Department of Molecular Genetics, Weizmann Institute of Science, Rehovot, Israel.
Bioinformatics Unit, Department of Life Sciences Core Facilities, Weizmann Institute of Science, Rehovot, Israel.
Elife. 2023 Feb 6;12:e81843. doi: 10.7554/eLife.81843.
The proprioceptive system is essential for the control of coordinated movement, posture, and skeletal integrity. The sense of proprioception is produced in the brain using peripheral sensory input from receptors such as the muscle spindle, which detects changes in the length of skeletal muscles. Despite its importance, the molecular composition of the muscle spindle is largely unknown. In this study, we generated comprehensive transcriptomic and proteomic datasets of the entire muscle spindle isolated from the murine deep masseter muscle. We then associated differentially expressed genes with the various tissues composing the spindle using bioinformatic analysis. Immunostaining verified these predictions, thus establishing new markers for the different spindle tissues. Utilizing these markers, we identified the differentiation stages the spindle capsule cells undergo during development. Together, these findings provide comprehensive molecular characterization of the intact spindle as well as new tools to study its development and function in health and disease.
本体感觉系统对于协调运动、姿势和骨骼完整性的控制至关重要。本体感觉是在大脑中产生的,其利用来自肌肉梭等感受器的外周感觉输入,肌肉梭可以检测到骨骼肌长度的变化。尽管本体感觉很重要,但肌肉梭的分子组成在很大程度上仍是未知的。在这项研究中,我们生成了从小鼠深咬肌中分离出的整个肌肉梭的全面转录组和蛋白质组数据集。然后,我们使用生物信息学分析将差异表达的基因与组成纺锤体的各种组织相关联。免疫染色验证了这些预测,从而为不同的纺锤体组织建立了新的标记物。利用这些标记物,我们确定了在发育过程中纺锤体囊细胞经历的分化阶段。总之,这些发现为完整的纺锤体提供了全面的分子特征,并为研究其在健康和疾病中的发育和功能提供了新的工具。