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Biomedical subjects

Miao Sun

Publications and source records attributed to Miao Sun.

2 recordsLinked to original sources

A novel variant combination in COASY associates with severe prenatal onset PCH12: expanding the clinical and genetic spectrum.

Pontocerebellar hypoplasia type 12 (PCH12) is an ultra-rare, perinatal lethal, neurodegenerative disorder with microcephaly and arthrogryposis. Previous reports have associated PCH12 with complete loss-of-function variants in COASY identified in 14 fetuses and newborns from eight unrelated families. In contrast, COASY partial loss-of-function variants have been linked to COASY protein-associated neurodegeneration (CoPAN), a subtype of neurodegeneration with brain iron accumulation (NBIA). Emerging evidence suggests that COASY-related disorders may represent a phenotypic continuum between PCH12 and CoPAN. Using exome sequencing, we identified a previously reported missense variant (c.641C>T, p.Ala214Val) as well as a previously unreported rare nonsense variant (c.1015C>T, p.Arg339*) in a compound heterozygous state in the COASY gene in a patient presenting with clinical features consistent with PCH12. The p.Ala214Val variant has only been described in combination with another missense variant (p.Arg499Cys) in two siblings with CoPAN. The presence of p.Ala214Val in trans with the truncating p.Arg339* variant in this patient is associated with a severe perinatal lethal phenotype resembling PCH12. This case broadens the reported genetic and phenotypic spectrum of COASY-associated disorders and highlights the importance of continued genotype-phenotype correlation investigation.

Humans

Genome evolution of the ancient hexaploid Platanus × acerifolia (London planetree).

Whole-genome duplication (WGD; i.e., polyploidy) and chromosomal rearrangement (i.e., genome shuffling) significantly influence genome structure and organization. Many polyploids show extensive genome shuffling relative to their pre-WGD ancestors. No reference genome is currently available for Platanaceae (Proteales), one of the sister groups to the core eudicots. Moreover, Platanus × acerifolia (London planetree; Platanaceae) is a widely used street tree. Given the pivotal phylogenetic position of Platanus and its 2-y flowering transition, understanding its flowering-time regulatory mechanism has significant evolutionary implications; however, the impact of Platanus genome evolution on flowering-time genes remains unknown. Here, we assembled a high-quality, chromosome-level reference genome for P. × acerifolia using a phylogeny-based subgenome phasing method. Comparative genomic analyses revealed that P. × acerifolia (2n = 42) is an ancient hexaploid with three subgenomes resulting from two sequential WGD events; Platanus does not seem to share any WGD with other Proteales or with core eudicots. Each P. × acerifolia subgenome is highly similar in structure and content to the reconstructed pre-WGD ancestral eudicot genome without chromosomal rearrangements. The P. × acerifolia genome exhibits karyotypic stasis and gene sub-/neo-functionalization and lacks subgenome dominance. The copy number of flowering-time genes in P. × acerifolia has undergone an expansion compared to other noncore eudicots, mainly via the WGD events. Sub-/neo-functionalization of duplicated genes provided the genetic basis underlying the unique flowering-time regulation in P. × acerifolia. The P. × acerifolia reference genome will greatly expand understanding of the evolution of genome organization, genetic diversity, and flowering-time regulation in angiosperms.

Polyploidy