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为高效的细胞质蛋白递呈而定制胍基丰富的聚合物。

Tailoring guanidyl-rich polymers for efficient cytosolic protein delivery.

机构信息

South China Advanced Institute for Soft Matter Science and Technology, School of Molecular Science and Engineering, South China University of Technology, Guangzhou 510641, China; Shanghai Key Laboratory of Regulatory Biology, School of Life Sciences, East China Normal University, Shanghai 200241, China.

South China Advanced Institute for Soft Matter Science and Technology, School of Molecular Science and Engineering, South China University of Technology, Guangzhou 510641, China.

出版信息

J Control Release. 2020 Apr 10;320:412-420. doi: 10.1016/j.jconrel.2020.01.056. Epub 2020 Jan 31.

Abstract

Cytosolic protein delivery is important for the development of protein therapeutics towards intracellular targets. Guanidyl polymers exhibit high binding affinity with cargo proteins, and thus were designed as carriers for intracellular protein delivery. However, the structure-activity relationship and mechanism of these polymers in cytosolic protein delivery remained to be investigated. In this study, we synthesized a total number of eighteen guanidyl-rich polymers by grafting various guanidyl containing compounds onto a polyethylenimine scaffold. The investigated guanidyl analogues were consisted of a guanidyl group and a hydrophobic component including cyclohexane, benzene, and alkanes with various chain lengths. It is surprising that only the polymers with both benzene and guanidyl possessed high efficiency in cytosolic protein delivery. Further results showed that all the synthesized polymers have efficient protein binding in water and high cellular uptake, but these polymers except the benzene-guanidyl based one enter the cytosol of cells without carrying their cargo proteins, suggesting poor stability of the polymer/protein complexes in culture medium. Paired guanidinium-π interactions between the ligands on benzene-guanidyl polymers are critical to the stabilization of polymer/protein complexes. In addition, a lead polymer in the library exhibited robust delivery efficacy to various cargo proteins, while maintaining their bioactivity after cell internalization. The results suggest that complex stability is a critical factor in polymer-mediated intracellular protein delivery systems, and provide new insights to guide design of polymeric protein vehicles.

摘要

细胞质蛋白递呈对于开发针对细胞内靶点的蛋白质治疗药物非常重要。胍基聚合物与货物蛋白具有高结合亲和力,因此被设计为细胞内蛋白质递呈的载体。然而,这些聚合物在细胞质蛋白递呈中的结构-活性关系和机制仍有待研究。在这项研究中,我们通过将各种胍基化合物接枝到聚亚乙基亚胺支架上,合成了总共 18 种胍基丰富的聚合物。研究的胍基类似物由胍基基团和疏水性成分组成,疏水性成分包括环己烷、苯和具有不同链长的烷烃。令人惊讶的是,只有同时具有苯和胍基的聚合物在细胞质蛋白递呈中具有高效性。进一步的结果表明,所有合成的聚合物在水中都具有高效的蛋白结合能力和高细胞摄取能力,但除了苯-胍基聚合物之外的这些聚合物在没有携带货物蛋白的情况下进入细胞的细胞质,这表明聚合物/蛋白复合物在培养基中的稳定性较差。配体之间的成对胍基-π相互作用对聚合物/蛋白复合物的稳定性至关重要。此外,文库中的一种先导聚合物对各种货物蛋白表现出强大的递呈功效,同时在细胞内化后保持其生物活性。这些结果表明,复合物稳定性是聚合物介导的细胞内蛋白质递呈系统的关键因素,并为指导聚合物蛋白载体的设计提供了新的见解。

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