Farber Charles R, Clemens Thomas L
Center for Public Health Genomics, University of Virginia, Charlottesville, VA, USA ; Departments of Public Health Sciences and Biochemistry and Molecular Genetics, University of Virginia, Charlottesville, VA, USA.
Department of Orthopaedic Surgery, Johns Hopkins School of Medicine, Baltimore, MD, USA ; Baltimore Veterans Administration Medical Center, Baltimore, Maryland, USA.
Bone Res. 2013;1(4):301-310. doi: 10.4248/BR201304001.
Recent improvements in the speed and accuracy of DNA sequencing, together with increasingly sophisticated mathematical approaches for annotating gene networks, have revolutionized the field of human genetics and made these once time consuming approaches assessable to most investigators. In the field of bone research, a particularly active area of gene discovery has occurred in patients with rare bone disorders such as osteogenesis imperfecta (OI) that are caused by mutations in single genes. In this perspective, we highlight some of these technological advances and describe how they have been used to identify the genetic determinants underlying two previously unexplained cases of OI. The widespread availability of advanced methods for DNA sequencing and bioinformatics analysis can be expected to greatly facilitate identification of novel gene networks that normally function to control bone formation and maintenance.
DNA测序在速度和准确性方面的最新进展,以及用于注释基因网络的日益复杂的数学方法,彻底改变了人类遗传学领域,并使这些曾经耗时的方法可供大多数研究人员使用。在骨骼研究领域,在由单基因突变引起的罕见骨骼疾病(如成骨不全症,OI)患者中,基因发现是一个特别活跃的领域。在这篇观点文章中,我们重点介绍了其中的一些技术进展,并描述了它们如何被用于识别两例先前无法解释的OI病例背后的遗传决定因素。DNA测序和生物信息学分析等先进方法的广泛应用有望极大地促进对通常控制骨骼形成和维持的新型基因网络的识别。