酵母和人类细胞色素 c 在生理离子强度下与心磷脂纳米盘的结合

IF 3.8 2区 化学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Journal of Inorganic Biochemistry Pub Date : 2024-08-13 DOI:10.1016/j.jinorgbio.2024.112699
Ariel K. Frederick , Bruce E. Bowler
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引用次数: 0

摘要

细胞色素 c(Cytc)与含心磷脂(CL)的膜的结合引起了人们的极大兴趣,因为这种相互作用在细胞凋亡的早期阶段非常重要。这种相互作用的分子水平决定因素仍未得到很好的界定,而且细胞色素 c 与含有心磷脂的膜的亲和力似乎存在物种特异性差异。许多研究都是在低离子强度下进行的,与线粒体内 100-150 mM 的离子强度相差甚远。同样,大多数结合研究都是在 Cytc 浓度为 10 μM 或更低的条件下进行的,远低于线粒体中 0.1 至 5 mM Cytc 的估计范围。在本研究中,我们采用尺寸排阻色谱法,在 Cytc 浓度为 25 μM 和离子强度为 100 mM 的条件下,评估了人和酵母 Cytc 与 CL 纳米圆片的结合情况。我们发现,酵母 Cytc 与 CL 纳米圆片的亲和力远强于人类 Cytc。对位点 A 结合表面的突变分析表明,赖氨酸 86 和 87 比赖氨酸 72 和 73 对酵母 Cytc 与 CL 纳米晶片的结合更为重要,这与较低离子强度下的结果相反。对人 Cytc 和酵母 Cytc 静电表面电位的分析表明,赖氨酸 86 和 87 以及附近的其他赖氨酸(4、5、11、89)产生的正电位强于赖氨酸 72 和 73 产生的正电位。就人类 Cytc 而言,位点 A 周围的正电位不太均匀,可能会削弱通过位点 A 与 CL 膜的静电结合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Binding of yeast and human cytochrome c to cardiolipin nanodiscs at physiological ionic strength

Binding of cytochrome c (Cytc) to membranes containing cardiolipin (CL) is of considerable interest because of the importance of this interaction in the early stages of apoptosis. The molecular-level determinants of this interaction are still not well defined and there appear to be species-specific differences in Cytc affinity for CL-containing membranes. Many studies are carried out at low ionic strength far from the 100–150 mM ionic strength within mitochondria. Similarly, most binding studies are done at Cytc concentrations of 10 μM or less, much lower that the estimated range of 0.1 to 5 mM Cytc present in mitochondria. In this study, we evaluate binding of human and yeast Cytc to CL nanodiscs using size exclusion chromatography at 25 μM Cytc concentration and 100 mM ionic strength. We find that yeast Cytc affinity for CL nanodiscs is much stronger than that of human Cytc. Mutational analysis of the site A binding surface shows that lysines 86 and 87 are more important for yeast Cytc binding to CL nanodiscs than lysines 72 and 73, counter to results at lower ionic strength. Analysis of the electrostatic surface potential of human versus yeast Cytc shows that the positive potential due to lysines 86 and 87 and other nearby lysines (4, 5, 11, 89) is stronger than that due to lysines 72 and 73. In the case of human Cytc the positive potential around site A is less uniform and likely weakens electrostatic binding to CL membranes through site A.

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来源期刊
Journal of Inorganic Biochemistry
Journal of Inorganic Biochemistry 生物-生化与分子生物学
CiteScore
7.00
自引率
10.30%
发文量
336
审稿时长
41 days
期刊介绍: The Journal of Inorganic Biochemistry is an established international forum for research in all aspects of Biological Inorganic Chemistry. Original papers of a high scientific level are published in the form of Articles (full length papers), Short Communications, Focused Reviews and Bioinorganic Methods. Topics include: the chemistry, structure and function of metalloenzymes; the interaction of inorganic ions and molecules with proteins and nucleic acids; the synthesis and properties of coordination complexes of biological interest including both structural and functional model systems; the function of metal- containing systems in the regulation of gene expression; the role of metals in medicine; the application of spectroscopic methods to determine the structure of metallobiomolecules; the preparation and characterization of metal-based biomaterials; and related systems. The emphasis of the Journal is on the structure and mechanism of action of metallobiomolecules.
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