Cornett Kevin, Puderbaugh Anna, Back Olivia, Craven Rolf
Department of Pharmacology and Nutritional Sciences, College of Medicine, University of Kentucky, Lexington, KY, United States.
Front Oncol. 2022 Oct 4;12:979683. doi: 10.3389/fonc.2022.979683. eCollection 2022.
Neuroblastoma is a pediatric cancer of neural crest cells. It develops most frequently in nerve cells around the adrenal gland, although other locations are possible. Neuroblastomas rely on glycolysis as a source of energy and metabolites, and the enzymes that catalyze glycolysis are potential therapeutic targets for neuroblastoma. Furthermore, glycolysis provides a protective function against DNA damage, and there is evidence that glycolysis inhibitors may improve outcomes from other cancer treatments. This mini-review will focus on glyceraldehyde 3-phosphate dehydrogenase (GAPDH), one of the central enzymes in glycolysis. GAPDH has a key role in metabolism, catalyzing the sixth step in glycolysis and generating NADH. GAPDH also has a surprisingly diverse number of localizations, including the nucleus, where it performs multiple functions, and the plasma membrane. One membrane-associated function of GAPDH is stimulating glucose uptake, consistent with a role for GAPDH in energy and metabolite production. The plasma membrane localization of GAPDH and its role in glucose uptake have been verified in neuroblastoma. Membrane-associated GAPDH also participates in iron uptake, although this has not been tested in neuroblastoma. Finally, GAPDH activates autophagy through a nuclear complex with Sirtuin. This review will discuss these activities and their potential role in cancer metabolism, treatment and drug resistance.
神经母细胞瘤是一种起源于神经嵴细胞的儿童癌症。它最常发生于肾上腺周围的神经细胞,不过也可能出现在其他部位。神经母细胞瘤依赖糖酵解作为能量和代谢物的来源,而催化糖酵解的酶是神经母细胞瘤潜在的治疗靶点。此外,糖酵解对DNA损伤具有保护作用,并且有证据表明糖酵解抑制剂可能会改善其他癌症治疗的效果。这篇综述将聚焦于糖酵解的核心酶之一甘油醛-3-磷酸脱氢酶(GAPDH)。GAPDH在代谢中起关键作用,催化糖酵解的第六步反应并生成NADH。GAPDH还具有数量惊人的多种定位,包括细胞核,在细胞核中它执行多种功能,以及质膜。GAPDH的一种膜相关功能是刺激葡萄糖摄取,这与GAPDH在能量和代谢物产生中的作用相符。GAPDH在质膜的定位及其在葡萄糖摄取中的作用已在神经母细胞瘤中得到证实。膜相关的GAPDH也参与铁摄取,尽管这尚未在神经母细胞瘤中进行测试。最后,GAPDH通过与沉默调节蛋白形成的核复合物激活自噬。本综述将讨论这些活性及其在癌症代谢、治疗和耐药性中的潜在作用。