Methionine gamma lyase: Structure-activity relationships and therapeutic applications

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2023-12-24 DOI:10.1016/j.bbapap.2023.140991
Samanta Raboni , Serena Faggiano , Stefano Bettati , Andrea Mozzarelli
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Abstract

Methionine gamma lyase (MGL) is a bacterial and plant enzyme that catalyzes the conversion of methionine in methanthiol, 2-oxobutanoate and ammonia. The enzyme belongs to fold type I of the pyridoxal 5′-dependent family. The catalytic mechanism and the structure of wild type MGL and variants were determined in the presence of the natural substrate as well as of many sulfur-containing derivatives. Structure-function relationship studies were pivotal for MGL exploitation in the treatment of cancer, bacterial infections, and other diseases. MGL administration to cancer cells leads to methionine starvation, thus decreasing cells viability and increasing their vulnerability towards other drugs. In antibiotic therapy, MGL acts by transforming prodrugs in powerful drugs. Numerous strategies have been pursued for the delivering of MGL in vivo to prolong its bioavailability and decrease its immunogenicity. These include conjugation with polyethylene glycol and encapsulation in synthetic or natural vesicles, eventually decorated with tumor targeting molecules, such as the natural phytoestrogens daidzein and genistein. The scientific achievements in studying MGL structure, function and perspective therapeutic applications came from the efforts of many talented scientists, among which late Tatyana Demidkina to whom we dedicate this review.

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蛋氨酸伽马裂解酶:结构-活性关系和治疗应用
甲硫氨酸伽马裂解酶(MGL)是一种细菌和植物酶,可催化甲硫氨酸转化为甲硫醇、2-氧代丁酸酯和氨。该酶属于吡哆醛 5′依赖型家族的折叠 I 型。在天然底物和多种含硫衍生物存在的情况下,确定了野生型 MGL 和变体的催化机理和结构。结构-功能关系研究对于利用 MGL 治疗癌症、细菌感染和其他疾病至关重要。给癌细胞施用 MGL 会导致蛋氨酸饥饿,从而降低细胞的活力,使其更容易受到其他药物的伤害。在抗生素治疗中,MGL 的作用是将原药转化为强效药物。为了延长 MGL 的生物利用度并降低其免疫原性,人们采取了许多策略在体内输送 MGL。这些策略包括与聚乙二醇共轭,以及封装在合成或天然囊泡中,最终用肿瘤靶向分子(如天然植物雌激素麦角苷和染料木苷)进行装饰。在研究 MGL 结构、功能和治疗应用前景方面取得的科学成就来自于许多才华横溢的科学家的努力,其中包括已故的 Tatyana Demidkina。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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