose corresponding genes are prevalent in C. innocuum. Moreover, C. innocuum-administered female C57BL/6 mice (aged 7 weeks) exhibited decreased serum progesterone levels ([~]35%). Clostridium-specific antibiotics (metronidazole) restored low serum progesterone levels in these mice. Furthermore, prolonged C. innocuum administration (12 weeks) arrested ovarian follicular development in female mice. Cytological and histological analyses indicated that C. innocuum may cause luteal phase insufficiency and affect menstrual regularity. Our findings suggest C. innocuum as a causal factor of progesterone resistance in women taking progesterone.

microbiology↗

MicroRNA-4776-5p acts as a radiosensitizer and predicts the prognosis of patients with head and neck cancer receiving radiotherapy

Head and neck cancer is the leading cancer worldwide. Radiation therapy plays important role of treatment for head and neck cancer. MicroRNAs have been shown to be related to tumor progression and radiosensitivity. However, the mechanisms are still largely unknown and evidence are still limited. In the current study, we sought to identify the miRNA related the radiosensitivity of head and neck tumor cell, which leading to the disappointed prognosis of patients with head and neck cancer receiving radiation therapy. The miRNA expression profiles and clinical information of patients with head and neck cancer were obtained from The Cancer Genome Atlas. The identification of miRNA was carried out through an integrated bioinformatics analysis. The miRNA identified in previous approach was validated through in vitro and in vivo studies. MiR-4776-5p was finally identified as the role of radio-sensitizer and predicts the prognosis of patients with head and neck cancer receiving radiotherapy. 11 of 16 genes targeted by the miR-4776-5p have been discovered to regulate the mechanisms related to radiosensitivity using functional annotation.

cancer biology↗

Circulating androgen regulation by androgen-catabolizing gut bacteria in male mouse gut

Abnormally high circulating androgen levels have been considered a causative factor for benign prostatic hypertrophy and prostate cancer. Recent studies suggested that gut bacteria can alter sex steroid profile of host; however, the underlying mechanisms and bacterial taxa remain elusive. Thauera sp. strain GDN1 is an unusual betaproteobacterium capable of aerobic and anaerobic androgen catabolism in environmental conditions (37{degrees}C) resembling the mammalian gut. The strain GDN1 administration to C57BL/6J mice through oral gavage profoundly affected gut bacterial community, along with an approximately 50% reduction in serum androgen level in male mice. Our RT-qPCR results revealed the differential expression of aerobic and anaerobic androgen catabolic genes in the mouse ileum (microaerobic) and caecum (anaerobic), respectively. Furthermore, androgenic ring-cleaved metabolites were detected in the mouse fecal extract. This study discovered that androgen serves as a carbon source of gut microbes and that androgen-catabolizing gut bacteria can modulate host circulating androgen levels. HighlightsO_LIThauera sp. strain GDN1 administration through oral gavage regulated mouse serum androgen levels. C_LIO_LIThe biochemical, genetic, and metabolite profile analyses revealed the occurrence of bacterial androgen catabolism in the mouse gut. C_LIO_LIAndrogen catabolism proceeds through the O2-dependent and O2-independent catabolic pathways in mouse ileum and caecum, respectively. C_LIO_LIA possibility to harness Thauera sp. strain GDN1 as a functional probiotic to treat hyperandrogenism. C_LI Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=89 SRC="FIGDIR/small/500890v1_ufig1.gif" ALT="Figure 1"> View larger version (33K): org.highwire.dtl.DTLVardef@515126org.highwire.dtl.DTLVardef@a696faorg.highwire.dtl.DTLVardef@1020beforg.highwire.dtl.DTLVardef@15da175_HPS_FORMAT_FIGEXP M_FIG C_FIG In briefHsiao et al. found that oral administration of androgen-catabolizing Thauera species regulated mouse serum androgen level. They characterized the gut microbe-mediated androgen catabolism through genetic and biochemical analyses. Their discovery portends a possibility of harnessing androgen-catabolic gut bacteria as functional probiotics to treat hyperandrogenism.

microbiology↗

Integrated multi-omics investigations reveal the key role of synergistic microbial networks in removing plasticizer di-(2-ethylhexyl) phthalate from estuarine sediments

Di-(2-ethylhexyl) phthalate (DEHP) is the most widely used plasticizer worldwide with an annual global production of over eight million tons. Because of its improper disposal, endocrine-disrupting DEHP often accumulates in estuarine sediments in industrialized countries at sub-millimolar levels, resulting in adverse effects on both ecosystems and human beings. The microbial degraders and biodegradation pathways of DEHP in O2-limited estuarine sediments remain elusive. Here, we employed an integrated meta-omics approach to identify the DEHP degradation pathway and major degraders in this ecosystem. Estuarine sediments were treated with DEHP or its derived metabolites, o-phthalic acid and benzoic acid. The rate of DEHP degradation in denitrifying mesocosms was two times slower than that of o-phthalic acid, suggesting that side-chain hydrolysis of DEHP is the rate-limiting step of anaerobic DEHP degradation. On the basis of microbial community structures, functional gene expression, and metabolite profile analysis, we proposed that DEHP biodegradation in estuarine sediments is mainly achieved through synergistic networks between denitrifying proteobacteria. Acidovorax and Sedimenticola are the major degraders of DEHP side-chains; the resulting o-phthalic acid is mainly degraded by Aestuariibacter through the UbiD-dependent benzoyl-CoA pathway. We isolated and characterized Acidovorax sp. strain 210-6 and its extracellular hydrolase, which hydrolyzes both alkyl side-chains of DEHP. Interestingly, genes encoding DEHP/MEHP hydrolase and phthaloyl-CoA decarboxylase--key enzymes for side-chain hydrolysis and o-phthalic acid degradation, respectively--are flanked by transposases in these proteobacterial genomes, indicating that DEHP degradation capacity is likely transferred horizontally in microbial communities. ImportanceXenobiotic phthalate esters (PAE) have been produced on a considerably large scale for only 70 years. The occurrence of endocrine-disrupting di-(2-ethylhexyl) phthalate (DEHP) in environments has raised public concern, and estuarine sediments are major DEHP reservoirs. Our multi-omics analyses indicated that complete DEHP degradation in O2-limited estuarine sediments depends on synergistic microbial networks between diverse denitrifying proteobacteria and uncultured candidates. Our data also suggest that the side-chain hydrolysis of DEHP, rather than o-phthalic acid activation, is the rate-limiting step in DEHP biodegradation within O2-limited estuarine sediments. Therefore, deciphering the bacterial ecophysiology and related biochemical mechanisms can help facilitate the practice of bioremediation in O2-limited environments. Furthermore, the DEHP hydrolase genes of active DEHP degraders can be used as molecular markers to monitor environmental DEHP degradation. Finally, future studies on the directed evolution of identified DEHP/MEHP hydrolase would bring a more catalytically efficient DEHP/MEHP hydrolase into practice.

microbiology↗