Multiomic analysis on human cell model of wolfram syndrome reveals changes in mitochondrial morphology and function

沃尔夫勒姆综合征人类细胞模型的多组学分析揭示了线粒体形态和功能的变化

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作者:Agnieszka Zmyslowska, Miljan Kuljanin, Beata Malachowska, Marcin Stanczak, Dominika Michalek, Aneta Wlodarczyk, Dagmara Grot, Joanna Taha, Bartłomiej Pawlik, Magdalena Lebiedzińska-Arciszewska, Hanna Nieznanska, Mariusz R Wieckowski, Piotr Rieske, Joseph D Mancias, Maciej Borowiec, Wojciech Mlynarsk

Background

Wolfram syndrome (WFS) is a rare autosomal recessive syndrome in which diabetes mellitus and neurodegenerative disorders occur as a result of Wolframin deficiency and increased ER stress. In addition, WFS1 deficiency leads to calcium homeostasis disturbances and can change mitochondrial dynamics. The

Conclusions

Our results show the functional and morphological secondary mitochondrial damage in patients with WFS. Video Abstract.

Methods

We performed transcriptomic and proteomic analysis on WFS human cell model-skin fibroblasts reprogrammed into induced pluripotent stem (iPS) cells and then into neural stem cells (NSC) with subsequent ER stress induction using tunicamycin (TM).

Results

Proteomic analysis identified specific signal pathways that differ in NSC WFS cells from healthy ones. Next, detailed analysis of the proteins involved in the mitochondrial function showed the down-regulation of subunits of the respiratory chain complexes in NSC WFS cells, as well as the up-regulation of proteins involved in Krebs cycle and glycolysis when compared to the control cells. Based on pathway enrichment analysis we concluded that in samples from mice hippocampi the mitochondrial protein import machinery and OXPHOS were significantly down-regulated. Conclusions: Our results show the functional and morphological secondary mitochondrial damage in patients with WFS. Video Abstract.

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