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基于寡核苷酸的两亲嵌段共聚物与细胞膜模型的相互作用。

Interaction of oligonucleotide-based amphiphilic block copolymers with cell membrane models.

机构信息

Laboratório de Materiais Híbridos, Universidade Federal de São Paulo, Diadema, SP, Brazil.

出版信息

J Colloid Interface Sci. 2010 Jul 1;347(1):56-61. doi: 10.1016/j.jcis.2010.03.006. Epub 2010 Mar 15.

Abstract

Oligonucleotides have unique molecular recognition properties, being involved in biological mechanisms such as cell-surface receptor recognition or gene silencing. For their use in human therapy for drug or gene delivery, the cell membrane remains a barrier, but this can be obviated by grafting a hydrophobic tail to the oligonucleotide. Here we demonstrate that two oligonucleotides, one consisting of 12 guanosine units (G(12)), and the other one consisting of five adenosine and seven guanosine (A(5)G(7)) units, when functionalized with poly(butadiene), namely PB-G(12) and PB-A(5)G(7), can be inserted into Langmuir monolayers of dipalmitoyl phosphatidyl choline (DPPC), which served as a cell membrane model. PB-G(12) and PB-A(5)G(7) were found to affect the DPPC monolayer even at high surface pressures. The effects from PB-G(12) were consistently stronger, particularly in reducing the elasticity of the DPPC monolayers, which may have important biological implications. Multilayers of DPPC and nucleotide-based copolymers could be adsorbed onto solid supports, in the form of Y-type LB films, in which the molecular-level interaction led to lower energies in the vibrational spectra of the nucleotide-based copolymers. This successful deposition of solid films opens the way for devices to be produced which exploit the molecular recognition properties of the nucleotides.

摘要

寡核苷酸具有独特的分子识别特性,参与细胞表面受体识别或基因沉默等生物机制。为了将其用于人类治疗药物或基因递送,细胞膜仍然是一个障碍,但可以通过在寡核苷酸上嫁接疏水性尾巴来克服。在这里,我们证明了两种寡核苷酸,一种由 12 个鸟嘌呤单元组成(G(12)),另一种由五个腺嘌呤和七个鸟嘌呤单元组成(A(5)G(7)),当用聚丁二烯官能化时,即 PB-G(12)和 PB-A(5)G(7),可以插入二棕榈酰磷脂酰胆碱 (DPPC) 的 Langmuir 单层中,DPPC 单层用作细胞膜模型。即使在高表面压力下,也发现 PB-G(12) 和 PB-A(5)G(7) 会影响 DPPC 单层。PB-G(12) 的影响始终更强,特别是在降低 DPPC 单层的弹性方面,这可能具有重要的生物学意义。DPPC 和基于核苷酸的共聚物的多层可以以 Y 型 LB 膜的形式吸附到固体载体上,其中分子水平的相互作用导致基于核苷酸的共聚物的振动光谱中的能量降低。这种固体薄膜的成功沉积为开发利用核苷酸的分子识别特性的器件开辟了道路。

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