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Tracy, C. B.

Publications and source records attributed to Tracy, C. B..

2 recordsLinked to original sources

Comparative genomic analyses of trans-ithmanian reef fishes reveals different molecular targets of environmental adaptation in different families.

The extent to which selection acts upon the same molecular targets when faced with the same environmental changes has important implications for our understanding of the repeatability and predictability of evolutionary processes. Replicated natural experiments are well positioned to provide insight, however often these involve closely related species or populations of the same species. Given that the similarity of genetic background makes the same molecular change more likely, it is essential to evaluate the extent to which molecular parallelism occurs in more distantly related species. The rise of the Isthmus of Panama presents an ideal natural experiment to investigate the prevalence of parallel molecular changes in distantly related lineages exposed to the same environmental regimes of temperature, salinity and primary productivity in the two newly formed oceans. Here, we generate high-quality reference genomes for two replicate pairs of geminate reef fishes, one in the family Pomacentridae and one in the Serranidae. Comparative analyses of positive selection in protein-coding genes and of gene family evolution revealed multiple signals of potentially adaptive divergence between geminate species in response to environmental regime. Common targets of selection between families included MAPK signalling (MAP3K10), solute transport (SLC46A2) and reproduction (ZPL3L), as well as expansions in immune and MAPK related gene families. Overall, however, we found minimal evidence of parallelism between families either at the gene level or when considering higher functional categories. Our findings suggest that phylogenetic constraints may limit the levels of molecular parallelism in distant lineages even when faced with comparable selective pressures. Significance StatementUnderstanding the extent to which species exposed to similar environmental conditions may adapt using similar genetic solutions has important implications for our understanding of evolutionary processes and how we may expect species to adapt in the future. However, systems where multiple, independent lineages are faced with the same shift in conditions are rare. The rise of the Isthmus of Panama provides a unique, natural experiment where multiple marine species have been divided and exposed to radically different environmental conditions. Here, we generate genomes for separated species in two distantly related families of reef fishes and compare genome-wide patterns of divergence. Our analyses identified signals of selection in protein-coding genes and shifts in gene family size consistent with adaptation to the distinct environments, however the specific genes and pathways involved predominantly differed between the families, revealing that, even under shared selective pressures, molecular mechanisms may differ across more distant lineages.

evolutionary biology↗

Comparative Genomics of Transisthmian Damselfishes (Abudefduf saxatilis and A. troschelii)

The uplift of the Central American Isthmus (CAI) represents a natural laboratory for the study of allopatric speciation in marine organisms. Several geminate species pairs of both vertebrates and invertebrates formed following the uplift of the CAI, including damselfishes of the Pomacentridae family. However, to date no studies have explored the genomic differences among geminate species in the Pacific and Atlantic Oceans. In this study we present genome assemblies for the transisthmian species pair consisting of the Sergeant Major Abudefduf saxatilis (Tropical Atlantic) and the Panamic Sergeant Major Abudefduf troschelii (Tropical Eastern Pacific) derived from PacBio long-read sequencing. The new genomes are near-chromosome level, and among the highest-quality genomes currently available for coral reef fishes. We show that large structural variants distinguish the two species, including a 9 megabase inversion in linkage group (putative chromosome) 6. Additionally, we show through an analysis of demographic history that alleles within the two genomes have different coalescence time distributions, which may be due to different effective population sizes, population structures, and/or selection regimes in the two oceans. Finally, we highlight gene families that were significantly expanded or contracted between A. troschelii and A. saxatilis. Some of these are related to the environmental conditions that differ between the two oceans, such as gamma crystallin M (crygm), which is linked to vision, and vitellogenin (vtg), which is associated with egg provisioning. These genomes set the stage for comparative analyses of genetic structure and selection on the marine organisms that originated with the formation of the CAI. Significance StatementUnderstanding speciation in oceans has represented a historical challenge, given the high rates of dispersal during larval stages for most marine groups. There are few geologic events that have propelled marine biodiversity while completely blocking the genetic exchange during the speciation process. The final closure of the Central American Isthmus (CAI), 2.8 million years ago, is one of these few examples where marine populations from the tropical Pacific and Atlantic oceans have been completely isolated, providing the opportunity to study how genomes diverge in the absence of gene flow. Here, we present the first comparative genomics study of marine organisms separated by the CAI, showing that genomes on the two sides of the CAI differ structurally. We also identify contractions and expansions of various gene families between the two species, which are potentially associated with adaptations to the different environmental conditions in the two oceans. This represents a relevant first step for comparative genomics of geminate species isolated by a major geologic event.

genomics↗