The Diverse World of Foldamers: Endless Possibilities of Self-Assembly
Different classes of foldamers, which are synthetic oligomers that adopt well-defined conformations in solution, have been the subject of extensive studies devoted to the elucidation of the forces driving their secondary structures and their potential as bioactive molecules. Regardless of the backbo...
| Published in: | Molecules |
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| Main Author: | |
| Format: | Article |
| Language: | English |
| Published: |
MDPI AG
2020-07-01
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| Subjects: | |
| Online Access: | https://www.mdpi.com/1420-3049/25/14/3276 |
| _version_ | 1849889948714401792 |
|---|---|
| author | Samuele Rinaldi |
| author_facet | Samuele Rinaldi |
| author_sort | Samuele Rinaldi |
| collection | DOAJ |
| container_title | Molecules |
| description | Different classes of foldamers, which are synthetic oligomers that adopt well-defined conformations in solution, have been the subject of extensive studies devoted to the elucidation of the forces driving their secondary structures and their potential as bioactive molecules. Regardless of the backbone type (peptidic or abiotic), the most important features of foldamers are the high stability, easy predictability and tunability of their folding, as well as the possibility to endow them with enhanced biological functions, with respect to their natural counterparts, by the correct choice of monomers. Foldamers have also recently started playing a starring role in the self-assembly of higher-order structures. In this review, selected articles will be analyzed to show the striking number of self-assemblies obtained for foldamers with different backbones, which will be analyzed in order of increasing complexity. Starting from the simplest self-associations in solution (e.g., dimers of β-strands or helices, bundles, interpenetrating double and multiple helices), the formation of monolayers, vesicles, fibers, and eventually nanostructured solid tridimensional morphologies will be subsequently described. The experimental techniques used in the structural investigation, and in the determination of the driving forces and mechanisms underlying the self-assemblies, will be systematically reported. Where applicable, examples of biomimetic self-assembled foldamers and their interactions with biological components will be described. |
| format | Article |
| id | doaj-art-8ab6095d760e4650bf66eeee60ffbfdc |
| institution | Directory of Open Access Journals |
| issn | 1420-3049 |
| language | English |
| publishDate | 2020-07-01 |
| publisher | MDPI AG |
| record_format | Article |
| spelling | doaj-art-8ab6095d760e4650bf66eeee60ffbfdc2025-08-20T01:04:18ZengMDPI AGMolecules1420-30492020-07-012514327610.3390/molecules25143276The Diverse World of Foldamers: Endless Possibilities of Self-AssemblySamuele Rinaldi0Department of Life and Environmental Sciences, Polytechnic University of Marche, Via Brecce Bianche, 60131 Ancona, ItalyDifferent classes of foldamers, which are synthetic oligomers that adopt well-defined conformations in solution, have been the subject of extensive studies devoted to the elucidation of the forces driving their secondary structures and their potential as bioactive molecules. Regardless of the backbone type (peptidic or abiotic), the most important features of foldamers are the high stability, easy predictability and tunability of their folding, as well as the possibility to endow them with enhanced biological functions, with respect to their natural counterparts, by the correct choice of monomers. Foldamers have also recently started playing a starring role in the self-assembly of higher-order structures. In this review, selected articles will be analyzed to show the striking number of self-assemblies obtained for foldamers with different backbones, which will be analyzed in order of increasing complexity. Starting from the simplest self-associations in solution (e.g., dimers of β-strands or helices, bundles, interpenetrating double and multiple helices), the formation of monolayers, vesicles, fibers, and eventually nanostructured solid tridimensional morphologies will be subsequently described. The experimental techniques used in the structural investigation, and in the determination of the driving forces and mechanisms underlying the self-assemblies, will be systematically reported. Where applicable, examples of biomimetic self-assembled foldamers and their interactions with biological components will be described.https://www.mdpi.com/1420-3049/25/14/3276self-assemblyfoldamersstructural investigationsecondary structurehigher-order structuresmorphology |
| spellingShingle | Samuele Rinaldi The Diverse World of Foldamers: Endless Possibilities of Self-Assembly self-assembly foldamers structural investigation secondary structure higher-order structures morphology |
| title | The Diverse World of Foldamers: Endless Possibilities of Self-Assembly |
| title_full | The Diverse World of Foldamers: Endless Possibilities of Self-Assembly |
| title_fullStr | The Diverse World of Foldamers: Endless Possibilities of Self-Assembly |
| title_full_unstemmed | The Diverse World of Foldamers: Endless Possibilities of Self-Assembly |
| title_short | The Diverse World of Foldamers: Endless Possibilities of Self-Assembly |
| title_sort | diverse world of foldamers endless possibilities of self assembly |
| topic | self-assembly foldamers structural investigation secondary structure higher-order structures morphology |
| url | https://www.mdpi.com/1420-3049/25/14/3276 |
| work_keys_str_mv | AT samuelerinaldi thediverseworldoffoldamersendlesspossibilitiesofselfassembly AT samuelerinaldi diverseworldoffoldamersendlesspossibilitiesofselfassembly |
