Division of Orthopaedic Surgery, Department of Medicine of Sensory and Motor Organs, Faculty of Medicine, University of Miyazaki, Japan.
Institute of Resource Development and Analysis, Kumamoto University, Japan.
Sci Rep. 2017 Jan 20;7:40692. doi: 10.1038/srep40692.
Despite numerous genetic studies on bone metabolism, understanding of the specific mechanisms is lacking. We developed an efficient screening system to identify novel genes involved in bone metabolism using mutant mouse strains registered with the Exchangeable Gene Trap Clones (EGTC) database. From 1278 trap clones in the EGTC database, 52 candidate lines were selected in the first screening, determined based on "EST profile", "X-gal", "Related article", and "Novel gene". For the second screening, bone morphometric analysis, biomechanical strength analysis, bone X-gal staining, etc. were performed on candidate lines. Forty-two male trap lines (80.8%) showed abnormalities with either bone morphometric analysis or biomechanical strength analysis. In the screening process, X-gal staining was significantly efficient (P = 0.0057). As examples, Lbr and Nedd4 trap lines selected using the screening system showed significant bone decrease and fragility, suggesting a relationship with osteoblast differentiation. This screening system using EGTC mouse lines is extremely efficient for identifying novel genes involved in bone metabolism. The gene trap lines identified as abnormal using this screening approach are highly likely to trap important genes for bone metabolism. These selected trap mice will be valuable for use as novel bio-resources in bone research.
尽管对骨骼代谢进行了大量的遗传学研究,但对其具体机制仍缺乏了解。我们开发了一种高效的筛选系统,使用可交换基因陷阱克隆(EGTC)数据库中注册的突变体小鼠品系来鉴定参与骨骼代谢的新基因。从 EGTC 数据库中的 1278 个陷阱克隆中,根据“EST 谱”、“X-gal”、“相关文章”和“新基因”,在第一轮筛选中选择了 52 条候选品系。在第二轮筛选中,对候选品系进行了骨骼形态计量分析、生物力学强度分析、骨骼 X-gal 染色等实验。42 条雄性陷阱线(80.8%)在骨骼形态计量分析或生物力学强度分析中表现出异常。在筛选过程中,X-gal 染色的效率非常高(P=0.0057)。例如,使用筛选系统选择的 Lbr 和 Nedd4 陷阱线显示出明显的骨量减少和脆弱性,表明与成骨细胞分化有关。这种使用 EGTC 小鼠品系的筛选系统对于鉴定参与骨骼代谢的新基因非常有效。使用这种筛选方法鉴定为异常的基因陷阱线很可能会捕获到骨骼代谢的重要基因。这些选定的陷阱小鼠将成为骨骼研究中新型生物资源的宝贵工具。