生物物理和核磁共振分析显示HAX1和CLPB蛋白之间的结合亲和力

Huiqin Zhang , Yong Liu , Yunyan Li , Maosen Ruan , Shu Zhou , Junfeng Wang , Jing Yang
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摘要

hcls1相关蛋白X-1 (HAX1)是一种多功能线粒体蛋白,参与细胞凋亡和mRNA加工的调控,凋亡是细胞程序性死亡的关键过程。尽管具有重要意义,但HAX1的结构数据有限,阻碍了对其生物学功能的全面了解。值得注意的是,酪蛋白溶解线粒体基质肽酶伴侣亚基B (CLPB)已被确定为HAX1的相互作用伙伴,但控制它们相互作用的生物物理性质和结合亲和力仍不清楚。在这项研究中,我们通过重组表达和纯化,对全长人HAX1和CLPB进行了全面的生物物理表征。通过尺寸排斥色谱、动态光散射和圆二色光谱等方法,我们成功地建立了它们的生物物理性质,揭示了它们的不同结构特征,CLPB显示α-螺旋含量,而HAX1显示无序性质。此外,我们利用溶液态核磁共振(NMR)光谱来探测它们的结合亲和力。我们的研究结果表明,HAX1和CLPB之间形成了稳定的多聚配合物,并在微摩尔的低范围内量化了它们的高亲和相互作用的解离常数。这些结果为进一步深入研究HAX1-CLPB相互作用的动力学和能量学奠定了基础,最终有助于全面了解它们的功能机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Biophysical and NMR analysis reveals binding affinity between HAX1 and CLPB proteins

Biophysical and NMR analysis reveals binding affinity between HAX1 and CLPB proteins
HCLS1-associated protein X-1 (HAX1) is a multifunctional mitochondrial protein involved in the regulation of apoptosis, a crucial process of programmed cell death, and mRNA processing. Despite its significance, limited structural data is available for HAX1, hindering a comprehensive understanding of its biological function. Notably, the caseinolytic mitochondrial matrix peptidase chaperone subunit B (CLPB) has been identified as an interacting partner of HAX1, yet the biophysical properties and binding affinity governing their interaction remain poorly defined. In this study, we present a thorough biophysical characterization of full-length human HAX1 and CLPB, accomplished through recombinant expression and purification. By employing size exclusion chromatography, dynamic light scattering, and circular dichroism spectroscopy, we successfully established their biophysical properties, revealing contrasting structural features, with CLPB displaying α-helical content and HAX1 exhibiting a disordered nature. Moreover, we employed solution-state nuclear magnetic resonance (NMR) spectroscopy to probe their binding affinity. Our findings demonstrate the formation of stable multimeric complexes between HAX1 and CLPB, and we quantified a dissociation constant in the low range of micro-molar for their high affinity interaction. These results lay the foundation for further in-depth investigations into the dynamics and energetics governing the HAX1-CLPB interaction, ultimately contributing to a comprehensive understanding of their functional mechanisms.
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来源期刊
Magnetic Resonance Letters
Magnetic Resonance Letters Analytical Chemistry, Spectroscopy, Radiology and Imaging, Biochemistry, Genetics and Molecular Biology (General)
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