Home LiteratureArticle Details
PMID: 16642444 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Quantification of homozygosity in consanguineous individuals with autosomal recessive disease.

American journal of human genetics ·Vol. 78 ·No. 5 ·2006-05-00 ·Pages 889-896

Woods CG, Cox J, Springell K, Hampshire DJ, Mohamed MD, McKibbin M, Stern R, Raymond FL, Sandford R, Malik Sharif S, Karbani G, Ahmed M, Bond J, Clayton D, Inglehearn CF

Abstract

Individuals born of consanguineous union have segments of their genomes that are homozygous as a result of inheriting identical ancestral genomic segments through both parents. One consequence of this is an increased incidence of recessive disease within these sibships. Theoretical calculations predict that 6% (1/16) of the genome of a child of first cousins will be homozygous and that the average homozygous segment will be 20 cM in size. We assessed whether these predictions held true in populations that have preferred consanguineous marriage for many generations. We found that in individuals with a recessive disease whose parents were first cousins, on average, 11% of their genomes were homozygous (n = 38; range 5%-20%), with each individual bearing 20 homozygous segments exceeding 3 cM (n = 38; range of number of homozygous segments 7-32), and that the size of the homozygous segment associated with recessive disease was 26 cM (n = 100; range 5-70 cM). These data imply that prolonged parental inbreeding has led to a background level of homozygosity increased approximately 5% over and above that predicted by simple models of consanguinity. This has important clinical and research implications.

MeSH Terms
Chromosome Disorders Consanguinity Foot Deformities, Congenital Genes, Recessive Genetic Diseases, Inborn Genetic Linkage Homozygote Humans Lod Score Male Microsatellite Repeats Pedigree Polymorphism, Genetic Polymorphism, Single Nucleotide
Authors & Affiliations
15 authors, click to expand affiliations / ORCID
Woods C Geoffrey
Department of Medical Genetics, Cambridge Institute of Medical Research, University of Cambridge, Cambridge, United Kingdom. Electronic address: cw347@cam.ac.uk.
Cox James
Department of Medical Genetics, Cambridge Institute of Medical Research, University of Cambridge, Cambridge, United Kingdom.
Springell Kelly
Section of Ophthalmology and Neuroscience, Institute of Molecular Medicine, Epidemiology and Cancer Research, University of Leeds, Leeds, United Kingdom.
Hampshire Daniel J
Section of Ophthalmology and Neuroscience, Institute of Molecular Medicine, Epidemiology and Cancer Research, University of Leeds, Leeds, United Kingdom.
Mohamed Moin D
Section of Ophthalmology and Neuroscience, Institute of Molecular Medicine, Epidemiology and Cancer Research, University of Leeds, Leeds, United Kingdom.
McKibbin Martin
Section of Ophthalmology and Neuroscience, Institute of Molecular Medicine, Epidemiology and Cancer Research, University of Leeds, Leeds, United Kingdom.
Stern Rowena
Department of Medical Genetics, Cambridge Institute of Medical Research, University of Cambridge, Cambridge, United Kingdom.
Raymond F Lucy
Department of Medical Genetics, Cambridge Institute of Medical Research, University of Cambridge, Cambridge, United Kingdom.
Sandford Richard
Department of Medical Genetics, Cambridge Institute of Medical Research, University of Cambridge, Cambridge, United Kingdom.
Malik Sharif Saghira
Department of Clinical Genetics, St James's University Hospital, Leeds, United Kingdom.
Karbani Gulshan
Department of Clinical Genetics, St James's University Hospital, Leeds, United Kingdom.
Ahmed Mustaq
Department of Clinical Genetics, St James's University Hospital, Leeds, United Kingdom.
Bond Jacquelyn
Section of Ophthalmology and Neuroscience, Institute of Molecular Medicine, Epidemiology and Cancer Research, University of Leeds, Leeds, United Kingdom.
Clayton David
Department of Medical Genetics, Cambridge Institute of Medical Research, University of Cambridge, Cambridge, United Kingdom.
Inglehearn Chris F
Section of Ophthalmology and Neuroscience, Institute of Molecular Medicine, Epidemiology and Cancer Research, University of Leeds, Leeds, United Kingdom.
References (18)
18 references, click to expand
  1. Co-existence of lysosomal storage diseases in a consanguineous family.
    Child Care Health Dev. 2001 Mar;27(2):173-81 PMID: 11251615
  2. Consanguineous marriages in the United Arab Emirates.
    J Biosoc Sci. 1997 Oct;29(4):491-7 PMID: 9881148
  3. Consanguinity and its relevance to clinical genetics.
    Clin Genet. 2001 Aug;60(2):89-98 PMID: 11553039
  4. A new method for autozygosity mapping using single nucleotide polymorphisms (SNPs) and EXCLUDEAR.
    J Med Genet. 2004 Aug;41(8):e101 PMID: 15286161
  5. The frequency of consanguineous marriage among British Pakistanis.
    J Med Genet. 1988 Mar;25(3):186-90 PMID: 3351906
  6. Homozygosity mapping: a way to map human recessive traits with the DNA of inbred children.
    Science. 1987 Jun 19;236(4808):1567-70 PMID: 2884728
  7. Long homozygous chromosomal segments in reference families from the centre d'Etude du polymorphisme humain.
    Am J Hum Genet. 1999 Dec;65(6):1493-500 PMID: 10577902
  8. Inbreeding effects on fertility in humans: evidence for reproductive compensation.
    Am J Hum Genet. 1999 Jan;64(1):225-31 PMID: 9915962
  9. Pitfalls in homozygosity mapping.
    Am J Hum Genet. 2000 Nov;67(5):1348-51 PMID: 11007652
  10. Marked parental consanguinity as a cause for increased major malformations in an Israeli Arab community.
    Am J Med Genet. 1992 Sep 1;44(1):1-6 PMID: 1519638
  11. Reflections on the consanguinity and birth outcome debate.
    J Public Health Med. 1994 Dec;16(4):423-8 PMID: 7880573
  12. Measures of homozygosity and inbreeding in populations.
    Ann Hum Genet. 1974 May;37(4):377-91 PMID: 4414604
  13. A high-resolution recombination map of the human genome.
    Nat Genet. 2002 Jul;31(3):241-7 PMID: 12053178
  14. A five-year prospective study of the health of children in different ethnic groups, with particular reference to the effect of inbreeding.
    Eur J Hum Genet. 1993;1(3):206-19 PMID: 8044647
  15. Calculation of the inbreeding coefficient.
    J Math Biol. 1988;26(1):57-64 PMID: 3351395
  16. Contribution of social and cultural factors to the decline in consanguinity in south India.
    Soc Biol. 2000 Fall-Winter;47(3-4):189-200 PMID: 12055694
  17. Genetic referrals of Middle Eastern origin in a western city: inbreeding and disease profile.
    J Med Genet. 1996 Mar;33(3):212-5 PMID: 8728693
  18. A metric map of humans: 23,500 loci in 850 bands.
    Proc Natl Acad Sci U S A. 1996 Dec 10;93(25):14771-5 PMID: 8962130
Article Info
Journal
American journal of human genetics
Abbr.
Am J Hum Genet
ISSN
0002-9297
Published
2006-05-00
Epub
2006-00-21
Pages
889-896
Language
English
Region
United States
NLM ID
0370475
PMCID
PMC1474039
Subset
IM
Grants
Wellcome Trust · 057964 · United Kingdom
Wellcome Trust · 073243 · United Kingdom
Wellcome Trust · 06424 · United Kingdom
Wellcome Trust · 073477 · United Kingdom
Wellcome Trust · 062444 · 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: product@genelibs.com