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Zhang, S.-R.

Publications and source records attributed to Zhang, S.-R..

2 recordsLinked to original sources

Two distinct structural variants involving EDN3 cause hyperpigmentation in chicken

Phenotypic diversity and its genetic basis are central questions in biology, with domesticated animals offering valuable insights due to their rapid evolution the last 10,000 years. In chickens, fibromelanosis (FM) is a striking pigmentation phenotype characterized by hyperpigmentation. A previous study identified a complex structural variant causing upregulated expression of the Endothelin 3 (EDN3) gene. However, the detailed structural arrangement and functional consequences of the variant remained unclear. In this study, we conducted a comprehensive genomic survey of 692 FM chickens representing 55 breeds and uncovered two distinct structural variants causing the FM phenotype: FM*A, the previously reported complex rearrangement involving the EDN3 locus1, and FM*B, a tandem duplication of a 16 kb region upstream of EDN3. We demonstrate that both structural variants (SVs) significantly upregulate EDN3 expression, with FM*B associated with even higher expression than FM*A. A luciferase reporter assays showed that the 16 kb region in FM*B contains powerful enhancers and the copy number expansion of this element is a likely explanation for EDN3 upregulation and hyperpigmentation. Furthermore, our analysis of linkage disequilibrium patterns allowed us to resolve the complex arrangement of duplications and inversion on the FM*A haplotype.

genomics↗

The splicing switch of SLK controls tumor progression partially via different associations with occludin

RNA splicing control is a pivotal aspect of gene regulation and is closely associated with cancer development. From a pan-cancer transcriptome investigation in the splicing layer, we discovered a critical cancer-associated alternative splicing (AS) event at exon 13 of SLK which produces two isoforms, SLK-L and SLK-S. The splicing is dramatically shifted towards SLK-L across multiple prevalent cancer types. We demonstrated that SLK-L plays an essential role in cancer development, especially in metastasis both in cells and in mice, whereas splicing toward SLK-S inhibits cancer development. RNA-seq revealed the two SLK isoforms play different roles in pathways related to cell migration. Furthermore, different SLK isoforms demonstrate varying binding affinities to certain cell junction markers, in part indicating the AS of SLK contributes to cancer cell migration. In addition, the splicing factor Rbfox2 was identified to specifically inhibit the inclusion of exon 13 by binding intron 12 of SLK. Collectively, our study innovatively uncovers the biological consequences and underlying mechanisms for one of the most mis-spliced genes in cancer, highlighting its potential significance in cancer diagnosis and treatment.

cancer biology↗