Mezö G, Hudecz F, Kajtár J, Szókán G, Szekerke M
Biopolymers. 1989 Oct;28(10):1801-26. doi: 10.1002/bip.360281013.
New branched polypeptides were synthesized for a detailed study of the influence of the side-chain structure on the conformation and biological properties. The first subset of polypeptides were prepared by coupling of tetrapeptides to poly[L-Lys]. These polymers contain either DL-Ala3-X [poly[Lys-(X-DL-Ala3)n]] or X-DL-Ala3 [poly[Lys-(DL-Ala3-X)n] (n less than or equal to 1)] tetrapeptide side chains. Another group of branched polymers comprise a mixture of DL-Alam and of DL-Alam-X oligomeric branches in a random distribution [poly[Lys-(DL-Alam-Xi)] (i less than 1, m approximately 3)]. In each subset the X = Leu or Phe derivatives were prepared. The N-protected tetrapeptides were synthesized by conventional liquid phase methods and were coupled as active esters. The degree of racemization was found relatively high both for active esters and coupled derivatives, when optically active amino acids were in the C-terminal position of the tetrapeptides. In the case of the poly[Lys-(Leu-DL-Ala3)n] derivative, comparative experiments were carried out using various methodical alterations. The highest stereochemical homogeniety could be achieved when the tetrapeptide active ester was synthesized by the "backing off" method. CD spectra of poly[Lys-(Xi-DL-Alam)] (i less than 1, m approximately 3) and of poly[Lys-(X-DL-Ala3)n] were analyzed and compared to those of poly[Lys-(DL-Alam-Xi)] and of poly[Lys-(DL-Ala3-X)n]. All measurements were performed in water solutions of varying pH values and ionic strengths. The data obtained suggest that branched polypeptides containing a mixture of two different types of oligomeric side chains (DL-Alam and DL-Alam-Xi or Xi-DL-Alam) distributed randomly adopt an almost identical conformation to those that comprise only the respective tetrapeptide (DL-Ala3-X or X-DL-Ala3) branches. The results also indicate that the tendency to form an ordered structure is determined by the identity and the position of the chiral amino acid X (Phe or Leu) in the side chain.
合成了新的支链多肽,用于详细研究侧链结构对构象和生物学性质的影响。第一组多肽是通过将四肽与聚[L-赖氨酸]偶联制备的。这些聚合物含有DL-Ala3-X [聚[赖氨酸-(X-DL-Ala3)n]]或X-DL-Ala3 [聚[赖氨酸-(DL-Ala3-X)n](n≤1)]四肽侧链。另一组支链聚合物包含DL-Alam和DL-Alam-X低聚支链的混合物,呈随机分布[聚[赖氨酸-(DL-Alam-Xi)](i<1,m≈3)]。在每个组中都制备了X = 亮氨酸或苯丙氨酸的衍生物。N-保护的四肽通过常规液相方法合成,并作为活性酯进行偶联。当光学活性氨基酸位于四肽的C末端位置时,发现活性酯和偶联衍生物的消旋程度都相对较高。对于聚[赖氨酸-(亮氨酸-DL-Ala3)n]衍生物,使用各种方法改进进行了对比实验。当通过“逐步合成”方法合成四肽活性酯时,可以实现最高的立体化学均一性。分析了聚[赖氨酸-(Xi-DL-Alam)](i<1,m≈3)和聚[赖氨酸-(X-DL-Ala3)n]的圆二色光谱,并与聚[赖氨酸-(DL-Alam-Xi)]和聚[赖氨酸-(DL-Ala3-X)n]的光谱进行了比较。所有测量均在不同pH值和离子强度的水溶液中进行。获得的数据表明,含有两种不同类型低聚侧链(DL-Alam和DL-Alam-Xi或Xi-DL-Alam)随机分布混合物的支链多肽,其构象与仅包含相应四肽(DL-Ala3-X或X-DL-Ala3)支链的多肽几乎相同。结果还表明,形成有序结构的倾向取决于侧链中手性氨基酸X(苯丙氨酸或亮氨酸)的种类和位置。