Department of Biotechnology, National Institute of Technology Durgapur, Durgapur 713209, India.
Material Processing and Microsystem Laboratory, CSIR─Central Mechanical Engineering Research Institute, Durgapur 713209, India.
ACS Appl Bio Mater. 2022 Apr 18;5(4):1476-1488. doi: 10.1021/acsabm.1c01216. Epub 2022 Mar 14.
Gold nanorods (AuNRs) remain well-developed inorganic nanocarriers of small molecules for a plethora of biomedical and therapeutic applications. However, the delivery of therapeutic proteins using AuNRs with high protein loading capacity (LC), serum stability, excellent target specificity, and minimal off-target protein release is not known. Herein, we report two bi-functional AuNR-protein nanoconjugates, AuNR@EGFP-BSA and AuNR@RNaseA-BSA, supramolecularly coated with folic acid-modified BSA (BSA) acting as biomimetic protein corona to demonstrate targeted cytosolic delivery of enhanced green fluorescent protein (EGFP) and therapeutic ribonuclease A enzyme (RNase A) in their functional forms. AuNR@EGFP-BSA and AuNR@RNaseA-BSA exhibit high LCs of ∼42 and ∼54%, respectively, increased colloidal stability, and rapid protein release in the presence of biological thiols. As a nanocarrier, AuNR@EGFP-BSA and AuNR@RNaseA-BSA show resistance to corona formation in high-serum media even after 24 h, guaranteeing a greater circulation lifetime. Folate receptor-targeting BSA on the AuNR surface facilitates the receptor-mediated internalization, followed by the release of EGFP and RNase A in HT29 cells. The green fluorescence dispersed throughout the cell's cytoplasm indicates successful cytosolic delivery of EGFP by AuNR@EGFP-BSA. AuNR@RNaseA-BSA-mediated therapeutic RNase A delivery in multicellular 3D spheroids of HT29 cells exhibits a radical reduction in the cellular RNA fluorescence intensity to 38%, signifying RNA degradation and subsequent cell death. The versatile nanoformulation strategy in terms of the anisotropic particle morphology, protein type, and ability for targeted delivery in the functional form makes the present AuNR-protein nanoconjugates a promising platform for potential application in cancer management.
金纳米棒(AuNRs)仍然是小分子的高度发达的无机纳米载体,在许多生物医学和治疗应用中都有应用。然而,利用具有高蛋白载量(LC)、血清稳定性、优异的靶向特异性和最小的脱靶蛋白释放的 AuNRs 来递送治疗蛋白尚不清楚。在这里,我们报告了两种双功能的 AuNR-蛋白纳米复合物,AuNR@EGFP-BSA 和 AuNR@RNaseA-BSA,它们通过叶酸修饰的 BSA(BSA)进行超分子包覆,作为仿生蛋白冠来证明增强型绿色荧光蛋白(EGFP)和治疗性核糖核酸酶 A 酶(RNase A)在其功能形式下的靶向细胞质递送。AuNR@EGFP-BSA 和 AuNR@RNaseA-BSA 分别表现出约 42%和 54%的高 LC,胶体稳定性增加,并且在存在生物硫醇的情况下快速释放蛋白质。作为纳米载体,即使在 24 小时后,AuNR@EGFP-BSA 和 AuNR@RNaseA-BSA 也能抵抗高血清介质中的冠形成,保证更长的循环寿命。AuNR 表面上的叶酸受体靶向 BSA 促进受体介导的内化,随后在 HT29 细胞中释放 EGFP 和 RNase A。绿色荧光分散在整个细胞质中,表明 AuNR@EGFP-BSA 成功实现了 EGFP 的细胞质递送。在 HT29 细胞的多细胞 3D 球体中,AuNR@RNaseA-BSA 介导的治疗性 RNase A 递释导致细胞 RNA 荧光强度降低到 38%,表明 RNA 降解和随后的细胞死亡。从各向异性颗粒形态、蛋白质类型和靶向递释能力等方面来看,这种多功能的纳米制剂策略使 AuNR-蛋白纳米复合物成为一种有前途的平台,可用于癌症治疗。