Molano-Arevalo Juan Camilo, Jeanne Dit Fouque Kevin, Pham Khoa, Miksovska Jaroslava, Ridgeway Mark E, Park Melvin A, Fernandez-Lima Francisco
Department of Chemistry and Biochemistry, Florida International University , Miami, Florida 33199, United States.
Biomolecular Sciences Institute, Florida International University , Miami, Florida 33199, United States.
Anal Chem. 2017 Sep 5;89(17):8757-8765. doi: 10.1021/acs.analchem.7b00844. Epub 2017 Aug 11.
Globular proteins, such as cytochrome c (cyt c), display an organized native conformation, maintained by a hydrogen bond interaction network. In the present work, the structural interrogation of kinetically trapped intermediates of cyt c was performed by correlating the ion-neutral collision cross section (CCS) and charge state with the starting solution conditions and time after desolvation using collision induced activation (CIA), time-resolved hydrogen/deuterium back exchange (HDX) and trapped ion mobility spectrometry-mass spectrometry (TIMS-MS). The high ion mobility resolving power of the TIMS analyzer allowed the identification of new ion mobility bands, yielding a total of 63 mobility bands over the +6 to +21 charge states and 20 mobility bands over the -5 to -10 charge states. Mobility selected HDX rates showed that for the same charge state, conformers with larger CCS present faster HDX rates in both positive and negative ion mode, suggesting that the charge sites and neighboring exchange sites on the accessible surface area define the exchange rate regardless of the charge state. Complementary molecular dynamic simulations permitted the generation of candidate structures and a mechanistic model of the folding transitions from native (N) to molten globule (MG) to kinetic intermediates (U) pathways. Our results suggest that cyt c major structural unfolding is associated with the distancing of the N- and C-terminal helices and subsequent solvent exposure of the hydrophobic, heme-containing cavity.
球状蛋白质,如细胞色素c(cyt c),呈现出一种有组织的天然构象,由氢键相互作用网络维持。在本研究中,通过使用碰撞诱导活化(CIA)、时间分辨氢/氘反向交换(HDX)和捕集离子淌度质谱(TIMS-MS),将离子-中性碰撞截面(CCS)和电荷状态与起始溶液条件以及去溶剂化后的时间相关联,对cyt c动力学捕获中间体进行了结构研究。TIMS分析仪的高离子淌度分辨能力使得能够识别新的离子淌度谱带,在+6至+21电荷态下共产生63个淌度谱带,在-5至-10电荷态下产生20个淌度谱带。淌度选择的HDX速率表明,对于相同电荷态,具有较大CCS的构象体在正离子和负离子模式下均呈现更快的HDX速率,这表明可及表面积上的电荷位点和相邻交换位点决定了交换速率,而与电荷态无关。互补的分子动力学模拟允许生成候选结构以及从天然(N)到熔球态(MG)再到动力学中间体(U)途径的折叠转变的机理模型。我们的结果表明,cyt c的主要结构解折叠与N端和C端螺旋的分离以及随后含血红素的疏水腔的溶剂暴露有关。