Niedzwiecka Anna, Darzynkiewicz Edward, Stolarski Ryszard
Department of Biophysics, Institute of Experimental Physics, Warsaw University, 02-089 Warszawa, Poland.
Biochemistry. 2004 Oct 26;43(42):13305-17. doi: 10.1021/bi0491651.
Translation of mRNA in eukaryotes begins with specific recognition of the 5' cap structure by the highly conserved protein, eIF4E. The thermodynamics of eIF4E interaction with nine chemical cap analogues has been studied by means of emission spectroscopy. High-sensitivity measurements of intrinsic protein fluorescence quenching upon cap binding provided equilibrium association constants in the temperature range of 279 to 314 K. A van't Hoff analysis yielded the negative binding enthalpies for the entire cap analogue series, -16.6 to -81 kJ mol(-1), and the entropies covering the range of +40.3 to -136 J mol(-1) K(-1) at 293 K. The main enthalpic contributions come from interactions of the phosphate chains and positively charged amino acids and the cation-pi stacking of 7-methylguanine with tryptophans. A nontrivial, statistically important isothermal enthalpy-entropy compensation has been detected (T(c) = 399 +/- 24 K), which points to significant fluctuations of apo-eIF4E and indicates that the cap-binding microstate lies 9.66 +/- 1.7 kJ mol(-1) below the mean energy of all available conformational states. For five cap analogues, large and positive heat capacity changes have been found. The values of DeltaC(p) degrees correlate with the free energies of eIF4E binding due to stiffening of the protein upon interaction with cap analogues. At biological temperatures, binding of the natural caps has both favorable enthalpy and favorable entropy. Thermodynamic coupling of cap-eIF4E association to intramolecular self-stacking of dinucleotide cap analogues strongly influences the enthalpies and entropies of the binding, but has a negligible effect on the resultant DeltaG degrees and DeltaC(p) degrees values.
真核生物中mRNA的翻译起始于高度保守的蛋白质eIF4E对5'帽结构的特异性识别。通过发射光谱法研究了eIF4E与九种化学帽类似物相互作用的热力学。帽结合时内在蛋白质荧光猝灭的高灵敏度测量提供了279至314 K温度范围内的平衡缔合常数。范特霍夫分析得出整个帽类似物系列的负结合焓,范围为-16.6至-81 kJ mol⁻¹,在293 K时熵的范围为+40.3至-136 J mol⁻¹ K⁻¹。主要的焓贡献来自磷酸链与带正电荷氨基酸的相互作用以及7-甲基鸟嘌呤与色氨酸的阳离子-π堆积。检测到了显著的、具有统计学意义的等温焓-熵补偿(T(c)=399±24 K),这表明脱辅基eIF4E存在显著波动,并表明帽结合微状态比所有可用构象状态的平均能量低9.66±1.7 kJ mol⁻¹。对于五种帽类似物,发现了大的正热容变化。由于与帽类似物相互作用时蛋白质变硬,ΔC(p)°的值与eIF4E结合的自由能相关。在生理温度下,天然帽的结合具有有利的焓和有利的熵。帽-eIF4E缔合与二核苷酸帽类似物的分子内自堆积之间的热力学耦合强烈影响结合的焓和熵,但对最终的ΔG°和ΔC(p)°值影响可忽略不计。