PO.TB01.01 · 肿瘤生物学
谷氨酰胺分解通过GLS1-TNC信号通路促进癌症相关血管生成
Glutaminolysis promotes cancer-associated angiogenesis via the GLS1-TNC signaling pathway
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
谷氨酰胺分解是一条代谢通路,其中谷氨酰胺被转化为谷氨酸,随后转化为α-酮戊二酸,它通过提供能量和生物合成前体来维持肿瘤细胞生长、存活和代谢灵活性,从而支持癌症进展。虽然其代谢功能已被广泛研究,但其对肿瘤血管生成的贡献尚未得到充分界定。在本研究中,我们证明在头颈部癌(HNC)异种移植瘤中敲低谷氨酰胺酶1(GLS1,谷氨酰胺分解的关键调控因子)显著减少了瘤内CD31⁺内皮细胞,与血管生成受损相一致。在体外,暴露于GLS1缺陷HNC细胞外泌体的HUVECs与用对照来源外泌体处理的细胞相比,表现出迁移能力减弱和管形成减少。LC-MS蛋白质组学分析显示,缺乏GLS1的外泌体中tenascin-C(TNC,一种具有确定促血管生成活性的基质细胞蛋白)含量不足。机制研究表明,GLS1缺失触发了USP1依赖的caveolin-1(CAV1,外泌体生物发生的关键调控因子)蛋白酶体降解。由于CAV1促进TNC掺入外泌体,GLS1缺陷破坏了CAV1-TNC信号轴,导致外泌体缺乏促血管生成货物。因此,这些缺陷外泌体无法激活HUVECs中的细胞外基质重塑和黏附通路,从而限制了内皮细胞迁移和血管生成能力。总之,这些发现揭示了GLS1在促进肿瘤血管生成中先前未被认识的作用,并进一步提示靶向GLS1不仅可抑制肿瘤代谢,还可抑制HNC中的血管生成。
查看英文原文 English abstract
Glutaminolysis, a metabolic pathway in which glutamine is converted into glutamate and subsequently into alpha-ketoglutarate, supports cancer progression by supplying energy and biosynthetic precursors that sustain tumor cell growth, survival, and metabolic flexibility. While its metabolic functions have been extensively studied, its contribution to tumor angiogenesis is not well defined. In this study, we demonstrate that knockdown of glutaminase 1 (GLS1), a key regulator of glutaminolysis, in head and neck cancer (HNC) xenografts markedly reduced intratumoral CD31⁺ endothelial cells, consistent with impaired angiogenesis. In vitro, HUVECs exposed to exosomes from GLS1-deficient HNC cells exhibited diminished migratory capacity and reduced tube formation compared with those treated with control-derived exosomes. Proteomic analysis by LC-MS revealed that exosomes lacking GLS1 were deficient in tenascin-C (TNC), a matricellular protein with established pro-angiogenic activity. Mechanistic studies showed that GLS1 loss triggered USP1-dependent proteasomal degradation of caveolin-1 (CAV1), a critical regulator of exosome biogenesis. Because CAV1 promotes the incorporation of TNC into exosomes, GLS1 deficiency disrupted the CAV1-TNC signaling axis, resulting in exosomes lacking pro-angiogenic cargo. Consequently, these defective exosomes failed to activate extracellular matrix remodeling and adhesion pathways in HUVECs, thereby limiting endothelial migration and angiogenic capacity. Together, these findings uncover a previously unrecognized role for GLS1 in promoting tumor angiogenesis and further suggest that targeting GLS1 could not only suppress tumor metabolism but also inhibit angiogenesis in HNC.
利益披露 Disclosure
J. Yang, None..
Z. Fu, None..
S. Vijaya Kuma, None..
F. Chen, None..
Y. Teng, None.