Huang Rui, Fedeli Stefano, Hirschbiegel Cristina-Maria, Zhang Xianzhi, Rotello Vincent M
Department of Chemistry, University of Massachusetts Amherst, 710 North Pleasant Street, Amherst, Massachusetts 01003, United States.
ACS Nanosci Au. 2023 Nov 8;4(1):62-68. doi: 10.1021/acsnanoscienceau.3c00042. eCollection 2024 Feb 21.
Ligand dynamics plays a critical role in the chemical and biological properties of gold nanoparticles (AuNPs). In this study, ligands featuring hydrophobic alkanethiol interiors and hydrophilic shells were used to systematically examine the effects of ligand headgroups on the ligand dynamics. Solution nuclear magnetic resonance (NMR) spectroscopy provided quantitative insight into the monolayer ligand dynamics. Notably, the introduction of hydrophobic moieties to the cationic headgroups significantly decreased ligand conformational mobility; however, variations in hydrophobicity among these moieties had a limited effect on this reduction. Further examination of ligand dynamics under various physiological conditions, including ionic strength and temperature, showed that ligands bound to the AuNP surface become less conformationally mobile with an increase in ionic strength or decreasing temperature. This exploration of ligand dynamics provides insight into designing nanoparticles tailored to specific biological applications.
配体动力学在金纳米颗粒(AuNPs)的化学和生物学性质中起着关键作用。在本研究中,具有疏水烷硫醇内部和亲水外壳的配体被用于系统地研究配体头基对配体动力学的影响。溶液核磁共振(NMR)光谱提供了对单层配体动力学的定量见解。值得注意的是,向阳离子头基引入疏水部分显著降低了配体构象流动性;然而,这些部分之间疏水性的变化对这种降低的影响有限。在包括离子强度和温度在内的各种生理条件下对配体动力学的进一步研究表明,随着离子强度的增加或温度的降低,与AuNP表面结合的配体构象流动性降低。这种对配体动力学的探索为设计适用于特定生物应用的纳米颗粒提供了见解。