Hull J Joe, Copley Kathrin S, Schegg Kathleen M, Quilici David R, Schooley David A, Welch William H
Department of Biochemistry, University of Nevada, Reno, Nevada 89557, USA.
Biochemistry. 2009 Sep 29;48(38):9047-60. doi: 10.1021/bi901078y.
Eclosion hormone (EH) is an integral component in the cascade regulating the behaviors culminating in emergence of an insect from its old exoskeleton. Little is known regarding the EH solution structure; consequently, we utilized a computational approach to generate a hypothetical structure for Manduca sexta EH. The de novo algorithm exploited the restricted conformational space of disulfide bonds (Cys14-Cys38, Cys18-Cys34, and Cys21-Cys49) and predicted secondary structure elements to generate a thermodynamically stable structure characterized by 55% helical content, an unstructured N-terminus, a helical C-terminus, and a solvent-exposed loop containing Trp28 and Phe29. Both the strain and pseudo energies of the predicted peptide compare favorably with those of known structures. The 62-amino acid peptide was synthesized, folded, assayed for activity, and structurally characterized to confirm the validity of the model. The helical content is supported by circular dichroism and hydrogen-deuterium exchange mass spectrometry. Fluorescence emission spectra and acrylamide quenching are consistent with the solvent exposure predicted for Trp28, which is shielded by Phe29. Furthermore, thermodynamically stable conformations that deviated only slightly from the predicted Manduca EH structure were generated in silico for the Bombyx mori and Drosophila melanogaster EHs, indicating that the conformation is not species-dependent. In addition, the biological activities of known mutants and deletion peptides were rationalized with the predicted Manduca EH structure, and we found that, on the basis of sequence conservation, functionally important residues map to two conserved hydrophobic clusters incorporating the C-terminus and the first loop.
羽化激素(EH)是昆虫从旧外骨骼中羽化这一行为调控级联反应中的一个重要组成部分。关于EH的溶液结构我们所知甚少;因此,我们采用了一种计算方法来生成烟草天蛾EH的假设结构。从头算法利用了二硫键(Cys14-Cys38、Cys18-Cys34和Cys21-Cys49)受限的构象空间,并预测了二级结构元件,以生成一种热力学稳定的结构,其特征为55%的螺旋含量、无结构的N端、螺旋状的C端以及一个包含Trp28和Phe29的溶剂暴露环。预测肽段的应变能和伪能与已知结构的肽段相比都很有利。合成了62个氨基酸的肽段,进行折叠、活性检测并进行结构表征,以确认模型的有效性。圆二色光谱和氢-氘交换质谱支持了螺旋含量。荧光发射光谱和丙烯酰胺猝灭与Trp28预测的溶剂暴露情况一致,Trp28被Phe29屏蔽。此外,通过计算机模拟为家蚕和黑腹果蝇的EH生成了仅与预测的烟草天蛾EH结构略有偏差的热力学稳定构象,这表明该构象不依赖于物种。此外,已知突变体和缺失肽段的生物学活性可以用预测的烟草天蛾EH结构来解释,并且我们发现,基于序列保守性,功能重要的残基映射到两个包含C端和第一个环的保守疏水簇上。