Oláh Judit, Zotter Ágnes, Hlavanda Emma, Szunyogh Sándor, Orosz Ferenc, Szigeti Krisztián, Fidy Judit, Ovádi Judit
Institute of Enzymology, Research Centre for Natural Sciences, Hungarian Academy of Sciences, H-1113 Budapest, Hungary.
Biochim Biophys Acta. 2012 Jul;1820(7):785-94. doi: 10.1016/j.bbagen.2012.03.011. Epub 2012 Mar 28.
The disordered Tubulin Polymerization Promoting Protein/p25 (TPPP/p25) modulates the dynamics and stability of the microtubule system. In this paper the role of dimerization in its microtubule-related functions is established, and an approach is proposed to evaluate thermodynamic constants for multiple equilibrium systems from ITC measurements.
For structural studies size exclusion chromatography, SDS-PAGE, chemical cross-linking, circular dichroism, fluorescence spectroscopy and isothermal titration calorimetry were used; the functional effect was analyzed by tubulin polymerization assay. Numerical simulation of the multiple equilibrium was performed with Mathematica software.
The dimerization of TPPP/p25 is promoted by elevation of the protein concentration and by GTP addition. The dimeric form displaying enhanced tubulin polymerization promoting activity is stabilized by disulfide bond or chemical cross-linking. The GTP binding to the dimeric form (Kd-GTP=200 μM) is tighter with one order of magnitude than to the monomeric one leading to the enrichment of the dimers. A mathematical model elaborated for the multiple equilibrium of the TPPP/p25-GTP system was validated by fitting the GTP-dependent changes of ellipticity and fluorescence signal in the course of TPPP/p25 titrations. The evaluation of the equilibrium constants rendered it possible to determine the thermodynamic parameters of the association of different TPPP/p25 forms with GTP from ITC measurements.
CONCLUSIONS/GENERAL SIGNIFICANCE: The dimerization of TPPP/p25 with favorable physiological functional potency is proposed to play significant role in the fine tuning of TPPP/p25-mediated microtubule assembly; the unfolded monomers might be involved in the formation of pathological inclusions characteristic for Parkinson's disease and other synucleinopathies.
紊乱的微管聚合促进蛋白/p25(TPPP/p25)可调节微管系统的动力学和稳定性。本文确定了二聚化在其微管相关功能中的作用,并提出了一种从等温滴定量热法(ITC)测量中评估多平衡系统热力学常数的方法。
使用尺寸排阻色谱、SDS - PAGE、化学交联、圆二色性、荧光光谱和等温滴定量热法进行结构研究;通过微管蛋白聚合试验分析功能效应。使用Mathematica软件对多平衡进行数值模拟。
蛋白质浓度升高和添加GTP可促进TPPP/p25的二聚化。通过二硫键或化学交联可稳定显示出增强的微管蛋白聚合促进活性的二聚体形式。GTP与二聚体形式的结合(Kd - GTP = 200 μM)比与单体形式的结合紧密一个数量级,导致二聚体富集。通过拟合TPPP/p25滴定过程中椭圆率和荧光信号的GTP依赖性变化,验证了为TPPP/p25 - GTP系统的多平衡构建的数学模型。平衡常数的评估使得从ITC测量中确定不同TPPP/p25形式与GTP结合的热力学参数成为可能。
结论/一般意义:具有有利生理功能效力的TPPP/p25二聚化被认为在TPPP/p25介导的微管组装的精细调节中起重要作用;未折叠的单体可能参与帕金森病和其他突触核蛋白病特有的病理性包涵体的形成。