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Knockout of the Complex III subunit Uqcrh causes bioenergetic impairment and cardiac contractile dysfunction
Nadine Spielmann, Christina Schenkl, Tímea Komlódi, Patricia da Silva‐Buttkus, E. Heyne, Jana Rohde, Oana V. Amarie, Birgit Rathkolb, Erich Gnaiger, Torsten Doenst, Helmut Fuchs, Valérie Gailus‐Durner, Martin Hrabě de Angelis, Marten Szibor
Mammalian Genome · 2022 · ▲ 11 citations
Abstract
Abstract Ubiquinol cytochrome c reductase hinge protein (UQCRH) is required for the electron transfer between cytochrome c 1 and c of the mitochondrial cytochrome bc 1 Complex (CIII). A two-exon deletion in the human UQCRH gene has recently been identified as the cause for a rare familial mitochondrial disorder. Deletion of the corresponding gene in the mouse ( Uqcrh -KO) resulted in striking biochemical and clinical similarities including impairment of CIII, failure to thrive, elevated blood glucose levels, and early death. Here, we set out to test how global ablation of the murine Uqcrh affects cardiac morphology and contractility, and bioenergetics. Hearts from Uqcrh -KO mutant mice appeared macroscopically considerably smaller compared to wildtype littermate controls despite similar geometries as confirmed by transthoracic echocardiography (TTE). Relating TTE-assessed heart to body mass revealed the development of subtle cardiac enlargement, but histopathological analysis showed no excess collagen deposition. Nonetheless, Uqcrh -KO hearts developed pronounced contractile dysfunction. To assess mitochondrial functions, we used the high-resolution respirometer NextGen-O2k allowing measurement of mitochondrial respiratory capacity through the electron transfer system (ETS) simultaneously with the redox state of ETS-reactive coenzyme Q (Q), or production of reactive oxygen species (ROS). Compared to wildtype littermate controls, we found decreased mitochondrial respiratory capacity and more reduced Q in Uqcrh -KO, indicative for an impaired ETS. Yet, mitochondrial ROS production was not generally increased. Taken together, our data suggest that Uqcrh -KO leads to cardiac contractile dysfunction at 9 weeks of age, which is associated with impaired bioenergetics but not with mitochondrial ROS production. Graphical abstract Global ablation of the Uqcrh gene results in functional impairment of CIII associated with metabolic dysfunction and postnatal developmental arrest immediately after weaning from the mother. Uqcrh -KO mice show dramatically elevated blood glucose levels and decreased ability of isolated cardiac mitochondria to consume oxygen (O 2 ). Impaired development (failure to thrive) after weaning manifests as a deficiency in the gain of body mass and growth of internal organ including the heart. The relative heart mass seemingly increases when organ mass calculated from transthoracic echocardiography (TTE) is normalized to body mass. Notably, the heart shows no signs of collagen deposition, yet does develop a contractile dysfunction reflected by a decrease in ejection fraction and fractional shortening.
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- 10.1007/s00335-022-09973-w
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- 2026-06-06 MST
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APA
Spielmann, N., Schenkl, C., Komlódi, T., Silva‐Buttkus, P.D., Heyne, E., Rohde, J., Amarie, O.V., Rathkolb, B., Gnaiger, E., Doenst, T., Fuchs, H., Gailus‐Durner, V., Angelis, M.H.D., & Szibor, M. (2022). Knockout of the Complex III subunit Uqcrh causes bioenergetic impairment and cardiac contractile dysfunction. <em>Mammalian Genome</em>. https://doi.org/10.1007/s00335-022-09973-w
Vancouver
Spielmann N, Schenkl C, Komlódi T, Silva‐Buttkus PD, Heyne E, Rohde J, et al. Knockout of the Complex III subunit Uqcrh causes bioenergetic impairment and cardiac contractile dysfunction. Mammalian Genome. 2022. doi:10.1007/s00335-022-09973-w.
BibTeX
@article{nadine2022Knocko,
title = {Knockout of the Complex III subunit Uqcrh causes bioenergetic impairment and cardiac contractile dysfunction},
author = {Nadine Spielmann and Christina Schenkl and Tímea Komlódi and Patricia da Silva‐Buttkus and E. Heyne and Jana Rohde and Oana V. Amarie and Birgit Rathkolb and Erich Gnaiger and Torsten Doenst and Helmut Fuchs and Valérie Gailus‐Durner and Martin Hrabě de Angelis and Marten Szibor},
journal = {Mammalian Genome},
year = {2022},
doi = {10.1007/s00335-022-09973-w},
}
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