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focal segmental glomerulosclerosis, FSGS1, Cistrons, Genetic Material, glomerulonephritis"],"study_inc_exc":["<p>Inclusion criteria cases <ol> <li>At least two affected individuals in the family</li> <li>FSGS on renal biopsy without evidence of other systemic disease known to cause FSGS</li> <li>Family members with proteinuria and or chronic kidney disease</li> </ol> </p>"],"full_dataset_link":["https://www.ncbi.nlm.nih.gov/projects/gap/cgi-bin/study.cgi?study_id=phs000777"],"study_history":[null],"attribution":["Principal Investigator - Michelle Winn, MD - Department of Medicine, Division of Nephrology, Duke University, Durham, NC, USA","Funding Source - 5R01DK094987 - National Institute of Diabetes and Digestive and Kidney Diseases, National Institutes of Health, Bethesda, MD, USA"],"repository":["dbGaP"],"description_synonyms":["Networks, recombination, target gene, Materials, Kinship, determination, HSN1E, WIT-2, acetylglucosaminyltransferase-like protein, Period Prevalence, Wound, Human Cloning, Physical, positive regulation by symbiont of host non-apoptotic programmed cell death, Mbp1, Segmental, protein, sci, Tumor, injury, limitations, trauma, focal glomerulosclerosis, Renal Disease, Mutations, EWS-WT1, glomerulosclerosis, Recombinations, Readability, DSmurf, Point Prevalence, diseases, Point Prevalences, pathogenesis, HOW, How, Life Cycle, diseases and disorders, Chronic Kidney Failure, Whole Transcriptome, Transcriptome Sequencing, study limitations, protein aggregate, myd, Research-Related, l(3)j5D5, Genetic Recombination, Family Life Cycle, Glomerulonephritis, Clonings, imprinted and ancient gene protein, 24B, average, treatment, human disease, Kinship Network, stimulation by symbiont of host programmed cell death, like-acetylglucosaminyltransferase, Genomes, Focal, Prevalences, Complete Exome Sequencing, Whole Transcriptome Sequencing, stru, Mbp-1, l(3)S053606, FSGS, CG10293, Genetic Recombinations, genetic, l(3)j5B5, geographical area, high frequency, Cloning, chronic renal failure syndrome, Smurf, disease management, Therapies, Homo sapiens disease, Malignancies, associated, Family Life Cycles, CXXC finger protein 9, glomerulonephritis, CG4943, D-smurf, Tumors, End-stage renal disease, Therapy, close to, Prevalence, 0904/17, focal glomerular sclerosis, anatomical protrusion, wide/broad, Data Set, FGS (focal glomerular sclerosis), gyltl1b-b, Injury and Wounds, Segmental Glomerular, frequency, Exome, familial, Physical Traumas, focal segmental, Lack, Glomerulonephritides, Organism, Embryo Clonings, Benign, Segmental Hyalinosis, SZ1, end-stage renal disease, MDDGA6, mKIAA0609, Segmental Glomerulosclerosis, Diseases, modulation by symbiont of host system process, Genetic Materials, Physical Trauma, Filiation, KIAA0609, Genetic Material, acetylglucosaminyltransferase-like 1A, Segmental Glomerular Hyalinosis, fg, Recombination, ADCADN, Complete Transcriptome, gyltl1b, positional polypeptide feature, UNQ203/PRO229, DmelCG4943, DNA (cytosine-5-)-methyltransferase 1, Human Clonings, mdc1d, Exomes, nephroblastoma, Benign Neoplasms, INSDC_feature:gene, whole genome, FSGS1, LARGE_HUMAN, surveillance, Treatments, morbidity, Focal Sclerosing, Malignant Neoplasms, Life Cycles, disease, MDC1D, wide, enr, Material, spine, Glomerular Hyalinosis, activation by symbiont of host programmed cell death, Whole Exome Sequencing, Research-Related Injuries, Cistron, anon-EST:Liang-2.39, inherited genetic, Research-Related Injury, WT1, wt1, Focal Glomerulosclerosis, End-Stage Kidney, E430016J11Rik, other neoplasm, ACTININ-4, Transcriptome Sequencings, Sclerosing Glomerulonephritides, Research Related Injuries, other disease, chronic renal failure, Embryo Cloning, Family Member, End-Stage Renal Failure, region or site annotation, Complete Exome, AWT1, P62, regulation by symbiont of host system process, dSmurf1, Neoplasms, Benign Neoplasm, Gene, Period Prevalences, Network, GUD, broad, protein-containing complex, Ximpact, Malignant, Injuries and Wounds, LARGE1, WAGR, End-Stage Kidney Disease, froggy, Gyltl1a, Human, protrusion, Focal Sclerosing Glomerulonephritides, Aim, AIM, Wounds, induction by organism of non-apoptotic programmed cell death in other organism during symbiotic interaction, End stage renal disease, Hyalinosis, Gene Products, disease or disorder, End Stage Kidney Disease, Chronic Renal Failure, ESRD, study, DNMT1, positional, Organism Clonings, WES, xwt1, XWT1a, Injury, Complete, XWT1b, Exome Sequencings, Genetic, l(3)s2612, Malignancy, DNMT1_HUMAN, Research, xWT1, occurrence, MDDGB6, prevalence, Treatments., LARGE, causes, Sequencing, non-neoplastic, Neoplasias, BPFD#36, API6, Whole Exome, d-smurf, Traumas, Organism Cloning, Whole, causality, DmelCG10293, Chronic, disorder, genetic recombination, Kinship Networks, wt-1, End-stage renal failure, FSGS - focal segmental glomerulosclerosis, constitutitional genetic, Family, End stage renal failure, incidence, Cancer, DNA MTase HsaI, DNA (cytosine-5)-methyltransferase 1, Disease, activation by organism of non-apoptotic programmed cell death in other organism, Complete Exome Sequencings, Malignant Neoplasm, Family Research, hemolysin activity, protein complex, clone 2.39, Renal Failure, Proteins, disorders, DNMT, medical condition, qkr, MCMT, Dsmurf, Cistrons, l(3)S090417, impact-a, Family Members, near to, dSmurf, Exome Sequencing, focal sclerosing, Focal Segmental Glomerulosclerosis, native protein, Period, traumatic injury, Wounds and Injury, focal segmental glomerulosclerosis, Trauma, Smurf ubiquitin ligase, KH93F, DNA methyltransferase HsaI, chemical analysis, Protein, Neoplasm, sequence, condition, imprinted and ancient gene protein homolog, IMPACT, FGS, focal, rare (European definition), outbreaks, End Stage, who, Glomerulosclerosis, XeWT1, CXXC9, Embryo, Complete Transcriptome Sequencing, frequent, Kidney Disease, CT-2, wound, WT33, Cancers, Who/How, Understanding, CXXC-type zinc finger protein 9, primary structure of sequence macromolecule, endemics, Injuries, Protein Gene Products, End-Stage Renal, Gene Proteins, like-glycosyltransferase, Therapeutic, Sclerosing Glomerulonephritis, Families, approaches, Point, vicinity of, qkr[93F], Treatment, epidemics, End-Stage Renal Disease, assay, NPHS4, End-Stage, End Stage Renal Disease, hereditary, Relatives, Focal Sclerosing Glomerulonephritis, RWDD5, Neoplasia, CLEC2C, hypothesis, glycosyltransferase-like protein LARGE1, m.HsaI"],"additional_accession":[]},"is_claimable":false,"name":"NIDDK Gene discovery in FSGS","description":"<p>Focal segmental glomerulosclerosis (FSGS) is a frequent cause of end-stage renal disease. The pathogenesis of FSGS has not been precisely defined and there are no consistently effective treatments. Recent studies identifying causal genes in rare, inherited FSGS, including our own study, have associated mutations in at least six genes with familial FSGS, and each discovery has clarified molecular mechanisms of glomerular injury. To build on this productive line of inquiry, we have ascertained and carefully characterized 118 families with familial FSGS. We have screened the remainder of our families for mutations in genes known to cause FSGS and identified the causal mutations in an additional 6 kindreds; the genetic basis of disease in the remaining 111 families is unknown. The objective of this proposal is to use this valuable and unique family resource to systematically identify causal genes for familial FSGS. Limitations of current conventional linkage and positional cloning approaches include their requirement for large, multiplex families. In addition, narrowing candidate areas in traditional linkage analysis can be difficult due to large regions that lack recombination events and hence these regions have required cumbersome and lengthy screening for causative mutations. Powerful new genetic tools can facilitate this screening process and improve variant discovery in smaller families. In particular, efficient whole-exome sequencing, the targeted capture of protein-coding gene sequences, should be particularly useful in our studies since most Mendelian disorders are caused by mutations affecting exomes of the target gene. Thus, by combining genome-wide linkage analysis (GWLS) and whole-exome sequencing, we can maximize impact of our family data and accelerate identification of novel mutations in FSGS. In preliminary studies, we have used this combination to identify a novel variant in the WT1 (Wilms&#39; Tumor-1) gene in one FSGS family, and we have evidence suggesting it is the causal mutation. This success provides proof-of-concept and provides a roadmap of how genes will be identified and evaluated in the proposed studies. Our hypothesis is that causes of inherited FSGS in our cohort of families will be sequence variants in the coding region of genes not previously associated with familial FSGS. We aim to: 1) Use GWLS and whole-exome sequencing to identify genetic variants associated with familial FSGS. 2) Characterize functional consequences of candidate causative mutations and 3) Determine the prevalence in the Duke FSGS dataset of these new causative mutations identified in Aim 2. Any genes found to have causative mutations will be sequenced in the remaining families and take full advantage of our family resource. By combining genome-wide linkage analysis (GWLS), whole-exome sequencing, and characterization of variants&#39; functional consequences, we will significantly improve understanding of normal glomerular biology and of the pathogenesis of FSGS and related glomerular diseases. Moreover, our discoveries are likely to reveal new opportunities to improve therapy for a disease that currently has few effective treatments.</p>","dates":{"last_modification":"2014-07-28","creation":"2014-07-11"},"accession":"phs000777","cross_references":{"MESH":["Kidney Failure, Chronic"]}}