Homozygous variant in translocase of outer mitochondrial membrane 7 leads to metabolic reprogramming and microcephalic osteodysplastic dwarfism with moyamoya disease

Chia Yi Li, Li Wen Chen, Meng Che Tsai, Yen Yin Chou, Pei Xuan Lin, Yu Ming Chang, Wuh Liang Hwu, Yin Hsiu Chien, Ju Li Lin, Hui An Chen, Ni Chung Lee, Pen Hua Su, Tzung Chien Hsieh, Hannah Klinkhammer, Yi Chieh Wang, Yi Ting Huang, Peter M. Krawitz, Sheng Hsiang Lin, Lynn L.H. Huang, Po Min ChiangMin Hsiu Shih, Peng Chieh Chen

研究成果: Article同行評審

1 引文 斯高帕斯(Scopus)

摘要

Background: Impaired mitochondrial protein import machinery leads to phenotypically heterogeneous diseases. Here, we report a recurrent homozygous missense variant in the gene that encodes the translocase of outer mitochondrial membrane 7 (TOMM7) in nine patients with microcephaly, short stature, facial dysmorphia, atrophic macular scarring, and moyamoya disease from seven unrelated families. Methods: To prove the causality of the TOMM7 variant, mitochondrial morphology, proteomics, and respiration were investigated in CRISPR/Cas9-edited iPSCs-derived endothelial cells. Cerebrovascular defects and mitochondrial respiration were also examined in CRISPR/Cas9-edited zebrafish. Findings: iPSC-derived endothelial cells with homozygous TOMM7 p.P29L showed increased TOM7 stability, enlarged mitochondria, increased senescence, and defective tube formation. In addition, proteomic analysis revealed a reduced abundance of mitochondrial proteins involved in ATP synthesis or coordinating TCA cycle and gluconeogenesis. Moreover, mitochondrial respiration was slightly decreased while ATP production from glycolysis was significantly increased. Furthermore, deletion of tomm7 in zebrafish caused craniofacial and cerebrovascular defects that recapitulated human phenotypes. Notably, homozygous iPSCs differentially expressed genes involved in glycolysis and response to hypoxia. Finally, the metabolic imbalance was evidenced by decreased oxygen consumption, increased level of hexokinase 2, and enhanced glycolysis in endothelial cells derived from the patient's iPSCs. Interpretation: These results revealed the essential role of TOMM7 in balancing cellular sources of energy production at both proteomic and transcriptomic levels and provided the molecular mechanisms through which TOMM7 p.P29L variant leads to an autosomal recessive microcephalic osteodysplastic dwarfism with moyamoya disease. Funding: This work is supported byNational Science and Technology Council grants andNational Cheng Kung University Hospital.

原文English
文章編號105476
期刊EBioMedicine
110
DOIs
出版狀態Published - 2024 12月

All Science Journal Classification (ASJC) codes

  • 一般生物化學,遺傳學和分子生物學

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