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"Akopyan, Maria"
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Mitonuclear and phenotypic discordance in an Atlantic Forest frog hybrid zone
2024
Discordance between mitochondrial and nuclear DNA is common among animals and can be the result of a number of evolutionary processes, including incomplete lineage sorting and introgression. Particularly relevant in contact zones, mitonuclear discordance is expected because the mitochondrial genome is haploid and primarily uniparentally inherited, whereas nuclear loci are evolving at slower rates. In addition, when closely related taxa come together in hybrid zones, the distribution of diagnostic phenotypic characters and their concordance with the mitochondrial or nuclear lineages can also inform on historical and ongoing dynamics within hybrid zones. Overall, genetic and phenotypic discordances provide evidence for evolutionary divergence and processes that maintain boundaries among sister species or lineages. In this study, we characterized patterns of genetic and phenotypic variation in a contact zone between Cycloramphus dubius and Cycloramphus boraceiensis, two sister species of frogs endemic to the Atlantic Coastal Forest of Brazil. We examined genomic‐scale nuclear diversification across 19 populations, encompassing the two parental forms and a contact zone between them. We compared the distribution of genomic DNA variability with that of a mitochondrial locus (16S) and two morphological traits (dorsal tubercles and body size). Our results reveal multiple divergent lineages with ongoing admixture. We detected discordance in patterns of introgression across the three data types. Cycloramphus dubius males are significantly larger than C. boraceiensis males, and we posit that competition among males in the hybrid zone, coupled with mate choice by females, may be one mechanism leading to patterns of introgression observed between the species. We characterized the patterns of genetic and phenotypic variation in a contact zone between Cycloramphus dubius and Cycloramphus boraceiensis, two sister species of frogs endemic to the Atlantic Coastal Forest of Brazil. We detected discordance in patterns of introgression across the three data types. Cycloramphus dubius males are significantly larger than C. boraceiensis males, and we posit that competition among males in the hybrid zone, coupled with mate choice by females may be one mechanism leading to patterns of introgression observed between the species. Photo credit: Leo R. Malagoli.
Journal Article
Genetic Differentiation is Constrained to Chromosomal Inversions and Putative Centromeres in Locally Adapted Populations With Higher Gene Flow
2025
The impact of genome structure on adaptation is a growing focus in evolutionary biology, revealing an important role for structural variation and recombination landscapes in shaping genetic diversity across genomes and among populations. This is particularly relevant when local adaptation occurs despite gene flow, where clustering of differentiated loci can maintain locally adapted variants by reducing recombination between them. However, the limited genomic resources for nonmodel species, including reference genomes and recombination maps, have constrained our understanding of these patterns. In this study, we leverage the Atlantic silverside—a nonmodel fish with extensive local adaptation across a steep latitudinal gradient—as an ideal system to explore how genome structure influences adaptation under varying levels of gene flow, using a newly available reference genome and multiple recombination maps. Analyzing 168 genomes from four populations, we found a continuum of genome-wide differentiation increasing from south to north, reflecting higher connectivity among southern populations and reduced gene flow at northern latitudes. With increasing gene flow, the number and clustering of FST outlier loci also increased, with differentiated loci found exclusively within large haploblocks harboring inversions and smaller peaks overlapping putative centromeric regions. Notably, sequence divergence was only evident in inversions, supporting their role in adaptive divergence with gene flow, whereas centromeric regions appeared differentiated because of low recombination and diversity, with no indication of elevated divergence. Our results support the hypothesis that clustered genomic architectures evolve with high gene flow and enhance our understanding of how inversions and centromeres are linked to different evolutionary processes.
Journal Article
The Genomic Basis and Architecture Underlying Local Adaptation and Divergence with Gene Flow
2023
Understanding the complex relationship between selection and gene flow is a central goal in evolutionary biology. The Atlantic silverside (Menidia menidia), a small fish distributed across the steep latitudinal climate gradient of the North American Atlantic coast, is an excellent system to examine how selection and gene flow interact and shape patterns of genome evolution. Extensive research on this species has demonstrated a remarkable degree of local adaptation in multiple traits associated with the climatic gradient across its range. Leveraging the recently published Atlantic silverside reference genome, I investigated the genomic basis and architecture underlying adaptive divergence in this species. First, I conducted comparative linkage mapping, revealing suppressed recombination across massive chromosomal inversions that segregate between locally adapted populations. Next, I analyzed low-coverage whole genome sequencing data from four populations connected by varying levels of gene flow, finding striking signatures of differentiation only in specific genomic regions when divergent selection and gene flow co-occur. By integrating my results, I further discovered that genomic differentiation between populations is limited to inversions and putative centromeres, but the latter only show signatures of within-population selection, whereas inversions show strong signatures of divergent selection in the face of gene flow. Finally, through mapping of key adaptive traits, I confirmed that multiple strong QTL coincide with the major inversions that are under strong divergent selection. My research demonstrates how local adaptation is maintained despite homogenizing gene flow due to suppressed recombination between alternate arrangements of chromosomal inversions harboring adaptive loci.
Dissertation
Reference genome choice compromises population genetic analyses
2025
Characterizing genetic variation in natural populations is vital to evolutionary biology, however many non-model species lack genomic resources. Here, we demonstrate that reference bias significantly affects population genomic analyses by mapping whole genome sequence data from gray foxes (Urocyon cinereoargenteus) to a conspecific reference and two heterospecific canid genomes (dog and Arctic fox). Mapping to the conspecific genome improved read pairing by ∼5%, detected 26–32% more SNPs, and 33–35% more singletons. Nucleotide diversity estimates increased over 30%, FST increased from 0.189 to 0.197, and effective population size estimates were 30-60% higher with the conspecific reference. Recombination rates varied by up to 3-fold at chromosome ends with heterospecific references. Importantly, FST outlier detection differed markedly, with heterospecific genomes identifying twice as many unique outlier windows. These findings highlight the impact of reference genome choice and the importance of conspecific genomic resources for accurate evolutionary inference.
A species-specific reference genome improves read mapping and variant detection
Reference bias underestimates genetic diversity and differentiation
Divergent reference genomes distort demographic histories and recombination landscapes
Unique FST outliers are detected across references, affecting functional interpretations
Divergent reference genomes compromise the reconstruction of demographic histories, selection scans, and population genetic summary statistics
by
Akopyan, Maria
,
Genchev, Matthew
,
Mooney, Jazlyn A
in
Canis lupus familiaris
,
Demography
,
Developmental biology
2024
Characterizing genetic variation in natural populations is central to evolutionary biology. However, most non-model organisms lack integral genomic resources such as reference genomes and recombination maps, limiting accurate evolutionary inference. Here, we explore the consequences of reference genome bias on the inference of genetic diversity, demographic histories, and recombination rates using gray foxes (Urocyon cinereoargenteus), which, like most members of Canidae, are traditionally mapped to the dog (Canis lupus familiaris) reference genome. Whole genome sequence data from gray foxes were mapped to the gray fox reference genome and two heterospecific canid references (dog and Arctic fox; Vulpes lagopus). Our results reveal that reference bias significantly affects population genomic analyses. Mapping to the conspecific gray fox genome improved read pairing, increased detection of SNPs, especially rare variants, and reduced spurious variants. Estimates of nucleotide diversity (π) and genetic differentiation (FST) were higher using the gray fox genome. We observed that mapping to heterospecific references leads to underestimates of population sizes, distorted demographic trajectories, and more variable recombination rates. These effects are further complicated by population-specific biases, which vary in their magnitude and direction across populations, highlighting the need for tailored approaches to mitigate reference bias. Importantly, FST outlier detection also differed among references, affecting functional interpretations. Collectively, this work addresses a critical gap in the rapidly expanding field of non-model species genomics by demonstrating the importance of using conspecific genomic resources in evolutionary research and illustrating how reliance on distantly related reference genomes can distort population genetic analyses.Competing Interest StatementThe authors have declared no competing interest.
Genetic differentiation is constrained to chromosomal inversions and putative centromeres in locally adapted populations with higher gene flow
2024
The impact of genome structure on adaptation is a growing focus in evolutionary biology, revealing an important role for structural variation and recombination landscapes in shaping genetic diversity across genomes and among populations. This is particularly relevant when local adaptation occurs despite gene flow, where clustering of differentiated loci can maintain locally adapted variants by reducing recombination between them. However, the limited genomic resources for non-model species, including reference genomes and recombination maps, has constrained our understanding of these patterns. In this study, we leverage the Atlantic silverside—a non-model fish with extensive local adaptation across a steep latitudinal gradient—as an ideal system to explore how genome structure influences adaptation under varying levels of gene flow, using a newly available reference genome and multiple recombination maps. Analyzing 168 genomes from four populations, we found a continuum of genome-wide differentiation increasing from south to north, reflecting higher connectivity among southern populations and reduced gene flow at northern latitudes. With increasing gene flow, the number and clustering of FST outlier loci also increased, with differentiated loci tightly clustered in large haploblocks harboring inversions and smaller peaks overlapping putative centromeres. Notably, sequence divergence was only evident in inversions, supporting their role in adaptive divergence with gene flow, whereas centromeres appeared differentiated because of low recombination and reduced diversity, with no indication of elevated sequence divergence. Our results support the hypothesis that clustered genomic architectures evolve with high gene flow and enhance our understanding of how inversions and centromeres are linked to different evolutionary processes.
How populations preserve favorable combinations of genes adapted to their local environment despite reproducing with populations adapted to different conditions is a longstanding question in evolutionary biology. By analyzing the genomes of 168 Atlantic silverside fish from four populations, we found that when populations adapted to different environments frequently interbreed, genetic differences concentrate in specific parts of the genome, particularly in chromosomal inversions—where segments of DNA are flipped. These inversions help preserve locally adapted gene combinations, enabling populations to maintain differences essential for survival in their habitats. This research enhances our understanding of genomic adaptation, a fundamental evolutionary question with increasing relevance as environmental changes pose new challenges globally.
Genetic isolation by distance underlies color pattern divergence in red-eyed treefrogs (Agalychnis callidryas)
2022
Investigating the spatial distribution of genetic and phenotypic variation can provide insights into the evolutionary processes that shape diversity in natural systems. We characterized patterns of genetic and phenotypic diversity to learn about drivers of color-pattern diversification in red-eyed treefrogs (Agalychnis callidryas) in Costa Rica. Along the Pacific coast, red-eyed treefrogs have conspicuous leg color patterning that transitions from orange in the north to purple in the south. We measured phenotypic variation of frogs, with increased sampling at sites where the orange-to-purple transition occurs. At the transition zone, we discovered the co-occurrence of multiple color-pattern morphs. To explore possible causes of this variation, we generated a SNP dataset to analyze population genetic structure, measure genetic diversity, and infer the processes that mediate genotype-phenotype dynamics. We investigated how patterns of genetic relatedness correspond with individual measures of color pattern along the coast, including testing for the role of hybridization in geographic regions where orange and purple phenotypic groups co-occur. We found no evidence that color-pattern polymorphism in the transition zone arose through recent hybridization. Instead, a strong pattern of genetic isolation by distance (IBD) indicates that color-pattern variation was either retained through other processes such as ancestral color polymorphisms or ancient secondary contact, or else it was generated by novel mutations. We found that phenotype changes along the Pacific coast more than would be expected based on genetic divergence and geographic distance alone. Combined, our results suggest the possibility of selective pressures acting on color pattern at a small geographic scale.
Comparative linkage mapping uncovers massive chromosomal inversions that suppress recombination between locally adapted fish populations
2021
The role of recombination in genome evolution has long been studied in theory, but until recently empirical investigations had been limited to a small number of model species. Here we compare the recombination landscape and genome collinearity between two populations of the Atlantic silverside (Menidia menidia), a small fish distributed across the steep latitudinal climate gradient of the North American Atlantic coast. Using ddRADseq, we constructed separate linkage maps for locally adapted populations from New York and Georgia and their inter-population lab cross. First, we used one of the linkage maps to improve the current silverside genome assembly by anchoring three large unplaced scaffolds to two chromosomes. Second, we estimated sex-specific recombination rates, finding 2.75-fold higher recombination rates in females than males—one of the most extreme examples of heterochiasmy in a fish. While recombination occurs relatively evenly across female chromosomes, it is restricted to only the terminal ends of male chromosomes. Furthermore, comparisons of female linkage maps revealed suppressed recombination along several massive chromosomal inversions spanning nearly 16% of the genome and segregating between locally adapted populations. Finally, we discerned significantly higher recombination rates across chromosomes in the northern population. In addition to providing valuable resources for ongoing evolutionary and comparative genomic studies, our findings represent a striking example of structural variation that impacts recombination between adaptively divergent populations, providing empirical support for theorized genomic mechanisms facilitating adaptation despite gene flow.
Mesenchymal stromal cells facilitate resolution of pulmonary fibrosis by miR-29c and miR-129 intercellular transfer
2023
To date, pulmonary fibrosis remains an unmet medical need. In this study, we evaluated the potency of mesenchymal stromal cell (MSC) secretome components to prevent pulmonary fibrosis development and facilitate fibrosis resolution. Surprisingly, the intratracheal application of extracellular vesicles (MSC-EVs) or the vesicle-depleted secretome fraction (MSC-SF) was not able to prevent lung fibrosis when applied immediately after the injury caused by bleomycin instillation in mice. However, MSC-EV administration induced the resolution of established pulmonary fibrosis, whereas the vesicle-depleted fraction did not. The application of MSC-EVs caused a decrease in the numbers of myofibroblasts and FAPa
+
progenitors without affecting their apoptosis. Such a decrease likely occurred due to their dedifferentiation caused by microRNA (miR) transfer by MSC-EVs. Using a murine model of bleomycin-induced pulmonary fibrosis, we confirmed the contribution of specific miRs (miR-29c and miR-129) to the antifibrotic effect of MSC-EVs. Our study provides novel insights into possible antifibrotic therapy based on the use of the vesicle-enriched fraction of the MSC secretome.
Fibrosis: stem cell–secreted vesicles contain anti-scarring RNA molecules
Tiny regulatory RNAs found within membrane-bound vesicles released by fat-derived stem/stromal cells help to resolve lung scarring in a mouse model of pulmonary fibrosis. Nataliya Basalova from Lomonosov Moscow State University in Russia and coworkers observed that molecules secreted by human adult stem/stromal cells help to reduce lung fibrosis in mice with established disease but do not prevent scarring early in the disease process. The researchers traced the beneficial effects to a specific pair of microRNAs contained within vesicles that the stem cells release into their environment. These microRNAs cause scar-forming cells to return to a more flexible state, leading to healthier lung function. Drugs that take advantage of these healing properties could help treat fibrosis, a feature of many chronic diseases, in the lungs and other organs.
Journal Article
Effects of Grape Polyphenols on the Life Span and Neuroinflammatory Alterations Related to Neurodegenerative Parkinson Disease-Like Disturbances in Mice
by
Ovsyukova, Marina V.
,
Amstislavskaya, Tamara G.
,
Dubrovina, Nina I.
in
alpha-Synuclein - metabolism
,
Animals
,
Behavior, Animal - drug effects
2020
Functional nutrition is a valuable supplementation to dietary therapy. Functional foods are enriched with biologically active substances. Plant polyphenols attract particular attention due to multiple beneficial properties attributed to their high antioxidant and other biological activities. We assessed the effect of grape polyphenols on the life span of C57BL/6 mice and on behavioral and neuroinflammatory alterations in a transgenic mouse model of Parkinson disease (PD) with overexpression of the A53T-mutant human α-synuclein. C57BL/6 mice were given a dietary supplement containing grape polyphenol concentrate (GPC—1.5 mL/kg/day) with drinking water from the age of 6–8 weeks for life. Transgenic PD mice received GPC beginning at the age of 10 weeks for four months. GPC significantly influenced the cumulative proportion of surviving and substantially augmented the average life span in mice. In the transgenic PD model, the grape polyphenol (GP) diet enhanced memory reconsolidation and diminished memory extinction in a passive avoidance test. Behavioral effects of GP treatment were accompanied by a decrease in α-synuclein accumulation in the frontal cortex and a reduction in the expression of neuroinflammatory markers (IBA1 and CD54) in the frontal cortex and hippocampus. Thus, a GP-rich diet is recommended as promising functional nutrition for aging people and patients with neurodegenerative disorders.
Journal Article