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Van Vranken, J.

Publications and source records attributed to Van Vranken, J..

2 recordsLinked to original sources

Microbial metabolism of methotrexate produces a STAT3 signaling molecule that alleviates gut inflammation

Methotrexate (MTX) therapy in inflammatory bowel disease (IBD) is often limited by inter-individual variability in clinical response and adverse effects. Gut microbiota contribute to MTX therapeutic response and toxicity by metabolizing MTX and altering its bioavailability. However, how inflammation alters microbial MTX metabolism and how its metabolites influence the host remain poorly understood. Here, we identify Clostridium asparagiforme as a potent and efficient metabolizer of methotrexate, producing deoxyaminopteroic acid (DAMPA) in the distal gastrointestinal tract. We demonstrate that DAMPA preserves mitochondrial integrity by promoting mitophagy in intestinal epithelial cells through mitochondrial STAT3 signaling. DAMPA administration attenuates intestinal inflammation in vivo, and improves metabolic dysfunction associated with IBD. Together, these findings reveal an unappreciated role for a gut microbial MTX metabolite in mediating epithelial homeostasis during intestinal inflammation, thus reframing microbial MTX metabolism from passive drug detoxification to active regulation of host mitochondrial and inflammatory homeostasis.

microbiology↗

Interrupting Elmsan1 repression of nuclear Acetyl-CoA production therapeutically reprograms cancer cells

Metabolites are essential substrates for epigenetic modifications. Although nuclear acetyl-CoA constitutes a small fraction of the whole cell pool, it regulates cell fate by locally providing histone acetylation substrate. Here, we combined phenotypic chemical screen and genome-wide CRISPR screen to demonstrate a nucleus-specific acetyl-CoA regulatory mechanism that can be modulated to achieve therapeutic cancer cell reprogramming. While previously thought that nucleus-localized pyruvate dehydrogenase complex (nPDC) is constitutively active, we found that nPDC is constitutively inhibited by the nuclear protein ELMSAN1 through direct interaction. Pharmacologic inhibition of the ELMSAN1-nPDC interaction derepressed nPDC activity, enhancing nuclear acetyl-CoA generation and reprogramming cancer cells to a postmitotic state with diminished cell-of-origin signatures. Reprogramming was synergistically enhanced by histone deacetylase 1/2 inhibition, resulting in inhibited tumor growth, durably suppressed tumor-initiating ability, and improved survival in multiple cancer types in vivo, including therapy-resistant sarcoma patient-derived xenografts and carcinoma cell line xenografts. Our findings highlight the potential of targeting ELMSAN1-nPDC as epigenetic cancer therapy.

cancer biology↗