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Tsyba, N.

Publications and source records attributed to Tsyba, N..

2 recordsLinked to original sources

Independent regulation of mtDNA quantity and quality resets the mitochondrial genome in C. elegans primordial germ cells

Mitochondria contain an independent genome, called mtDNA, which contains essential metabolic genes. Although mtDNA mutations occur at high frequency, they are inherited infrequently, indicating that germline mechanisms limit their accumulation. To determine how germline mtDNA is regulated, we examined the control of mtDNA quantity and quality in C. elegans primordial germ cells (PGCs). We show that PGCs generate a bottleneck in mtDNA number by segregating mitochondria into lobe-like protrusions that are cannibalized by adjacent cells, reducing mtDNA content two-fold. As PGCs exit quiescence and divide, mtDNAs replicate to maintain a set point of [~]200 mtDNAs per germline stem cell. Whereas PGC lobe cannibalism eliminates mtDNAs stochastically, we show that the kinase PINK1, operating independently of Parkin and autophagy, preferentially reduces the fraction of mutant mtDNAs. Thus, PGCs employ parallel mechanisms to control both the quantity and quality of the founding population of germline mtDNAs.

cell biology↗

Tissue-specific heteroplasmy dynamics is accompanied by a sharp drop in mtDNA copy number during development

Mitochondrial mutation phenotypes are highly unpredictable as they depend on 3 variables; mutant-to-wildtype ratio (heteroplasmy level), total number of mitochondrial genomes (mtDNA), and the tissue affected. The exact phenotype experienced is governed by the combination of these variables, but current models lack the capability to examine the three variables simultaneously. We have established a C. elegans muscle and neuron system to overcome this challenge. Using this system, we measure heteroplasmy level and mtDNA copy number throughout development. Our results show that neurons accumulate significantly higher heteroplasmy level than muscles. These tissue-specific differences arise late in development, and are dependent on AMP-activated protein kinase (AMPK). Importantly, we find that somatic tissues lose more than half of their mtDNA content during development. These findings show that heteroplasmy levels can remain stable, or even increase, despite acute mtDNA losses.

cell biology↗