Institute of Inorganic Chemistry II, Ulm University, Albert-Einstein-Allee 11, Ulm 89081, Germany.
Institute of Electrochemistry, Ulm University, Albert-Einstein-Allee 47, Ulm 89081, Germany.
Langmuir. 2024 Feb 27;40(8):4294-4305. doi: 10.1021/acs.langmuir.3c03513. Epub 2024 Feb 12.
The adsorption of cationic peptide JM21 onto different mesoporous silica nanoparticles (MSNs) from an aqueous solution was studied as a function of pH. In agreement with the literature, the highest loading degrees could be achieved at pH close to the isoelectric point of the peptide where the peptide-peptide repulsion is minimum. However, mesopore size, mesopore geometry, and surface polarity all had an influence on the peptide adsorption in terms of both affinity and maximum loading at a given pH. This adsorption behavior could largely be explained by a combination of pH-dependent electrostatic interactions and confinement effects. It is demonstrated that hydrophobic interactions enhance the degree of peptide adsorption under pH conditions where the electrostatic attraction was absent in the case of mesoporous organosilica nanoparticles (MONs). The lower surface concentration of silanol groups for MON led to a lower level of peptide adsorption under optimum pH conditions compared to all-silica particles. Finally, the study confirmed the protective role of MSNs in preserving the biological activity of JM#21 against enzymatic degradation, even for large-pore MSNs, emphasizing their potential as nanocarriers for therapeutic peptides. By integrating experimental findings with theoretical modeling, this research elucidates the complex interplay of factors that influence peptide-silica interactions, providing vital insights for optimizing peptide loading and stabilization in biomedical applications.
研究了阳离子肽 JM21 在不同介孔硅纳米粒子 (MSNs) 上从水溶液中的吸附,作为 pH 值的函数。与文献一致,在接近肽的等电点的 pH 值下,可以实现最高的负载度,此时肽-肽排斥最小。然而,介孔大小、介孔几何形状和表面极性都对肽在给定 pH 值下的吸附亲和力和最大负载度有影响。这种吸附行为可以通过 pH 依赖性静电相互作用和限制效应的组合来很好地解释。研究表明,在介孔有机硅纳米粒子 (MONs) 中不存在静电吸引的情况下,疏水力增强了在没有静电吸引的 pH 条件下肽的吸附程度。与全硅粒子相比,MON 的硅醇基团表面浓度较低,导致在最佳 pH 条件下肽的吸附水平较低。最后,该研究证实了 MSNs 在保护 JM#21 生物活性免受酶降解方面的保护作用,即使是大孔 MSNs 也能发挥作用,强调了它们作为治疗性肽的纳米载体的潜力。通过将实验结果与理论模型相结合,本研究阐明了影响肽-硅相互作用的因素的复杂相互作用,为优化生物医学应用中的肽负载和稳定提供了重要的见解。