4.2 Article

Water-Based Dynamic Depsipeptide Chemistry: Building Block Recycling and Oligomer Distribution Control Using Hydration-Dehydration Cycles

期刊

JACS AU
卷 2, 期 6, 页码 1395-1404

出版社

AMER CHEMICAL SOC
DOI: 10.1021/jacsau.2c00087

关键词

depsipeptide; dynamic covalent chemistry; abiotic chemistry; green chemistry; peptidomimetic

资金

  1. NSF
  2. NASA Astrobiology Program under the NSF Center for Chemical Evolution [CHE1504217]
  3. NASA postdoctoral program

向作者/读者索取更多资源

The high kinetic barrier to amide bond formation limits its utility in reversible chemistry applications, but the use of depsipeptides can overcome the challenges associated with dynamic peptide chemistry and achieve reversible polymerization and depolymerization.
The high kinetic barrier to amide bond formation has historically placed narrow constraints on its utility in reversible chemistry applications. Slow kinetics has limited the use of amides for the generation of diverse combinatorial libraries and selection of target molecules. Current strategies for peptide-based dynamic chemistries require the use of nonpolar co-solvents or catalysts or the incorporation of functional groups that facilitate dynamic chemistry between peptides. In light of these limitations, we explored the use of depsipeptides: biorelevant copolymers of amino and hydroxy acids that would circumvent the challenges associated with dynamic peptide chemistry. Here, we describe a model system of N-(alpha-hydroxyacyl)-amino acid building blocks that reversibly polymerize to form depsipeptides when subjected to two-step evaporation-rehydration cycling under moderate conditions. The hydroxyl groups of these units allow for dynamic ester chemistry between short peptide segments through unmodified carboxyl termini. Selective recycling of building blocks is achieved by exploiting the differential hydrolytic lifetimes of depsipeptide amide and ester bonds, which we show are controllable by adjusting the solution pH, temperature, and time as well as the building blocks' side chains. We demonstrate that the polymerization and breakdown of the depsipeptides are facilitated by cyclic morpholinedione intermediates, and further show how structural properties dictate half-lives and product oligomer distributions using multifunctional building blocks. These results establish a cyclic mode of ester-based reversible depsipeptide formation that temporally separates the polymerization and depolymerization steps for the building blocks and may have implications for prebiotic polymer chemical evolution.

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