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Glucarpidase (羧肽酶 G2):生物技术生产、作为甲氨蝶呤解毒剂的临床应用及在靶向肿瘤治疗中的定位

英文原题:Glucarpidase (carboxypeptidase G2): Biotechnological production, clinical application as a methotrexate antidote, and placement in targeted cancer therapy.

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Glucarpidase (carboxypeptidase G2): Biotechnological production, clinical application as a methotrexate antidote, and placement in targeted cancer therapy.

PubMed 2023/08/12(内容时间) Biomed Pharmacother

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中文摘要

接受高剂量甲氨蝶呤(HDMTX)治疗恶性肿瘤的患者可能出现多种并发症,包括肾毒性、肝毒性、黏膜炎、骨髓毒性、神经系统症状,甚至死亡。Glucarpidase 是一种重组羧肽酶 G2(CPG2),可将甲氨蝶呤(MTX)转化为无毒代谢物。

本研究考察了载体类型、基因优化、方向和宿主对 CPG2 表达的影响,对含 glucarpidase 的不同治疗方案的疗效进行归类,并就基于精准医疗调整剂量提出展望。文章重点介绍将 CPG2 与细胞穿透肽、人血清白蛋白以及 PEG、右旋糖酐等聚合物偶联,以改善递送和稳定性并制备性能更优的 CPG2 变体。研究还讨论了将 CPG2 与靶向肿瘤特异性抗原的 F(ab')2 或 scFv 抗体片段偶联,并配合相应前药,通过抗体导向酶前药疗法(ADEPT)实现肿瘤靶向药物递送。文中介绍了减少脱靶效应并实现 ADEPT 多轮给药的试验策略,包括添加对肿瘤中过表达蛋白酶敏感的前结构域、抗 CPG2 抗体、带有免疫系统无法识别表位的 CPG2 突变体,以及保护性聚合物。文章还描述了基因导向酶前药疗法(GDEPT)中的细胞内 cpg2 基因表达,并讨论 GDEPT 载体的安全性和转染效率问题。文中进一步介绍了一种新型双功能平台:经工程化改造、可在肿瘤局部发挥微型制药作用的 CAR-T 细胞,即合成酶武装杀伤细胞(SEAKER),其表达 CPG2,可在肿瘤局部激活前药。

综上,本综述整合的证据以及新型药物递送系统中正在发展的联合策略,勾勒出 ADEPT、GDEPT 和 SEAKER 细胞疗法及 CPG2 在其中应用的未来方向。

展开英文摘要原文

Patients receiving high-dose methotrexate (HDMTX) for malignancies are exposed to diverse complications, including nephrotoxicity, hepatotoxicity, mucositis, myelotoxicity, neurological symptoms, and death. Glucarpidase is a recombinant carboxypeptidase G2 (CPG2) that converts MTX into nontoxic metabolites. In this study, the role of vector type, gene optimization, orientation, and host on the expression of CPG2 is investigated. The effectiveness of various therapeutic regimens containing glucarpidase is classified and perspectives on the dose adjustment based on precision medicine are provided. Conjugation with cell-penetrating peptides, human serum albumin, and polymers such as PEG and dextran for delivery, higher stability, and production of the biobetter variants of CPG2 is highlighted. Conjugation of CPG2 to F(ab ) 2 or scFv antibody fragments against tumor-specific antigens and the corresponding prodrugs for tumor-targeted drug delivery using the antibody-directed enzyme prodrug therapy (ADEPT) is communicated.

Trials to reduce the off-target effects and the possibility of repeated ADEPT cycles by adding pro-domains sensitive to tumor-overexpressed proteases, antiCPG2 antibodies, CPG2 mutants with immune-system-unrecognizable epitopes, and protective polymers are reported. Intracellular cpg2 gene expression by gene-directed enzyme prodrug therapy (GDEPT) and the concerns regarding the safety and transfection efficacy of the GDEPT vectors are described.

A novel bifunctional platform using engineered CAR-T cell micropharmacies, known as Synthetic Enzyme-Armed KillER (SEAKER) cells, expressing CPG2 to activate prodrugs at the tumor niche is introduced. Taken together, integrated data in this review and recruiting combinatorial strategies in novel drug delivery systems define the future directions of ADEPT, GDEPT, and SEAKER cell therapy and the placement of CPG2 therein.

论文信息

作者
Moradbeygi F、Ghasemi Y、Farmani AR、Hemmati S
第一作者单位
Department of Pharmaceutical Biotechnology, School of Pharmacy, Shiraz University of Medical Sciences, Shiraz, Iran.Iran
通讯作者单位
Department of Pharmaceutical Biotechnology, School of Pharmacy, Shiraz University of Medical Sciences, Shiraz, Iran; Biotechnology Research Center, Shiraz University of Medical Sciences, Shiraz, Iran. Electronic address: hemmatish@sums.ac.ir.Iran
文献类型
综述
期刊
Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie2023 Oct
原文标识
PubMed 37579696 · DOI 10.1016/j.biopha.2023.115292