Colloidal Stability of Chitosan/DNA Polyelectrolyte Complexes in Presence of Biological Polyanions

Q3 Materials Science
Jesrael Luz Elena Nando Rodríguez, Edgar Benjamín Figueroa Ochoa, Maite Renteria Urquiza, Lourdes Mónica Bravo-Anaya
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Abstract

Natural or synthetic polycations are used in nucleic acid-based therapies as complexing agents which interact electrostatically with nucleic acids, condense them into nanoparticles, protect them and control their entry into cells. However, although the literature on the formation of nanoparticles known as complexes is well documented, fewer studies have focused on the physical chemistry behind their disassembly, especially under physicochemical conditions found in an intracellular environment. There are several theories of the disassembly of these complexes, one of them consisting in the exchange between the polycations of these particles with biological polyanions. This project is focused on the study of the complexation mechanism of chitosan and calf-thymus DNA, as well as the stability of the obtained complexes in presence of biological polyanions, i.e., glycosaminoglycans (GAGs). In the presence of polyelectrolyte complexes, GAGs that are present in cells are expected to compete with nucleic acids and dissociate the complex if polycation–GAG association is thermodynamically favored. It is found that chitosan/DNA complexes colloidal stability depends on its [N+]/[P] charge ratio (R). Furthermore, it is determined that the aggregation onset of the complexes, generated by the addition of different GAGs, depends on the structure and the charge density of the GAGs.

Abstract Image

壳聚糖/DNA 聚电解质复合物在生物多阳离子存在下的胶体稳定性
天然或合成的多阳离子作为络合剂被用于以核酸为基础的疗法中,它们与核酸发生静电相互作用,将核酸凝结成纳米颗粒,保护核酸并控制核酸进入细胞。然而,尽管有关纳米颗粒形成复合物的文献记载很多,但很少有研究关注其解体背后的物理化学过程,尤其是在细胞内环境的物理化学条件下。关于这些复合物的解体有几种理论,其中之一是这些微粒的多阳离子与生物多阳离子之间的交换。本项目主要研究壳聚糖与小牛胸腺 DNA 的复合机制,以及所获得的复合物在生物多阳离子(即糖胺聚糖)存在下的稳定性。在多电解质复合物存在的情况下,如果多阳离子与 GAG 的结合在热力学上是有利的,那么细胞中存在的 GAG 就会与核酸竞争,并使复合物解离。研究发现,壳聚糖/DNA 复合物的胶体稳定性取决于其[N+]/[P-]电荷比(R)。此外,还确定了加入不同 GAG 后产生的复合物的聚集起始点取决于 GAG 的结构和电荷密度。
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来源期刊
Macromolecular Symposia
Macromolecular Symposia Materials Science-Polymers and Plastics
CiteScore
1.50
自引率
0.00%
发文量
226
期刊介绍: Macromolecular Symposia presents state-of-the-art research articles in the field of macromolecular chemistry and physics. All submitted contributions are peer-reviewed to ensure a high quality of published manuscripts. Accepted articles will be typeset and published as a hardcover edition together with online publication at Wiley InterScience, thereby guaranteeing an immediate international dissemination.
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