Using mouse genetics to understand human skeletal disease

被引:2
|
作者
Youlten, Scott E. [1 ,2 ]
Baldock, Paul A. [1 ,2 ,3 ]
机构
[1] Garvan Inst Med Res, Div Bone Biol, Sydney, NSW 2010, Australia
[2] UNSW Australia, Fac Med, St Vincents Clin Sch, Sydney, NSW 2010, Australia
[3] Univ Notre Dame Australia, Sydney, NSW 2010, Australia
关键词
Mouse genetics; Genomics; Skeletal disease; Skeletal phenotyping; Genetic analysis; Skeleton; BONE MASS; OSTEOGENESIS IMPERFECTA; EXPRESSION PROFILES; INBRED STRAINS; KNOCKOUT MICE; DIVERSITY; GENERATION; PHENOTYPE; DISCOVERY; DATABASE;
D O I
10.1016/j.bone.2019.02.015
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Technological advances have enabled the study of the human genome in incredible detail with relative ease. However, our ability to interpret the functional significance of the millions of genetic variants present within each individual is limited. As a result, the confident assignment of disease-causing variant calls remains a significant challenge. Here we explore how mouse genetics can help address this deficit in functional genomic understanding. Underpinned by marked genetic correspondence, skeletal biology shows inter-species similarities which provide important opportunities to use data from mouse models to direct research into the genetic basis of skeletal pathophysiology. In this article we outline critical resources that may be used to establish genotype/phenotype relationships in skeletal tissue, identify genes with established skeletal effects and define the transcriptome of critical skeletal cell types. Finally, we outline how these mouse resources might be utilized to progress from a list of human sequence variants toward plausible gene candidates that contribute to skeletal disease.
引用
收藏
页码:27 / 36
页数:10
相关论文
共 50 条
  • [41] Using genetics to understand auditory function and improve diagnosis
    Battey, JF
    EAR AND HEARING, 2003, 24 (04): : 266 - 269
  • [42] Using Functional Genetics to Understand Breast Cancer Biology
    Ashworth, Alan
    Bernards, Rene
    COLD SPRING HARBOR PERSPECTIVES IN BIOLOGY, 2010, 2 (07): : a003327
  • [43] PLEIOTROPY IN NEUROBEHAVIORAL GENETICS IN HUMAN AND MOUSE
    NASH, DJ
    ACKLEY, RS
    BEHAVIOR GENETICS, 1995, 25 (03) : 280 - 281
  • [44] The contribution of the mouse to advances in human genetics
    Fisher, EMC
    ADVANCES IN GENETICS, VOL 35, 1997, 35 : 155 - 205
  • [45] Computational genetics: from mouse to human?
    Wang, JM
    Liao, GC
    Usuka, J
    Peltz, G
    TRENDS IN GENETICS, 2005, 21 (09) : 526 - 532
  • [46] From mouse genetics to human therapeutics
    Peltz, G
    Usuka, J
    CURRENT OPINION IN DRUG DISCOVERY & DEVELOPMENT, 2005, 8 (02) : 253 - 261
  • [47] Flying Together: Drosophila as a Tool to Understand the Genetics of Human Alcoholism
    Lathen, Daniel R.
    Merrill, Collin B.
    Rothenfluh, Adrian
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2020, 21 (18) : 1 - 29
  • [48] THE MOUSE SKELETAL MUTANTS - MODELS FOR THE HUMAN SKELETAL DYSPLASIAS
    ETESON, DJ
    LACHMAN, RS
    RIMOIN, DL
    CLINICAL RESEARCH, 1985, 33 (01): : A130 - A130
  • [49] Generating Human Neurons In Vitro and Using Them to Understand Neuropsychiatric Disease
    Pasca, Sergiu P.
    Panagiotakos, Georgia
    Dolmetsch, Ricardo E.
    ANNUAL REVIEW OF NEUROSCIENCE, VOL 37, 2014, 37 : 479 - +
  • [50] Mitochondrial genetics and human disease
    Grossman, LI
    Shoubridge, EA
    BIOESSAYS, 1996, 18 (12) : 983 - 991