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聚离子复合物囊泡包裹治疗性甲硫氨酸 γ-裂合酶的动力学和药代动力学特征。

Kinetic and pharmacokinetic characteristics of therapeutic methinoninе γ-lyase encapsulated in polyion complex vesicles.

机构信息

Engelhardt Institute of Molecular Biology of the Russian Academy of Sciences, Vavilov street, 32, Moscow, 119991, Russia.

Engelhardt Institute of Molecular Biology of the Russian Academy of Sciences, Vavilov street, 32, Moscow, 119991, Russia.

出版信息

Biochimie. 2022 Mar;194:13-18. doi: 10.1016/j.biochi.2021.12.004. Epub 2021 Dec 16.

Abstract

Therapeutic enzymes used for the treatment of a wide range of human disorders often suffer from suboptimal pharmacokinetics and stability. Engineering approaches such as encapsulation in micro- and nanocarriers, and replacements of amino acid residues of the native enzyme provide significant potential for improving the performance of enzyme therapy. Here, we develop a nanodelivery system on the base of polyion complex vesicles (PICsomes) that includes methionine γ-lyase (MGL) as a therapeutic enzyme. We have two strategies for using the enzyme: first, methionine γ-lyase is an anticancer agent removing l-methionine from plasma, second, the binary system methionine γ-lyase/S-alk(en)yl-l-cysteine sulfoxides is effective in enzyme prodrug therapy (EPT). Various lengths polymers were synthesized, and two mutant forms of the enzyme were used. The catalytic and pharmacokinetic parameters of the nanoformulations were investigated. The catalytic efficiencies of encapsulated enzymes were comparable to that of native enzymes. Pharmacokinetic analysis has shown that inclusion into PICsomes increases half-life of the enzymes, and they can be safely administered in vivo. The results suggest the further use of encapsulated MGLs for EPT and anticancer therapy, and this strategy could be leveraged to improve the efficiency of enzyme-based therapies for managing serious human diseases.

摘要

用于治疗多种人类疾病的治疗性酶通常存在药代动力学和稳定性不理想的问题。通过封装在微纳米载体中以及替换天然酶的氨基酸残基等工程方法,为改善酶治疗的性能提供了巨大的潜力。在这里,我们基于聚离子复合物囊泡(PICsomes)开发了一种纳米递药系统,其中包含蛋氨酸γ-裂解酶(MGL)作为治疗性酶。我们有两种使用该酶的策略:首先,蛋氨酸γ-裂解酶是一种抗癌剂,可从血浆中去除 l-蛋氨酸;其次,蛋氨酸 γ-裂解酶/S-烯基-l-半胱氨酸亚砜的二元体系在酶前药治疗(EPT)中有效。合成了各种长度的聚合物,并使用了两种酶的突变体形式。研究了纳米制剂的催化和药代动力学参数。包封酶的催化效率与天然酶相当。药代动力学分析表明,纳入 PICsomes 会增加酶的半衰期,并且可以安全地在体内给药。结果表明,包封的 MGL 可进一步用于 EPT 和抗癌治疗,并且该策略可用于提高基于酶的治疗严重人类疾病的效率。

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