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真核生物翻译起始因子4E(eIF4E)帽结合蛋白的生物物理学研究:mRNA 5'帽结构的识别以及eIF4G和4E-BP1蛋白的合成片段

Biophysical studies of eIF4E cap-binding protein: recognition of mRNA 5' cap structure and synthetic fragments of eIF4G and 4E-BP1 proteins.

作者信息

Niedzwiecka Anna, Marcotrigiano Joseph, Stepinski Janusz, Jankowska-Anyszka Marzena, Wyslouch-Cieszynska Aleksandra, Dadlez Michal, Gingras Anne-Claude, Mak Pawel, Darzynkiewicz Edward, Sonenberg Nahum, Burley Stephen K, Stolarski Ryszard

机构信息

Department of Biophysics, Institute of Experimental Physics, Warsaw University, 93 Zwirki & Wigury Street, 02-089 Warsaw, Poland.

出版信息

J Mol Biol. 2002 Jun 7;319(3):615-35. doi: 10.1016/S0022-2836(02)00328-5.

Abstract

mRNA 5'-cap recognition by the eukaryotic translation initiation factor eIF4E has been exhaustively characterized with the aid of a novel fluorometric, time-synchronized titration method, and X-ray crystallography. The association constant values of recombinant eIF4E for 20 different cap analogues cover six orders of magnitude; with the highest affinity observed for m(7)GTP (approximately 1.1 x 10(8) M(-1)). The affinity of the cap analogues for eIF4E correlates with their ability to inhibit in vitro translation. The association constants yield contributions of non-covalent interactions involving single structural elements of the cap to the free energy of binding, giving a reliable starting point to rational drug design. The free energy of 7-methylguanine stacking and hydrogen bonding (-4.9 kcal/mol) is separate from the energies of phosphate chain interactions (-3.0, -1.9, -0.9 kcal/mol for alpha, beta, gamma phosphates, respectively), supporting two-step mechanism of the binding. The negatively charged phosphate groups of the cap act as a molecular anchor, enabling further formation of the intermolecular contacts within the cap-binding slot. Stabilization of the stacked Trp102/m(7)G/Trp56 configuration is a precondition to form three hydrogen bonds with Glu103 and Trp102. Electrostatically steered eIF4E-cap association is accompanied by additional hydration of the complex by approximately 65 water molecules, and by ionic equilibria shift. Temperature dependence reveals the enthalpy-driven and entropy-opposed character of the m(7)GTP-eIF4E binding, which results from dominant charge-related interactions (DeltaH degrees =-17.8 kcal/mol, DeltaS degrees= -23.6 cal/mol K). For recruitment of synthetic eIF4GI, eIF4GII, and 4E-BP1 peptides to eIF4E, all the association constants were approximately 10(7) M(-1), in decreasing order: eIF4GI>4E-BP1>eIF4GII approximately 4E-BP1(P-Ser65) approximately 4E-BP1(P-Ser65/Thr70). Phosphorylation of 4E-BP1 at Ser65 and Thr70 is insufficient to prevent binding to eIF4E. Enhancement of the eIF4E affinity for cap occurs after binding to eIF4G peptides.

摘要

借助一种新型荧光、时间同步滴定方法以及X射线晶体学,对真核生物翻译起始因子eIF4E识别mRNA 5'-帽结构的过程进行了详尽的表征。重组eIF4E与20种不同帽类似物的缔合常数涵盖六个数量级;其中对m(7)GTP的亲和力最高(约为1.1×10(8) M(-1))。帽类似物对eIF4E的亲和力与其抑制体外翻译的能力相关。缔合常数给出了帽单个结构元件的非共价相互作用对结合自由能的贡献,为合理的药物设计提供了可靠的起点。7-甲基鸟嘌呤堆积和氢键作用的自由能(-4.9千卡/摩尔)与磷酸链相互作用的能量(α、β、γ磷酸分别为-3.0、-1.9、-0.9千卡/摩尔)是分开的,支持了两步结合机制。帽的带负电荷的磷酸基团充当分子锚,使得帽结合槽内能够进一步形成分子间接触。稳定堆叠的Trp102/m(7)G/Trp56构型是与Glu103和Trp102形成三个氢键的前提条件。静电引导的eIF4E-帽缔合伴随着复合物额外约65个水分子的水合作用以及离子平衡的移动。温度依赖性揭示了m(7)GTP-eIF4E结合是由焓驱动且熵对抗的特性,这是由主要的电荷相关相互作用导致的(ΔH°=-17.8千卡/摩尔,ΔS°=-23.6卡/摩尔·K)。对于将合成的eIF4GI、eIF4GII和4E-BP1肽募集到eIF4E上,所有缔合常数约为10(7) M(-1),顺序递减为:eIF4GI>4E-BP1>eIF4GII≈4E-BP1(P-Ser65)≈4E-BP1(P-Ser65/Thr70)。4E-BP1在Ser65和Thr70处的磷酸化不足以阻止其与eIF4E的结合。eIF4E与帽的亲和力在与eIF4G肽结合后增强。

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