Yang Sichun, Banavali Nilesh K, Roux Benoît
Department of Biochemistry and Molecular Biology, University of Chicago, 929 East 57th Street, Chicago, IL 60637, USA.
Proc Natl Acad Sci U S A. 2009 Mar 10;106(10):3776-81. doi: 10.1073/pnas.0808261106. Epub 2009 Feb 18.
The Src-family kinases are allosteric enzymes that play a key role in the regulation of cell growth and proliferation. In response to cellular signals, they undergo large conformational changes to switch between distinct inactive and active states. A computational strategy for characterizing the conformational transition pathway is presented to bridge the inactive and active states of the catalytic domain of Hck. The information from a large number (78) of independent all-atom molecular dynamics trajectories with explicit solvent is combined together to assemble a connectivity map of the conformational transition. Two intermediate states along the activation pathways are identified, and their structural features are characterized. A coarse free-energy landscape is built in terms of the collective motions corresponding to the opening of the activation loop (A-loop) and the rotation of the alphaC helix. This landscape shows that the protein can adopt a multitude of conformations in which the A-loop is partially open, while the alphaC helix remains in the orientation characteristic of the inactive conformation. The complete transition leading to the active conformation requires a concerted movement involving further opening of the A-loop, the relative alignment of N-lobe and C-lobe, and the rotation of the alphaC helix needed to recruit the residues necessary for catalysis in the active site. The analysis leads to a dynamic view of the full-length kinase activation, whereby transitions of the catalytic domain to intermediate configurations with a partially open A-loop are permitted, even while the SH2-SH3 clamp remains fully engaged. These transitions would render Y416 available for the transphosphorylation event that ultimately locks down the active state. The results provide a broad framework for picturing the conformational transitions leading to kinase activation.
Src家族激酶是变构酶,在细胞生长和增殖的调节中起关键作用。响应细胞信号时,它们会发生大的构象变化,在不同的非活性和活性状态之间切换。本文提出了一种用于表征构象转变途径的计算策略,以连接Hck催化结构域的非活性和活性状态。来自大量(78个)具有显式溶剂的独立全原子分子动力学轨迹的信息被组合在一起,以构建构象转变的连通性图。确定了激活途径中的两个中间状态,并对其结构特征进行了表征。根据与激活环(A环)打开和αC螺旋旋转相对应的集体运动构建了一个粗略的自由能景观。该景观表明,蛋白质可以采用多种构象,其中A环部分打开,而αC螺旋保持在非活性构象的特征取向。导致活性构象的完整转变需要协同运动,包括A环的进一步打开、N叶和C叶的相对排列以及αC螺旋的旋转,以招募活性位点催化所需的残基。分析得出了全长激酶激活的动态视图,即催化结构域向具有部分打开A环的中间构型的转变是允许的,即使SH2-SH3钳仍然完全结合。这些转变将使Y416可用于最终锁定活性状态的转磷酸化事件。结果为描绘导致激酶激活的构象转变提供了一个广泛的框架。