De Los Santos-Jiménez Juan, Campos-Sandoval José A, Rosales Tracy, Ko Bookyung, Alonso Francisco J, Márquez Javier, DeBerardinis Ralph J, Matés José M
Departamento de Biología Molecular y Bioquímica, Universidad de Málaga, 29071 Málaga, Spain.
Instituto de Investigación Biomédica de Málaga (IBIMA-Plataforma BIONAND), Universidad de Málaga, 29071 Málaga, Spain.
Int J Mol Sci. 2025 Jan 6;26(1):427. doi: 10.3390/ijms26010427.
Glutaminase controls the first step in glutaminolysis, impacting bioenergetics, biosynthesis and oxidative stress. Two isoenzymes exist in humans, GLS and GLS2. GLS is considered prooncogenic and overexpressed in many tumours, while GLS2 may act as prooncogenic or as a tumour suppressor. Glioblastoma cells usually lack GLS2 while they express high GLS. We investigated how GLS2 expression modifies the metabolism of glioblastoma cells, looking for changes that may explain GLS2's potential tumour suppressive role. We developed LN-229 glioblastoma cells stably expressing GLS2 and performed isotope tracing using U-C-glutamine and metabolomic quantification to analyze metabolic changes. Treatment with GLS inhibitor CB-839 was also included to concomitantly inhibit endogenous GLS. GLS2 overexpression resulted in extensive metabolic changes, altering the TCA cycle by upregulating part of the cycle but blocking the synthesis of the 6-carbon intermediates from acetyl-CoA. Expression of GLS2 caused downregulation of PDH activity through phosphorylation of S293 of PDHA1. GLS2 also altered nucleotide levels and induced the accumulation of methylated metabolites and S-adenosyl methionine. These changes suggest that GLS2 may be a key regulator linking glutamine and glucose metabolism, also impacting nucleotides and epigenetics. Future research should ascertain the mechanisms involved and the generalizability of these findings in cancer or physiological conditions.
谷氨酰胺酶控制谷氨酰胺分解的第一步,影响生物能量学、生物合成和氧化应激。人类存在两种同工酶,即GLS和GLS2。GLS被认为具有促癌作用,在许多肿瘤中过度表达,而GLS2可能起到促癌作用或作为肿瘤抑制因子。胶质母细胞瘤细胞通常缺乏GLS2,却高表达GLS。我们研究了GLS2的表达如何改变胶质母细胞瘤细胞的代谢,寻找可能解释GLS2潜在肿瘤抑制作用的变化。我们构建了稳定表达GLS2的LN-229胶质母细胞瘤细胞,并使用U-C-谷氨酰胺进行同位素示踪和代谢组学定量分析来分析代谢变化。还包括用GLS抑制剂CB-839进行处理,以同时抑制内源性GLS。GLS2的过表达导致了广泛的代谢变化,通过上调部分三羧酸循环但阻断从乙酰辅酶A合成6碳中间体来改变三羧酸循环。GLS2的表达通过PDHA1的S293磷酸化导致丙酮酸脱氢酶活性下调。GLS2还改变了核苷酸水平,并诱导甲基化代谢物和S-腺苷甲硫氨酸的积累。这些变化表明GLS2可能是连接谷氨酰胺和葡萄糖代谢的关键调节因子,也影响核苷酸和表观遗传学。未来的研究应该确定其中涉及的机制以及这些发现在癌症或生理条件下的普遍性。