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Biology subjects

Jetten, A. M.

Publications and source records attributed to Jetten, A. M..

2 recordsLinked to original sources

GLIS1 regulates trabecular meshwork function and intraocular pressure and is associated with glaucoma in humans

Chronically elevated intraocular pressure (IOP) is the major risk factor of primary open- angle glaucoma, a leading cause of blindness. Dysfunction of the trabecular meshwork (TM), which controls the outflow of aqueous humor (AqH) from the anterior chamber, is the major cause of elevated IOP. Here, we demonstrate that mice deficient in the Kruppel- like zinc finger transcriptional factor GLI-similar-1 (GLIS1) develop chronically elevated IOP. Magnetic resonance imaging and histopathological analysis reveal that deficiency in GLIS1 expression induces progressive degeneration of the TM, leading to inefficient AqH drainage from the anterior chamber and elevated IOP. Transcriptome and cistrome analyses identified several glaucoma- and extracellular matrix-associated genes as direct transcriptional targets of GLIS1. We also identified a significant association between GLIS1 variant rs941125 and glaucoma in humans (P=4.73x10-6), further supporting a role for GLIS1 into glaucoma etiology. Our study identifies GLIS1 as a critical regulator of TM function and maintenance, AqH dynamics, and IOP.

molecular biology↗

The nuclear receptor RORα preserves cardiomyocyte mitochondrial function by regulating mitophagy through caveolin-3

Preserving optimal mitochondrial function is critical in the heart, which is the most ATP-avid organ in the body. Recently, we showed that global deficiency of the nuclear receptor ROR in the "staggerer" (RORsg/sg) mouse exacerbates angiotensin II-induced cardiac hypertrophy and compromises cardiomyocyte mitochondrial function. The mechanisms underlying these observations have not been defined. Here we present evidence that ROR regulates cardiomyocyte mitophagy using pharmacological and genetic gain- and loss-of-function tools, including a novel cardiomyocyte-specific ROR knockout mouse. Cardiomyocyte ROR is upregulated by hypoxia and the loss of ROR blunts hypoxia-induced mitophagy and broadly compromises mitochondrial function. We show that ROR is a direct transcriptional regulator of the mitophagy mediator caveolin-3 in cardiomyocytes and that increased expression of ROR increases caveolin-3 abundance and enhances mitophagy. Knockdown of ROR impairs cardiomyocyte mitophagy, but this defect can be rescued by caveolin-3 overexpression. Collectively, these findings reveal a novel role for ROR in regulating mitophagy through caveolin-3 and expand our currently limited understanding of the mechanisms underlying ROR-mediated cardioprotection.

molecular biology↗