精胺NONOate和ATP对血红蛋白热稳定性的影响。

Q1 Biochemistry, Genetics and Molecular Biology BMC Biophysics Pub Date : 2012-08-28 DOI:10.1186/2046-1682-5-16
Rasha Bassam, Juergen Hescheler, Ayseguel Temiz-Artmann, Gerhard M Artmann, Ilya Digel
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引用次数: 1

摘要

背景:由有机和无机小分子引起的蛋白质结构的微小变化可引起显著的代谢作用。如果分子参与者具有化学活性并且在细胞中大量存在,则影响可能更为深远。本研究旨在探讨一氧化氮供体(精胺NONOate)、ATP和钠/钾环境对人血红蛋白(Hb)热展开动力学的影响。用圆二色光谱法(CD)在25 ~ 70℃的温度范围内考察了这些分子的作用。在1°C/min的加热速率下,通过测量椭圆度变化来估计缓冲血红蛋白样品(0.1 mg/ml)的α -螺旋含量。结果:主要结果是:精胺NONOate持续降低血红蛋白在Na + /K +环境下的展开温度;ATP反而使钠基和钾基缓冲液中的展开温度升高3℃;ATP和NO的相互作用受特定缓冲液离子组成的强烈影响。此外,即使在室温下,钾的存在也促进了α -螺旋结构的部分展开。结论:所得数据有助于揭示细胞内小溶质调控蛋白质活性的分子机制和生物物理学。
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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Effects of spermine NONOate and ATP on the thermal stability of hemoglobin.

Background: Minor changes in protein structure induced by small organic and inorganic molecules can result in significant metabolic effects. The effects can be even more profound if the molecular players are chemically active and present in the cell in considerable amounts. The aim of our study was to investigate effects of a nitric oxide donor (spermine NONOate), ATP and sodium/potassium environment on the dynamics of thermal unfolding of human hemoglobin (Hb). The effect of these molecules was examined by means of circular dichroism spectrometry (CD) in the temperature range between 25°C and 70°C. The alpha-helical content of buffered hemoglobin samples (0.1 mg/ml) was estimated via ellipticity change measurements at a heating rate of 1°C/min.

Results: Major results were: 1) spermine NONOate persistently decreased the hemoglobin unfolding temperature Tuirrespectively of the Na + /K + environment, 2) ATP instead increased the unfolding temperature by 3°C in both sodium-based and potassium-based buffers and 3) mutual effects of ATP and NO were strongly influenced by particular buffer ionic compositions. Moreover, the presence of potassium facilitated a partial unfolding of alpha-helical structures even at room temperature.

Conclusion: The obtained data might shed more light on molecular mechanisms and biophysics involved in the regulation of protein activity by small solutes in the cell.

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BMC Biophysics
BMC Biophysics BIOPHYSICS-
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