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Bertholet, A. M.

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

3 recordsLinked to original sources

The BCKDK inhibitor BT2 is a chemical uncoupler that lowers mitochondrial ROS production and de novo lipogenesis

Elevated levels of branched chain amino acids (BCAAs) and branched-chain -ketoacids (BCKAs) are associated with cardiovascular and metabolic disease, but the molecular mechanisms underlying a putative causal relationship remain unclear. The branched-chain ketoacid dehydrogenase kinase (BCKDK) inhibitor BT2 is often used in preclinical models to increase BCAA oxidation and restore steady-state BCAA and BCKA levels. BT2 administration is protective in various rodent models of heart failure and metabolic disease, but confoundingly, targeted ablation of Bckdk in specific tissues does not reproduce the beneficial effects conferred by pharmacologic inhibition. Here we demonstrate that BT2, a lipophilic weak acid, can act as a mitochondrial uncoupler. Measurements of oxygen consumption, mitochondrial membrane potential, and patch-clamp electrophysiology show BT2 increases proton conductance across the mitochondrial inner membrane independently of its inhibitory effect on BCKDK. BT2 is roughly five-fold less potent than the prototypical uncoupler 2,4-dinitrophenol (DNP), and phenocopies DNP in lowering de novo lipogenesis and mitochondrial superoxide production. The data suggest the therapeutic efficacy of BT2 may be attributable to the well-documented effects of mitochondrial uncoupling in alleviating cardiovascular and metabolic disease.

biochemistry↗

Mitochondrial uncouplers impair human sperm motility without altering ATP content

Sperm motility is necessary for successful fertilization, but there remains controversy about whether human sperm motility is primarily powered by glycolysis or oxidative phosphorylation. To evaluate the plausibility of reducing human sperm mitochondrial ATP production as an avenue for contraceptive development, we treated human sperm with small-molecule mitochondrial uncouplers, which reduce mitochondrial membrane potential by inducing passive proton flow, and evaluated the effects on a variety of physiological processes that are critical for fertilization. We also sought to clarify the subcellular localization of Adenosine Nucleotide Translocator 4 (ANT4), a gamete-specific protein that has been suggested as a contraceptive target. We determined that ANT4 is mitochondrially localized, that induced mitochondrial uncoupling can be partially mediated by the ANT family, and that two uncouplers, Niclosamide Ethanolamine and BAM15, significantly decreased sperm progressive motility. However, these uncouplers did not reduce sperm ATP content or impair other physiological processes, implying that human sperm can rely on glycolysis for ATP production in the absence of functional mitochondria. Thus, since certain mitochondrial uncouplers impair motility through ATP-independent mechanisms, they could be useful ingredients in on-demand, vaginally-applied contraceptives. However, systemically delivered contraceptives that target sperm mitochondria to reduce their ATP production would need to be paired with sperm-specific glycolysis inhibitors. Significance StatementDevelopment of novel contraceptives is critical, since half of all pregnancies are still unplanned, even in developed countries. This high unplanned pregnancy rate contributes to a wide variety of social, environmental, and ecological problems. Impairing human sperm is a way to develop male and unisex contraceptives, but much remains unknown about these unique cells. Here we settle a long-running debate about human sperm metabolism, finding that human sperm can maintain their ATP levels without mitochondrial oxidative phosphorylation. This finding will help focus future contraceptive development efforts. We also identify the potential use of an FDA-approved compound (Niclosamide) as a motility-impairing ingredient in spermicides and correct the misunderstood subcellular localization of an existing contraceptive target, Adenosine Nucleotide Translocator 4.

cell biology↗

Coenzyme Q regulates UCP1 expression and thermogenesis through the integrated stress responses

Coenzyme Q (CoQ) is an essential component of mitochondrial respiration1 and required for thermogenic activity in brown adipose tissues2 (BAT). CoQ deficiency leads to a wide range of pathological manifestations3 but mechanistic consequences of CoQ deficiency in specific tissues such as BAT remain poorly understood. Here we show that pharmacological or genetic CoQ deficiency (50-75% reduction) in BAT leads to accumulation of cytosolic mitochondrial RNAs (mtRNAs) and activation of the eIF2 kinase PKR resulting in the induction of the integrated stress response (ISR) and suppression of UCP1 expression in an ATF4-dependent fashion. Surprisingly, despite diminished UCP1 levels, BAT CoQ deficiency increases whole-body metabolic rates at room temperature and thermoneutrality resulting in decreased weight gain on high fat diets (HFD). This mitohormesis like effect of BAT CoQ insufficiency is dependent on the ATF4-FGF21 axis in BAT revealing an unexpected role for CoQ in the modulation of whole-body energy expenditure with wide-ranging implications for primary and secondary CoQ deficiencies.

cell biology↗