首页> 外文期刊>Journal of the American Society for Mass Spectrometry >Efficient Covalent Bond Formation in Gas-Phase Peptide-Peptide Ion Complexes with the Photoleucine Stapler
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Efficient Covalent Bond Formation in Gas-Phase Peptide-Peptide Ion Complexes with the Photoleucine Stapler

机译:具有光亮氨酸订书机的气相肽-肽离子复合物中的有效共价键形成

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Noncovalent complexes of hydrophobic peptides GLLLG and GLLLK with photoleucine (L*) tagged peptides G(L* (n) L (m) )K (n = 1,3, m = 2,0) were generated as singly charged ions in the gas phase and probed by photodissociation at 355 nm. Carbene intermediates produced by photodissociative loss of N-2 from the L* diazirine rings underwent insertion into X-H bonds of the target peptide moiety, forming covalent adducts with yields reaching 30%. Gas-phase sequencing of the covalent adducts revealed preferred bond formation at the C-terminal residue of the target peptide. Site-selective carbene insertion was achieved by placing the L* residue in different positions along the photopeptide chain, and the residues in the target peptide undergoing carbene insertion were identified by gas-phase ion sequencing that was aided by specific C-13 labeling. Density functional theory calculations indicated that noncovalent binding to GL*L*L*K resulted in substantial changes of the (GLLLK + H)(+) ground state conformation. The peptide moieties in [GL*L*LK + GLLLK + H](+) ion complexes were held together by hydrogen bonds, whereas dispersion interactions of the nonpolar groups were only secondary in ground-state 0 K structures. Born-Oppenheimer molecular dynamics for 100 ps trajectories of several different conformers at the 310 K laboratory temperature showed that noncovalent complexes developed multiple, residue-specific contacts between the diazirine carbons and GLLLK residues. The calculations pointed to the substantial fluidity of the nonpolar side chains in the complexes. Diazirine photochemistry in combination with Born-Oppenheimer molecular dynamics is a promising tool for investigations of peptide-peptide ion interactions in the gas phase.
机译:疏水肽GLLLG和GLLLK与带有光亮氨酸(L *)标记的肽G(L *(n)L(m))K(n = 1,3,m = 2,0)的非共价复合物是作为单电荷离子气相并在355 nm处通过光解离进行探测。通过从L *二叠氮基环光解离N-2产生的卡宾中间体插入目标肽部分的X-H键,形成共价加合物,收率达到30%。共价加合物的气相测序表明,在目标肽的C端残基处形成了优选的键。通过将L *残基沿着光肽链放置在不同位置来实现位点选择性卡宾插入,并通过气相离子测序(借助特定的C-13标记)鉴定了经过卡宾插入的目标肽中的残基。密度泛函理论计算表明,非共价结合到GL * L * L * K导致(GLLLK + H)(+)基态构象的实质性变化。 [GL * L * LK + GLLLK + H](+)离子复合物中的肽部分通过氢键保持在一起,而非极性基团的分散相互作用仅在基态0 K结构中是次要的。在310 K的实验室温度下,几种不同构象异构体的100 ps轨迹的Born-Oppenheimer分子动力学表明,非共价复合物在重氮碳和GLLLK残基之间形成了多个残基特异性接触。计算结果表明配合物中非极性侧链的流动性很大。将重氮光化学与Born-Oppenheimer分子动力学相结合是研究气相中肽-肽离子相互作用的有前途的工具。

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