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一种对细胞内蛋白质递送具有优异血清耐受性的光活化聚合物。

A light-activated polymer with excellent serum tolerance for intracellular protein delivery.

作者信息

Ren Lanfang, Jiang Li, Ren Qianyi, Lv Jia, Zhu Linyong, Cheng Yiyun

机构信息

Shanghai Frontiers Science Center of Genome Editing and Cell Therapy, Shanghai Key Laboratory of Regulatory Biology, School of Life Sciences, East China Normal University Shanghai 200241 China

School of Biomedical Engineering, Shanghai Jiaotong University Shanghai 200240 China.

出版信息

Chem Sci. 2023 Jan 21;14(8):2046-2053. doi: 10.1039/d2sc05848k. eCollection 2023 Feb 22.

Abstract

The design of efficient materials for intracellular protein delivery has attracted great interest in recent years; however, most current materials for this purpose are limited by poor serum stability due to the early release of cargoes triggered by abundant serum proteins. Here, we propose a light-activated crosslinking (LAC) strategy to prepare efficient polymers with excellent serum tolerance for intracellular protein delivery. A cationic dendrimer engineered with photoactivatable -nitrobenzene moieties co-assembles with cargo proteins ionic interactions, followed by light activation to yield aldehyde groups on the dendrimer and the formation of imine bonds with cargo proteins. The light-activated complexes show high stability in buffer and serum solutions, but dis-assemble under low pH conditions. As a result, the polymer successfully delivers cargo proteins green fluorescent protein and β-galactosidase into cells with maintained bioactivity even in the presence of 50% serum. The LAC strategy proposed in this study provides a new insight to improve the serum stability of polymers for intracellular protein delivery.

摘要

近年来,用于细胞内蛋白质递送的高效材料设计引起了极大关注;然而,目前大多数用于此目的的材料由于丰富的血清蛋白引发的货物过早释放而受到血清稳定性差的限制。在此,我们提出一种光活化交联(LAC)策略,以制备对细胞内蛋白质递送具有优异血清耐受性的高效聚合物。一种用可光活化的硝基苯部分工程化的阳离子树枝状聚合物与货物蛋白通过离子相互作用共组装,然后通过光活化在树枝状聚合物上产生醛基并与货物蛋白形成亚胺键。光活化复合物在缓冲液和血清溶液中显示出高稳定性,但在低pH条件下会分解。结果,该聚合物成功地将货物蛋白绿色荧光蛋白和β-半乳糖苷酶递送至细胞中,即使在存在50%血清的情况下仍保持生物活性。本研究中提出的LAC策略为提高用于细胞内蛋白质递送的聚合物的血清稳定性提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2ee0/9945510/f5d46d380bfb/d2sc05848k-f1.jpg

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