4.7 Article

Amphiphilic Polyelectrolyte Graft Copolymers Enhance the Activity of Cyclic Dinucleotide STING Agonists

期刊

ADVANCED HEALTHCARE MATERIALS
卷 10, 期 2, 页码 -

出版社

WILEY
DOI: 10.1002/adhm.202001056

关键词

endosomal escape; graft copolymers; polymer nanoparticles; self‐ assembling nanoparticles; stimulator of interferon genes (STING)

资金

  1. National Science Foundation [CBET-1554623]
  2. National Institutes of Health [R01 CA245134]
  3. Vanderbilt Ingram Cancer Center (VICC) Ambassador Discovery Grant
  4. VICC-Vanderbilt Center for Immunobiology Pilot Grant
  5. National Institutes of Health Integrated Training in Engineering and Diabetes Training Grant [T32 DK101003]
  6. Melanoma Research Alliance [503565]
  7. Stand Up To Cancer Innovative Research Grant [SU2C-AACR-IRG 20-17]
  8. Stand Up To Cancer (SU2C) is a program of the Entertainment Industry Foundation
  9. Canadian Institutes of Health Research (CIHR)
  10. SyBBURE Searle Undergraduate Research Program at Vanderbilt University

向作者/读者索取更多资源

The study addressed the poor drug-like properties of CDN cGAMP by synthesizing novel copolymers with pH-responsive, membrane-destabilizing activity to enhance intracellular delivery. Certain nanoparticles loaded with cGAMP significantly improved immunostimulatory activity, demonstrating efficient cytosolic delivery as a crucial criterion for CDN carriers.
Cyclic dinucleotide (CDN) agonists of stimulator of interferon genes (STING) hold great therapeutic potential, but their activity is hindered by poor drug-like properties that restrict cytosolic bioavailability. Here, this challenge is addressed through the synthesis and evaluation of a novel series of PEGMA-co-DEAEMA-co-BMA copolymers with pH-responsive, membrane-destabilizing activity to enhance intracellular delivery of the CDN, cGAMP. Copolymers are synthesized with PEGMA of two different molecular weights (300 and 950 Da) and over a range of PEG mass fraction and polymer molecular weight, and relationships between copolymer structure, self-assembly, endosomal escape, and cGAMP activity are elucidated. A subset of polymers that self-assembled into 50-800 nm nanoparticles is identified, which can be loaded with cGAMP via a simple mixing strategy, resulting in significantly enhanced immunostimulatory activity. Increased cGAMP activity is found to be highly correlated with the capacity of carriers to enhance intracellular CDN uptake and to promote endosomal destabilization, findings that establish efficient cytosolic delivery as a criterion for CDN carriers. Additionally, it is demonstrated that a lead CDN carrier formulation can enhance STING activation in vivo in a model of intratumoral immunotherapy. Collectively, these investigations demonstrate the utility of PEGMA-co-DEAEMA-co-BMA copolymers as carriers for CDNs and potentially other cytosolically-acting drug cargo.

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