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Sakai, W.

Publications and source records attributed to Sakai, W..

2 recordsLinked to original sources

ALDH3A2 acts as a metabolic safeguard that regulates sphingolipid metabolism to suppress DNA damage and cell death

Highly reactive aldehydes are generated during metabolic processes in the body, and their detoxification is essential for maintaining cellular homeostasis. Hexadecenal, a long-chain fatty aldehyde, is formed during the sphingolipid degradation pathway from the lipid mediator sphingosine-1-phosphate (S1P). However, the cytotoxicity resulting from dysregulation of hexadecenal metabolism is still unclear. To elucidate the effects of impaired hexadecenal metabolism, we analyzed the function of ALDH3A2, an aldehyde dehydrogenase in humans. Our results revealed that ALDH3A2 enzymatic activity is crucial for the suppression of DNA damage, particularly interstrand DNA crosslinks, upon S1P exposure. Furthermore, we demonstrated that hexadecenal accumulation promotes cell death accompanied by the activation of cellular stress responses and morphological abnormalities in the endoplasmic reticulum. These findings suggest that ALDH3A2 functions as a metabolic safeguard to suppress DNA damage and cell death in response to the enhanced metabolic flux of hexadecenal.

molecular biology↗

Dynamics of Fanconi anemia protein D2 in association with nuclear lipid droplet formation

Fanconi anemia (FA) is a rare genetic disease caused by the loss of function of one of the 22 associated genes and is characterized by bone marrow failure, cancer predisposition, and developmental defects. The proteins encoded by these genes (FA proteins) mainly function in DNA damage response and repair. Although FA deficiency has multiple effects on the regulation of lipid metabolism, the molecular function of FA proteins in the context of FA pathology remains unclear. In the present study, we demonstrated that FANCD2, a key component of FA proteins, interacts with lipid metabolism-related factors and that FANCD2 deficiency downregulates the cellular levels of fatty acids. Moreover, a portion of FANCD2 is localized to nuclear lipid droplets in response to oleic acid treatment. These subcellular dynamics are independent of FANCD2 monoubiquitination, which is essential for the DNA damage response. Collectively, these findings demonstrate that FANCD2 responds to not only DNA damage but also oleic acid exposure, providing insights into the pathogenesis of lipid dysregulation in FA.

cell biology↗