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阐明季铵化淀粉纳米颗粒介导的小干扰RNA细胞递送机制。

Elucidating siRNA Cellular Delivery Mechanism Mediated by Quaternized Starch Nanoparticles.

作者信息

Amar-Lewis Eliz, Cohen Limor, Chintakunta Ramesh, Benafsha Chen, Lavi Yael, Goldbart Riki, Traitel Tamar, Gheber Levi A, Kost Joseph

机构信息

Ilse Katz Institute for Nanoscale Science & Technology, Ben-Gurion University of the Negev, Beer-Sheva, 84105, Israel.

Department of Chemical Engineering, Ben-Gurion University of the Negev, Beer-Sheva, 84105, Israel.

出版信息

Small. 2024 Dec;20(51):e2405524. doi: 10.1002/smll.202405524. Epub 2024 Oct 2.

Abstract

Starch-based nanoparticles are highly utilized in the realm of drug delivery taking advantage of their biocompatibility and biodegradability. Studies have utilized Quaternized starch (Q-starch) for small interfering RNA (siRNA) delivery, in which quaternary amines enable interaction with negatively charged siRNA, resulting in self-assembly complexation. Although reports present numerous applications, the demonstrated efficacy is nonetheless limited due to undiscovered cellular mechanistic delivery. In this study, a deep dive into Q-starch/siRNA complexes' cellular mechanism and kinetics at the cellular level is revealed using single-particle tracking and cell population level using imaging flow cytometry. Uptake studies depict the efficient cellular internalization via endocytosis while a significant fraction of complexes' intracellular fate is lysosome. Utilizing single-particle tracking, it is found that an average of 15% of cellular detected complexes escape the endosome which holds the potential for the integration in the cytoplasmatic gene silencing mechanism. Additional experimental manipulations (overcoming endosomal escape) demonstrate that the complex's disassembly is the rate-limiting step, correlating Q-starch's structure-function properties as siRNA carrier. Structure-function properties accentuating the high affinity of the interaction between Q-starch's quaternary groups and siRNA's phosphate groups that results in low release efficiency. However, low-frequency ultrasound (20 kHz) application may have induced siRNA release resulting in faster gene silencing kinetics.

摘要

基于淀粉的纳米颗粒因其生物相容性和生物可降解性而在药物递送领域得到高度应用。研究已将季铵化淀粉(Q-淀粉)用于小干扰RNA(siRNA)递送,其中季铵基团能够与带负电荷的siRNA相互作用,从而导致自组装络合。尽管有大量应用的报道,但由于尚未发现细胞机制性递送,所展示的疗效仍然有限。在本研究中,通过单粒子追踪在细胞水平上深入研究了Q-淀粉/siRNA复合物的细胞机制和动力学,并使用成像流式细胞术在细胞群体水平上进行了研究。摄取研究表明通过内吞作用实现了有效的细胞内化,而相当一部分复合物的细胞内命运是溶酶体。利用单粒子追踪发现,平均15%的细胞内检测到的复合物从内涵体中逃逸,这为其整合到细胞质基因沉默机制中提供了可能性。额外的实验操作(克服内涵体逃逸)表明复合物的解体是限速步骤,这与Q-淀粉作为siRNA载体的结构-功能特性相关。结构-功能特性强调了Q-淀粉的季铵基团与siRNA的磷酸基团之间相互作用的高亲和力,导致释放效率较低。然而,应用低频超声(20kHz)可能会诱导siRNA释放,从而加快基因沉默动力学。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96b1/11657042/c80d0040a543/SMLL-20-2405524-g004.jpg

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