Dipalmitoyl-phosphatidylserine-filled cationic maltodextrin nanoparticles exhibit enhanced efficacy for cell entry and intracellular protein delivery in phagocytic THP-1 cells.
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引用次数: 0
Abstract
Vaccination through the upper respiratory tract is a promising strategy, and particulate antigens, such as antigens associated with nanoparticles, triggered a stronger immune response than the sole antigens. Cationic maltodextrin-based nanoparticles loaded with phosphatidylglycerol (NPPG) are efficient for intranasal vaccination but non-specific to trigger immune cells. Here we focused on phosphatidylserine (PS) receptors, specifically expressed by immune cells including macrophages, to improve nanoparticle targeting through an efferocytosis-like mechanism. Consequently, the lipids associated with NPPG have been substituted by PS to generate cationic maltodextrin-based nanoparticles with dipalmitoyl-phosphatidylserine (NPPS). Both NPPS and NPPG exhibited similar physical characteristics and intracellular distribution in THP-1 macrophages. NPPS cell entry was faster and higher (two times more) than NPPG. Surprisingly, competition of PS receptors with phospho-L-serine did not alter NPPS cell entry and annexin V did not preferentially interact with NPPS. Although the protein association is similar, NPPS delivered more proteins than NPPG in cells. On the contrary, the proportion of mobile nanoparticles (50%), the movement speed of nanoparticles (3 µm/5 min), and protein degradation kinetics in THP-1 were not affected by lipid substitution. Together, the results indicate that NPPS enter cells and deliver protein better than NPPG, suggesting that modification of the lipids of cationic maltodextrin-based nanoparticles may be a useful strategy to enhance nanoparticle efficacy for mucosal vaccination.
通过上呼吸道接种疫苗是一种很有前途的策略,颗粒抗原,如与纳米颗粒相关的抗原,比单一抗原触发更强的免疫反应。携带磷脂酰甘油(NPPG)的阳离子麦芽糖糊精纳米颗粒可有效用于鼻内疫苗接种,但对触发免疫细胞无特异性。在这里,我们专注于磷脂酰丝氨酸(PS)受体,通过免疫细胞包括巨噬细胞特异性表达,通过efferocysis样机制提高纳米颗粒靶向性。因此,与NPPG相关的脂质被PS取代,生成了带有双棕榈酰磷脂酰丝氨酸(NPPS)的阳离子麦芽糖糊精纳米颗粒。NPPS和NPPG在THP-1巨噬细胞中表现出相似的物理特征和细胞内分布。与NPPG相比,NPPS的细胞进入速度更快、更高(2倍以上)。令人惊讶的是,PS受体与磷酸- l -丝氨酸的竞争并没有改变NPPS细胞进入,膜联蛋白V也没有优先与NPPS相互作用。虽然两者的蛋白质关联相似,但NPPS在细胞中比NPPG传递更多的蛋白质。相反,THP-1中可移动纳米颗粒的比例(50%)、纳米颗粒的移动速度(3µm/5 min)和蛋白质降解动力学不受脂质取代的影响。综上所述,研究结果表明NPPS比NPPG更能进入细胞并传递蛋白质,这表明对阳离子麦芽糖糊精纳米颗粒的脂质进行修饰可能是提高纳米颗粒在粘膜疫苗接种中的功效的一种有效策略。
Biomolecular ConceptsBiochemistry, Genetics and Molecular Biology-Biochemistry, Genetics and Molecular Biology (all)
CiteScore
5.30
自引率
0.00%
发文量
27
审稿时长
12 weeks
期刊介绍:
BioMolecular Concepts is a peer-reviewed open access journal fostering the integration of different fields of biomolecular research. The journal aims to provide expert summaries from prominent researchers, and conclusive extensions of research data leading to new and original, testable hypotheses. Aspects of research that can promote related fields, and lead to novel insight into biological mechanisms or potential medical applications are of special interest. Original research articles reporting new data of broad significance are also welcome. Topics: -cellular and molecular biology- genetics and epigenetics- biochemistry- structural biology- neurosciences- developmental biology- molecular medicine- pharmacology- microbiology- plant biology and biotechnology.