4.5 Article

Mitochondrial cardiomyopathies feature increased uptake and diminished efflux of mitochondrial calcium

Journal

JOURNAL OF MOLECULAR AND CELLULAR CARDIOLOGY
Volume 113, Issue -, Pages 22-32

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.yjmcc.2017.09.009

Keywords

Mitochondrial calcium uniporter; Mitochondrial sodium-calcium exchanger; Whole-mitoplast electrophysiology; Cardiac metabolism; Respiratory-chain deficient cardiomyopathy; OXPHOS deficient cardiomyopathy

Funding

  1. Heart, Lung, and Blood Institute of the NIH [R00HL124070, T32HL007572, T32NS007473]
  2. American Heart Association [13FTF16890003]
  3. Nora Eccles Treadwell Foundation
  4. Institute of Neurological Disorders and Stroke of the NIH [R00HL124070, T32HL007572, T32NS007473]

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Calcium (Ca2+) influx into the mitochondrial matrix stimulates ATP synthesis. Here, we investigate whether mitochondrial Ca2+ transport pathways are altered in the setting of deficient mitochondrial energy synthesis, as increased matrix Ca2+ may provide a stimulatory boost. We focused on mitochondrial cardiomyopathies, which feature such dysfunction of oxidative phosphorylation. We study a mouse model where the main transcription factor for mitochondrial DNA (transcription factor A, mitochondrial, Tfam) has been disrupted selectively in cardiomyocytes. By the second postnatal week (10-15 day old mice), these mice have developed a dilated cardiomyopathy associated with impaired oxidative phosphorylation. We find evidence of increased mitochondrial Ca2+ during this period using imaging, electrophysiology, and biochemistry. The mitochondrial Ca2+ uniporter, the main portal for Ca2+ entry, displays enhanced activity, whereas the mitochondrial sodium calcium (Ha-Ca2+) exchanger, the main portal for Ca2+ efflux, is inhibited. These changes in activity reflect changes in protein expression of the corresponding transporter subunits. While decreased transcription of Nclx, the gene encoding the Na+-Ca2+ exchanger, explains diminished Na+-Ca2+ exchange, the mechanism for enhanced uniporter expression appears to be post -transcriptional. Notably, such changes allow cardiac mitochondria from Tfam knockout animals to be far more sensitive to Ca2+-induced increases in respiration. In the absence of Ca-2+,Ca- oxygen consumption declines to less than half of control values in these animals, but rebounds to control levels when incubated with Ca2+. Thus, we demonstrate a phenotype of enhanced mitochondrial Ca2+ in a mitochondrial cardiomyopathy model, and show that such Ca2+ accumulation is capable of rescuing deficits in energy synthesis capacity in vitro.

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