Maria Mercedes Fiora, Huihua Xing, Marilina Cathcarth, Octavio Garate, Santiago Herrera, Agustin S. Picco, Gabriel Ybarra, Martin Conda-Sheridan, Mario Tagliazucchi
{"title":"Fine tuning the morphology of peptide-amphiphile nanostructures via co-assembly","authors":"Maria Mercedes Fiora, Huihua Xing, Marilina Cathcarth, Octavio Garate, Santiago Herrera, Agustin S. Picco, Gabriel Ybarra, Martin Conda-Sheridan, Mario Tagliazucchi","doi":"10.1039/d5sc02935j","DOIUrl":null,"url":null,"abstract":"The self-assembly of peptide amphiphiles (PAs) in aqueous solution yields nanoconstructs displaying a rich spectrum of sizes and morphologies, including micelles, fibers, and lamellar ribbons. The morphology impacts the bioactivity of the PAs and, thus, efforts have been made to control it by tuning by their molecular structure or the solution pH. However, synthesizing new PAs is time consuming and biomedical applications limit the pH to physiologically relevant ranges. This work demonstrates that the composition of a binary mixture of co-assembled PAs serves as a powerful approach to exert a rational control over the morphology, size and transition pHs of the supramolecular nanostructures. We combined light scattering, SAXS, TEM and AFM experiments and theoretical predictions using a Molecular Theory (MOLT) to construct composition-pH morphology diagrams for three relevant PA mixtures. For C<small><sub>16</sub></small>KK/C<small><sub>16</sub></small>KKK mixtures (C<small><sub>16</sub></small>: palmitoyl, K: lysine), we demonstrate fine tuning of the micelle-to-fiber transition pH by varying the composition of the system. For a mixture of oppositely charged PAs, C<small><sub>16</sub></small>EEE/C<small><sub>16</sub></small>KKK (E: glutamic acid), theory and experiment reveal interesting composition-driven micelle-to-fiber-to-micelle transitions. The C<small><sub>16</sub></small>EE/C<small><sub>16</sub></small>KK mixture exhibits three different morphologies—micelles, fibers, and lamellae— and regions of the morphology diagram showing coexistence between fibers and lamellae. MOLT calculations also provide insights on the internal organization of the assemblies and predicts that the nanostructure radius can be also tuned by the composition of the mixture, in agreement with SAXS observations.","PeriodicalId":9909,"journal":{"name":"Chemical Science","volume":"7 1","pages":""},"PeriodicalIF":7.4000,"publicationDate":"2025-07-03","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Chemical Science","FirstCategoryId":"92","ListUrlMain":"https://doi.org/10.1039/d5sc02935j","RegionNum":1,"RegionCategory":"化学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"CHEMISTRY, MULTIDISCIPLINARY","Score":null,"Total":0}
引用次数: 0
Abstract
The self-assembly of peptide amphiphiles (PAs) in aqueous solution yields nanoconstructs displaying a rich spectrum of sizes and morphologies, including micelles, fibers, and lamellar ribbons. The morphology impacts the bioactivity of the PAs and, thus, efforts have been made to control it by tuning by their molecular structure or the solution pH. However, synthesizing new PAs is time consuming and biomedical applications limit the pH to physiologically relevant ranges. This work demonstrates that the composition of a binary mixture of co-assembled PAs serves as a powerful approach to exert a rational control over the morphology, size and transition pHs of the supramolecular nanostructures. We combined light scattering, SAXS, TEM and AFM experiments and theoretical predictions using a Molecular Theory (MOLT) to construct composition-pH morphology diagrams for three relevant PA mixtures. For C16KK/C16KKK mixtures (C16: palmitoyl, K: lysine), we demonstrate fine tuning of the micelle-to-fiber transition pH by varying the composition of the system. For a mixture of oppositely charged PAs, C16EEE/C16KKK (E: glutamic acid), theory and experiment reveal interesting composition-driven micelle-to-fiber-to-micelle transitions. The C16EE/C16KK mixture exhibits three different morphologies—micelles, fibers, and lamellae— and regions of the morphology diagram showing coexistence between fibers and lamellae. MOLT calculations also provide insights on the internal organization of the assemblies and predicts that the nanostructure radius can be also tuned by the composition of the mixture, in agreement with SAXS observations.
期刊介绍:
Chemical Science is a journal that encompasses various disciplines within the chemical sciences. Its scope includes publishing ground-breaking research with significant implications for its respective field, as well as appealing to a wider audience in related areas. To be considered for publication, articles must showcase innovative and original advances in their field of study and be presented in a manner that is understandable to scientists from diverse backgrounds. However, the journal generally does not publish highly specialized research.