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Rao, J.-H.

Publications and source records attributed to Rao, J.-H..

2 recordsLinked to original sources

Novel missense mutation E585K in retinitis pigmentosa leads to compromised RPGR splicing diversity

Mutations in the retinitis pigmentosa GTPase regulator (RPGR) gene, are the major cause of X-linked retinitis pigmentosa (RP). Herein we used whole-exome sequencing to screen possible novel RPGR mutations in RP patients, and identified a novel missense mutation E585K in a patient with early onset but slow disease progression, and a frameshift deletion E998Gfs*78 in a patient with RP sine pigmento and high myopia. Intriguingly, bioinformatic analysis indicated that E585K probably affected RPGR RNA splicing instead of the protein sequence directly. Mini-gene assays in 293T cells revealed that splicing events of the E585K mutant were found to be also exist in wildtype, but with a shifted pattern. In the E585K mini-gene usage of an upstream alternative 5' splice site (5' ss) of exon 14 was enhanced, and other splicing events were suppressed, including the canonical 5' ss of exon 14, skipping of exon 14/15 and retention of intron 14. As a result, RPGR splicing products of the E585K mini-gene were predominated by transcripts containing a 4-bp deletion, with a small fraction of in-frame transcripts containing a retended intron 14, which might explain the slow disease progression in the patient carrying the mutation. RNA-Seq analysis further confirmed existence of these splicing events in endogenous RPGR RNA in human retina, pointing to compromised splicing diversity in the E585K mutant. Our findings thus added to the understanding of genotype-phenotype correlation in RP, and suggested that compromised RPGR splicing diversity might play a role in molecular mechanism of the disease.

genetics

Characterization of dynamic age-dependent changes and driver microbes in primate gut microbiota during host's development and healthy aging via captive crab-eating macaque model

Recent population studies have significantly advanced our understanding of how age shapes the gut microbiota. However, the actual role of age could be inevitably confounded due to varying environmental factors in human populations. A well-controlled environment is thus necessary to reduce undesirable cofounding effects, and recapitulate age-dependent taxonomic and functional changes in the healthy primate gut microbiota. Herein we performed 16S rRNA gene sequencing, characterized age-associated gut microbial profiles from infant to elderly crab-eating macaques reared in captivity, and systemically revealed lifelong dynamic changes of primate gut microbiota in the model. While the most significantly age-associated gut microbial taxa were mainly found in commensals such as Faecalibacterium, a set of suspicious pathogens such as Helicobacter were exclusively enriched in infants, pointing to their potential role in host development. Importantly, topology analysis indicated that the connectivity of gut microbial network was even more age-dependent than taxonomic diversity, with its tremendous decline probably linked to the hosts healthy aging. NetShift analysis identified Prevotella 9, Rikenellaceae RC9 gut group and Megasphaera as key drivers during gut microbiota maturation and development, actively involved in age-dependent changes in phenotypes and functions of the gut microbial community. The current study demonstrates lifelong age-dependent changes in healthy primate gut microbiota. Our findings indicate potential importance of appropriate exposure to suspicious pathogens in infant development. The age-associated baseline profiles and driver microbes of primate gut microbiota in the current study could provide new insight into its role in the hosts development and healthy aging.

microbiology