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使用小角中子散射(SANS)和生物物理技术揭示天然脱钙钙调蛋白与其未折叠状态之间的细微构象差异。

Use of SANS and biophysical techniques to reveal subtle conformational differences between native apo-calmodulin and its unfolded states.

作者信息

Gibrat Gabriel, Assairi Liliane, Craescu Constantin T, Hui Bon Hoa Gaston, Loew Damarys, Lombard Bérangère, Blouquit Laura, Bellissent-Funel Marie-Claire

机构信息

Laboratoire Léon Brillouin, CEA/CNRS, Saclay, France.

出版信息

Biochim Biophys Acta. 2012 Oct;1824(10):1097-106. doi: 10.1016/j.bbapap.2012.06.001. Epub 2012 Jun 16.

Abstract

Apo-calmodulin, a small, mainly α, soluble protein is a calcium-dependent protein activator. It is made of two N- and C-terminal domains having a sequence homology of 70%, an identical folding but different stabilities, and is thus an interesting system for unfolding studies. The use of small angle neutron scattering (SANS) and other biophysical techniques has permitted to reveal conformational difference between native and thermal denatured states of apo-calmodulin. The results show that secondary and tertiary structures of apo-calmodulin evolve in a synchronous way, indicating the absence in the unfolding pathway of molten-globule state sufficiently stable to affect transition curves. From SANS experiments, at 85 °C, apo-calmodulin adopts a polymer chain conformation with some residual local structures. After cooling down, apo-calmodulin recovers a compact state, with a secondary structure close to the native one but with a higher radius of gyration and a different tyrosine environment. In fact on a timescale of few minutes, heat denaturation of apo-calmodulin is partially reversible, but on a time scale of hours (for SANS experiments), the long exposure to heat may lead to a non-reversibility due to some chemical perturbation of the protein. In fact, from Mass Spectrometry measurements, we got evidence of dehydration and deamidation of heated apo-calmodulin.

摘要

脱钙钙调蛋白是一种小的、主要为α结构的可溶性蛋白质,是一种钙依赖性蛋白质激活剂。它由两个N端和C端结构域组成,序列同源性为70%,折叠方式相同但稳定性不同,因此是展开研究的一个有趣体系。使用小角中子散射(SANS)和其他生物物理技术揭示了脱钙钙调蛋白天然态和热变性态之间的构象差异。结果表明,脱钙钙调蛋白的二级和三级结构以同步方式演变,表明在展开途径中不存在足够稳定以影响转变曲线的熔球态。从SANS实验可知,在85℃时,脱钙钙调蛋白呈现出具有一些残余局部结构的聚合物链构象。冷却后,脱钙钙调蛋白恢复为紧密状态,二级结构接近天然结构,但回转半径更大且酪氨酸环境不同。实际上,在几分钟的时间尺度上,脱钙钙调蛋白的热变性是部分可逆的,但在数小时的时间尺度上(对于SANS实验),长时间受热可能由于蛋白质的一些化学扰动而导致不可逆性。事实上,通过质谱测量,我们得到了加热后的脱钙钙调蛋白脱水和脱酰胺的证据。

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