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Dive into the research topics where Mingchu Xu is active.

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Featured researches published by Mingchu Xu.


Investigative Ophthalmology & Visual Science | 2015

Next-generation sequencing and novel variant determination in a cohort of 92 familial exudative vitreoretinopathy patients.

Jason S. Salvo; Vera Lyubasyuk; Mingchu Xu; Hui Wang; Feng Wang; Duy Nguyen; Keqing Wang; Hongrong Luo; Cindy Wen; Catherine Shi; Danni Lin; Kang Zhang; Rui Chen

PURPOSE Familial exudative vitreoretinopathy (FEVR) is a developmental disease that can cause visual impairment and retinal detachment at a young age. Four genes involved in the Wnt signaling pathway were previously linked to this disease: NDP, FDZ4, LRP5, and TSPAN12. Identification of novel disease-causing alleles allows for a deeper understanding of the disease, better molecular diagnosis, and improved treatment. METHODS Sequencing libraries from 92 FEVR patients were generated using a custom capture panel to enrich for 163 known retinal disease-causing genes in humans. Samples were processed using next generation sequencing (NGS) techniques followed by data analysis to identify and classify single nucleotide variants and small insertions and deletions. Sanger validation and segregation testing were used to verify suspected variants. RESULTS Of the cohort of 92, 45 patients were potentially solved (48.9%). Solved cases resulted from the determination of 49 unique mutations, 41 of which are novel. Of the novel variants discovered, 13 were highly likely to cause FEVR due to the nature of these variants (frameshifting indels, splicing mutations, and nonsense variants types). To our knowledge, this is the largest study of a FEVR cohort using NGS. CONCLUSIONS We were able to determine probable disease-causing variants in a large number of FEVR patients, the majority of which were novel. Knowledge of these variants will help to further characterize and diagnose FEVR.


Human Genetics | 2015

Mutations in human IFT140 cause non‑syndromic retinal degeneration

Mingchu Xu; Lizhu Yang; Feng Wang; Huajin Li; Xia Wang; Weichen Wang; Zhongqi Ge; Keqing Wang; Li Zhao; Hui Li; Yumei Li; Ruifang Sui; Rui Chen

Leber congenital amaurosis (LCA) and retinitis pigmentosa (RP) are two genetically heterogeneous retinal degenerative disorders. Despite the identification of a number of genes involved in LCA and RP, the genetic etiology remains unknown in many patients. In this study, we aimed to identify novel disease-causing genes of LCA and RP. Retinal capture sequencing was initially performed to screen mutations in known disease-causing genes in different cohorts of LCA and RP patients. For patients with negative results, we performed whole exome sequencing and applied a series of variant filtering strategies. Sanger sequencing was done to validate candidate causative IFT140 variants. Exome sequencing data analysis led to the identification of IFT140 variants in multiple unrelated non-syndromic LCA and RP cases. All the variants are extremely rare and predicted to be damaging. All the variants passed Sanger validation and segregation tests provided that the family members’ DNA was available. The results expand the phenotype spectrum of IFT140 mutations to non-syndromic retinal degeneration, thus extending our understanding of intraflagellar transport and primary cilia biology in the retina. This work also improves the molecular diagnosis of retinal degenerative disease.


American Journal of Human Genetics | 2016

Mutations in REEP6 Cause Autosomal-Recessive Retinitis Pigmentosa

Gavin Arno; Smriti Agrawal; Aiden Eblimit; James Bellingham; Mingchu Xu; F Wang; Christina Chakarova; David A. Parfitt; Amelia Lane; Thomas Burgoyne; Sarah Hull; Keren Carss; Alessia Fiorentino; Mj Hayes; Peter M.G. Munro; R Nicols; Nikolas Pontikos; Graham E. Holder; Ukirdc; C Asomugha; Fl Raymond; Anthony T. Moore; Plagnol; Michel Michaelides; Alison J. Hardcastle; Yixin Li; C Cukras; Andrew R. Webster; Michael E. Cheetham; Rui Chen

Retinitis pigmentosa (RP) is the most frequent form of inherited retinal dystrophy. RP is genetically heterogeneous and the genes identified to date encode proteins involved in a wide range of functional pathways, including photoreceptor development, phototransduction, the retinoid cycle, cilia, and outer segment development. Here we report the identification of biallelic mutations in Receptor Expression Enhancer Protein 6 (REEP6) in seven individuals with autosomal-recessive RP from five unrelated families. REEP6 is a member of the REEP/Yop1 family of proteins that influence the structure of the endoplasmic reticulum but is relatively unstudied. The six variants identified include three frameshift variants, two missense variants, and a genomic rearrangement that disrupts exon 1. Human 3D organoid optic cups were used to investigate REEP6 expression and confirmed the expression of a retina-specific isoform REEP6.1, which is specifically affected by one of the frameshift mutations. Expression of the two missense variants (c.383C>T [p.Pro128Leu] and c.404T>C [p.Leu135Pro]) and the REEP6.1 frameshift mutant in cultured cells suggest that these changes destabilize the protein. Furthermore, CRISPR-Cas9-mediated gene editing was used to produce Reep6 knock-in mice with the p.Leu135Pro RP-associated variant identified in one RP-affected individual. The homozygous knock-in mice mimic the clinical phenotypes of RP, including progressive photoreceptor degeneration and dysfunction of the rod photoreceptors. Therefore, our study implicates REEP6 in retinal homeostasis and highlights a pathway previously uncharacterized in retinal dystrophy.


Investigative Ophthalmology & Visual Science | 2015

ATF6 is mutated in early onset photoreceptor degeneration with macular involvement

Mingchu Xu; Violet Gelowani; Aiden Eblimit; Feng Wang; Marielle P. Young; Briana L. Sawyer; Li Zhao; Glen Jenkins; Donnell J. Creel; Keqing Wang; Zhongqi Ge; Hui Wang; Yumei Li; M. Elizabeth Hartnett; Rui Chen

PURPOSE Photoreceptor degeneration (PRD) is a genetically heterogeneous retinal disorder. Although a number of genes involved in PRD have been identified, their genetic basis remains unknown in a significant number of patients. In this study, we aimed to identify novel disease-causing genes of PRD. METHODS Comprehensive ocular examinations were performed in a 2-year-old patient diagnosed with early onset PRD. Retinal capture sequencing was performed to screen causative mutations in known retinal disease-causing loci. Whole-exome sequencing (WES) and a series of variant-filtering strategies were applied for identifying novel disease-causing genes. Retina ATF6 expression was confirmed by immunohistochemistry. RT-PCR was performed to identify ATF6 mRNA in the patient. RESULTS The patient showed typical PRD features, with macular involvement and ellipsoid zone irregularities. Results of retinal capture sequencing were negative. WES data led to identification of biallelic loss-of-function mutations in the ATF6 gene. The first variant generates a premature stop codon (NCBI accession no. NM_007348: c.1126C>T, p.R376*) and the second variant affects a splicing donor site (NM_007348: c.1533+1G>C). Sanger sequencing confirmed the 2 alleles are from 1 parent each. Both of the variants are extremely rare in the population. The splicing variant causes either intron inclusion or exon skipping in the patient, thus severely disrupting ATF6 functional domains. ATF6 is expressed in three neuronal cell layers of mouse retina. CONCLUSIONS Our results support ATF6 as a novel disease-causing gene for PRD and suggest that disrupted protein quality control mechanisms may be a novel pathological mechanism underlying human retinal degeneration.


Human Mutation | 2016

ADIPOR1 Is Mutated in Syndromic Retinitis Pigmentosa

Mingchu Xu; Aiden Eblimit; Jing Wang; Jianli Li; Feng Wang; Li Zhao; Xia Wang; Ningna Xiao; Yumei Li; Lee-Jun C. Wong; Richard Alan Lewis; Rui Chen

Retinitis pigmentosa (RP) is a genetically heterogeneous retinal disorder. Despite the numerous genes associated with RP already identified, the genetic basis remains unknown in a substantial number of patients and families. In this study, we performed whole‐exome sequencing to investigate the molecular basis of a syndromic RP case that cannot be solved by mutations in known disease‐causing genes. After applying a series of variant filtering strategies, we identified an apparently homozygous frameshift mutation, c.31delC (p.Q11Rfs*24) in the ADIPOR1 gene. The reported phenotypes of Adipor1‐null mice contain retinal dystrophy, obesity, and behavioral abnormalities, which highly mimic those in the syndromic RP patient. We further confirmed ADIPOR1 retina expression by immunohistochemistry. Our results established ADIPOR1 as a novel disease‐causing gene for syndromic RP and highlight the importance of fatty acid transport in the retina.


Investigative Ophthalmology & Visual Science | 2014

A missense mutation in HK1 leads to autosomal dominant retinitis pigmentosa.

Feng Wang; Yandong Wang; Bin Zhang; Li Zhao; Vera Lyubasyuk; Keqing Wang; Mingchu Xu; Yumei Li; Frances Wu; Cindy Wen; Paul S. Bernstein; Danni Lin; Susanna Zhu; Hui Wang; Kang Zhang; Rui Chen

PURPOSE Retinitis pigmentosa (RP) is a genetically heterogeneous disease with over 60 causative genes known to date. Nevertheless, approximately 40% of RP cases remain genetically unsolved, suggesting that many novel disease-causing genes are yet to be identified. In this study, we aimed to identify the causative mutation for a large autosomal dominant RP (adRP) family with negative results from known retinal disease gene screening. METHODS Linkage analysis followed by whole-exome sequencing was performed. Stringent variant filtering and prioritization was carried out to identify the causative mutation. RESULTS Linkage analysis identified a minimal disease region of 8 Mb on chromosome 10 with a peak parametric logarithm (base 10) of odds (LOD) score of 3.500. Further whole-exome sequencing identified a heterozygous missense mutation (NM_000188.2:c.2539G>A, p.E847K) in hexokinase 1 (HK1) that segregated with the disease phenotype in the family. Biochemical assays showed that the E847K mutation does not affect hexokinase enzymatic activity or the protein stability, suggesting that the mutation may impact other uncharacterized function or result in a gain of function of HK1. CONCLUSIONS Here, we identified HK1 as a novel causative gene for adRP. This is the first report that associates the glucose metabolic pathway with human retinal degenerative disease, suggesting a potential new disease mechanism.


Human Molecular Genetics | 2016

Mutations in POMGNT1 cause non-syndromic retinitis pigmentosa

Mingchu Xu; Takeyuki Yamada; Zixi Sun; Aiden Eblimit; Irma Lopez; Feng Wang; Hiroshi Manya; Shan Xu; Li Zhao; Yumei Li; Adva Kimchi; Dror Sharon; Ruifang Sui; Tamao Endo; Robert K. Koenekoop; Rui Chen

A growing number of human diseases have been linked to defects in protein glycosylation that affects a wide range of organs. Among them, O-mannosylation is an unusual type of protein glycosylation that is largely restricted to the muscular and nerve system. Consistently, mutations in genes involved in the O-mannosylation pathway result in infantile-onset, severe developmental defects involving skeleton muscle, brain and eye, such as the muscle-eye-brain disease (MIM no. 253280). However, the functional importance of O-mannosylation in these tissues at later stages remains largely unknown. In our study, we have identified recessive mutations in POMGNT1, which encodes an essential component in O-mannosylation pathway, in three unrelated families with autosomal recessive retinitis pigmentosa (RP), but without extraocular involvement. Enzymatic assay of these mutant alleles demonstrate that they greatly reduce the POMGNT1 enzymatic activity and are likely to be hypomorphic. Immunohistochemistry shows that POMGNT1 is specifically expressed in photoreceptor basal body. Taken together, our work identifies a novel disease-causing gene for RP and indicates that proper protein O-mannosylation is not only essential for early organ development, but also important for maintaining survival and function of the highly specialized retinal cells at later stages.


American Journal of Human Genetics | 2016

Isolated and Syndromic Retinal Dystrophy Caused by Biallelic Mutations in RCBTB1, a Gene Implicated in Ubiquitination

Frauke Coppieters; Giulia Ascari; Katharina Dannhausen; Konstantinos Nikopoulos; Frank Peelman; Marcus Karlstetter; Mingchu Xu; Cécile Brachet; Isabelle Meunier; Miltiadis K. Tsilimbaris; Chrysanthi Tsika; Styliani V. Blazaki; Sarah Vergult; Pietro Farinelli; Thalia Van Laethem; Miriam Bauwens; Marieke De Bruyne; Rui Chen; Thomas Langmann; Ruifang Sui; Françoise Meire; Carlo Rivolta; Christian P. Hamel; Bart P. Leroy; Elfride De Baere

Inherited retinal dystrophies (iRDs) are a group of genetically and clinically heterogeneous conditions resulting from mutations in over 250 genes. Here, homozygosity mapping and whole-exome sequencing (WES) in a consanguineous family revealed a homozygous missense mutation, c.973C>T (p.His325Tyr), in RCBTB1. In affected individuals, it was found to segregate with retinitis pigmentosa (RP), goiter, primary ovarian insufficiency, and mild intellectual disability. Subsequent analysis of WES data in different cohorts uncovered four additional homozygous missense mutations in five unrelated families in whom iRD segregates with or without syndromic features. Ocular phenotypes ranged from typical RP starting in the second decade to chorioretinal dystrophy with a later age of onset. The five missense mutations affect highly conserved residues either in the sixth repeat of the RCC1 domain or in the BTB1 domain. A founder haplotype was identified for mutation c.919G>A (p.Val307Met), occurring in two families of Mediterranean origin. We showed ubiquitous mRNA expression of RCBTB1 and demonstrated predominant RCBTB1 localization in human inner retina. RCBTB1 was very recently shown to be involved in ubiquitination, more specifically as a CUL3 substrate adaptor. Therefore, the effect on different components of the CUL3 and NFE2L2 (NRF2) pathway was assessed in affected individuals’ lymphocytes, revealing decreased mRNA expression of NFE2L2 and several NFE2L2 target genes. In conclusion, our study puts forward mutations in RCBTB1 as a cause of autosomal-recessive non-syndromic and syndromic iRD. Finally, our data support a role for impaired ubiquitination in the pathogenetic mechanism of RCBTB1 mutations.


Investigative Ophthalmology & Visual Science | 2015

A homozygous missense mutation in NEUROD1 is associated with nonsyndromic autosomal recessive retinitis pigmentosa.

Feng Wang; Huajin Li; Mingchu Xu; Hui Li; Li Zhao; Lizhu Yang; Jacques Zaneveld; Keqing Wang; Yumei Li; Ruifang Sui; Rui Chen

PURPOSE Mutations in the same gene can lead to different clinical phenotypes. In this study, we aim to identify novel genotype-phenotype correlations and novel disease genes by analyzing an unsolved autosomal recessive retinitis pigmentosa (ARRP) Han Chinese family. METHODS Whole exome sequencing was performed for one proband from the consanguineous ARRP family. Stringent variants filtering and prioritizations were applied to identify the causative mutation. RESULTS A homozygous missense variant, c.724G>A; p.V242I, in NEUROD1 was identified as the most likely cause of disease. This allele perfectly segregates in the family and affects an amino acid, which is highly conserved among mammals. A previous study showed that a homozygous null allele in NEUROD1 causes severe syndromic disease with neonatal diabetes, systematic neurological abnormalities, and early-onset retinal dystrophy. Consistent with these results, our patients who are homozygous for a less severe missense allele presented only late-onset retinal degeneration without any syndromic symptoms. CONCLUSIONS We identified a potential novel genotype-phenotype correlation between NEUROD1 and nonsyndromic ARRP. Our study supports the idea that NEUROD1 is important for maintenance of the retina function and partial loss-of-function mutation in NEUROD1 is likely a rare cause of nonsyndromic ARRP.


Scientific Reports | 2016

Next-generation sequencing-based molecular diagnosis of 12 inherited retinal disease probands of Uyghur ethnicity

Abulikemu Tajiguli; Mingchu Xu; Qing Fu; Rouzimaimaiti Yiming; Keqing Wang; Yumei Li; Aiden Eblimit; Ruifang Sui; Rui Chen; Haji Akber Aisa

Inherited retinal disease (IRD) is a category of genetic disorders affecting retina. Understanding the molecular basis of IRD is vital for clinical and genetic classification of patients. Uyghur people is an isolated ethnic group mainly residing in northwestern China with genetic admixture from Europeans and East Asians. The genetic etiology of IRD in this specific population still remains unknown. Here, by next-generation sequencing (NGS), we screened mutations in over 200 known retinal disease genes in a cohort of 12 unrelated Uyghur IRD probands. Out of the 12 probands, six are solved with high confidence, two with low confidence, while the remaining four are unsolved. We identified known disease-causing alleles in this cohort that suggest ancient Uyghur migration and also discovered eight novel disease-associated variants. Our results showed NGS-based mutation screening as a reliable approach for molecular diagnosis. In addition, this approach can also be applied to reveal the genetic history of a specific ethnic group.

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Rui Chen

Baylor College of Medicine

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Yumei Li

Baylor College of Medicine

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Ruifang Sui

Peking Union Medical College Hospital

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Keqing Wang

Baylor College of Medicine

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Aiden Eblimit

Baylor College of Medicine

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Feng Wang

Baylor College of Medicine

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Li Zhao

Baylor College of Medicine

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Hui Wang

Baylor College of Medicine

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Lizhu Yang

Peking Union Medical College Hospital

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Zixi Sun

Peking Union Medical College Hospital

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