线粒体和细胞质酰基聚谷氨酸合成酶在一碳代谢中的作用以及线粒体靶向抗磷酸盐的抗肿瘤功效

IF 3.2 3区 医学 Q2 PHARMACOLOGY & PHARMACY
Carrie O'Connor, Mathew Schneider, Jade M Katinas, Md Junayed Nayeen, Khushbu Shah, Tejashree Magdum, Abhishekh Sharma, Seongho Kim, Xun Bao, Jing Li, Charles E Dann, Aleem Gangjee, Larry H Matherly, Zhanjun Hou
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引用次数: 0

摘要

依赖叶酸的一碳(C1)代谢包括不同的细胞膜和线粒体途径,它们通过丝氨酸、甘氨酸和甲酸盐之间的交换而相互连接。在细胞质和线粒体中,叶酸以聚谷氨酸的形式存在,由多聚谷氨酸合成酶(FPGS)(包括细胞质和线粒体同工酶)催化多聚谷氨酸化。丝氨酸在线粒体中通过丝氨酸羟甲基转移酶(SHMT)2 进行代谢,并在细胞质中生成用于细胞生物合成的甘氨酸和 C1 单位。AGF347 是一种新型吡咯并[3,2-d]嘧啶抗olate,靶向线粒体中的 SHMT2 和细胞质中的 SHMT1 以及嘌呤的新生物合成。FPGS 在原发性胰腺癌标本中表达,FPGS 水平与 AGF347 对人类胰腺癌细胞的体外疗效相关。对 CRISPR 敲除 FPGS 的 MIA PaCa-2 胰腺癌细胞进行改造,使其在细胞质(cFPGS)或细胞质和线粒体(mFPGS)中表达强力霉素诱导的 FPGS。随着 mFPGS 的增加,叶酸和 AGF347 在细胞质和线粒体中的积累都会增加,但在 cFPGS 中则仅限于细胞质。AGF347-Glu5 对 SHMT2 的抑制作用是 AGF347 的 19 倍。通过代谢组学分析,mFPGS 对线粒体中来自丝氨酸的 C1 通量以及嘌呤和 dTTP 合成的刺激作用远大于 cFPGS。其他吡咯并[3,2-d]嘧啶类抗偶联剂(AGF291、AGF320)也出现了类似的结果;然而,mFPGS 的升高对非经典 SHMT2/SHMT1 抑制剂 SHIN1 的抑制作用产生了不利影响。这些结果表明,mFPGS 水平在决定线粒体靶向吡咯并[3,2-d]嘧啶类抗胰腺癌药物的抗肿瘤疗效方面起着关键作用。意义声明 AGF347 是一种新型吡咯并[3,2-d]嘧啶抗酚,它靶向线粒体中的丝氨酸羟甲基转移酶(SHMT)2 和细胞质中的 SHMT1 以及新嘌呤生物合成。AGF347 的积累会随着细胞质和线粒体中的乙酰多谷氨酸合成酶(FPGS)水平的升高而增加。线粒体 FPGS 的增加刺激了细胞质和线粒体中的一碳代谢通量,并大大增强了 AGF347 对胰腺癌细胞的体外抑制作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Role of Mitochondrial and Cytosolic Folylpolyglutamate Synthetase in One-Carbon Metabolism and Antitumor Efficacy of Mitochondrial-Targeted Antifolates.

Folate-dependent one-carbon (C1) metabolism encompasses distinct cytosolic and mitochondrial pathways connected by an interchange among serine, glycine, and formate. In both the cytosol and mitochondria, folates exist as polyglutamates, with polyglutamylation catalyzed by folylpolyglutamate synthetase (FPGS), including cytosolic and mitochondrial isoforms. Serine is metabolized by serine hydroxymethyltransferase (SHMT)2 in the mitochondria and generates glycine and C1 units for cellular biosynthesis in the cytosol. AGF347 is a novel pyrrolo[3,2-day]pyrimidine antifolate that targets SHMT2 in the mitochondria and SHMT1 and de novo purine biosynthesis in the cytosol. FPGS is expressed in primary pancreatic cancer specimens, and FPGS levels correlate with in vitro efficacies of AGF347 toward human pancreatic cancer cells. MIA PaCa-2 pancreatic cancer cells with CRISPR knockout of FPGS were engineered to express doxycycline-inducible FPGS exclusively in the cytosol (cFPGS) or in both the cytosol and mitochondria (mFPGS). Folate and AGF347 accumulations increased in both the cytosol and mitochondria with increased mFPGS but were restricted to the cytosol with cFPGS. AGF347-Glu5 inhibited SHMT2 ∼19-fold greater than AGF347 By metabolomics analysis, mFPGS stimulated the C1 flux from serine in the mitochondria and de novo purine and dTTP synthesis far greater than cFPGS. mFPGS enhanced in vitro inhibition of MIA PaCa-2 cell proliferation by AGF347 (∼30-fold) more than cFPGS (∼4.9-fold). Similar results were seen with other pyrrolo[3,2-d]pyrimidine antifolates (AGF291, AGF320); however, elevated mFPGS adversely impacted inhibition by the nonclassical SHMT2/SHMT1 inhibitor SHIN1. These results suggest a critical role of mFPGS levels in determining antitumor efficacies of mitochondrial-targeted pyrrolo[3,2-d]pyrimidine antifolates for pancreatic cancer. SIGNIFICANCE STATEMENT: AGF347 is a novel pyrrolo[3,2-d]pyrimidine antifolate that targets serine hydroxymethyltransferase (SHMT)2 in the mitochondria and SHMT1 and de novo purine biosynthesis in the cytosol. AGF347 accumulation increases with folylpolyglutamate synthetase (FPGS) levels in both the cytosol and mitochondria. Increased mitochondrial FPGS stimulated one-carbon metabolic fluxes in the cytosol and mitochondria and substantially enhanced in vitro inhibition of pancreatic cancer cells by AGF347. Mitochondrial FPGS levels play important roles in determining the antitumor efficacies of pyrrolo[3,2-d]pyrimidine antifolates for pancreatic cancer.

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来源期刊
Molecular Pharmacology
Molecular Pharmacology 医学-药学
CiteScore
7.20
自引率
2.80%
发文量
50
审稿时长
3-6 weeks
期刊介绍: Molecular Pharmacology publishes findings derived from the application of innovative structural biology, biochemistry, biophysics, physiology, genetics, and molecular biology to basic pharmacological problems that provide mechanistic insights that are broadly important for the fields of pharmacology and toxicology. Relevant topics include: Molecular Signaling / Mechanism of Drug Action Chemical Biology / Drug Discovery Structure of Drug-Receptor Complex Systems Analysis of Drug Action Drug Transport / Metabolism
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