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Consugar, Mark Bryant

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Consugar

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Mark Bryant

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Consugar, Mark Bryant

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Now showing 1 - 2 of 2
  • Publication

    NMNAT1 Mutations Cause Leber Congenital Amaurosis

    (Nature Publishing Group, 2012) Falk, Marni J; Nakamaru-Ogiso, Eiko; Kannabiran, Chitra; Chakarova, Christina; Audo, Isabelle; Mackay, Donna S; Zeitz, Christina; Borman, Arundhati Dev; Shukla, Rachna; Palavalli, Lakshmi; Mohand-Said, Saddek; Waseem, Naushin H; Jalali, Subhadra; Perin, Juan C; Ostrovsky, Julian; Xiao, Rui; Bhattacharya, Shomi S; Webster, Andrew R; Sahel, José-Alain; Moore, Anthony T; Gai, Xiaowu; Zhang, Qi; Kelly, Zoe; Staniszewska, Magdalena; Place, Emily; Consugar, Mark Bryant; Berson, Eliot L.; Liu, Qin; Pierce, Eric

    Leber congenital amaurosis (LCA) is an infantile-onset form of inherited retinal degeneration characterized by severe vision loss. Two-thirds of LCA cases are caused by mutations in 17 known disease genes (RetNet Retinal Information Network). Using exome sequencing, we identified a homozygous missense mutation (c.25G>A, p.Val9Met) in NMNAT1 as likely disease-causing in two siblings of a consanguineous Pakistani kindred affected by LCA. This mutation segregated with disease in their kindred, including in three other children with LCA. NMNAT1 resides in the previously identified LCA9 locus and encodes the nuclear isoform of nicotinamide mononucleotide adenylyltransferase, a rate-limiting enzyme in nicotinamide adenine dinucleotide ((NAD^+)) biosynthesis. Functional studies showed the p.Val9Met mutation decreased NMNAT1 enzyme activity. Sequencing NMNAT1 in 284 unrelated LCA families identified 14 rare mutations in 13 additional affected individuals. These results are the first to link an NMNAT isoform to disease and indicate that NMNAT1 mutations cause LCA.

  • Publication

    Transcriptome analyses of the human retina identify unprecedented transcript diversity and 3.5 Mb of novel transcribed sequence via significant alternative splicing and novel genes

    (BioMed Central, 2013) Farkas, Michael; Grant, Gregory R; White, Joseph; Sousa, Maria E; Consugar, Mark Bryant; Pierce, Eric

    Background: The retina is a complex tissue comprised of multiple cell types that is affected by a diverse set of diseases that are important causes of vision loss. Characterizing the transcripts, both annotated and novel, that are expressed in a given tissue has become vital for understanding the mechanisms underlying the pathology of disease. Results: We sequenced RNA prepared from three normal human retinas and characterized the retinal transcriptome at an unprecedented level due to the increased depth of sampling provided by the RNA-seq approach. We used a non-redundant reference transcriptome from all of the empirically-determined human reference tracks to identify annotated and novel sequences expressed in the retina. We detected 79,915 novel alternative splicing events, including 29,887 novel exons, 21,757 3′ and 5′ alternate splice sites, and 28,271 exon skipping events. We also identified 116 potential novel genes. These data represent a significant addition to the annotated human transcriptome. For example, the novel exons detected increase the number of identified exons by 3%. Using a high-throughput RNA capture approach to validate 14,696 of these novel transcriptome features we found that 99% of the putative novel events can be reproducibly detected. Further, 15-36% of the novel splicing events maintain an open reading frame, suggesting they produce novel protein products. Conclusions: To our knowledge, this is the first application of RNA capture to perform large-scale validation of novel transcriptome features. In total, these analyses provide extensive detail about a previously uncharacterized level of transcript diversity in the human retina.