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Neubig, R. R.

Publications and source records attributed to Neubig, R. R..

2 recordsLinked to original sources

Rho-mediated MRTF and YAP1 activation contributes to BRAF inhibitor resistance in Sox9High/Sox10Low melanoma cells.

Over half of cutaneous melanoma tumors have BRAFV600E/K mutations. Acquired resistance to BRAF inhibitors (BRAFi) remains a major hurdle in attaining durable therapeutic responses. In this study we demonstrate that approximately 50-60% of melanoma cell lines with acquired vemurafenib resistance activate the RhoA family signaling pathway. RhoAHigh BRAFi-resistant cells are sensitive to the combination of ROCK inhibitors and vemurafenib. Further, these RhoAHigh cells have >100-fold increase in Sox9 expression and >100-fold decrease in Sox10 expression. Two transcriptional co-activators downstream of RhoA, MRTF and YAP1, are activated in Sox9High/Sox10Low BRAFi-resistant cells. Pharmacological inhibition of these transcriptional mechanisms re-sensitizes the cells to vemurafenib. Analysis of human BRAFi-resistant tumors reveals that many resistant tumors show gene expression signatures consistent with increased RhoA activation or activation of the transcriptional co-activators MRTF and YAP1. A subset of melanoma tumors in the TCGA dataset with low Sox10 expression also have elevated RhoA, MRTF, and YAP1 activation signatures. Taken together, these results support the concept of targeting RhoA-regulated gene transcription pathways as a promising approach for treating or preventing BRAFi-resistance in melanoma.

cancer biology

Mouse Models of GNAO1-Associated Movement Disorder: Allele- and sex-specific differences in phenotypes

Background\n\nInfants and children with dominant de novo mutations in GNAO1 exhibit movement disorders, epilepsy, or both. Children with loss-of-function (LOF) mutations exhibit Epileptiform Encephalopathy 17 (EIEE17). Gain-of-function (GOF) mutations or those with normal function are found in patients with Neurodevelopmental Disorder with Involuntary Movements (NEDIM). There is no animal model with a human mutant GNAO1 allele.\n\nObjectives\n\nHere we develop a mouse model carrying a human GNAO1 mutation and determine whether clinical features of the GNAO1 mutation including movement disorder would be evident in the mouse model.\n\nMethods\n\nA mouse Gnao1 knock-in GOF mutation (G203R) was created by CRISPR/Cas9 methods. The resulting offspring and littermate controls were subjected to a battery of behavioral tests. A previously reported GOF mutant mouse knock-in (Gnao1+/G184S) was also studied for comparison.\n\nResults\n\nGnao1+/G203R mutant mice are viable and gain weight comparably to controls. Homozygotes are non-viable. Grip strength was decreased in both males and females. Male Gnao1+/G203R mice were strongly affected in movement assays (RotaRod and DigiGait) while females were not. Male Gnao1+/G203R mice also showed enhanced seizure propensity in the pentylenetetrazole kindling test. Mice with a G184S GOF knock-in also showed movement-related behavioral phenotypes but females were more strongly affected than males.\n\nConclusions\n\nGnao1+/G203R mice phenocopy children with heterozygous GNAO1 G203R mutations, showing both movement disorder and a relatively mild epilepsy pattern. This mouse model should be useful in mechanistic and preclinical studies of GNAO1-related movement disorders.

animal behavior and cognition