Home LiteratureArticle Details
PMID: 25533962 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Large-scale discovery of novel genetic causes of developmental disorders.

Nature ·Vol. 519 ·No. 7542 ·2015-03-12 ·Pages 223-8

Deciphering Developmental Disorders Study

Abstract

Despite three decades of successful, predominantly phenotype-driven discovery of the genetic causes of monogenic disorders, up to half of children with severe developmental disorders of probable genetic origin remain without a genetic diagnosis. Particularly challenging are those disorders rare enough to have eluded recognition as a discrete clinical entity, those with highly variable clinical manifestations, and those that are difficult to distinguish from other, very similar, disorders. Here we demonstrate the power of using an unbiased genotype-driven approach to identify subsets of patients with similar disorders. By studying 1,133 children with severe, undiagnosed developmental disorders, and their parents, using a combination of exome sequencing and array-based detection of chromosomal rearrangements, we discovered 12 novel genes associated with developmental disorders. These newly implicated genes increase by 10% (from 28% to 31%) the proportion of children that could be diagnosed. Clustering of missense mutations in six of these newly implicated genes suggests that normal development is being perturbed by an activating or dominant-negative mechanism. Our findings demonstrate the value of adopting a comprehensive strategy, both genome-wide and nationwide, to elucidate the underlying causes of rare genetic disorders.

MeSH Terms
Adolescent Animals Carrier Proteins/genetics Child Child, Preschool Chromosomal Proteins, Non-Histone/genetics Chromosome Aberrations DEAD-box RNA Helicases/genetics DNA-Binding Proteins/genetics Developmental Disabilities/diagnosis,genetics Dynamin I/genetics Exome/genetics Female Gene Expression Regulation, Developmental Genes, Dominant/genetics Genome, Human/genetics Guanine Nucleotide Exchange Factors/genetics Homeodomain Proteins/genetics Humans Infant Infant, Newborn Male Mutation, Missense/genetics Nerve Tissue Proteins/genetics Nuclear Proteins/genetics Parents Phosphoproteins/genetics Polycomb Repressive Complex 1/genetics Protein Phosphatase 2/genetics Protein Serine-Threonine Kinases/genetics Rare Diseases/genetics Repressor Proteins Transcription Factors/genetics Transposases/genetics United Kingdom Zebrafish/genetics
Chemicals
ADNP protein, human BCL11A protein, human CHAMP1 protein, human Carrier Proteins Chromosomal Proteins, Non-Histone DNA-Binding Proteins Guanine Nucleotide Exchange Factors Homeodomain Proteins Nerve Tissue Proteins Nuclear Proteins PCGF2 protein, human PPP2R1A protein, human PPP2R5D protein, human PURA protein, human Phosphoproteins Repressor Proteins Transcription Factors Polycomb Repressive Complex 1 CERT1 protein, human Protein Serine-Threonine Kinases TRIO protein, human PogZ protein, human Transposases Protein Phosphatase 2 Dynamin I DDX3X protein, human DEAD-box RNA Helicases
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Deciphering Developmental Disorders Study
Investigators
265 investigators, click to expand
Fitzgerald T W
Gerety S S
Jones W D
van Kogelenberg M
King D A
McRae J
Morley K I
Parthiban V
Al-Turki S
Ambridge K
Barrett D M
Bayzetinova T
Clayton S
Coomber E L
Gribble S
Jones P
Krishnappa N
Mason L E
Middleton A
Miller R
Prigmore E
Rajan D
Sifrim A
Tivey A R
Ahmed M
Akawi N
Andrews R
Anjum U
Archer H
Armstrong R
Balasubramanian M
Banerjee R
Baralle D
Batstone P
Baty D
Bennett C
Berg J
Bernhard B
Bevan A P
Blair E
Blyth M
Bohanna D
Bourdon L
Bourn D
Brady A
Bragin E
Brewer C
Brueton L
Brunstrom K
Bumpstead S J
Bunyan D J
Burn J
Burton J
Canham N
Castle B
Chandler K
Clasper S
Clayton-Smith J
Cole T
Collins A
Collinson M N
Connell F
Cooper N
Cox H
Cresswell L
Cross G
Crow Y
D'Alessandro M
Dabir T
Davidson R
Davies S
Dean J
Deshpande C
Devlin G
Dixit A
Dominiczak A
Donnelly C
Donnelly D
Douglas A
Duncan A
Eason J
Edkins S
Ellard S
Ellis P
Elmslie F
Evans K
Everest S
Fendick T
Fisher R
Flinter F
Foulds N
Fryer A
Fu B
Gardiner C
Gaunt L
Ghali N
Gibbons R
Gomes Pereira S L
Goodship J
Goudie D
Gray E
Greene P
Greenhalgh L
Harrison L
Hawkins R
Hellens S
Henderson A
Hobson E
Holden S
Holder S
Hollingsworth G
Homfray T
Humphreys M
Hurst J
Ingram S
Irving M
Jarvis J
Jenkins L
Johnson D
Jones D
Jones E
Josifova D
Joss S
Kaemba B
Kazembe S
Kerr B
Kini U
Kinning E
Kirby G
Kirk C
Kivuva E
Kraus A
Kumar D
Lachlan K
Lam W
Lampe A
Langman C
Lees M
Lim D
Lowther G
Lynch S A
Magee A
Maher E
Mansour S
Marks K
Martin K
Maye U
McCann E
McConnell V
McEntagart M
McGowan R
McKay K
McKee S
McMullan D J
McNerlan S
Mehta S
Metcalfe K
Miles E
Mohammed S
Montgomery T
Moore D
Morgan S
Morris A
Morton J
Mugalaasi H
Murday V
Nevitt L
Newbury-Ecob R
Norman A
O'Shea R
Ogilvie C
Park S
Parker M J
Patel C
Paterson J
Payne S
Phipps J
Pilz D T
Porteous D
Pratt N
Prescott K
Price S
Pridham A
Procter A
Purnell H
Ragge N
Rankin J
Raymond L
Rice D
Robert L
Roberts E
Roberts G
Roberts J
Roberts P
Ross A
Rosser E
Saggar A
Samant S
Sandford R
Sarkar A
Schweiger S
Scott C
Scott R
Selby A
Seller A
Sequeira C
Shannon N
Sharif S
Shaw-Smith C
Shearing E
Shears D
Simonic I
Simpkin D
Singzon R
Skitt Z
Smith A
Smith B
Smith K
Smithson S
Sneddon L
Splitt M
Squires M
Stewart F
Stewart H
Suri M
Sutton V
Swaminathan G J
Sweeney E
Tatton-Brown K
Taylor C
Taylor R
Tein M
Temple I K
Thomson J
Tolmie J
Torokwa A
Treacy B
Turner C
Turnpenny P
Tysoe C
Vandersteen A
Vasudevan P
Vogt J
Wakeling E
Walker D
Waters J
Weber A
Wellesley D
Whiteford M
Widaa S
Wilcox S
Williams D
Williams N
Woods G
Wragg C
Wright M
Yang F
Yau M
Carter N P
Parker M
Firth H V
FitzPatrick D R
Wright C F
Barrett J C
Hurles M E
References (25)
25 references, click to expand
  1. Patterns and rates of exonic de novo mutations in autism spectrum disorders.
    Nature. 2012 Apr 04;485(7397):242-5 PMID: 22495311
  2. De novo mutations in schizophrenia implicate synaptic networks.
    Nature. 2014 Feb 13;506(7487):179-84 PMID: 24463507
  3. Cohort Profile: Generation Scotland: Scottish Family Health Study (GS:SFHS). The study, its participants and their potential for genetic research on health and illness.
    Int J Epidemiol. 2013 Jun;42(3):689-700 PMID: 22786799
  4. A novel method for detecting uniparental disomy from trio genotypes identifies a significant excess in children with developmental disorders.
    Genome Res. 2014 Apr;24(4):673-87 PMID: 24356988
  5. A higher mutational burden in females supports a "female protective model" in neurodevelopmental disorders.
    Am J Hum Genet. 2014 Mar 6;94(3):415-25 PMID: 24581740
  6. Rare de novo and transmitted copy-number variation in autistic spectrum disorders.
    Neuron. 2011 Jun 9;70(5):886-97 PMID: 21658582
  7. Mouse model for probing tumor suppressor activity of protein phosphatase 2A in diverse signaling pathways.
    Cell Cycle. 2012 Feb 1;11(3):451-9 PMID: 22262169
  8. Paternal age effect mutations and selfish spermatogonial selection: causes and consequences for human disease.
    Am J Hum Genet. 2012 Feb 10;90(2):175-200 PMID: 22325359
  9. Diagnostic exome sequencing in persons with severe intellectual disability.
    N Engl J Med. 2012 Nov 15;367(20):1921-9 PMID: 23033978
  10. A SWI/SNF-related autism syndrome caused by de novo mutations in ADNP.
    Nat Genet. 2014 Apr;46(4):380-4 PMID: 24531329
  11. De novo gene disruptions in children on the autistic spectrum.
    Neuron. 2012 Apr 26;74(2):285-99 PMID: 22542183
  12. Rare complete knockouts in humans: population distribution and significant role in autism spectrum disorders.
    Neuron. 2013 Jan 23;77(2):235-42 PMID: 23352160
  13. Sporadic autism exomes reveal a highly interconnected protein network of de novo mutations.
    Nature. 2012 Apr 04;485(7397):246-50 PMID: 22495309
  14. De novo mutations in epileptic encephalopathies.
    Nature. 2013 Sep 12;501(7466):217-21 PMID: 23934111
  15. Characterising and predicting haploinsufficiency in the human genome.
    PLoS Genet. 2010 Oct 14;6(10):e1001154 PMID: 20976243
  16. A systematic genome-wide analysis of zebrafish protein-coding gene function.
    Nature. 2013 Apr 25;496(7446):494-7 PMID: 23594742
  17. The Kraepelinian dichotomy - going, going... but still not gone.
    Br J Psychiatry. 2010 Feb;196(2):92-5 PMID: 20118450
  18. A framework for the interpretation of de novo mutation in human disease.
    Nat Genet. 2014 Sep;46(9):944-50 PMID: 25086666
  19. Interorganelle trafficking of ceramide is regulated by phosphorylation-dependent cooperativity between the PH and START domains of CERT.
    J Biol Chem. 2007 Jun 15;282(24):17758-66 PMID: 17442665
  20. Genome-wide reverse genetics framework to identify novel functions of the vertebrate secretome.
    PLoS One. 2006 Dec 20;1:e104 PMID: 17218990
  21. A missense mutation in a highly conserved alternate exon of dynamin-1 causes epilepsy in fitful mice.
    PLoS Genet. 2010 Aug 05;6(8): PMID: 20700442
  22. A copy number variation morbidity map of developmental delay.
    Nat Genet. 2011 Aug 14;43(9):838-46 PMID: 21841781
  23. De novo mutations in histone-modifying genes in congenital heart disease.
    Nature. 2013 Jun 13;498(7453):220-3 PMID: 23665959
  24. De novo mutations revealed by whole-exome sequencing are strongly associated with autism.
    Nature. 2012 Apr 04;485(7397):237-41 PMID: 22495306
  25. Range of genetic mutations associated with severe non-syndromic sporadic intellectual disability: an exome sequencing study.
    Lancet. 2012 Nov 10;380(9854):1674-82 PMID: 23020937
Article Info
Journal
Nature
Abbr.
Nature
ISSN
1476-4687
Published
2015-03-12
Epub
2014-00-24
Pages
223-8
Language
English
Region
England
NLM ID
0410462
PMCID
PMC5955210
Subset
IM
Grants
Wellcome Trust · 091986 · United Kingdom
Chief Scientist Office · CZD/16/6 · United Kingdom
Department of Health · United Kingdom
Medical Research Council · MC_PC_U127561093 · United Kingdom
Wellcome Trust · WT098051 · United Kingdom
Wellcome Trust · 098395 · United Kingdom
Wellcome Trust · United Kingdom
Wellcome Trust · 100140 · United Kingdom
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: [email protected]