Huang Wei, Lü Ming, Gao Zhong-Gao, Jin Ming-Ji, Yang Chang-Qing
Institute of Materia Medica, Chinese Academy of Medical Sciences & Peking Union Medical College, Beijing 100050, China.
Yao Xue Xue Bao. 2011 Mar;46(3):344-9.
The aim of this paper is to report the synthesis of the mPEG-PCL-g-PEI copolymers as small interfering RNA (siRNA) delivery vector, and exploration of the siRNA delivery potential of mPEG-PCL-g-PEI in vitro. The diblock copolymers mPEG-PCL-OH was prepared through the ring-opening polymerization. Then, the hydroxyl terminal (-OH) of mPEG-PCL-OH was chemically converted into the carboxy (-COOH) and N-hydroxysuccinimide (NHS) in turn to prepare mPEG-PCL-NHS. The branched PEI was reacted with mPEG-PCL-NHS to synthesize the ternary copolymers mPEG-PCL-g-PEI. The structure of mPEG-PCL-g-PEI copolymers was characterized with Fourier transform infrared spectroscopy (FTIR), nuclear magnetic resonance (NMR) and gel permeation chromatography (GPC). The mPEG-PCL-g-PEI/siRNA nanoparticles were prepared by complex coacervation, and the nanoparticles size and zeta potential were determined, separately. The cytotoxicities of mPEG-PCL-g-PEI/siRNA nanoparticles and PEI/siRNA nanoparticles were compared through cells MTT assays in vitro. The inhibition efficiencies of firefly luciferase gene expression by mPEG-PCL-g-PEI/ siRNA nanoparticle at various N/P ratios were investigated through cell transfection in vitro. The experimental results suggested that the ternary (mPEG5k-PCL(1.2k))1.4-g-PEI(10k) copolymers were successfully synthesized. (mPEG(5k)-PCL(1.2k))1.4-g-PEI(10k) could condense siRNA into nanoparticles (50-200 nm) with positive zeta potential. MTT assay results showed that the cytotoxicity of (mPEG(5k)-PCL(1.2k))1.4-g-PEI(10k)/siRNA nanoparticles was significantly lower than that of PEI(10k)/siRNA nanoparticles (P < 0.05). The expression of firefly luciferase gene could be significantly down-regulated at a range of N/P ratio from 50 to 150 (P < 0.01), and maximally inhibited at the N/P ratio of 125. The mPEG-PCL-g-PEI polymers could delivery siRNA into cells to inhibit the expression of target gene with very low cytotoxicity, which suggested that mPEG-PCL-g-PEI could serve as a new type of siRNA delivery vector.
本文旨在报道聚乙二醇单甲醚-聚己内酯-聚醚酰亚胺(mPEG-PCL-g-PEI)共聚物作为小干扰RNA(siRNA)递送载体的合成,并在体外探索mPEG-PCL-g-PEI递送siRNA的潜力。通过开环聚合制备了两嵌段共聚物mPEG-PCL-OH。然后,依次将mPEG-PCL-OH的羟基端(-OH)化学转化为羧基(-COOH)和N-羟基琥珀酰亚胺(NHS),以制备mPEG-PCL-NHS。使支化聚醚酰亚胺与mPEG-PCL-NHS反应,合成三元共聚物mPEG-PCL-g-PEI。用傅里叶变换红外光谱(FTIR)、核磁共振(NMR)和凝胶渗透色谱(GPC)对mPEG-PCL-g-PEI共聚物的结构进行了表征。通过复凝聚法制备了mPEG-PCL-g-PEI/siRNA纳米颗粒,并分别测定了纳米颗粒的尺寸和zeta电位。通过体外细胞MTT试验比较了mPEG-PCL-g-PEI/siRNA纳米颗粒和PEI/siRNA纳米颗粒的细胞毒性。通过体外细胞转染研究了mPEG-PCL-g-PEI/siRNA纳米颗粒在不同N/P比下对萤火虫荧光素酶基因表达的抑制效率。实验结果表明成功合成了三元(mPEG5k-PCL(1.2k))1.4-g-PEI(10k)共聚物。(mPEG(5k)-PCL(1.2k))1.4-g-PEI(10k)能够将siRNA浓缩成具有正zeta电位的纳米颗粒(50-200 nm)。MTT试验结果表明,(mPEG(5k)-PCL(1.2k))1.4-g-PEI(10k)/siRNA纳米颗粒的细胞毒性显著低于PEI(10k)/siRNA纳米颗粒(P<0.05)。在N/P比为50至150的范围内,萤火虫荧光素酶基因的表达可被显著下调(P<0.01),在N/P比为125时抑制作用最大。mPEG-PCL-g-PEI聚合物能够将siRNA递送至细胞中以抑制靶基因的表达,且细胞毒性非常低,这表明mPEG-PCL-g-PEI可作为一种新型的siRNA递送载体。