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用于直接胞质递送和氧化还原激活释放大分子治疗药物的相分离肽。

Phase-separating peptides for direct cytosolic delivery and redox-activated release of macromolecular therapeutics.

作者信息

Sun Yue, Lau Sze Yi, Lim Zhi Wei, Chang Shi Chieh, Ghadessy Farid, Partridge Anthony, Miserez Ali

机构信息

Biological and Biomimetic Material Laboratory (BBML), Center for Sustainable Materials (SusMat), School of Materials Science and Engineering, Nanyang Technological University (NTU), Singapore, Singapore.

p53 Laboratory, Agency for Science, Technology and Research (A*STAR), Neuros/Immunos, Singapore, Singapore.

出版信息

Nat Chem. 2022 Mar;14(3):274-283. doi: 10.1038/s41557-021-00854-4. Epub 2022 Feb 3.

Abstract

Biomacromolecules are highly promising therapeutic modalities to treat various diseases. However, they suffer from poor cellular membrane permeability, limiting their access to intracellular targets. Strategies to overcome this challenge often employ nanoscale carriers that can get trapped in endosomal compartments. Here we report conjugated peptides that form pH- and redox-responsive coacervate microdroplets by liquid-liquid phase separation that readily cross the cell membrane. A wide range of macromolecules can be quickly recruited within the microdroplets, including small peptides, enzymes as large as 430 kDa and messenger RNAs (mRNAs). The therapeutic-loaded coacervates bypass classical endocytic pathways to enter the cytosol, where they undergo glutathione-mediated release of payload, the bioactivity of which is retained in the cell, while mRNAs exhibit a high transfection efficiency. These peptide coacervates represent a promising platform for the intracellular delivery of a large palette of macromolecular therapeutics that have potential for treating various pathologies (for example, cancers and metabolic diseases) or as carriers for mRNA-based vaccines.

摘要

生物大分子是治疗各种疾病极具前景的治疗方式。然而,它们的细胞膜通透性较差,限制了其与细胞内靶点的接触。克服这一挑战的策略通常采用纳米级载体,而这些载体可能会被困在内体区室中。在此,我们报道了共轭肽,它们通过液-液相分离形成pH和氧化还原响应性凝聚微滴,能够轻易穿过细胞膜。多种大分子可以在微滴中迅速聚集,包括小肽、高达430 kDa的酶和信使核糖核酸(mRNA)。负载治疗剂的凝聚物绕过经典的内吞途径进入细胞质,在那里它们通过谷胱甘肽介导释放payload,其生物活性在细胞中得以保留,而mRNA则表现出高转染效率。这些肽凝聚物代表了一个有前景的平台,可用于多种大分子治疗剂的细胞内递送,这些治疗剂有可能治疗各种疾病(如癌症和代谢疾病),或作为基于mRNA的疫苗的载体。

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