Search bioRxiv⌕ Search

Biology subjects

Milenkovic, D.

Publications and source records attributed to Milenkovic, D..

4 recordsLinked to original sources

Loss of CHCHD2 and CHCHD10 reveals differential vulnerability to bioenergetic failure in cardiac and skeletal muscle

Mutations in the mitochondrial proteins CHCHD2 and CHCHD10 cause severe neurodegenerative and neuromuscular disorders, yet their physiological functions remain poorly defined. CHCHD2 and CHCHD10 localize to the mitochondrial intermembrane space, where they assemble into a high-molecular-weight complex. Here, we generated Chchd2/Chchd10 double-knockout (DKO) mice to define the in vivo role of this complex. DKO mice developed reduced lean mass, progressive muscle weakness, and oxidative phosphorylation defects in both cardiac and skeletal muscle. Despite comparable bioenergetic impairment, CHCHD2-CHCHD10 deficiency elicited tissue-specific responses distinct from those induced by the disease-associated CHCHD10 S59L mutation. The heart accumulated enlarged mitochondria with disrupted ultrastructure and underwent adaptive proteomic remodeling that preserved myocardial contractility into adulthood. By contrast, skeletal muscle exhibited limited proteomic alterations, accompanied by profound changes in lipid composition, reduced expression of the myogenic regulators, and altered myofiber size. Mechanistically, depletion of CHCHD2 and CHCHD10 in primary satellite cells impaired proliferation and myogenic differentiation, suggesting that defective postnatal myogenesis contributes to the muscle growth defect in DKO mice. Together, these findings identify the CHCHD2-CHCHD10 complex as a critical regulator of mitochondrial integrity and demonstrate that its loss drives tissue-specific defects culminating in diverse pathological outcomes.

cell biology↗

Mutant CHCHD10 disrupts cytochrome c oxidation and activates retrograde signaling in a model of cardiomyopathy.

Mutations in CHCHD10, a mitochondrial intermembrane space (IMS) protein implicated in proteostasis and cristae maintenance, cause multi-systemic mitochondrial disease. Heterozygous Chchd10 knock-in mice modeling the human CHCHD10S59L variant associated with Amyotrophic Lateral Sclerosis and Frontotemporal Dementia (ALS-FTD) develop a mitochondrial cardiomyopathy driven by CHCHD10 insolubility and aggregation, which is associated with chronic activation of the mitochondrial integrated stress response (mtISR). Here, we demonstrate that cardiac dysfunction in Chchd10S55L/+ mice carrying the orthologous pathogenic variant is associated with dual defects originating at the onset of disease: (1) early bioenergetic dysfunction linked to defects in the mitochondrial copper homeostasis and the oxidation of cytochrome c and (2) maladaptive mtISR signaling via the OMA1-DELE1-HRI axis. Using Oma1E324Q/E324Qknock-in mice, we show that the catalytic inactivation of the mitochondrial protease OMA1 in Chchd10S55L/+ mice delays cardiomyopathy onset without rescuing CHCHD10 insolubility, proteomic remodeling, cristae defects or OXPHOS impairment, demonstrating that mtISR can be uncoupled from the bioenergetic collapse triggered by mutant CHCHD10. Proteomic profiling of soluble and insoluble mitochondrial proteins in Chchd10S55L/+ mice reveals wide-spread disruptions of mitochondrial proteostasis, including IMS proteins involved in cytochrome c biogenesis. Defective respiration in mutant mitochondria could be rescued by the exogenous addition of cytochrome c, pinpointing IMS proteostasis disruption as a key pathogenic mechanism. Our work reveals that mutant CHCHD10 insolubility compromises metabolic resilience by impairing both mitochondrial bioenergetics and stress adaptation, offering new perspectives for the development of therapeutic targets.

cell biology↗

The CHCHD2-CHCHD10 protein complex is modulated by mitochondrial dysfunction and alters lipid homeostasis in the mouse brain.

The highly conserved CHCHD2 and CHCHD10 are small mitochondrial proteins residing in the intermembrane space. Recently, mutations in the CHCHD2 and CHCHD10 genes have been linked to severe disorders, including Parkinsons disease and amyotrophic lateral sclerosis. In cultured cells, a small fraction of CHCHD2 and CHCHD10 oligomerize to form a high molecular weight complex of unknown function. Here, we generated a whole-body Chchd2 knockout mouse to investigate the in vivo role of CHCHD2 and its protein complex. We show that CHCHD2 is crucial for sustaining full motor capacity, normal striatal dopamine levels, and lipid homeostasis in the brain of adult male mice. We also demonstrate that in mouse tissues, CHCHD2 and CHCHD10 exist exclusively as a high molecular weight complex, whose levels are finely tuned under physiological conditions. In response to mitochondrial dysfunction, the abundance and size of the CHCHD2-CHCHD10 complex increases, a mechanism conserved across different tissues. Although the loss of CHCHD2 does not abolish CHCHD10 oligomerization, it enhances cell vulnerability to mitochondrial stress, suggesting that CHCHD2 is protective against mitochondrial damage. Our findings uncover the role of CHCHD2 in preserving tissue homeostasis and provide important insights into the involvement of the CHCHD2-CHCHD10 complex in human diseases.

neuroscience↗

Preserved respiratory chain capacity and physiology in mice with profoundly reduced levels of mitochondrial respirasomes

The mammalian respiratory chain complexes I, III2 and IV (CI, CIII2 and CIV) are critical for cellular bioenergetics and form a stable assembly, the respirasome (CI- CIII2-CIV), that is biochemically and structurally well documented. The role of the respirasome in bioenergetics and regulation of metabolism is subject to intense debate and is difficult to study because the individual respiratory chain complexes coexist together with high levels of respirasomes. To critically investigate the in vivo role of the respirasome, we generated homozygous knock-in mice that have normal levels of respiratory chain complexes but profoundly decreased levels of respirasomes. Surprisingly, the mutant mice are healthy, with preserved respiratory chain capacity and normal exercise performance. Our findings show that high levels of respirasomes are dispensable for maintaining bioenergetics and physiology in the mouse, but raises questions about their alternate functions, such as relating to regulation of protein stability and prevention of age-associated protein aggregation.

molecular biology↗