Aubin-Tam Marie-Eve, Hwang Wonmuk, Hamad-Schifferli Kimberly
Department of Biological Engineering, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, MA 02139, USA.
Proc Natl Acad Sci U S A. 2009 Mar 17;106(11):4095-100. doi: 10.1073/pnas.0807299106. Epub 2009 Feb 26.
Although nanoparticle-protein conjugates have been synthesized for numerous applications, bioconjugation remains a challenge, often resulting in denaturation or loss of protein function. This is partly because the protein-nanoparticle interface is poorly understood, which impedes the use of nanoparticles in nanomedicine. Although the effects of nanoparticle ligand and material on protein structure have been explored, the choice of the labeling site on the protein has not yet been systematically studied. To address this issue, we label cytochrome c site-specifically with a negatively charged Au nanoparticle via a covalent thiol-Au bond. The attachment site is controlled by cysteine mutations of surface residues. The effect of labeling on protein structure is probed by circular dichroism. Protein unfolding is the most severe when the nanoparticle is attached to the N- and C-terminal foldon, the core motif of cytochrome c. Also, when the nanoparticle is attached in the vicinity of charged residues, the amount of structural damage is greater because of salt-dependent electrostatic interactions with charged ligand bis(p-sulfonatophenyl) phenylphosphine on the nanoparticle. Molecular dynamics simulations also elucidate local to global structural perturbation depending on labeling site. These results suggest that the labeling site must be considered as one of the main design criteria for nanoparticle-protein conjugates.
尽管纳米颗粒 - 蛋白质共轭物已被合成用于众多应用,但生物共轭仍然是一个挑战,常常导致蛋白质变性或功能丧失。部分原因是蛋白质 - 纳米颗粒界面尚未得到充分理解,这阻碍了纳米颗粒在纳米医学中的应用。虽然已经探讨了纳米颗粒配体和材料对蛋白质结构的影响,但蛋白质上标记位点的选择尚未得到系统研究。为了解决这个问题,我们通过共价硫醇 - 金键将带负电荷的金纳米颗粒位点特异性地标记到细胞色素c上。附着位点由表面残基的半胱氨酸突变控制。通过圆二色性探测标记对蛋白质结构的影响。当纳米颗粒附着到细胞色素c的核心基序N - 和C - 末端折叠子上时,蛋白质展开最为严重。此外,当纳米颗粒附着在带电荷残基附近时,由于与纳米颗粒上带电荷配体双(对磺酸钠苯基)苯基膦的盐依赖性静电相互作用,结构损伤量更大。分子动力学模拟也阐明了取决于标记位点的局部到全局的结构扰动。这些结果表明,标记位点必须被视为纳米颗粒 - 蛋白质共轭物的主要设计标准之一。