Literature DB >> 15466288

Genetic and haplotype diversity among wild-derived mouse inbred strains.

Folami Y Ideraabdullah1, Elena de la Casa-Esperón, Timothy A Bell, David A Detwiler, Terry Magnuson, Carmen Sapienza, Fernando Pardo-Manuel de Villena.   

Abstract

With the completion of the mouse genome sequence, it is possible to define the amount, type, and organization of the genetic variation in this species. Recent reports have provided an overview of the structure of genetic variation among classical laboratory mice. On the other hand, little is known about the structure of genetic variation among wild-derived strains with the exception of the presence of higher levels of diversity. We have estimated the sequence diversity due to substitutions and insertions/deletions among 20 inbred strains of Mus musculus, chosen to enable interpretation of the molecular variation within a clear evolutionary framework. Here, we show that the level of sequence diversity present among these strains is one to two orders of magnitude higher than the level of sequence diversity observed in the human population, and only a minor fraction of the sequence differences observed is found among classical laboratory strains. Our analyses also demonstrate that deletions are significantly more frequent than insertions. We estimate that 50% of the total variation identified in M. musculus may be recovered in intrasubspecific crosses. Alleles at variants positions can be classified into 164 strain distribution patterns, a number exceeding those reported and predicted in panels of classical inbred strains. The number of strains, the analysis of multiple loci scattered across the genome, and the mosaic nature of the genome in hybrid and classical strains contribute to the observed diversity of strain distribution patterns. However, phylogenetic analyses demonstrate that ancient polymorphisms that segregate across species and subspecies play a major role in the generation of strain distribution patterns.

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Year:  2004        PMID: 15466288      PMCID: PMC524411          DOI: 10.1101/gr.2519704

Source DB:  PubMed          Journal:  Genome Res        ISSN: 1088-9051            Impact factor:   9.043


  27 in total

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Journal:  Genome Res       Date:  1999-09       Impact factor: 9.043

2.  A map of human genome sequence variation containing 1.42 million single nucleotide polymorphisms.

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Journal:  Nature       Date:  2001-02-15       Impact factor: 49.962

3.  Large-scale discovery and genotyping of single-nucleotide polymorphisms in the mouse.

Authors:  K Lindblad-Toh; E Winchester; M J Daly; D G Wang; J N Hirschhorn; J P Laviolette; K Ardlie; D E Reich; E Robinson; P Sklar; N Shah; D Thomas; J B Fan; T Gingeras; J Warrington; N Patil; T J Hudson; E S Lander
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4.  [Natural hybridization between 2 sympatric species of mice, Mus musculus domesticus L. and Mus spretus Lataste].

Authors:  Annie Orth; Khalid Belkhir; Janice Britton-Davidian; Pierre Boursot; Touria Benazzou; François Bonhomme
Journal:  C R Biol       Date:  2002-02       Impact factor: 1.583

5.  In silico mapping of complex disease-related traits in mice.

Authors:  A Grupe; S Germer; J Usuka; D Aud; J K Belknap; R F Klein; M K Ahluwalia; R Higuchi; G Peltz
Journal:  Science       Date:  2001-06-08       Impact factor: 47.728

6.  Extensive nuclear DNA sequence diversity among chimpanzees.

Authors:  H Kaessmann; V Wiebe; S Pääbo
Journal:  Science       Date:  1999-11-05       Impact factor: 47.728

7.  Gene flow of unique sequences between Mus musculus domesticus and Mus spretus.

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Journal:  Mamm Genome       Date:  2000-03       Impact factor: 2.957

8.  Genomic divergences between humans and other hominoids and the effective population size of the common ancestor of humans and chimpanzees.

Authors:  F C Chen; W H Li
Journal:  Am J Hum Genet       Date:  2001-01-15       Impact factor: 11.025

9.  Great ape DNA sequences reveal a reduced diversity and an expansion in humans.

Authors:  H Kaessmann; V Wiebe; G Weiss; S Pääbo
Journal:  Nat Genet       Date:  2001-02       Impact factor: 38.330

10.  The sequence of the human genome.

Authors:  J C Venter; M D Adams; E W Myers; P W Li; R J Mural; G G Sutton; H O Smith; M Yandell; C A Evans; R A Holt; J D Gocayne; P Amanatides; R M Ballew; D H Huson; J R Wortman; Q Zhang; C D Kodira; X H Zheng; L Chen; M Skupski; G Subramanian; P D Thomas; J Zhang; G L Gabor Miklos; C Nelson; S Broder; A G Clark; J Nadeau; V A McKusick; N Zinder; A J Levine; R J Roberts; M Simon; C Slayman; M Hunkapiller; R Bolanos; A Delcher; I Dew; D Fasulo; M Flanigan; L Florea; A Halpern; S Hannenhalli; S Kravitz; S Levy; C Mobarry; K Reinert; K Remington; J Abu-Threideh; E Beasley; K Biddick; V Bonazzi; R Brandon; M Cargill; I Chandramouliswaran; R Charlab; K Chaturvedi; Z Deng; V Di Francesco; P Dunn; K Eilbeck; C Evangelista; A E Gabrielian; W Gan; W Ge; F Gong; Z Gu; P Guan; T J Heiman; M E Higgins; R R Ji; Z Ke; K A Ketchum; Z Lai; Y Lei; Z Li; J Li; Y Liang; X Lin; F Lu; G V Merkulov; N Milshina; H M Moore; A K Naik; V A Narayan; B Neelam; D Nusskern; D B Rusch; S Salzberg; W Shao; B Shue; J Sun; Z Wang; A Wang; X Wang; J Wang; M Wei; R Wides; C Xiao; C Yan; A Yao; J Ye; M Zhan; W Zhang; H Zhang; Q Zhao; L Zheng; F Zhong; W Zhong; S Zhu; S Zhao; D Gilbert; S Baumhueter; G Spier; C Carter; A Cravchik; T Woodage; F Ali; H An; A Awe; D Baldwin; H Baden; M Barnstead; I Barrow; K Beeson; D Busam; A Carver; A Center; M L Cheng; L Curry; S Danaher; L Davenport; R Desilets; S Dietz; K Dodson; L Doup; S Ferriera; N Garg; A Gluecksmann; B Hart; J Haynes; C Haynes; C Heiner; S Hladun; D Hostin; J Houck; T Howland; C Ibegwam; J Johnson; F Kalush; L Kline; S Koduru; A Love; F Mann; D May; S McCawley; T McIntosh; I McMullen; M Moy; L Moy; B Murphy; K Nelson; C Pfannkoch; E Pratts; V Puri; H Qureshi; M Reardon; R Rodriguez; Y H Rogers; D Romblad; B Ruhfel; R Scott; C Sitter; M Smallwood; E Stewart; R Strong; E Suh; R Thomas; N N Tint; S Tse; C Vech; G Wang; J Wetter; S Williams; M Williams; S Windsor; E Winn-Deen; K Wolfe; J Zaveri; K Zaveri; J F Abril; R Guigó; M J Campbell; K V Sjolander; B Karlak; A Kejariwal; H Mi; B Lazareva; T Hatton; A Narechania; K Diemer; A Muruganujan; N Guo; S Sato; V Bafna; S Istrail; R Lippert; R Schwartz; B Walenz; S Yooseph; D Allen; A Basu; J Baxendale; L Blick; M Caminha; J Carnes-Stine; P Caulk; Y H Chiang; M Coyne; C Dahlke; A Deslattes Mays; M Dombroski; M Donnelly; D Ely; S Esparham; C Fosler; H Gire; S Glanowski; K Glasser; A Glodek; M Gorokhov; K Graham; B Gropman; M Harris; J Heil; S Henderson; J Hoover; D Jennings; C Jordan; J Jordan; J Kasha; L Kagan; C Kraft; A Levitsky; M Lewis; X Liu; J Lopez; D Ma; W Majoros; J McDaniel; S Murphy; M Newman; T Nguyen; N Nguyen; M Nodell; S Pan; J Peck; M Peterson; W Rowe; R Sanders; J Scott; M Simpson; T Smith; A Sprague; T Stockwell; R Turner; E Venter; M Wang; M Wen; D Wu; M Wu; A Xia; A Zandieh; X Zhu
Journal:  Science       Date:  2001-02-16       Impact factor: 47.728

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  56 in total

1.  FastANOVA: an Efficient Algorithm for Genome-Wide Association Study.

Authors:  Xiang Zhang; Fei Zou; Wei Wang
Journal:  KDD       Date:  2008

2.  Genetic and parent-of-origin influences on X chromosome choice in Xce heterozygous mice.

Authors:  Lisa Helbling Chadwick; Huntington F Willard
Journal:  Mamm Genome       Date:  2005-10-20       Impact factor: 2.957

3.  The paternal gene of the DDK syndrome maps to the Schlafen gene cluster on mouse chromosome 11.

Authors:  Timothy A Bell; Elena de la Casa-Esperón; Heather E Doherty; Folami Ideraabdullah; Kuikwon Kim; Yunfei Wang; Leslie A Lange; Kirk Wilhemsen; Ethan M Lange; Carmen Sapienza; Fernando Pardo-Manuel de Villena
Journal:  Genetics       Date:  2005-09-19       Impact factor: 4.562

4.  Prospects for association mapping in classical inbred mouse strains.

Authors:  Bret A Payseur; Michael Place
Journal:  Genetics       Date:  2007-02-04       Impact factor: 4.562

5.  The frequency of multiple paternity suggests that sperm competition is common in house mice (Mus domesticus).

Authors:  M D Dean; K G Ardlie; M W Nachman
Journal:  Mol Ecol       Date:  2006-11       Impact factor: 6.185

6.  A locus on mouse Chromosome 9 (Adip5) affects the relative weight of the gonadal but not retroperitoneal adipose depot.

Authors:  Amanda H McDaniel; Xia Li; Michael G Tordoff; Alexander A Bachmanov; Danielle R Reed
Journal:  Mamm Genome       Date:  2006-11-10       Impact factor: 2.957

7.  An imputed genotype resource for the laboratory mouse.

Authors:  Jin P Szatkiewicz; Glen L Beane; Yueming Ding; Lucie Hutchins; Fernando Pardo-Manuel de Villena; Gary A Churchill
Journal:  Mamm Genome       Date:  2008-02-27       Impact factor: 2.957

8.  Locating a modifier gene of Ovum mutant through crosses between DDK and C57BL/6J inbred strains in mice.

Authors:  Jing Tan; Gen Di Song; Jia Sheng Song; Shi Hao Ren; Chun Li Li; Zhen Yu Zheng; Wei Dong Zhao
Journal:  J Genet       Date:  2016-06       Impact factor: 1.166

9.  Genetic control of X chromosome inactivation in mice: definition of the Xce candidate interval.

Authors:  Lisa Helbling Chadwick; Lisa M Pertz; Karl W Broman; Marisa S Bartolomei; Huntington F Willard
Journal:  Genetics       Date:  2006-04-02       Impact factor: 4.562

Review 10.  Deconstructing Mus gemischus: advances in understanding ancestry, structure, and variation in the genome of the laboratory mouse.

Authors:  John P Didion; Fernando Pardo-Manuel de Villena
Journal:  Mamm Genome       Date:  2012-12-09       Impact factor: 2.957

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