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纳米颗粒诱导 MPT63 的α-螺旋和β-折叠构象转换,从而减轻其免疫原性反应。

Nanoparticle Induced Conformational Switch Between α-Helix and β-Sheet Attenuates Immunogenic Response of MPT63.

机构信息

Structural Biology & Bio-Informatics Division , CSIR-Indian Institute of Chemical Biology , 4, Raja S. C. Mallick Road , Kolkata 700032 , India.

Department of Molecular Medicine , Bose Institute , Kolkata 700054 , India.

出版信息

Langmuir. 2018 Jul 31;34(30):8807-8817. doi: 10.1021/acs.langmuir.8b00354. Epub 2018 Jul 20.

Abstract

Although significant efforts have been devoted to develop nanoparticle-based biopharmaceuticals, it is not understood how protein conformation and nanoparticle surface modulate each other in optimizing the activity and/or toxicity of the biological molecules. This is particularly important for a protein, which can adopt different conformational states separated by a relatively small energy barrier. In this paper, we have studied nanoparticle binding-induced conformational switch from β-sheet to α-helix of MPT63, a small major secreted protein from Mycobacterium tuberculosis and a drug target against Tuberculosis. The binding of magnetite nanoparticles to MPT63 results in a β-sheet to α-helix switch near the sequence stretch between the 19th and 30th amino acids. As a consequence, the immunogenic response of the protein becomes compromised, which could be restored by protein engineering. This study emphasizes that conformational stability toward NP surface binding may require optimization involving genetic engineering for development of a nanoparticle conjugated pharmaceutical.

摘要

尽管已经投入了大量的努力来开发基于纳米粒子的生物制药,但对于蛋白质构象和纳米粒子表面如何相互调节以优化生物分子的活性和/或毒性,我们还不太了解。对于蛋白质来说,这一点尤为重要,因为蛋白质可以通过相对较小的能量障碍来采用不同的构象状态。在本文中,我们研究了 MPT63 的构象转变,MPT63 是结核分枝杆菌的一种小的主要分泌蛋白,也是一种抗结核药物靶点。MPT63 与磁铁矿纳米粒子的结合导致在第 19 到 30 个氨基酸之间的序列延伸附近发生从 β-折叠到 α-螺旋的转变。结果,蛋白质的免疫原性反应受到损害,而通过蛋白质工程可以恢复这种损害。这项研究强调,为了开发与纳米粒子结合的药物,针对 NP 表面结合的构象稳定性可能需要通过遗传工程进行优化。

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