{"entity":{"id":"paper-chernet-dis-model-mech","kind":"paper","name":"Transmembrane voltage potential is an essential cellular parameter for the detection and control of tumor development in a Xenopus model","aka":[],"tldr":"Paper cited by one term page, indexed on Europe PMC as PubMed record 23471912 and published in Disease models & mechanisms; the citing page links this DOI, which is how the record was matched.","summary":"Understanding mechanisms that orchestrate cell behavior into appropriately patterned tissues and organs within the organism is an essential element of preventing, detecting and treating cancer. Bioelectric signals (resting transmembrane voltage potential gradients in all cells) underlie an important and broadly conserved set of control mechanisms that regulate pattern formation. We tested the role of transmembrane potential in tumorigenesis mediated by canonical oncogenes in Xenopus laevis. Depolarized membrane potential (Vmem) was a characteristic of induced tumor-like structures (ITLSs) generated by overexpression of Gli1, Kras(G12D), Xrel3 or p53(Trp248). This bioelectric signature was also present in precursor ITLS sites. Vmem is a bioelectric marker that reveals ITLSs before they become histologically and morphologically apparent. Moreover, voltage was functionally important: overexpression of hyperpolarizing ion transporters caused a return to normal Vmem and significantly reduced ITLS formation in vivo. To characterize the molecular mechanism by which Vmem change regulates ITLS phenotypes, we performed a suppression screen. Vmem hyperpolarization was transduced into downstream events via Vmem-regulated activity of SLC5A8, a sodium-butyrate exchanger previously implicated in human cancer. These data indicate that butyrate, a histone deacetylase (HDAC) inhibitor, might be responsible for transcriptional events that mediate suppression of ITLSs by hyperpolarization. Vmem is a convenient cellular parameter by which tumors induced by human oncogenes can be detected in vivo and represents a new diagnostic modality. Moreover, control of resting membrane potential is functionally involved in the process by which oncogene-bearing cells depart from normal morphogenesis programs to form tumors. Modulation of Vmem levels is a novel and promising strategy for tumor normalization.\n\nIndexed on Europe PMC as PubMed record 23471912 (DOI 10.1242/dmm.010835). Matched by DOI alone: one term page cites this DOI among its external links (the pages are listed under Related), and this page was written so that the citation resolves inside OnCo. No figure has been checked by an editor.","asOf":"2026-09-22","links":[{"label":"Dis Model Mech 2013","url":"https://doi.org/10.1242/dmm.010835"},{"label":"PubMed","url":"https://pubmed.ncbi.nlm.nih.gov/23471912/"},{"label":"Europe PMC","url":"https://europepmc.org/article/MED/23471912"}],"tags":["europepmc-ingest"],"related":["bioelectric-theory-of-cancer"],"cancers":[],"sections":[],"technologies":[],"targets":[],"drugs":[],"companies":[],"institutions":[],"pathways":[],"terms":[],"trials":[],"people":[],"bottlenecks":[],"keyPapers":[],"journals":[],"dependsOn":[],"notes":[],"journal":"Disease models & mechanisms","year":2013,"doi":"10.1242/dmm.010835","pmid":"23471912","authors":"Chernet BT, Levin M","paperType":"basic","findings":[],"whatItMeans":"One term page on OnCo cites this paper by its DOI; this record gives the citation a page of its own so a reader can follow it without leaving OnCo. Read the abstract above alongside the citing page listed under Related; the record was created automatically from the Europe PMC entry and its figures have not been checked by hand.","caveats":["Matched to the citing OnCo records by DOI alone; the summary reproduces the Europe PMC abstract and no figure has been verified against the full paper."]},"route":"/key-papers/paper-chernet-dis-model-mech/","neighbours":{"term":[{"id":"bioelectric-theory-of-cancer","kind":"term","name":"Bioelectric theory of cancer (Levin)","route":"/terms/bioelectric-theory-of-cancer/"}]}}