Immunostimulatory toll-like receptor agonist-nanoparticle for cancer immunotherapy
View Patent ↗Compositions and methods are provided relating to immunostimulatory TLR agonist nanoparticle formulations. Methods are provided for treating cancer, by stimulating an immune response to cancer cells through administering to an individual mammal an effective dose or series of doses of an immunostimulatory composition comprising an immunostimulatory TLR agonist-nanoparticle; optionally in combination with a second immune regulatory agent.
1 . An immunostimulatory nanoparticle comprising:
a TLR agonist conjugated to a first polymer through a cleavable linkage, precipitated into a nanoparticle;
wherein the first polymer is poly-lactic acid comprising from about 5% to about 25% by weight the TLR agonist.
2 . The immunostimulatory nanoparticle of claim 1 , wherein the cleavable linkage is an ester linkage.
3 . The immunostimulatory nanoparticle of claim 1 , wherein the TLR agonist is nano-precipitated with a second polymer.
4 . The immunostimulatory nanoparticle of claim 1 , wherein the TLR agonist is a TLR7 agonist.
5 . The immunostimulatory nanoparticle of claim 1 , wherein the TLR agonist is gardiquimod.
6 . The immunostimulatory nanoparticle of claim 3 , wherein the second polymer comprises polyethylene glycol (PEG) or a conjugate thereof.
7 . The immunostimulatory nanoparticle of claim 3 , wherein the second polymer comprises PEG conjugated to poly-lactic acid, poly-glycolic acid, or poly(lactic-co-glycolic acid).
8 . The immunostimulatory nanoparticle of claim 1 , wherein the nanoparticle is from 25 nm to 100 nm in diameter.
9 . The immunostimulatory nanoparticle of claim 1 , wherein the nanoparticle is from 60 nm to 85 nm in diameter.
10 . The immunostimulatory nanoparticle of claim 1 , wherein the standard deviation of diameter is less than 25 nm, less than 15 nm, or less than 10 nm.
11 . The immunostimulatory nanoparticle of claim 3 , further comprising an exogenous tumor antigen that is (i) co-precipitated with the first and second polymers to form the nanoparticle; (ii) conjugated to the adjuvant nanoparticles; or (iii) co-formulated with the nanoparticles in the absence of a physical linkage to the adjuvant nanoparticles.
12 . The immunostimulatory nanoparticle of claim 1 , wherein the TLR agonist is conjugated to a first polymer through an ester linkage, having the structure:
13 . A method of treating an individual mammal for cancer, the method comprising:
administering an effective dose of immunostimulatory nanoparticles of claim 1 , to activate an immune response against cancer cells present in the individual.
14 . The method of claim 13 , wherein the immunostimulatory nanoparticles are administered in combination with an effective dose of a second immune regulatory agent.
15 . The method of claim 14 , wherein the second immune regulatory agent is an immune checkpoint inhibitor of PD-1 or PD-L1, wherein the combination therapy provides for a synergistic response.
16 . The method of claim 13 , wherein the cancer is a solid tumor, selected from carcinoma, glioma, melanoma, sarcoma, lymphoma, and myeloma.
17 . The method of claim 16 , wherein the immunostimulatory nanoparticles are administered intra-tumorally.
18 . A method of generating a polymer comprising a plurality of ester linked TLR agonist moieties, the method comprising:
initiating a ring-opening polymerization (ROP) reaction of lactide with the TLR agonist as the initiator, to generate a polymer comprising a defined level of TLR agonist loading, wherein the TLR agonist is optionally gardiquimod, wherein the polymer comprises from about 5% to about 25% by weight the TLR agonist.