Canalp Merve Basak, Binder Wolfgang H
Faculty of Natural Science II (Chemistry, Physics and Mathematics), Martin Luther University Halle-Wittenberg von-Danckelmann-Platz 4 Halle (Saale) D-06120 Germany
RSC Adv. 2020 Jan 7;10(3):1287-1295. doi: 10.1039/c9ra09189k.
Hybrid polymers of peptides resembling (partially) folded protein structures are promising materials in biomedicine, especially in view of folding-interactions between different segments. In this study polymers bearing repetitive peptidic folding elements, composed of N-terminus functionalized bis-ω-ene-functional oligo-l-lysine(carboxybenzyl(Z))s (Lys ) with repeating units () of 3, 6, 12, 24 and 30 were successfully synthesized to study their secondary structure introduced by conformational interactions between their chains. The pre-polymers of ADMET, narrowly dispersed Lys s, were obtained by ring opening polymerization (ROP) of -carboxyanhydride (NCA) initiated with 11-amino-undecene, following N-terminus functionalization with 10-undecenoyl chloride. The resulting Lys s were subsequently polymerized ADMET polymerization by using Grubbs' first generation (G1) catalyst in 1,1,1,3,3,3-hexafluoroisopropanol (HFIP) generating the ADMET polymers (A-[Lys ] ) ( = 2-12) with molecular weights ranging from 3 to 28 kDa, displaying polydispersity () values in the range of 1.5-3.2. After chemical analyses of Lys s and A-[Lys ] s by H-NMR, GPC and MALDI-ToF MS, secondary structural investigations were probed by CD spectroscopy and IR spectroscopy in 2,2,2-trifluoroethanol (TFE). In order to study A-[Lys ] s with defined molecular weights and low polydispersity values ( = 1.03-1.48), the ADMET polymers A-[Lys ] and A-[Lys ] were fractionated by preparative GPC, and subsequently analysed by H-NMR, analytical GPC, MALDI-ToF MS and CD spectroscopy. We can demonstrate the influence of chain length of the generated polymers on the formation of secondary structures by comparing Lys s with varying values to the ADMET-polymers with the help of spectroscopic techniques such as CD and FTIR-spectroscopy in a helicogenic solvent.
类似于(部分)折叠蛋白质结构的肽类杂化聚合物是生物医学领域中很有前景的材料,特别是考虑到不同片段之间的折叠相互作用。在本研究中,成功合成了带有重复肽折叠元件的聚合物,这些聚合物由N端功能化的双ω-烯功能化寡聚-L-赖氨酸(羧苄基(Z))(Lys )组成,重复单元()分别为3、6、12、24和30,以研究其链间构象相互作用引入的二级结构。ADMET的预聚物,即窄分布的Lys s,是通过用11-氨基-十一碳烯引发的ε-羧基环酸酐(NCA)的开环聚合(ROP)获得的,随后用10-十一碳烯酰氯进行N端功能化。所得的Lys s随后在1,1,1,3,3,3-六氟异丙醇(HFIP)中使用第一代Grubbs(G1)催化剂通过ADMET聚合进行聚合,生成分子量范围为3至28 kDa的ADMET聚合物(A-[Lys ] )( = 2-12),其多分散性()值在1.5-3.2范围内。通过H-NMR、GPC和MALDI-ToF MS对Lys s和A-[Lys ] s进行化学分析后,在2,2,2-三氟乙醇(TFE)中通过圆二色光谱(CD)和红外光谱(IR)对二级结构进行了研究。为了研究具有确定分子量和低多分散性值( = 1.03-1.48)的A-[Lys ] s,通过制备型GPC对ADMET聚合物A-[Lys ] 和A-[Lys ] 进行分级,随后通过H-NMR、分析型GPC、MALDI-ToF MS和CD光谱进行分析。我们可以借助螺旋生成溶剂中的CD和FTIR光谱等光谱技术,通过将具有不同值的Lys s与ADMET聚合物进行比较,来证明所生成聚合物的链长对二级结构形成的影响。