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Biology subjects

Guillotte, K.

Publications and source records attributed to Guillotte, K..

2 recordsLinked to original sources

Deficiency in MICOS component Chchd3 Compromises Drosophila Heart Function via mitophagy, ROS and ER Stress

A pair of paralogs, Chchd3 and Chchd6, two components of mitochondrial contact site and cristae organizing system (MICOS), have been identified to be candidate pathogenetic genes in congenital heart disease (CHD). Previous research found that knockdown (KD) of the single Chchd3/6 (Chchd3) gene and other MICOS components in Drosophila impaired heart function, likely due to a deficit in mitochondrial organization, ATP production, actomyosin levels, and thus severely diminished contractility. However, the underlying mechanisms of how MICOS deficiency leads to these defects are not clear. Here, we performed genetic manipulations in the Drosophila heart to probe for possible interactions between MICOS-compromised mitochondria and other organelles and processes. We found that moderate reduction in Pink1/parkin-mediated mitophagy synergistically aggravated cardiac Chchd3 KD phenotypes, indicating a major interaction. Further, Chchd3 KD increased the level of reactive oxygen species (ROS) and endoplasmic reticulum (ER) stress. Interestingly, KD of catalase (CAT) also elevated cardiac ROS levels, but surprisingly did not compromise contractility either by itself or in combination with Chchd3 KD to aggravate the cardiac phenotype. However, CAT overexpression (OE) in Chchd3 KD hearts restored contractility, but only partially, even though elevated ROS due to Chchd3 KD was fully normalized. Similarly, counteracting ER stress by overexpressing Xbp1 (or spliced mouse Xbp1) also partially rescued the heart function defects induced by Chchd3 KD. Overall, these data indicate a critical role of mitophagy and ER/oxidative stress in cardiac homeostasis involving Chchd3, which suggests that deficiency of MICOS function contributes to heart dysfunction via multiple stress responsive pathways.

genetics↗

Nucleosome stability safeguards cell identity, stress resilience and healthy aging

Nucleosomes are the minimal repeating units of chromatin. Their dynamic assembly and disassembly underpins chromatin organization and genome regulation. However, it remains unclear how intrinsic nucleosome stability contributes to higher-level yet fundamental cellular and organismal properties--such as preservation of cell identity, lineage specification, stress resilience and ultimately healthy aging. To address this, we tested the impact of decreased intrinsic nucleosome stability across multiple cell, tissue and organismal models by introducing histone mutants that weaken histone-histone interactions. While nucleosome instability did not broadly alter global chromatin accessibility, DNA damage, cell proliferation or viability, it impaired lineage-specific gene expression programs, altered lineage specification and activated intrinsic inflammatory and stress pathways in a manner reminiscent of aging in mouse tissues and human cells. Consistently, nucleosome instability accelerated the onset of age-associated transcriptional alterations and functional decline in Caenorhabditis elegans and Drosophila melanogaster, and reduced cellular resilience to exogenous perturbations-- including environmental, epigenetic and mitotic stress--in human cells and Saccharomyces cerevisiae. These cross-species findings identify nucleosome stability as an evolutionarily conserved epigenetic safeguard that preserves cell identity and stress resilience and supports organismal function and healthy aging.

genomics↗