Asokan-Sheeja Haritha, Das Debdatta, Nguyen Jenny N, Nguyen Na, Van Khanh Pham Tran, Nguyen Kytai T, Dong He
Department of Chemistry and Biochemistry, The University of Texas at Arlington, 701 S Nedderman Dr, Arlington, 76019, TX, USA.
Department of Bioengineering, The University, of Texas at Arlington, 701 S Nedderman Dr, Arlington, 76019, TX, USA.
Chemistry. 2024 Dec 2;30(67):e202403085. doi: 10.1002/chem.202403085. Epub 2024 Nov 13.
Stimuli-responsive peptides, particularly pH-responsive variants, hold significant promise in biomedical and technological applications by leveraging the broad pH spectrum inherent to biological environments. However, the limited number of natural pH-responsive amino acids within biologically relevant pH ranges presents challenges for designing rational pH-responsive peptide assemblies. In our study, we introduce a novel approach by incorporating a library of non-natural amino acids featuring chemically diverse tertiary amine side chains. Hydrophobic and ionic properties of these non-natural amino acids facilitate their incorporation into the assembly domain when uncharged, and electrostatic repulsion promotes disassembly under lower pH conditions. Furthermore, we observed a direct relationship between the number of substitutions and the hydrophobicity of these amino acids, influencing their pH-responsive properties and enabling rational design based on desired transitional pH ranges. The structure-activity relationship of these pH-responsive peptides was evaluated by assessing their antimicrobial properties, as their antimicrobial activity is triggered by the disassembly of peptides to release active monomers. This approach not only enhances the specificity and controllability of pH responsiveness but also broadens the scope of peptide materials in biomedical and technological applications.
刺激响应性肽,特别是pH响应性变体,通过利用生物环境固有的广泛pH范围,在生物医学和技术应用中具有巨大潜力。然而,在生物学相关pH范围内天然pH响应性氨基酸数量有限,这给设计合理的pH响应性肽组装体带来了挑战。在我们的研究中,我们引入了一种新方法,即纳入一个具有化学性质多样的叔胺侧链的非天然氨基酸库。这些非天然氨基酸的疏水和离子特性有助于它们在不带电时融入组装结构域,而静电排斥则促进在较低pH条件下的解组装。此外,我们观察到这些氨基酸的取代数量与其疏水性之间存在直接关系,这影响了它们的pH响应特性,并能够基于所需的转变pH范围进行合理设计。通过评估这些pH响应性肽的抗菌性能来评价其构效关系,因为它们的抗菌活性是由肽的解组装释放活性单体触发的。这种方法不仅提高了pH响应的特异性和可控性,还拓宽了肽材料在生物医学和技术应用中的范围。