Department of Pharmaceutical Sciences, University of California, Irvine, 92697, United States.
Acc Chem Res. 2012 Jul 17;45(7):1077-88. doi: 10.1021/ar200241v. Epub 2011 Nov 21.
Silencing the expression of a target gene by RNA interference (RNAi) shows promise as a potentially revolutionizing strategy for manipulating biological (pathological) pathways at the translational level. However, the lack of reliable, efficient, versatile, and safe means for the delivery of small interfering RNA (siRNA) molecules, which are large in molecular weight, negatively charged, and subject to degradation, has impeded their use in basic research and therapy. Polyplexes of siRNA and polymers are the predominant mode of siRNA delivery, but innovative synthetic strategies are needed to further evolve them to generate the desired biological and therapeutic effects. This Account focuses on the design of polymeric vehicles for siRNA delivery based on an understanding of the molecular interactions between siRNA and cationic polymers. Ideal siRNA/polymer polyplexes should address an inherent design dilemma for successful gene silencing: (1) Cationic polymers must form tight complexes with siRNA via attractive electrostatic interactions during circulation and cellular internalization and (2) siRNA must dissociate from its cationic carrier in the cytoplasm before they are loaded into RNA-induced silencing complex (RISC) and initiate gene silencing. The physicochemical properties of polymers, which dictate their molecular affinity to siRNA, can be programmed to be altered by intracellular stimuli, such as acidic pH in the endosome and cytosolic reducers, subsequently inducing the siRNA/polymer polyplex to disassemble. Specific design goals include the reduction of the cationic density and the molecular weight, the loss of branched structure, and changes in the hydrophilicity/hydrophobicity of the polymeric siRNA carriers, via acid-responsive degradation and protonation processes within the endosome and glutathione (GSH)-mediated reduction in the cytoplasm, possibly in combination with gradual stimuli-independent hydrolysis. Acetals/ketals are acid-cleavable linkages that have been incorporated into polymeric materials for stimuli-responsive gene and drug delivery. Tailoring the ketalization ratio and the molecular weight of ketalized branched PEI (K-BPEI) offers molecular control of the intracellular trafficking of siRNA/polymer polyplexes and, therefore, the gene silencing efficiency. The ketalization of linear PEI (K-LPEI) enhances gene silencing in vitro and in vivo by improving siRNA complexation with the polymer during circulation and cellular internalization, supplementing proton buffering efficiency of the polymer in the endosome, and facilitating siRNA dissociation from the polymer in the cytoplasm, in a serum-resistant manner. Spermine polymerization via ketalization and esterification for multistep intracellular degradations provides an additional polymeric platform for improved siRNA delivery and highly biocompatible gene silencing. The chemistry presented in this Account will help lay the foundation for the development of innovative and strategic approaches that advance RNAi technology.
通过 RNA 干扰(RNAi)沉默靶基因的表达有望成为一种潜在的革命性策略,可在翻译水平上操纵生物(病理)途径。然而,由于缺乏可靠、高效、多功能和安全的手段来递送分子量较大、带负电荷且易于降解的小干扰 RNA(siRNA)分子,因此限制了它们在基础研究和治疗中的应用。siRNA 与聚合物的复合物是 siRNA 递送的主要模式,但需要创新的合成策略来进一步发展它们,以产生所需的生物学和治疗效果。本综述重点介绍了基于对 siRNA 与阳离子聚合物之间分子相互作用的理解而设计用于 siRNA 递送的聚合物载体。理想的 siRNA/聚合物复合物应该解决成功基因沉默的固有设计难题:(1)阳离子聚合物在循环和细胞内化过程中必须通过有吸引力的静电相互作用与 siRNA 形成紧密的复合物;(2)siRNA 必须在细胞质中与其阳离子载体解离,然后才能装载到 RNA 诱导的沉默复合物(RISC)中并启动基因沉默。聚合物的物理化学性质决定了其与 siRNA 的分子亲和力,可以通过细胞内刺激来编程改变,例如内体中的酸性 pH 值和细胞质中的还原剂,随后诱导 siRNA/聚合物复合物解体。具体的设计目标包括通过酸响应降解和质子化过程降低阳离子密度和分子量、丧失支化结构以及改变聚合物 siRNA 载体的亲水性/疏水性,这可能与逐渐的刺激独立水解相结合。缩醛/酮是可被酸裂解的键,已被纳入用于刺激响应性基因和药物递送的聚合物材料中。通过调节酮化比和酮化支化聚乙烯亚胺(K-BPEI)的分子量,可以对 siRNA/聚合物复合物的细胞内转运进行分子控制,从而提高基因沉默效率。线性聚乙烯亚胺(K-LPEI)的酮化通过改善聚合物在循环和细胞内化过程中与 siRNA 的复合物形成、补充聚合物在内体中的质子缓冲效率以及以抗血清的方式促进 siRNA 从聚合物中解离,从而增强体外和体内的基因沉默。通过酮化和酯化聚合精胺以进行多步细胞内降解提供了用于改进 siRNA 递送和高度生物相容的基因沉默的另一种聚合物平台。本综述中介绍的化学将有助于为推进 RNAi 技术的创新和战略方法的发展奠定基础。