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Genetic drivers of kidney defects in the digeorge syndrome

  • E. Lopez-Rivera
  • , Y. P. Liu
  • , M. Verbitsky
  • , B. R. Anderson
  • , V. P. Capone
  • , E.A. Otto
  • , Z. Yan
  • , A. Mitrotti
  • , J. Martino
  • , N. J. Steers
  • , D. A. Fasel
  • , K. Vukojevic
  • , R. Deng
  • , S. E. Racedo
  • , Q. Liu
  • , M. Werth
  • , R. Westland
  • , A. Vivante
  • , G. S. Makar
  • , M. Bodria
  • M. G. Sampson, C. E. Gillies, V. Vega-Warner, M. Maiorana, D. S. Petrey, B. Honig, V. J. Lozanovski, R. Salomon, L. Heidet, W. Carpentier, D. Gaillard, A. Carrea, L. Gesualdo, D. Cusi, C. Izzi, F. Scolari, J. A.E. Van Wijk, A. Arapovic, M. Saraga-Babic, M. Saraga, N. Kunac, A. Samii, D. M. McDonald-McGinn, T. B. Crowley, E. H. Zackai, D. Drozdz, M. Miklaszewska, M. Tkaczyk, P. Sikora, M. Szczepanska, M. Mizerska-Wasiak, G. Krzemien, A. Szmigielska, M. Zaniew, J. M. Darlow, P. Puri, D. Barton, E. Casolari, S. L. Furth, B. A. Warady, Z. Gucev, H. Hakonarson, H. Flogelova, V. Tasic, A. Latos-Bielenska, A. Materna-Kiryluk, L. Allegri, C. S. Wong, I. A. Drummond, V. D'Agati, A. Imamoto, J. M. Barasch, F. Hildebrandt, K. Kiryluk, R. P. Lifton, B. E. Morrow, C. Jeanpierre, V. E. Papaioannou, G. M. Ghiggeri, A. G. Gharavi, N. Katsanis, S. Sanna-Cherchi*
*Corresponding author for this work
  • Columbia University
  • Duke University
  • University of Michigan, Ann Arbor
  • University of Split
  • Yeshiva University
  • Harvard University
  • Harvard Medical School
  • IRCCS Istituto Giannina Gaslini - Genova
  • University of Parma
  • University of Pennsylvania
  • Division of Nephrology in Medicine and Zuckerman Mind Brain Behavior Institute
  • Heidelberg University Hospital
  • Centre de Reference des Maladies Renales Hereditaires de L'Enfant et de L'Adulte
  • Institut national de la santé et de la recherche médicale
  • Université Paris 5
  • Universite Paris Sorbonne - Paris IV
  • CHU de Reims
  • University of Bari
  • University of Milan
  • University of Brescia
  • Departments of Pediatrics
  • Split University Hospital
  • University of Washington
  • University College Dublin
  • Jagiellonian University in Kraków
  • Institute of Polish Mother's Health Center
  • University of Lublin
  • Medical University of Silesia in Katowice
  • Medical University of Warsaw
  • University of Medical Sciences Poznan
  • Department of Clinical Genetics
  • National Children's Research Centre
  • Our Lady's Hospital for Sick Children
  • University Hospital of Parma
  • Children's Mercy Hospitals and Clinics
  • University Children's Hospital
  • University of New Mexico
  • The University of Chicago
  • Palacký University Olomouc
  • Yale University

Research output: Contribution to journalArticleAcademicpeer-review

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Abstract

BACKGROUND The DiGeorge syndrome, the most common of the microdeletion syndromes, affects multiple organs, including the heart, the nervous system, and the kidney. It is caused by deletions on chromosome 22q11.2; the genetic driver of the kidney defects is unknown. METHODS We conducted a genomewide search for structural variants in two cohorts: 2080 patients with congenital kidney and urinary tract anomalies and 22,094 controls. We performed exome and targeted resequencing in samples obtained from 586 additional patients with congenital kidney anomalies. We also carried out functional studies using zebrafish and mice. RESULTS We identified heterozygous deletions of 22q11.2 in 1.1% of the patients with congenital kidney anomalies and in 0.01% of population controls (odds ratio, 81.5; P = 4.5×1014). We localized the main drivers of renal disease in the DiGeorge syndrome to a 370-kb region containing nine genes. In zebrafish embryos, an induced loss of function in snap29, aifm3, and crkl resulted in renal defects; the loss of crkl alone was sufficient to induce defects. Five of 586 patients with congenital urinary anomalies had newly identified, heterozygous protein-Altering variants, including a premature termination codon, in CRKL. The inactivation of Crkl in the mouse model induced developmental defects similar to those observed in patients with congenital urinary anomalies. CONCLUSIONS We identified a recurrent 370-kb deletion at the 22q11.2 locus as a driver of kidney defects in the DiGeorge syndrome and in sporadic congenital kidney and urinary tract anomalies. Of the nine genes at this locus, SNAP29, AIFM3, and CRKL appear to be critical to the phenotype, with haploinsufficiency of CRKL emerging as the main genetic driver.

Original languageEnglish
Pages (from-to)742-754
Number of pages13
JournalNew England journal of medicine
Volume376
Issue number8
DOIs
Publication statusPublished - 23 Feb 2017

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