Nakajima K, Kubo S, Kumagaye S, Nishio H, Tsunemi M, Inui T, Kuroda H, Chino N, Watanabe T X, Kimura T
Peptide Institute Inc., Protein Research Foundation, Osaka, Japan.
Biochem Biophys Res Commun. 1989 Aug 30;163(1):424-9. doi: 10.1016/0006-291x(89)92153-0.
Endothelin (ET)-related peptides including ET-1 (1-39) were synthesized, and their constricting activity in rat pulmonary artery rings and pressor activity in unanesthetized rat were measured to elucidate their structure-activity relationship. The vasoconstrictor activities of ET-2, ET-3 and sarafotoxin S6b were one-half, one-60th and one-third that of ET-1, respectively. Such differences in biological activities should mainly arise from sequence heterogeneity at the N-terminal portion, especially at positions 4 to 7. All of the blocked ETs at the amino or carboxyl termini showed greatly decreased activities. A monocyclic analog, in which Cys3 and Cys11 were replaced by Ala, showed one-third the activity of ET-1; however, its deamino dicarba analog was almost completely inactive. Significant activities were retained even with replacement of amino acids at positions Ser4, Ser5, Leu6, Met7, Lys9, Tyr13, and Trp21 by Ala, Ala, Gly, Met(0), Leu, Phe, and Tyr or Phe, respectively. On the other hand, replacement of Asp8, Glu10 and Phe14 by Asn, Gln and Ala, respectively, resulted in complete loss of the biological activity. These results indicated that two disulfide bonds in ET molecule were not essential for the expression of vasoconstricting activity. Both terminal amino and carboxyl groups, carboxyl groups of Asp8 and Glu10, and the aromatic group of Phe14 seemed to be contributing, more or less, to the expression of the biological activities.
合成了包括内皮素(ET)-1(1-39)在内的与ET相关的肽,并测定了它们在大鼠肺动脉环中的收缩活性以及在未麻醉大鼠中的升压活性,以阐明其构效关系。ET-2、ET-3和芋螺毒素S6b的血管收缩活性分别为ET-1的二分之一、六十分之一和三分之一。这些生物活性的差异主要应源于N端部分的序列异质性,尤其是第4至7位。所有在氨基或羧基末端被封闭的ETs活性都大大降低。一种将Cys3和Cys11替换为Ala的单环类似物,其活性为ET-1的三分之一;然而,其脱氨基二碳类似物几乎完全无活性。即使将Ser4、Ser5、Leu6、Met7、Lys9、Tyr13和Trp21位的氨基酸分别替换为Ala、Ala、Gly、Met(0)、Leu、Phe和Tyr或Phe,仍保留显著活性。另一方面,将Asp8、Glu10和Phe14分别替换为Asn、Gln和Ala会导致生物活性完全丧失。这些结果表明,ET分子中的两个二硫键对于血管收缩活性的表达并非必需。氨基和羧基末端、Asp8和Glu10的羧基以及Phe14的芳香基团似乎都或多或少地对生物活性的表达有贡献。