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Cote-L'Heureux, A.

Publications and source records attributed to Cote-L'Heureux, A..

3 recordsLinked to original sources

Positive germline selection of mtDNA mutations: evidence from the oocyte.

Purifying selection is the removal of detrimental mutations. Nuclear DNA mutations are purged by removing mutant individuals, embryos, or germline cells. Because mtDNA is present in numerous copies per cell, purifying selection of mtDNA mutations introduces an additional layer of complexity. The intracellular mutant fraction can change due to clonal expansion/reduction of mutant mtDNA molecules in germline cells. Different research groups have reported either negative (purifying), or positive (destructive) germline mtDNA selection. In this study, we use recently published high-fidelity data on mtDNA mutations in individual human oocytes from the Makova laboratory (Arbeithuber et al., 2025) to resolve this disagreement. To assess selection, we used the "selective expansion" metric St, which compares the average weighted rate of clonal expansion in a set of mutations tested for selection (e.g. non-synonymous mutations) to that of the set of synonymous mutations. We found that, on average, noncoding oocyte mutations in the control region expand faster than synonymous mutations, i.e., are under positive selection. Intriguingly, mutations in the coding region, the detrimental ones in particular, were also on average under positive selection. The prescence of average positive selection does not preclude purifying selection against individual mutations; it only indicates that positive selection dominates in aggregate mutational dynamics. Positive selection impacts the dynamics of de novo germline mutations that arise in primordial germ cells or oocytes and have not yet been inherited by the next generation. Contrastly, mutations that are passed to subsequent generations are under average purifying selection. We suggest that initial positive selection begets subsequent purifying selection by increasing intracellular mutant fractions to levels at which their deleterious effects become phenotypically apparent and can be efficiently removed.

genetics↗

Phylogeny and species delimitation of ciliates in the genus Spirostomum (Class, Heterotrichea) using single-cell transcriptomes

Ciliates are single-celled microbial eukaryotes that diverged from other eukaryotic lineages over a billion years ago. The extensive evolutionary timespan of ciliate has led to enormous genetic and phenotypic changes, contributing significantly to their high level of diversity. Recent analyses based on molecular data have revealed numerous cases of cryptic species complexes in different ciliate lineages, demonstrating the need for a robust approach to delimit species boundaries and elucidate phylogenetic relationships. Heterotrich ciliate species of the genus Spirostomum are abundant in freshwater and brackish environments and are commonly used as biological indicators for assessing water quality. However, some Spirostomum species are difficult to identify due to a lack of distinguishable morphological characteristics, and the existence of cryptic species in this genus remains largely unexplored. Previous phylogenetic studies have focused on only a few loci, namely the ribosomal RNA genes, alpha-tubulin, and mitochondrial CO1. In this study, we obtained single-cell transcriptome of 25 Spirostomum species populations (representing six morphospecies) sampled from South Korea and the USA, and used concatenation- and coalescent-based methods for species tree inference and delimitation. Phylogenomic analysis of 37 Spirostomum populations and 265 protein-coding genes provided a robustious insight into the evolutionary relationships among Spirostomum species and confirmed that species with moniliform and compact macronucleus each form a distinct monophyletic lineage. Furthermore, the multispecies coalescent (MSC) model suggests that there are at least nine cryptic species in the Spirostomum genus, three in S. minus, two in S. ambiguum, S. subtilis, and S. teres each. Overall, our fine sampling of closely related Spirostomum populations and wide scRNA-seq allowed us to demonstrate the hidden crypticity of species within the genus Spirostomum, and to resolve and provide much stronger support than hitherto to the phylogeny of this important ciliate genus.

evolutionary biology↗

The 'Stem' and the 'Workers' of the mtDNA population of the cell. Evidence from mutational analysis.

Every cell in our body contains a vibrant population of mitochondria, or, more precisely, of mitochondrial DNA molecules (mtDNAs). Just like members of any population mtDNAs multiply (by replication) and die (i.e., are removed, either by degradation or by distribution into the sister cell in mitosis). An intriguing question is whether all mitochondria in this population are equal, especially whether some are responsible primarily for reproduction and some - for empowering the various jobs of the mitochondrion, oxidative phosphorylation in the first place. Importantly, because mtDNA is highly damaged such a separation of responsibilities could help greatly reduce the conversion of DNA damage into real inheritable mutations. An unexpected twist in the resolution of this problem has been brought about by a recent high-precision analysis of mtDNA mutations (Sanchez-Contreras et al. 2023). They discovered that certain transversion mutations, unlike more common transitions, are not accumulating with age in mice. We argue that this observation requires the existence of a permanent replicating subpopulation/lineage of mtDNA molecules, which are protected from DNA damage, a.k.a. the stem mtDNA. This also implies the existence of its antipode i.e., the worker mtDNA, which empowers OSPHOS, sustains damage and rarely replicates. The analysis of long HiFi reads of mtDNA performed by PacBio closed circular sequencing confirms this assertion.

genomics↗