Drug-eluting bead transcatheter arterial chemoembolization (DEB-TACE) is a treatment procedure for liver cancer that involves the selective catheterization and subsequent embolization of tumor-feeding arteries with drug-eluting beads (DEBs). DEB-TACE elicits ischemic cell death in the embolized tumor while simultaneously delivering a local, sustained release of chemotherapy. We hypothesize that the application of DEBs loaded with an immunostimulatory adjuvant in the DEB-TACE procedure will promote local antigen presenting cells to utilize the antigens released by dying tumor cells to generate a systemic, adaptive anti-tumor immune response. This approach represents a novel form of transarterial immunoembolization (TIE). 558 is a highly potent, small molecule Toll-like receptor 7/8 agonist that activates both innate and adaptive immune responses to eliminate tumor cells in various preclinical tumor models. Hydrogel microspheres composed of cross-linked sulfobutylether-β-cyclodextrin (SBE-βCD) were investigated as DEBs for 558 in the current study. SBE-βCD hydrogel microspheres (SBE-βCDMS) of 10 - 300 μm diameter were synthesized via suspension polymerization of SBE-βCD and ethylene glycol diglycidyl ether followed by wet sieving. 558 loading was achieved by incubating blank SBE-βCDMS in aqueous solutions of 558. Under non-saturating conditions, SBE-βCDMS absorbed almost the entirety of 558 from loading solutions in 4 h. The dose of 558 loaded in SBE-βCDMS was tuned by altering the initial amount of 558 in solution, up to a maximum loading of 0.28 mg 558/mg dry SBE-βCDMS determined under saturating conditions. The time to 50% release of 558 from loaded SBE-βCDMS was less than 30 min when phosphate buffered saline was used as release media. However, the release of 558 was negligible when deionized water was used as release media. The released drug was as effective as free 558 in stimulating cytokine response from human peripheral blood mononuclear cells in vitro. As a surrogate for TIE, we evaluated plasma and tumor pharmacokinetics upon intratumoral injection of 558-loaded SBE-βCDMS (50 - 100 μm diameter) or free 558 at a dose of 100 μg in C57BL/6 mice bearing B16F10-OVA flank tumors. The gradual release of 558 from loaded SBE-βCDMS prevented an initial spike in plasma concentration that was observed for mice administered with free 558, and maintained constant tumor concentrations for at least 4 h post-injection. High-resolution MALDI mass spectrometry imaging of 15 μm-thick tumor cryosections indicated that 558 was initially concentrated within SBE-βCDMS after intratumoral injection, and extensively released into the surrounding tumor tissue 24 h post-injection. Taken together, these results suggest that 558-loaded SBE-βCDMS are a promising platform for local drug delivery and immune cell stimulation via TIE. Citation Format: Joel Updyke, Shubhmita Bhatnagar, Nitu Bhaskar, Rachel Parise, Swati Nagar, John Schultz, David Ferguson, Tamara Kucaba, Thomas Griffith, Ronald Siegel, Jayanth Panyam. Sulfobutylether-β-cyclodextrin hydrogel microspheres delivering TLR 7/8 agonist for transarterial immunoembolization [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2023; Part 1 (Regular and Invited Abstracts); 2023 Apr 14-19; Orlando, FL. Philadelphia (PA): AACR; Cancer Res 2023;83(7_Suppl):Abstract nr 1993.
Nosocomial infections caused by resistant Gram-positive organisms are on the rise, presumably due to a combination of factors including prolonged hospital exposure, increased use of invasive procedures, and pervasive antibiotic therapy. Although antibiotic stewardship and infection control measures are helpful, newer agents against multidrug-resistant (MDR) Gram-positive bacteria are urgently needed. Here, we describe our efforts that led to the identification of 5-amino-4-quinolone 111 with exceptionally potent Gram-positive activity with minimum inhibitory concentrations (MICs) ≤0.06 μg/mL against numerous clinical isolates. Preliminary mechanism of action and resistance studies demonstrate that the 5-amino-4-quinolones are bacteriostatic, do not select for resistance, and selectively disrupt bacterial membranes. While the precise molecular mechanism has not been elucidated, the lead compound is nontoxic displaying a therapeutic index greater than 500, is devoid of hemolytic activity, and has attractive physicochemical properties (clog P = 3.8, molecular weight (MW) = 441) that warrant further investigation of this promising antibacterial scaffold for the treatment of Gram-positive infections.
Despite significant advancements in immune checkpoint blockade (ICB) therapy, only few patients respond to the treatment. Non-immunogenic cold tumors lack T-cell infiltration, which results in reduced ICB therapeutic efficiency. Immune adjuvants can reprogram the non-immunogenic cold tumor microenvironment (TME) to inflamed hot TME by activating antigen presenting cells and improving T-cell homing. Here, we investigate the potentials of 558 (a novel TLR 7/8 agonist) and ADU-S100 (stimulator of interferon gene (STING) agonist in clinical trials) combination on improving the activity of ICB. Human TLR-specific reporter cell assay using HEK-Blue™-hTLR7 and 8, confirmed the activation of both TLR 7 and TLR 8 with EC50 of 0.18 µM and 5.34 µM respectively, when treated with 558. In addition, treatment of human PBMCs with 558 increased the IFN-γ and TNF-α cytokine secretions. Moreover, the levels of IL-10, an anti-inflammatory cytokine were not increased upon treatment with 558. Although treatment of bone marrow derived dendritic cells (BMDC) with 558 resulted in CD40 expression, a reduced expression of CD80 and CD86, costimulatory molecules that are required for T-cell activation, was observed. Interestingly, 558 in combination with ADU-S100 not only increased the CD40 expression but also improved the expression of CD80 (4-fold) and CD86 on BMDCs. Furthermore, the levels of pro-inflammatory cytokines TNF-α and IL-6 was significantly increased when BMDCs were treated with 558 and ADU-S100 combination compared to the individual treatments. TME constitute M2 polarized macrophages that promote secretion of anti-inflammatory cytokines and favor tumor progression. Interestingly, 558 and ADU-S100 combination reduced the expression of CD206, a mannose receptor that is highly expressed on M2 macrophages and improved the expression of CD80 (25-fold) and CD86 (6-fold) compared to 558 treatments alone. These results confirmed the polarization of M2 macrophages to immunogenic M1 macrophages. Overall, these studies indicate promising potential of 558 and ADU-S100 combination in reprogramming the TME to aid in effective cancer treatments. Citation Format: Vishnu Revuri, Shubhmita Bhatnagar, John Schultz, Peter Larson, David M. Ferguson, Jayanth Panyam. STING and TLR 7/8 Agonist combination can improve immune checkpoint blockade therapy efficiency [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2022; 2022 Apr 8-13. Philadelphia (PA): AACR; Cancer Res 2022;82(12_Suppl):Abstract nr 5587.
Toll-like receptors (TLRs) 7 and 8 are key targets in the development of immunomodulatory drugs for treating infectious disease, cancer, and autoimmune disorders. These receptors can adopt both agonist and antagonist binding conformations that switch the receptor signal on or off to the downstream production of cytokines. In this study, we examined the effect of simple isomeric substitutions to the C2-butyl group of two imidazoquinoline agonists and evaluated the activity of these analogs using both TLR7 and TLR8 reporter cells and cytokine induction assays. Results are presented showing the C2-isobutyl and C2-cyclopropylmethyl isomers are both mixed TLR7/8 competitive antagonists of the parent agonist [4-Amino-1-(4-(aminomethyl)benzyl)-2-butyl-7-methoxycarbonyl-1H-imidazo[4,5-c]quinoline], indicating the conformation of the dimeric receptor complex is highly sensitive to steric perturbations to the ligand binding pocket. This observation is consistent with prior work demonstrating TLR7 and TLR8 activity is directly correlated to C2-alkyl substitutions that project into a hydrophobic pocket at the dimer interface of the receptor. The close structural relationship of the agonist/antagonist pairs identified here highlights the importance of this pocket in tipping the balance between the agonist and antagonist binding states of the receptor which may have significant ramifications to the design of imidazoquinoline-based immunomodulatory agents.
Modular type I polyketide synthases (PKSs) produce some of the most chemically complex metabolites in nature through a series of multienzyme modules. Each module contains a variety of catalytic domains to selectively tailor the growing molecule. PKS O-methyltransferases ( O-MTs) are predicted to methylate β-hydroxyl or β-keto groups, but their activity and structure have not been reported. We determined the domain boundaries and characterized the catalytic activity and structure of the StiD and StiE O-MTs, which methylate opposite β-hydroxyl stereocenters in the myxobacterial stigmatellin biosynthetic pathway. Substrate stereospecificity was demonstrated for the StiD O-MT. Key catalytic residues were identified in the crystal structures and investigated in StiE O-MT via site-directed mutagenesis and further validated with the cyanobacterial CurL O-MT from the curacin biosynthetic pathway. Initial structural and biochemical analysis of PKS O-MTs supplies a new chemoenzymatic tool, with the unique ability to selectively modify hydroxyl groups during polyketide biosynthesis.