bioRxiv Science⌕ Search

Biology subjects

Conn, T.

Publications and source records attributed to Conn, T..

3 recordsLinked to original sources

Mosaic accumulation of somatic genetic variation and estimates of age in the long-lived reef-building coral Acropora palmata

Somatic genetic variation (SOGV), accumulating during an organisms lifetime, was traditionally viewed as detrimental rather than adaptive due to links with cancer and senescence. However, in modular organisms like corals, deleterious mutations can be purged at the cellular or polyp level, while adaptive mutations may rise in frequency as polyps create genetically distinct modules. Quantifying the somatic genetic landscape in corals is necessary to understand the role these mutations may have in coral and clonal animal development and evolution. Here, we catalog somatic genetic variation in eight Acropora palmata colonies from Curacao. Whole genomes were sequenced (70-100x depth), documenting mutation variant allele frequency shifts as genets aged. Large numbers of SOGVs were observed in six- to ten-year-old colonies, and inferred mutation rates were used to age a genet of uncertain age to almost a century old. Although mutations were not fixed at the polyp or branch levels, i.e. they always displayed frequencies <0.5 as expected at mutating homozygous sites, their allele frequencies followed a power-law distribution, similar to aging human tissues. No signs of positive selection were found; instead SOGVs in the colony of uncertain age were under purifying selection. In one colony, mutations in 28 samples from along a branch were analyzed using a SNP microarray. Contrary to expectations, genetic and physical distances were unrelated. This observation together with the observed lack of fixation may be explained by a large stem cell population, the de-differentiation or dormancy of stem cells, the contribution of strong purifying selection, or a combination of the previously mentioned. Our findings provide a neutral framework against which to test for module-level selection of genetic variation in corals, explore the relationship between physical and genetic distance within a colony, and apply a somatic genetic clock to colonies of Acropora palmata. This work provides necessary fundamental insights into the landscape of somatic mutations in reef-building coral, highlighting the importance of studying these mutations as they may contribute to genetic diversity and adaptability in colonial animals.

genomics↗

Genome assembly and annotation of Acropora pulchra from Mo'orea French Polynesia

Reef-building corals are integral ecosystem engineers in tropical coral reefs worldwide but are increasingly threatened by climate change and rising ocean temperatures. Consequently, there is an urgency to identify genetic, epigenetic, and environmental factors, and how they interact, for species acclimatization and adaptation. The availability of genomic resources is essential for understanding the biology of these organisms and informing future research needs for management and and conservation. The highly diverse coral genus Acropora boasts the largest number of high-quality coral genomes, but these remain limited to a few geographic regions and highly studied species. Here we present the assembly and annotation of the genome and DNA methylome of Acropora pulchra from Moorea, French Polynesia. The genome assembly was created from a combination of long-read PacBio HiFi data, from which DNA methylation data were also called and quantified, and additional Illumina RNASeq data for ab initio gene predictions. The work presented here resulted in the most complete Acropora genome to date, with a BUSCO completeness of 96.7% metazoan genes. The assembly size is 518 Mbp, with 174 scaffolds, and a scaffold N50 of 17 Mbp. Structural and functional annotation resulted in the prediction of a total of 40,518 protein-coding genes, and 16.74% of the genome in repeats. DNA methylation in the CpG context was 14.6% and predominantly found in flanking and gene body regions (61.7%). This reference assembly of the A. pulchra genome and DNA methylome will provide the capacity for further mechanistic studies of a common coastal coral in French Polynesia of great relevance for restoration and improve our capacity for comparative genomics in Acropora and cnidarians more broadly.

genomics↗

Assisted gene flow yields Acropora palmata corals with robust physiological performance under warmer water temperatures in a land-based nursery

Assisted gene flow (AGF) is a conservation approach that facilitates the spread of alleles and may accelerate the recovery of genetically depauperate cohorts. The threatened Caribbean coral Acropora palmata is approaching regional extinction within the western Atlantic partly due to increasing water temperatures associated with global climate change. Previously, AGF was conducted by crossing gametes collected from three regions (Curacao - CU, Florida - FL, and Puerto Rico - PR) characterized by contrasting temperature regimes and low gene flow between them. Here, we tested the thermal tolerance of these AGF cohorts in comparison to purebred Florida and Curacao cohorts. Exposure to high temperatures resulted in few physiological changes, likely because the corals hosted the thermally tolerant algal symbiont, Durusdinium trenchii. However, the FL x FL cohort was the most sensitive to the high temperatures with a significant reduction in net photosynthesis and maximum electron transport rate under this treatment. Like the phenotypic responses, gene expression changes in response to heat stress were muted overall. Consequently, there was little power to detect correlations between genotype and phenotype. Relative to mid-parent values, CUxFL AGF cohorts showed 26 overexpressed and 48 underexpressed genes. Differentially expressed genes included known stress responders. Importantly, hybrid crosses harbored 879 private alleles that were previously not recovered in representative genets from Florida and thus carry important conservation value. These findings suggest that AGF corals not only carry novel alleles but also represent novel gene expression patterns.

ecology↗