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Biology subjects

Mun, K.

Publications and source records attributed to Mun, K..

2 recordsLinked to original sources

Loss of heterozygosity exposes germline mutations in complex I and drives Warburg metabolism in oncocytic carcinoma of the thyroid

Oncocytic (Hurthle cell) carcinoma of the thyroid (OCT) is characterized by widespread loss of heterozygosity (LOH), mitochondrial accumulation and recurrent mitochondrial DNA mutations leading to impairment of complex I. Here, we establish and characterize a novel OCT cell line, UT946, which displays severe mitochondrial electron transport chain dysfunction and a Warburg metabolic phenotype. Using a series of cytoplasmic hybrids, we establish that the complex I defect in UT946 stems from a nuclear-encoded loss of function mutation in the complex I subunit NDUFS1. To our surprise, the mutation in NDUFS1 was inherited as a recessive germline allele that underwent LOH in the tumor to expose functional loss of complex I. A re-analysis of 91 OCT tumor genomes revealed that LOH-driven exposure of recessive germline mutations in complex I subunits was a recurrent mechanism underlying complex I inactivation in OCT. These findings unveil a new germline-driven mechanism of complex I loss and metabolic reprogramming in cancer, and provide further evidence of the strong selective pressure for complex I impairment in OCT. TeaserGermline mutations in complex I induce aerobic glycolysis in oncocytic carcinoma of the thyroid through somatic loss of heterozygosity.

cancer biology↗

A potential acoustic role for CFTR ion channel in conductive hearing loss

Loss-of-function mutations in the cystic fibrosis transmembrane conductance regulator (CFTR) gene cause cystic fibrosis (CF). The middle ear and eustachian tube could be adversely affected in CF. In this study, we provide evidence of the role of CFTR function in conductive hearing. We developed an in-situ model to determine CFTR dependent fluid secretion in the middle ear using native mouse auditory capsule. A unique middle ear-on-a-chip was developed to address the functional and molecular basis of conductive hearing impairment. Using single-cell transcriptomics, middle ear cell composition and the associated transcriptomic signature were compared between CF and WT groups. A specialized subset of epithelial cells expressed CFTR with an overlapping signature with secretory epithelial cells. Genes related to ciliogenesis, hearing and ossification were significantly altered in CF mice middle ear. Our data suggest that CF middle ear may be at higher risk for conductive hearing loss.

cell biology↗