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Pharmacological inhibition of serine synthesis enhances temozolomide efficacy by decreasing O6-methylguanine DNA methyltransferase (MGMT) expression and reactive oxygen species (ROS)-mediated DNA damage in glioblastoma

替莫唑胺 活性氧 化学 癌症研究 细胞凋亡 生物 DNA损伤 DNA甲基转移酶 DNA修复 甲基转移酶 细胞生长 胶质瘤 药理学 DNA 生物化学 甲基化
作者
Lei Jin,Karrie Mei-Yee Kiang,Stephen Yin Cheng,Gkk Leung
出处
期刊:Laboratory Investigation [Springer Nature]
卷期号:102 (2): 194-203 被引量:14
标识
DOI:10.1038/s41374-021-00666-7
摘要

Glioblastoma (GBM) is the most malignant primary tumor in the central nervous system of adults. Temozolomide (TMZ), an alkylating agent, is the first-line chemotherapeutic agent for GBM patients. However, its efficacy is often limited by innate or acquired chemoresistance. Cancer cells can rewire their metabolic programming to support rapid growth and sustain cell survival against chemotherapies. An example is the de novo serine synthesis pathway (SSP), one of the main branches from glycolysis that is highly activated in multiple cancers in promoting cancer progression and inducing chemotherapy resistance. However, the roles of SSP in TMZ therapy for GBM patients remain unexplored. In this study, we employed NCT503, a highly selective inhibitor of phosphoglycerate dehydrogenase (PHGDH, the first rate-limiting enzyme of SSP), to study whether inhibition of SSP may enhance TMZ efficacy in MGMT-positive GBMs. 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide (MTT), flowcytometry and colony formation assays demonstrated that NCT503 worked synergistically with TMZ in suppressing GBM cell growth and inducing apoptosis in T98G and U118 cells in vitro. U118 and patient-derived GBM subcutaneous xenograft models showed that combined NCT503 and TMZ treatment inhibited GBM growth and promoted apoptosis more significantly than would each treatment alone in vivo. Mechanistically, we found that NCT503 treatment decreased MGMT expression possibly by modulating the Wnt/β-catenin pathway. Moreover, intracellular levels of reactive oxygen species were elevated especially when NCT503 and TMZ treatments were combined, and the synergistic effects could be partially negated by NAC, a classic scavenger of reactive oxygen species. Taken together, these results suggest that NCT503 may be a promising agent for augmenting TMZ efficacy in the treatment of GBM, especially in TMZ-resistant GBMs with high expression of MGMT. Pharmacological inhibition of the serine synthesis pathway with a highly selective inhibitor NCT503 synergistically works with temozolomide in inhibiting O6-methylguanine DNA methyltransferase (MGMT)-positive glioblastoma cell growth and inducing apoptosis both in vitro and in vivo. Mechanistically, NCT503 treatment reduces MGMT expression possibly via Wnt/βcatenin pathway. Reactive oxygen species-mediated DNA damage is at least partially involved. Combinational administration of NCT503 and TMZ may represent a novel and promising treatment strategy to enhance TMZ efficacy in patients with MGMT-high glioblastoma.
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