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Khiati, S.

Publications and source records attributed to Khiati, S..

2 recordsLinked to original sources

A human mitochondrial isoform of TRPV1 regulates intracellular Ca2+ simultaneously with mitochondrial thermolysis

Mitochondria are the cornerstones of cellular and body thermogenesis, with an inner temperature possibly reaching 50{degrees}C. Here, we report the identification of a human Transient Receptor Potential Vanilloid 1 alternative isoform located in mitochondria. This isoform, which we have termed mitoTRPV1, acts as a thermostat to restrict the mitochondrial temperature. The mitoTRPV1 open reading frame overlaps TRPV1 exons 1 and 2 and intron 2 in a +1 frame, encoding for a predicted 150 amino-acid N-terminal mitochondrial targeting sequence (MTS) conserved amongst mammalian species, followed by the 687 amino acids of TRPV1 C-terminal. This ORF is ubiquitously expressed in most human organs, underscoring its broad relevance. The deduced MTS, conserved among mammalian species, effectively addresses this TRPV1 isoform to the mitochondrial inner membrane. Our experiments, using heterologous wild-type and mutated mitoTRPV1 expression, combined with Ca2+ imaging, mitochondrial temperature and oxygraphy measurements, disclosed that mitoTRPV1 activation induces Ca2+ efflux and mitochondrial cooling, without modification of mitochondrial respiration and ATP production. Notably, the loss of function mitoTRPV1-G684V isoform, responsible for exertional heat stroke predisposition in humans, abolished mitochondrial Ca2+ efflux and cooling. These findings reveal a new thermolysis function for TRPV1 in preventing mitochondrial overwarming while not affecting the OXPHOS efficiency. They also highlight the potential implications of mitoTRPV1 in human diseases related to temperature dysregulation.

cell biology↗

Mitochondrial defects leading to arrested spermatogenesis and ferroptosis in a mouse model of Leigh Syndrome

Impaired spermatogenesis and male infertility are common manifestations of mitochondrial diseases, but the underlying mechanisms are unclear. Here we show that mice deficient for PARL, the mitochondrial rhomboid protease, a recently reported model of Leigh syndrome, develop postpubertal testicular atrophy caused by arrested spermatogenesis and germ cell death independently of neurodegeneration. Genetic modifications of PINK1, PGAM5, and TTC19, three major substrates of PARL with important roles in mitochondrial homeostasis, do not reproduce or modify this phenotype. PARL deficiency in testis mitochondria leads to severe mitochondrial electron transfer chain defects, alterations in Coenzyme Q biosynthesis and redox status, and abrogates GPX4 expression specifically in spermatocytes leading to massive ferroptosis, an iron-dependent regulated cell death modality characterized by uncontrolled lipid peroxidation. Thus, mitochondrial defects can initiate ferroptosis in vivo in specific cell types by simultaneous effects on GPX4 and Coenzyme Q. These results highlight the importance of ferroptosis and cell-type specific downstream responses to mitochondrial deficits with respect to specific manifestations of mitochondrial diseases.

cell biology↗