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Stern, D. B.

Publications and source records attributed to Stern, D. B..

2 recordsLinked to original sources

Complementation of a Setaria Rubisco activase mutant with Agave Rubisco activase restores growth and photosynthesis

Photosynthetic carbon assimilation is sensitive to heat stress, with a key component being the thermal sensitivity of Rubisco activase (RCA). One approach to increasing heat tolerance of photosynthesis is to increase the thermotolerance of RCA. Here, we have used a transgenic approach to express RCA{beta} from Agave tequilana (AtRCA) in Setaria viridis. A second line was created where the endogenous SvRCA{beta} was substituted for AtRCA{beta} through complementation of a null mutant, {triangleup}rcaB (AtRCA[bKO]). In vitro assays showed that Agave RCA readily activates Setaria Rubisco, and that its thermostability is higher than that of Setaria RCA. AtRCA[bKO] plants exhibited higher CO2 assimilation at 25{degrees}C compared to WT and AtRCA plants, although Rubisco content and activation did not change. After six hours of heat stress, AtRCA[bKO] plants retained higher CO2 assimilation rates than AtRCA, however, after 24 hours CO2 assimilation declined to similar levels in all lines, suggesting that RCA may not limit carbon assimilation at the conditions tested. Taken together, our results show that substitution of RCA from a CAM plant into a C4 model allows normal growth and supports slightly increased carbon assimilation under control and short-term heat conditions.

plant biology↗

Impacts of genome architecture on the repeatability of polygenic adaptation

A central but poorly resolved question regards how genome architecture shapes the selection response and repeatability of polygenic adaptation. We addressed this question using Evolve-and-Resequence experiments under rapid salinity decline in two sibling species (clades) of the invasive copepod Eurytemora affinis complex that differ strikingly in chromosome number (15 versus 4). The 4-chromosome genome arose from chromosomal fusions of the ancestral 15-chromosome genome, bringing together coadapted alleles at fusion sites. Across 10-20 generations of selection, both clades adapted to low salinity but followed divergent evolutionary trajectories. The selection lines of the 15-chromosome clade exhibited highly parallel genomic responses, whereas the 4-chromosome clade lines showed delayed and less repeatable responses. Forward genetic simulations revealed that strong synergistic epistasis among beneficial alleles best explained elevated parallelism in the 15-chromosome clade. Additional simulations varying chromosome number and epistasis revealed that strong positive epistasis, combined with high chromosome numbers, enhances parallelism by enabling recombination to assemble coadapted allelic combinations. In contrast, the high starting frequency of beneficial alleles in the 4-chromosome clade lines indicated selection on standing variation, likely acting on alternative linked haplotypes. These findings demonstrate that genome architecture and gene-gene interactions jointly determine the dynamics and predictability of polygenic adaptation.

evolutionary biology↗