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pH 敏感聚合物胶束为毒液肽提供了选择性和增强的溶细胞能力,可实现有效的细胞内递药。

pH-sensitive polymer micelles provide selective and potentiated lytic capacity to venom peptides for effective intracellular delivery.

机构信息

Department of Bioengineering and Molecular Engineering and Sciences Institute, University of Washington, Seattle, WA, 98195, United States.

Center for Neuroregeneration and Department of Neurosurgery, Houston Methodist Research Institute, Houston, TX, United States.

出版信息

Biomaterials. 2019 Feb;192:235-244. doi: 10.1016/j.biomaterials.2018.11.004. Epub 2018 Nov 9.

Abstract

Endocytosed biomacromolecule delivery systems must escape the endosomal trafficking pathway in order for their cargo to exert effects in other cellular compartments. Although endosomal release is well-recognized as one of the greatest barriers to efficacy of biologic drugs with intracellular targets, most drug carriers have relied on cationic materials that passively induce endosomal swelling and membrane rupture with low efficiency. To address the endosome release challenge, our lab has developed a diblock copolymer system for nucleic acid delivery that selectively displays a potent membrane-lytic peptide (melittin) in response to the pH drop during the endosomal maturation. To further optimize this system, we evaluated a panel of peptides with reported lytic activity in comparison to melittin. Nineteen different lytic peptides were synthesized and their membrane-lytic properties at both neutral and acidic pH characterized using a red blood cell hemolysis assay. The top five performing peptides were then conjugated to our pH-sensitive diblock copolymer via disulfide linkers and used to deliver a variety of nucleic acids to cultured mammalian cells as well as in vivo to the mouse brain. We demonstrate that the sharp pH-transition of VIPER compensates for potential advantages from pH-sensitive peptides, such that polymer-peptide conjugates with poorly selective but highly lytic peptides achieve safe and effective transfection both in vitro and in vivo. In addition, peptides that require release from polymer backbones for lysis were less effective in the VIPER system, likely due to limited endosomal reducing power of target cells. Finally, we show that certain peptides are potentiated in lytic ability by polymer conjugation and that these peptide-polymer constructs are most effective in vivo.

摘要

内吞的生物大分子递送系统必须逃脱内体运输途径,才能使其货物在其他细胞区室中发挥作用。尽管内体释放被认为是具有细胞内靶标的生物药物疗效的最大障碍之一,但大多数药物载体都依赖于阳离子材料,这些材料通过被动诱导内体肿胀和膜破裂来发挥作用,效率较低。为了解决内体释放的挑战,我们的实验室开发了一种用于核酸递送的两亲嵌段共聚物系统,该系统能够选择性地展示一种有效的膜裂解肽(蜂毒素),以响应内体成熟过程中的 pH 下降。为了进一步优化该系统,我们评估了一组具有报道的裂解活性的肽,与蜂毒素进行比较。合成了 19 种不同的裂解肽,并使用红细胞溶血测定法在中性和酸性 pH 条件下对其膜裂解特性进行了表征。然后,将前 5 种性能最佳的肽通过二硫键连接到我们的 pH 敏感嵌段共聚物上,并用于将各种核酸递送到培养的哺乳动物细胞以及体内的小鼠大脑。我们证明,VIPER 的尖锐 pH 转变弥补了 pH 敏感肽的潜在优势,因此具有选择性差但裂解活性高的聚合物-肽缀合物在体外和体内都能实现安全有效的转染。此外,对于裂解需要从聚合物主链中释放的肽,在 VIPER 系统中的效果较差,这可能是由于靶细胞的内体还原能力有限。最后,我们表明某些肽通过聚合物缀合而增强了裂解能力,并且这些肽-聚合物构建体在体内最有效。

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