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合成病毒样颗粒用于谷胱甘肽生物合成。

Synthetic Virus-like Particles for Glutathione Biosynthesis.

机构信息

Department of Chemistry, Indiana University, Bloomington, Indiana 47405, United States.

Department of Chemistry and Biochemistry, California State University Fresno, Fresno, California 93740, United States.

出版信息

ACS Synth Biol. 2020 Dec 18;9(12):3298-3310. doi: 10.1021/acssynbio.0c00368. Epub 2020 Nov 24.

Abstract

Protein-based nanocompartments found in nature have inspired the development of functional nanomaterials for a range of applications including delivery of catalytic activities with therapeutic effects. As glutathione (GSH) plays a vital role in metabolic adaptation and many diseases are associated with its deficiency, supplementation of GSH biosynthetic activity might be a potential therapeutic when delivered directly to the disease site. Here, we report the successful design and production of active nanoreactors capable of catalyzing the partial or complete pathway for GSH biosynthesis, which was realized by encapsulating essential enzymes of the pathway inside the virus-like particle (VLP) derived from the bacteriophage P22. These nanoreactors are the first examples of nanocages specifically designed for the biosynthesis of oligomeric biomolecules. A dense packing of enzymes is achieved within the cavities of the nanoreactors, which allows us to study enzyme behavior, in a crowded and confined environment, including enzymatic kinetics and protein stability. In addition, the biomedical utility of the nanoreactors in protection against oxidative stress was confirmed using an cell culture model. Given that P22 VLP capsid was suggested as a potential liver-tropic nanocarrier , it will be promising to test the efficacy of these GSH nanoreactors as a novel treatment for GSH-deficient hepatic diseases.

摘要

天然存在的蛋白质纳米隔间启发了功能纳米材料的发展,这些材料可应用于多种领域,包括将具有治疗效果的催化活性递送至疾病部位。由于谷胱甘肽 (GSH) 在代谢适应中起着至关重要的作用,并且许多疾病都与 GSH 的缺乏有关,因此直接向疾病部位递送 GSH 生物合成活性可能是一种有潜力的治疗方法。在这里,我们报告了成功设计和生产的活性纳米反应器,这些纳米反应器能够催化 GSH 生物合成的部分或完整途径,这是通过将途径中的必需酶封装在源自噬菌体 P22 的病毒样颗粒 (VLP) 内部来实现的。这些纳米反应器是专门为寡聚生物分子生物合成设计的纳米笼的首批实例。在纳米反应器的腔室内实现了酶的密集堆积,这使我们能够在拥挤和受限的环境中研究酶的行为,包括酶动力学和蛋白质稳定性。此外,使用细胞培养模型证实了纳米反应器在抵御氧化应激方面的生物医学用途。鉴于 P22 VLP 衣壳被认为是一种有潜力的肝靶向纳米载体,因此测试这些 GSH 纳米反应器作为治疗 GSH 缺乏性肝脏疾病的新型治疗方法的效果将是很有前途的。

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