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Alkan, H. F.

Publications and source records attributed to Alkan, H. F..

2 recordsLinked to original sources

Loss of malate-aspartate shuttle component SLC25A12 induces pulmonary metastasis

BackgroundAspartate biosynthesis and its delivery to the cytosol can be crucial for tumor growth in vivo. However, the impact of aspartate synthesis on metastasis has not been studied. We previously described that loss-of-aspartate glutamate carrier 1 (SLC25A12 or AGC1), an important component of the malate-aspartate shuttle, impairs cytosolic aspartate levels, NAD+/NADH ratio, mitochondrial respiration, and tumor growth. Here, we report the impact of AGC1-knockdown on metastasis. ResultsAGC1 expression is positively correlated with worse patient prognosis in many cancers. AGC1-knockdown in mouse lung carcinoma and melanoma cell lines leads to increased pulmonary metastasis following subcutaneous or intravenous injections, respectively. On the other hand, conventional in vitro metastasis assays show no indication of increased metastasis capacity of AGC1-knockdown cells. ConclusionThis study highlights that certain branches of metabolism impact tumor growth and tumor metastasis differently. In addition, it also argues that commonly known metastasis indicators, including EMT genes, cell migration, or colony formation do not always reflect the metastatic capacity in vivo.

cancer biology

N-acetylaspartate improves cell survival when glucose is limiting

N-acetylasparate (NAA), previously considered a brain-specific metabolite, is found in several cancers. However, whether it plays a role in tumor growth or survival is not fully understood. We provide evidence that NAA prevents cell death in low-glucose conditions via sustaining intracellular UDP-N-acetylglucosamine (UDP-GlcNac) levels, suppressing endoplasmic reticulum (ER) stress, and enabling continued protein synthesis. NAA production is critical for in vivo tumor growth where lower glucose levels are present than those in cell culture. Furthermore, the breakdown of NAA leads to ER stress and cell death, suggesting that the role of NAA in low-glucose is independent of its catabolism to produce aspartate or acetate. Together, these data suggest NAA can support the growth of some tumors by helping them cope with glucose limitations in vivo. HighlightsEndogenous N-acetylaspartate (NAA) production boosts tumor growth NAA supports cell survival in low glucose via suppressing ER stress Breaking down NAA limits tumor growth and induces ER stress in vivo The role of NAA to rescue low glucose is independent of donating acetate or aspartate In briefCancer cells need N-acetylaspartate to avoid ER stress and cell death when glucose availability is low.

cancer biology