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Li, Y.-l.

Publications and source records attributed to Li, Y.-l..

2 recordsLinked to original sources

Multiple GC-biased repetitive ITS copies in the Hirsutella sinensis genome are not generated by RIP mutagenesis involving transition point mutations

It has been hypothesized that AT-biased genotypes of Ophiocordyceps sinensis are generated through repeat-induced point mutation (RIP) and coexist as permanently nonfunctional internal transcribed spacer (ITS) pseudogenes in the genome of Hirsutella sinensis (GC-biased Genotype #1 of O. sinensis). This study examined the H. sinensis genome, which contains multiple repetitive ITS copies (GC content: 64.7{+/-}0.33%) with multiple insertion/deletion and transversion alleles, which were not generated through RIP mutagenesis that theoretically causes cytosine-to-thymine (C-to-T) and guanine-to-adenine (G-to-A) transitions. The repetitive ITS copies in the H. sinensis genome were found to be genetically and phylogenetically distinct from the AT-biased O. sinensis genotypes (GC content: 51.1{+/-}1.69%), which possess multiple transition alleles. The sequences of Genotypes #2-17, both GC- and AT-biased, are absent from the H. sinensis genome; these genotypes belong to interindividual O. sinensis fungi and differentially occur in different compartments of natural Cordyceps sinensis, with dynamic alterations in abundance occurring in an asynchronous, disproportional manner during C. sinensis maturation. Metatranscriptomic analyses of natural C. sinensis revealed the transcriptional silencing of 5.8S genes in all C. sinensis- colonizing fungi, including H. sinensis. The transcription assay reported by Li et al. [1] provided unsound, controversial evidence indicating that the 5.8S genes of AT-biased genotypes are nonfunctional pseudogenes. In addition to the single ITS locus analysis, repetitive genomic copies were also examined at multiple loci in the H. sinensis genome, and approximately 8.2% of the authentic genes had repetitive copies, including various transitions, transversions, and insertions/deletions. The transcripts for the repetitive copies, regardless of the decreases, increases, or bidirectional changes in the AT content, were identified in the H. sinensis transcriptome. These results are inconsistent with those of RIP mutagenesis, which generates pseudogenic, nonfunctional, repetitive copies. In conclusion, AT-biased genotypes of O. sinensis might have evolved through evolutionary mechanisms from a common ancestor over the long course of evolution, in parallel with GC-biased Genotype #1 H. sinensis.

molecular biology↗

Fine mapping of goat polledness variant in six Chinese native breeds

BackgroundThe genetic mechanism of goat polledness has been studied for decades, but identifying causative variants and functional genes remains challenging. ResultsUsing a genome-wide association study (GWAS), we identified a significant striking locus for polledness in two different goat breeds. To reduce the linkage disequilibrium among variants for localizing causative variants in the finer region, we sequenced 79 goats from six Chinese native breeds (Jining Gray, Matou, Guizhou black, Yunnan black bone, Chaidamu, and Ujumqin) and identified 483.5 kb CNV (150,334,567-150,818,099) translocated into the previously identified 11.7 kb polled intersex syndrome region, which was consistent with previous research using intersex goat populations. Within the 483.5 kb CNV, a ~322 bp horn-specific element, similar to the superfamily of tRNA-derived families of SINEs, located at the first intron of the ERG gene was identified. The results of the GO enrichment analysis showed that the Horn-SINE element-associated genes were involved in both nervous system and head development. Finally, we used RNA sequencing to investigate gene expression profiles in the horn bud and skin tissues of horned and polled goats. We identified 1077 and 1222 differentially expressed genes between the horn bud and skin tissue in polled and horned goats, respectively. We also identified 367 differentially expressed genes in horn buds between polled and horned animals, and found that the two CNV-related genes, ERG and FOXL2, were upregulated in the horn bud of polled goats. Gene functional enrichment analysis demonstrated that the downregulated genes in the horn bud of polled goats were enriched in skeletal system development, whereas the upregulated genes were significantly overexpressed in muscle tissue development. ConclusionsBroadly, this study describes a novel structural variant responsible for polledness/intersex traits and contributes to the discovery of molecular mechanisms underlying the development and regulation of the polledness trait.

genetics↗