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Covian, R.

Publications and source records attributed to Covian, R..

2 recordsLinked to original sources

Ablation of Tmem65 Causes Lethal Mitochondrial Encephalomyopathy in Mouse

Transmembrane protein 65 (TMEM65) depletion in a patient carrying a homozygous variant in the Tmem65 splice site resulted in severe mitochondrial encephalomyopathy, indicating the clinical importance of TMEM65. However, the function of TMEM65 remains unknown. Here, we generated a TMEM65 reporter mouse as well as whole-body and tissue-specific Tmem65 knockout (KO) mice to investigate the localization and function of TMEM65. We show that TMEM65 is localized to mitochondria in heart, skeletal muscle, and throughout the brain. Both whole-body and nervous system-specific Tmem65 KO result in severe growth retardation and sudden death following seizures ~3 weeks after birth, indicating TMEM65 is indispensable for normal brain function. In addition, we find that skeletal muscle-specific Tmem65 KO leads to progressive, adult-onset myopathy preceded by elevated mitochondrial calcium levels despite unaltered expression of known mitochondrial or cellular calcium handling proteins. Consistently, we demonstrate that ablation of TMEM65 results in a loss of sodium-dependent mitochondrial calcium export. Finally, we show that blocking mitochondrial calcium entry through removal of the mitochondrial calcium uniporter (MCU) rescues the early lethality of whole-body TMEM65 ablation. Our data not only reveal the essential role of TMEM65 in mammalian physiology, but also suggest modulating mitochondrial calcium may offer a potential therapeutical approach to address defects associated with TMEM65 misexpression.

physiology↗

Early mitochondrial stress and metabolic imbalance lead to photoreceptor cell death in retinal degeneration

Neurodegenerative diseases exhibit extensive genetic heterogeneity and complex etiology with varying onset and severity. To deduce the mechanism leading to retinal degeneration, we adopted a temporal multi-omics approach and examined molecular and cellular events before the onset of photoreceptor cell death in the widely-used Pde6brd1/rd1 (rd1) mouse model. Transcriptome profiling of neonatal and developing rods revealed early downregulation of genes associated with anabolic pathways and energy metabolism. Quantitative proteomics of rd1 retina showed early changes in calcium signaling and oxidative phosphorylation, with specific partial bypass of complex I electron transfer, which precede the onset of cell death. Concurrently, we detected alterations in central carbon metabolism, including dysregulation of components associated with glycolysis, pentose phosphate and purine biosynthesis. Ex vivo assays of oxygen consumption and transmission electron microscopy validated early and progressive mitochondrial stress and abnormalities in mitochondrial structure and function of rd1 rods. These data uncover mitochondrial over-activation and related metabolic alterations as early determinants of pathology and implicate dysregulation of calcium signaling as the initiator of higher mitochondrial stress, which then transitions to mitochondrial damage and photoreceptor cell death in retinal degeneration. Our studies support the "one hit model" arguing against the cumulative damage hypothesis but suggest that cell death in neurodegenerative disease is initiated by specific rather than a random event.

neuroscience↗