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Conformational Properties of Seven Toac-Labeled Angiotensin I Analogues Correlate with Their Muscle Contraction Activity and Their Ability to Act as ACE Substrates

机译:七个Toac标记的血管紧张素I类似物的构象性质与它们的肌肉收缩活性和充当ACE底物的能力相关

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摘要

Conformational properties of the angiotensin II precursor, angiotensin I (AngI) and analogues containing the paramagnetic amino acid TOAC (2,2,6,6-tetramethylpiperidine-1-oxyl-4-amino-4-carboxylic acid) at positions 0, 1, 3, 5, 8, 9, and 10, were examined by EPR, CD, and fluorescence. The conformational data were correlated to their activity in muscle contraction experiments and to their properties as substrates of the angiotensin I-converting enzyme (ACE). Biological activity studies indicated that TOAC0-AngI and TOAC1-AngI maintained partial potency in guinea pig ileum and rat uterus. Kinetic parameters revealed that only derivatives labeled closer to the N-terminus (positions 0, 1, 3, and 5) were hydrolyzed by ACE, indicating that peptides bearing the TOAC moiety far from the ACE cleavage site (Phe8-His9 peptide bond) were susceptible to hydrolysis, albeit less effectively than the parent compound. CD spectra indicated that AngI exhibited a flexible structure resulting from equilibrium between different conformers. While the conformation of N-terminally-labeled derivatives was similar to that of the native peptide, a greater propensity to acquire folded structures was observed for internally-labeled, as well as C-terminally labeled, analogues. These structures were stabilized in secondary structure-inducing agent, TFE. Different analogues gave rise to different β-turns. EPR spectra in aqueous solution also distinguished between N-terminally, internally-, and C-terminally labeled peptides, yielding narrower lines, indicative of greater mobility for the former. Interestingly, the spectra of peptides labeled at, or close, to the C-terminus, showed that the motion in this part of the peptides was intermediate between that of N-terminally and internally-labeled peptides, in agreement with the suggestion of turn formation provided by the CD spectra. Quenching of the Tyr4 fluorescence by the differently positioned TOAC residues corroborated the data obtained by the other spectroscopic techniques. Lastly, we demonstrated the feasibility of monitoring the progress of ACE-catalyzed hydrolysis of TOAC-labeled peptides by following time-dependent changes in their EPR spectra.
机译:血管紧张素II前体,血管紧张素I(AngI)和类似物在0、1位置包含顺磁性氨基酸TOAC(2,2,6,6-四甲基哌啶-1-氧基-1-氨基-4-羧酸)的构象性质,3、5、8、9和10通过EPR,CD和荧光检查。构象数据与其在肌肉收缩实验中的活性及其作为血管紧张素I转化酶(ACE)的底物的特性相关。生物学活性研究表明,TOAC 0 -AngI和TOAC 1 -AngI在豚鼠回肠和大鼠子宫中均保持部分效力。动力学参数表明,只有标记接近N末端(位置0、1、3和5)的衍生物才被ACE水解,表明带有TOAC部分的肽远离ACE裂解位点(Phe 8 -His 9 肽键)对水解敏感,尽管效果不如母体化合物。 CD光谱表明,AngI显示出由于不同构象异构体之间的平衡而产生的柔性结构。尽管N端标记的衍生物的构象与天然肽的构象相似,但是对于内部标记的以及C端标记的类似物观察到更大的获得折叠结构的倾向。这些结构在二级结构诱导剂TFE中稳定。不同的类似物引起不同的β-转角。水溶液中的EPR光谱也区分了N末端,内部末端和C末端标记的肽,产生更窄的线,表明前者具有更大的迁移率。有趣的是,标记在C端或接近C端的肽的光谱显示,该部分肽的运动介于N末端和内部标记的肽之间,与转向形成的建议一致由CD光谱提供。不同位置的TOAC残基对Tyr 4 荧光的猝灭证实了其他光谱技术获得的数据。最后,我们证明了通过跟随其EPR谱随时间变化来监测ACE催化的TOAC标记肽水解过程的可行性。

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