Yang Kai, Hu Hua-Ying, Zhang Jing, Yan You-Sheng, Chen Wen-Qi, Liu Yan, Sun Yong-Qing, Guo Qing, Yin Cheng-Hong
Prenatal Diagnosis Center, Beijing Obstetrics and Gynecology Hospital, Capital Medical University Beijing, China.
Jiaen Genetics Laboratory, Beijing Jiaen Hospital Beijing 100191, China.
Am J Transl Res. 2021 Oct 15;13(10):11501-11512. eCollection 2021.
Charcot-Marie-Tooth (CMT) 2A disease, a genetic axonal nervous lesion, results from pathogenic variation, and this gene plays a pivotal role in mitochondrial dynamics and calcium signaling. However, the underlying mechanism linking MFN2 defect to progressive dying-back of peripheral nerves is still unclear. The present work focused on analyzing one CMT2A patient from multiple perspectives. Clinical and pathologic evaluation was initially conducted on the recruited case. Subsequently, Sanger sequencing and whole-exome sequencing (WES) were performed for genetic detection. To reveal the cell metabolic alteration caused by the identified variant, this study also established and transfected plasmid vectors in HEK293 cells and analyzed cell metabolites through liquid chromatography in combination with quadrupole time-of-flight tandem mass spectrometry (UPLC Q-TOF MS). Additionally, we completed structural modeling and molecular dynamic (MD) simulation to investigate the intramolecular impact of the variant. According to our results, the clinical and neuropathologic manifestations of the proband matched with the diagnosis of CMT. The causative variant : c.638T>C: (p.Ile213Thr) was identified through genetic analysis. Moreover, metabolic pathway enrichment results demonstrated that this variant significantly affected the metabolism of sphingolipids and glycerophospholipids. MD analysis indicated that this variant crippled the binding ability of MFN2 to GTP. Taken together, our study deduced preliminary clues for the underlying mechanism by which mutant MFN2 affects cell metabolism and provided a novel perspective to understand the cellular and molecular impacts of MFN2 variants.
夏科-马里-图斯(CMT)2A型疾病是一种遗传性轴索性神经病变,由致病变异引起,该基因在线粒体动力学和钙信号传导中起关键作用。然而,将MFN2缺陷与周围神经进行性逆行性退变联系起来的潜在机制仍不清楚。目前的工作重点是从多个角度分析一名CMT2A患者。首先对招募的病例进行临床和病理评估。随后,进行桑格测序和全外显子组测序(WES)以进行基因检测。为了揭示由鉴定出的变异引起的细胞代谢改变,本研究还在HEK293细胞中构建并转染了质粒载体,并通过液相色谱结合四极杆飞行时间串联质谱(UPLC Q-TOF MS)分析细胞代谢物。此外,我们完成了结构建模和分子动力学(MD)模拟,以研究该变异对分子内的影响。根据我们的结果,先证者的临床和神经病理学表现与CMT的诊断相符。通过基因分析鉴定出致病变异:c.638T>C:(p.Ile213Thr)。此外,代谢途径富集结果表明,该变异显著影响鞘脂和甘油磷脂的代谢。MD分析表明,该变异削弱了MFN2与GTP的结合能力。综上所述,我们的研究推断出了突变型MFN2影响细胞代谢的潜在机制的初步线索,并为理解MFN2变异的细胞和分子影响提供了新的视角。