Department of Pharmaceutics and Pharmaceutical Chemistry, The University of Utah, Salt Lake City, UT 84108, USA.
Biomaterials. 2012 Feb;33(5):1651-62. doi: 10.1016/j.biomaterials.2011.11.006. Epub 2011 Nov 29.
Although polymers, polyplexes, and cells are exposed to various extracellular and intracellular pH environments during polyplex preparation and polymeric transfection, the impact of environmental pH on polymeric transfection has not yet been investigated. This study aims to understand the influence of environmental pH on polymeric transfection by modulating the pH of the transfection medium or the culture medium. Changes in the extracellular pH affected polymeric transfection by way of complex factors such as pH-induced changes in polymer characteristics (e.g., proton buffering capacity and ionization), polyplex characteristics (e.g., size, surface charge, and decomplexation), and cellular characteristics (e.g., cellular uptake, cell cycle phases, and intracellular pH environment). Notably, acidic medium delayed endocytosis, endosomal acidification, cytosolic release, and decomplexation of polyplexes, thereby negatively affecting gene expression. However, acidic medium inhibited mitosis and reduced dilution of gene expression, resulting in increased transfection efficiency. Compared to pH 7.4 medium, acidic transfection medium reduced gene expression 1.6-7.7-fold whereas acidic culture medium enhanced transfection efficiency 2.1-2.6-fold. Polymeric transfection was affected more by the culture medium than by the transfection medium. Understanding the effects of extracellular pH during polymeric transfection may stimulate new strategies for determining effective and safe polymeric gene carriers.
尽管聚合物、多聚物复合物和细胞在多聚物复合物制备和聚合物转染过程中会暴露于各种细胞外和细胞内 pH 环境中,但环境 pH 对聚合物转染的影响尚未得到研究。本研究旨在通过调节转染培养基或培养基的 pH 值来了解环境 pH 对聚合物转染的影响。细胞外 pH 的变化通过复杂因素影响聚合物转染,例如聚合物特性(例如质子缓冲能力和离解)、多聚物复合物特性(例如大小、表面电荷和复合物解离)和细胞特性(例如细胞摄取、细胞周期阶段和细胞内 pH 环境)的 pH 诱导变化。值得注意的是,酸性培养基延迟了内吞作用、内涵体酸化、细胞质释放和多聚物复合物的复合物解离,从而对基因表达产生负面影响。然而,酸性培养基抑制有丝分裂并减少基因表达的稀释,从而提高转染效率。与 pH 7.4 培养基相比,酸性转染培养基使基因表达降低了 1.6-7.7 倍,而酸性培养基使转染效率提高了 2.1-2.6 倍。聚合物转染受培养基的影响大于转染培养基。了解聚合物转染过程中的细胞外 pH 影响可能会刺激确定有效和安全的聚合物基因载体的新策略。