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guo, k.

Publications and source records attributed to guo, k..

2 recordsLinked to original sources

A cis-regulatory variant in ASIP causes gray coat color in the donkey

BackgroundGray is one of the relatively rare coat colors in donkeys. The Hetian Gray donkey is a distinctive indigenous breed from the Xinjiang Uygur Autonomous Region of Northwestern China, characterized by progressive hair depigmentation with aging while retaining dark skin pigmentation. However, the genetic basis underlying this unique gray coat color phenotype remains unclear. ResultsTo elucidate the genetic basis, we conducted whole-genome resequencing of Gray and non-Gray donkeys. Genome-wide selection signature analyses identified a candidate region on chromosome 15. Subsequent fine-mapping using mass spectrometry-based genotyping of 42 loci refined the candidate interval and revealed a SNP within intron 2 of the ASIP gene, located in a genomic fragment with highly similar sequences, showing complete association with the gray coat color. Association analysis in an expanded population further confirmed a strong correlation between this variant and the gray phenotype. Gene expression analyses also supported the role of ASIP in regulating pigmentation in donkeys. ConclusionsThese findings identify a genetic determinant of gray coat color in donkeys and provide new insights into the molecular mechanisms underlying age-related depigmentation in domestic animals.

genomics↗

Functional Diversification of Gene Duplicates under the Constraint of Protein Structure

Gene differentiation following duplication plays a crucial role in evolution, driving the emergence of new functional genes. This process involves changes in key gene traits, such as protein structure, expression patterns, subcellular localization, and enzymatic activity, which together contribute to the development of novel functions. Here, we identified a group of homologous Glycoside Hydrolase Family 50 (GH50) agarases in the deep-sea bacterium Agarivorans ablus strain JK6, providing an ideal model for studying gene differentiation following duplication. Phylogenetic analysis revealed that these enzymes arose through gene duplication and subsequent divergence. Experimental assays demonstrated that, while they retained similar glycoside hydrolase activity, their agarolytic activity diverged significantly. We further explored their structural variations constrained by the proteins 3D structural limitations, the development of specific localization linked to changes in enzymatic activity, and distinct expression patterns induced by different sugars. Notably, structural variations were primarily concentrated in the active site, while the overall backbone remained highly conserved. This study highlights gene differentiation following duplication as a key evolutionary strategy, facilitating the transition from single enzymes to complex functional systems.

evolutionary biology↗