Publication

Elucidating Sequence-Assembly Relationships for Bilingual PNA Biopolymers

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Last modified
  • 06/25/2025
Type of Material
Authors
    Hector Argueta-Gonzalez, Emory UniversityColin S. Swenson, Emory UniversityKornelia J. Skowron, Washington University in St. LouisJennifer Heemstra, Emory University
Language
  • English
Date
  • 2023-09-29
Publisher
  • American Chemical Society
Publication Version
Copyright Statement
  • © 2023 The Authors
License
Final Published Version (URL)
Title of Journal or Parent Work
Volume
  • 8
Issue
  • 40
Start Page
  • 37442
End Page
  • 37450
Grant/Funding Information
  • This work was supported by the National Science Foundation (DMR 2003987 to J.M.H.).
Supplemental Material (URL)
Abstract
  • Nucleic acids and proteins possess encoded “languages” that can be used for information storage or to direct function. However, each biopolymer is limited to encoding its respective “language.” Using a peptide nucleic acid (PNA) scaffold, nucleobase and amino acid residues can be installed on a singular backbone, enabling a single biopolymer to encode both languages. Our laboratory previously reported the development of a “bilingual” PNA biopolymer that incorporates a sequence-specific nucleic acid code interspersed with hydrophobic (alanine) and hydrophilic (lysine) amino acid residues at defined positions to produce amphiphilic character. We observed the amphiphilic amino acid residues directing the biopolymer to undergo self-assembly into micelle-like structures, while the nucleic acid recognition was harnessed for disassembly. Herein, we report a series of bilingual PNA sequences having amino acid residues with varying lengths, functional group charges, hydrophobicities, and spacings to elucidate the effect of these parameters on micelle assembly and nucleic acid recognition. Negative charges in the hydrophilic block or increased bulkiness of the hydrophobic side chains led to assembly into similarly sized micelles; however, the negative charge additionally led to increased critical micelle concentration. Upon PNA sequence truncation to decrease the spacing between side chains, the biopolymers remained capable of self-assembling but formed smaller structures. Characterization of disassembly revealed that each variant retained sequence recognition capabilities and stimuli-responsive disassembly. Together, these data show that the amino acid and nucleic acid sequences of amphiphilic bilingual biopolymers can be customized to finely tune the assembly and disassembly properties, which has implications for applications such as the encapsulation and delivery of cargo for therapeutics.
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Keywords
Research Categories
  • Biology, Molecular
  • Chemistry, Polymer
  • Chemistry, Biochemistry

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