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Liu, g.

Publications and source records attributed to Liu, g..

3 recordsLinked to original sources

Drift and isolation drive genomic erosion and island speciation in a lineage of macaques

Allopatric speciation, especially on large islands and archipelagos, is a significant driver of evolutionary diversification, as geographic isolation fosters the independent evolution of populations1,2. In these isolated populations, lineage sorting and genetic drift dominate, accelerating allele fixation and reducing shared genetic variation3,4. Here, we investigated how sea-level transgression during the Early Holocene triggered rapid speciation in large vertebrates by studying macaques isolated on Dangan Island (DGD), located just 30 km from present-day Hong Kong. Whole-genome sequencing revealed that [~]10,000 years of isolation drove the macaques evolution into a distinct species, as indicated by pronounced genomic divergence (mean Fst > = 0.462 vs. mainland), 1.94 million lineage-specific variants, and complete ancestral differentiation with no evidence of post-isolation gene flow. A severe demographic collapse (effective population size, Ne {approx} 40) led to substantial genomic erosion (65.8% loss of genetic diversity). Paradoxically, this also enhanced resilience through drift-mediated genetic triage. Increased homozygosity exposed and purged lethal recessive alleles in lipid metabolism pathways (68% reduction in genetic load), while simultaneously fixing mildly deleterious variants--such as a splice-site mutation in SKAP2--thereby generating a form of genomic "burden" alongside rapid immune adaptation via 251 fixed missense mutations. These findings demonstrate that island isolation can drive vertebrate speciation within a few thousand years, with genetic drift playing a dominant role in shaping genomic architecture. Accordingly, conservation strategies should prioritize monitoring loss-of-function (LoF) variants in essential pathways and prescreening for deleterious allele combinations between donors and recipients prior to implementing genetic rescue in small, drift-sensitive populations.

genomics↗

Epigenetic regulation of cilia stability and kidney by the chromatin remodeling SWI/SNF complexes

Cilia are important subcellular organelles, whose assembly are regulated by master regulator transcription factors including Foxj1 and Rfx proteins. However, whether and how cilia are regulated at epigenetic level remains unknown. We addressed this question by knocking down or knocking out of chromatin remodeling genes. Notably, depletion of multiple components of the switch/sucrose non-fermentable (SWI/SNF) complexes led to ciliopathy-like phenotypes in zebrafish embryos. Specifically, loss of Actl6a, an essential components of the SWI/SNF complexes, resulted in cilia disassembly and cystic kidney, without affectting cilia motility. Omics analyses revealed that in Actl6a-depleted pronephros or embryos, a set of cilia genes--including master regulators foxj1a and rfx2--were downregulated at transcriptional level, chromatin accessibility level and SWI/SNF binding level. Depletion of foxj1a or rfx2 in zebrafish also caused cilia disassembly and cystic kidney. Furthermore, overexpression of foxj1a or rfx2 mRNA partially rescued the cystic kidney and cilia disassembly phenotypes in actl6a mutants. Taken together, our study reveals that the SWI/SNF complexes maintain cilia stability and kidney homeostasis by directly modulating the expression of foxj1a or rfx2.

developmental biology↗

Comparative genomic analysis reveals reduced pathogenicity of Ralstonia spp. in water

Ralstonia spp., known for their adaptability across various habitats, are known to cause infections. The adaptive metabolic diversity of those inhabiting aquatic ecosystems remains poorly understood. We report four new Ralstonia pickettii genomes enriched in the cyanobacterial culture derived from bloom-forming cyanobacteria, Dolichospermum. A total of 228 complete genomes from the Ralstonia genus were utilized for phylogenetic inference, categorizing them based on isolation environment and host: water, soil, plant, and human groups. Meanwhile, the abundance of carbohydrate-active enzymes and secondary metabolites in water and human groups differed from the plant-host associate habitat. CeoB and two {beta}-lactamases types of OXA were identified in the water habitat, showing similarities to certain strains in the human-host but differences from other habitats. The infectivity within water habitats seems to diminish, as evidenced by the decreased abundance of T3SS virulence proteins. Moreover, a distinctive pyrimidine degradation pathway in water degrades exogenous pyrimidines to supply nitrogen and other compounds for energy metabolism to provide a potential for broader habitat adaptability. Fluorescence in situ hybridization results confirmed that R. pickettii rarely attached to cyanobacterial cells, indicating that they are not parasitic relationships. We postulate that the absence of T3SS and the unique metabolic profile represent adaptations of Ralstonia to an aquatic free-living lifestyle.

microbiology↗