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February 6, 2026Macromolecular Chemistry and Physics0 citations

Polymeric Delivery of DNA‐Encoded Biologics

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JTJeffrey TingPDPeter A. Dykeman‐BerminghamCCCaroline E. Cairns

Key Points

  • This work aims to explore the delivery of DNA-encoded biologics using polymer nanoparticles for sustained protein expression.
  • Overview of polymeric delivery systems for DNA-encoded biologics.
  • Discussion on the challenges of existing delivery methods like viral vectors and lipid nanoparticles.
  • Outline of polymer nanoparticle design considerations based on gene therapy and drug delivery principles.
  • Introduction of data-driven materials discovery and AI to enhance biologics development.
  • Polymer nanoparticles can self-assemble with plasmid DNA, ensuring stable and high-dose delivery.
  • The approach supports the growth of therapeutic monoclonal antibodies and specialized proteins.
  • New avenues for treatment of infectious diseases, metabolic issues, and obesity are highlighted.

Abstract

ABSTRACT This Perspective provides an overview of the fundamental concepts regarding polymeric delivery of DNA‐encoded biologics for the durable expression of biologics such as monoclonal antibodies (mAbs), endogenous proteins, and peptides. The concept of vectorizing proteins from the delivery of engineered plasmid DNA (pDNA) has long been considered to treat a range of infectious diseases, oncology, metabolic, and autoimmune disorders. However, viral vectors are non‐redosable and often immunogenic, and lipid nanoparticles face challenges associated with stability, burst release, and toxicity. By contract, polymer nanoparticles (PNPs) with ionizable amine moieties can readily self‐assemble with encoding pDNA and deliver high doses of cargo. We describe this concept within the rapid growth of therapeutic mAbs as a clinical modality. Specifically, PNP design considerations are outlined using conventional principles from gene therapy, protein engineering, and controlled drug delivery. This convergent approach, which we are pursuing with data‐driven materials discovery and an Artificial Intelligence (AI) enabled platform, creates promising new classes of potent biologics to be developed at scale. The breadth of possible programmable proteins from encoded DNA ranges from specialized mAbs that treat HIV to important anti‐obesity peptides, representing exciting avenues for polymer scientists to make important contributions to the next generation of genetic medicines.

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Cite This Study

Ting et al. (2026) studied this question.

synapsesocial.com/papers/698586118f7c464f23009fe5https://doi.org/10.1002/macp.202500421
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