Pham Khoa N, Fernandez-Lima Francisco
Department of Chemistry and Biochemistry, Florida International University, Miami, Florida 33199, United States.
Biomolecular Science Institute, Florida International University, Miami, Florida 33199, United States.
ACS Omega. 2021 Oct 27;6(44):29567-29576. doi: 10.1021/acsomega.1c03744. eCollection 2021 Nov 9.
Extracellular histone H4 is an attractive drug target owing to its roles in organ failure in sepsis and other diseases. To identify inhibitors using in silico methods, information on histone H4 structural dynamics and three-dimensional (3D) structural coordinates is required. Here, DNA-free histone H4 type 1 (H4.1) was characterized by utilizing tandem nonlinear and linear ion mobility spectrometry (FAIMS-TIMS) coupled to mass spectrometry (MS) complemented with molecular dynamics (MD) simulations. The gas-phase structures of H4.1 are dependent on the starting solution conditions, evidenced by differences in charge state distributions, mobility distributions, and collision-induced unfolding (CIU) pathways. The experimental results show that H4.1 adopts diverse conformational types from compact (C) to partially folded (P) and subsequently elongated (E) structures. Molecular dynamics simulations provided candidate structures for the histone H4.1 monomer in solution and for the gas-phase structures observed using FAIMS-IMS-TOF MS as a function of the charge state and mobility distribution. A combination of the FAIMS-TIMS experimental results with theoretical dipole calculations reveals the important role of charge distribution in the dipole alignment of H4.1 elongated structures at high electric fields. A comparison of the secondary and primary structures of DNA-free H2A.1 and H4.1 is made based on the experimental IMS-MS and MD findings.
细胞外组蛋白H4因其在败血症及其他疾病的器官衰竭中所起的作用,成为一个颇具吸引力的药物靶点。要使用计算机方法鉴定抑制剂,就需要有关组蛋白H4结构动力学和三维(3D)结构坐标的信息。在此,通过利用串联非线性和线性离子淌度光谱法(FAIMS-TIMS)与质谱(MS)联用,并辅以分子动力学(MD)模拟,对无DNA的1型组蛋白H4(H4.1)进行了表征。H4.1的气相结构取决于起始溶液条件,电荷态分布、淌度分布和碰撞诱导展开(CIU)途径的差异证明了这一点。实验结果表明,H4.1呈现出从紧凑(C)到部分折叠(P)再到随后伸长(E)结构的多种构象类型。分子动力学模拟为溶液中的组蛋白H4.1单体以及使用FAIMS-IMS-TOF MS根据电荷态和淌度分布观察到的气相结构提供了候选结构。FAIMS-TIMS实验结果与理论偶极计算相结合,揭示了电荷分布在高电场下H4.1伸长结构的偶极排列中的重要作用。基于实验性IMS-MS和MD研究结果,对无DNA的H2A.1和H4.1的二级和一级结构进行了比较。