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UV RESONANCE RAMAN EXCITATION PROFILES AND DEPOLARIZATION RATIOS AS PROBES OF ELECTRONIC TRANSITIONS IN PEPTIDES

机译:紫外共振拉曼激发谱和去极化比作为肽中电子跃迁的问题

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摘要

UV resonance Raman (UVRR) spectroscopy is well established as a technique for probing secondary structure of peptides and proteins. Excitation between 180 to 215 nm, within the π→π* electronic transitions of the peptide backbone, results in resonance enhancement of those amide vibrations that distort the peptide bond ground state geometry towards that of the excited state. Peptide bond amide π→π* electronic transitions show no emission and appear to be homogeneously broadened. Their broad absorption spectra provide little information about underlying excited states. UVRR spectroscopy is unique in its ability to provide insight into electronic excited state geometry and localization of electronic transitions. We use UVRR excitation profiles and Raman depolarization ratio measurements to examine underlying peptide bond electronic transitions.We measured UVRR excitation profiles and Raman depolarization ratios of peptides in different conformations to elucidate the nature of these electronic transitions. We have examined short Ala peptides which adopt β-type conformations, such as: polyproline II, β-turn, and 2.51 helix, and found additional electronic transitions that underlie the NV1 π→π* transition. For a longer, 21-residue predominantly alanine peptide (AP), AAAAAAAARAAAARAAAARAA, we identified the excitation maxima for the α-helix and poly-proline II conformations, as well as exciton splitting in both conformations. We have also examined both the excitation profiles for the arginine (arg) residues in AP, as well as the excitation profiles for individual arg amino acid residues, to determine how peptide conformation affects the individual residue chromophores and to determine the electronic interactions between the arg and the peptide bond NV1 π→π* transition.We show that UVRR excitation profiles and Raman depolarization ratios can be used together to uncover electronic transitions that underlie broad peptide absorption bands. We utilized the UVRR excitation profiles and Raman depolarization ratios to discover exciton splitting of the π→π* electronic transition in AP, charge transfer transitions in short Ala peptides, and interactions between the electronic transitions of the AP peptide backbone and the individual arg side chains in AP. We find evidence of underlying transitions and unusual excitonic interactions that have not been predicted by theory.
机译:紫外共振拉曼(UVRR)光谱已被确立为探测肽和蛋白质二级结构的技术。在肽主链的π→π*电子跃迁内,在180至215 nm之间进行激发,会导致酰胺振动的共振增强,这些酰胺振动会使肽键基态的几何结构向激发态转变。肽键酰胺π→π*电子跃迁没有发射,并且似乎被均匀展宽。它们的宽吸收光谱几乎没有提供有关潜在激发态的信息。 UVRR光谱学具有独特的能力,可以洞悉电子激发态的几何形状和电子跃迁的位置。我们使用UVRR激发曲线和拉曼去极化比率测量来检查潜在的肽键电子跃迁,我们测量了不同构象的肽的UVRR激发曲线和拉曼去极化比率以阐明这些电子跃迁的性质。我们研究了采用β型构象的短Ala肽,例如:聚脯氨酸II,β转角和2.51螺旋,并发现了在NV1π→π*跃迁基础上的其他电子跃迁。对于更长的21个残基(主要是丙氨酸肽)(AAAAAAAARAAAARAAAARAA),我们确定了&#945-螺旋和聚脯氨酸II构象的激发最大值,以及在这两个构象中的激子分裂。我们还检查了AP中精氨酸(arg)残基的激发图谱以及各个arg氨基酸残基的激发图谱,以确定肽构象如何影响各个残基发色团并确定arg之间的电子相互作用我们表明,UVRR激发曲线和拉曼去极化比可以一起使用,以揭示构成宽肽段吸收带的电子跃迁。我们利用UVRR激发曲线和拉曼去极化比发现AP中π→π*电子跃迁的激子分裂,短Ala肽中的电荷转移跃迁以及AP肽骨架电子跃迁与各个arg侧链之间的相互作用在AP中。我们发现了理论上尚未预测到的潜在过渡和异常激子相互作用的证据。

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    Sharma Bhavya;

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  • 年度 2011
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  • 正文语种 en
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