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基于蛋白质的荧光纳米团簇的分子伴侣/聚合物复合以抵抗二氧化硅包封诱导的物理化学应激。

Chaperone/Polymer Complexation of Protein-Based Fluorescent Nanoclusters against Silica Encapsulation-Induced Physicochemical Stresses.

机构信息

Department of Chemistry, National Cheng Kung University, Tainan 70101, Taiwan.

Marquette University School of Dentistry, Milwaukee, Wisconsin 53233, United States.

出版信息

Biomacromolecules. 2024 Oct 14;25(10):6515-6525. doi: 10.1021/acs.biomac.4c00689. Epub 2024 Sep 17.

Abstract

Silica encapsulation under ambient conditions is commonly used to shield protein-based nanosystems from chemical stress. However, encapsulation-induced photo- and structural instabilities at elevated temperatures have been overlooked. Using bovine serum albumin-capped fluorescent gold nanoclusters (BSA-AuNCs) as a model, we demonstrated that chaperone/polymer layer-by-layer complexation can stabilize the template to resist encapsulation-induced fragmentation/reorganization and emission increases at 37 °C or higher temperatures. We first wrapped BSA-AuNCs with α-crystallin chaperones (α-Crys) to gain the highest thermal stability at a 1:50 molar ratio and then enfolded BSA-AuNC/α-Crys with thermoresponsive poly--isopropylacrylamide (PNIPAM) at 60 °C to shield silica interaction and increase the chaperone-client protein accessibility. The resulting BSA-AuNC/α-Crys/PNIPAM (BαP) was encapsulated by a sol-gel process to yield BαP-Si (∼80 ± 4.5 nm), which exhibited excellent structural integrity and photostability against chemical and thermal stresses. Moreover, targeted BαP-Si demonstrated prolonged fluorescence stability for cancer cell imaging. This template stabilization strategy for silica encapsulation is biocompatible and applicable to other protein-based nanosystems.

摘要

在环境条件下进行二氧化硅封装通常用于保护基于蛋白质的纳米系统免受化学应激。然而,封装诱导的光和结构不稳定性在高温下被忽视了。使用牛血清白蛋白包覆的荧光金纳米团簇(BSA-AuNCs)作为模型,我们证明了伴侣蛋白/聚合物层层复合可以稳定模板,抵抗封装诱导的碎片化/重组以及在 37°C 或更高温度下的发射增加。我们首先用α-晶体蛋白(α-Crys)包裹 BSA-AuNCs,以在 1:50 的摩尔比下获得最高的热稳定性,然后在 60°C 下用热敏性聚异丙基丙烯酰胺(PNIPAM)包裹 BSA-AuNC/α-Crys,以屏蔽二氧化硅相互作用并增加伴侣蛋白-客户蛋白的可及性。所得的 BSA-AuNC/α-Crys/PNIPAM(BαP)通过溶胶-凝胶过程进行封装,得到 BαP-Si(约 80±4.5nm),其表现出优异的结构完整性和对化学和热应激的光稳定性。此外,靶向 BαP-Si 显示出延长的荧光稳定性,可用于癌症细胞成像。这种用于二氧化硅封装的模板稳定策略具有生物相容性,适用于其他基于蛋白质的纳米系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b55e/11480988/ed50cefe45c2/bm4c00689_0001.jpg

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