The objective of cancer immunotherapy is to prime the host's immune system to recognize and attack malignant tumor cells. IMO‑2125, a Toll‑like receptor 9 (TLR9) agonist, exhibited potent antitumor effects in the murine syngeneic A20 lymphoma and the CT26 colon carcinoma models. IMO‑2125 exhibited superior A20 antitumor activity when injected intratumorally (i.t.) compared with equivalent subcutaneous doses. In mice bearing dual CT26 grafts, the i.t. injection of right flank tumors elicited infiltration of cluster of differentiation (CD)3+ T lymphocytes into tumors, resulting in the regression of injected and uninjected left flank tumors. Depletion of CD8+, but not CD4+, T‑cells abrogated the IMO‑2125‑mediated antitumor response, suggesting that CD8+ lymphocytes are required for the antitumor activity. In mice harboring right flank CT26 and left flank β‑galactosidase (β‑gal)‑expressing CT26.CL25 grafts, the i.t. administration of IMO‑2125 to the CT26 graft resulted in potent and dose‑dependent antitumor activity against the two grafts. Splenic T‑cells isolated from these mice responded to AH1 antigen (present in the two tumors) and β‑gal antigen (present only in CT26.CL25) in an interferon γ enzyme‑linked immunospot assay, suggesting the clonal expansion of T‑cells directed against antigens from the two tumors. Mice with ablated CT26 tumors by previous IMO‑2125 treatment rejected re‑implanted CT26 tumor cells, but not A20 tumor cells, demonstrating that the initial IMO‑2125 treatment created a long‑lived tumor‑specific immune memory of CT26 antigens. A quantitative increase in CD3+ T lymphocytes in injected A20 tumors and an upregulation of selected checkpoint genes, including indoleamine 2,3‑dioxygenase (IDO)‑1, IDO‑2, programmed cell death protein-1 (PD-1); programmed cell death protein ligand 1 (PD-L1), carcinoembryonic antigen‑related cell adhesion molecule 1, tumor necrosis factor receptor superfamily member 4 (OX40), OX40 ligand, T‑cell immunoglobulin and mucin‑domain‑containing 3 protein, lymphocyte‑activation gene 3, cytotoxic T‑lymphocyte‑associated protein 4, were observed following IMO‑2125 treatment. IMO‑2125 also increased immune checkpoint gene expression in injected and uninjected contralateral CT26 tumors, suggesting that the co‑administration of anti‑CTLA‑4, anti‑PD‑1 or anti‑PD‑L1 therapies with IMO‑2125 may provide additional therapeutic efficacy.
Abstract Cancer immunotherapy aims to stimulate host antitumor immune responses or break tumor-related immune tolerance or both with the potential of curative treatment. Potential immunotherapy targets include Toll-like receptors (TLRs), which are key receptors of the innate immune system and play an important role in regulating adaptive immune responses. IMO-2125 is a potent and selective agonist of endosomal TLR9 which significantly induces IFN-α, and the maturation of dendritic cells (DC). In the setting of cancer immunotherapy, we hypothesize that intratumoral (i.t.) administration of IMO-2125 has the potential to stimulate DC maturation and T-cell activation in the tumor microenvironment, leading to increased local and systemic antitumor immune responses and tumor regression, and may potentiate the activity of checkpoint inhibitors. In the present study, we evaluated the antitumor immune activity of i.t. IMO-2125 in murine syngeneic colon carcinoma models. BALB/c mice were s.c. implanted with 3 x 106 CT26 and CT26.CL25 cells, a subclone of CT26 expressing a model antigen beta-galactosidase (beta-gal), on the right and left flanks, respectively. Treatment was initiated when tumor nodules reached 200 mm3. Treated mice received IMO-2125 at doses of 10, 50 and 100 µg per injection, placebo, or a control compound (n=8 each), by i.t. injection only in the CT26 tumor implanted in the right flank twice weekly for two weeks. To evaluate IMO-2125 in combination with an anti-CTLA-4 mAb, 50 µg IMO-2125 and 10 µg anti-mouse CTLA-4 mAb were co-injected into the right tumor. Over two weeks, IMO-2125 was administered five times and the anti-mouse CTLA-4 mAb was administered four times. Results showed that i.t. IMO-2125 treatment led to dose-dependent inhibition of both treated and distant tumor growth. In mice treated with 100 µg, there were reductions in tumor volume of 95.2% (p = 0.0058) and 91.2% (p = 0.0048) in the treated and distant tumors, respectively. At this dose, there was complete tumor regression in 5 out 8 mice (63%). Control compound showed no anti-tumor activity. Antitumor activity was correlated with increased CD8+ T cell infiltration into both treated and distant tumors. In vivo depletion of T cells showed that IMO-2125 i.t mediated antitumor effects depended on CD8+ T cells, while depletion of CD4+ T cells enhanced IMO-2125 mediated tumor regression through elimination of Tregs. Furthermore, treatment elicited tumor-specific cytotoxic T cells not only to CT26 associated antigen AH1 in the injected tumor and also to beta-gal presented only in distant CT26.CL25 tumors. The mice with complete regression were rechallenged with CT26/CT26.CL25 and rejected the implantation; however, they were not protected from rechallenge with A20 lymphoma, indicating IMO-2125 i.t. treatment resulted in persistent tumor memory. Treatment with a combination of i.t. IMO-2125 and i.t. anti CTLA-4 mAb resulted in more potent antitumor activity than either agent alone. In conclusion, i.t. administration of IMO-2125 changes the local tumor microenvironment by inducing Th1 type cytokines, thereby modulating levels of immune checkpoint expression, and exerting potent local and systemic antitumor activity. In addition, IMO-2125 treatment in combination with an anti-CTLA-4 mAb demonstrated more potent antitumor activity compared to either agent alone. IMO-2125 has been well tolerated and showed induction of systemic IFN-α in a human trial. Planning for a clinical trial of a combination of i.t. IMO-2125 and ipilumimab is ongoing. Citation Format: Daqing Wang, Fugang Zhu, Xianzhi Mao, Sudhir Agrawal. Intratumoral administration of IMO-2125, a novel TLR9 agonist, modulates the tumor microenvironment and exerts systemic antitumor activity alone and in combination with an anti-CTLA-4 mAb. [abstract]. In: Proceedings of the CRI-CIMT-EATI-AACR Inaugural International Cancer Immunotherapy Conference: Translating Science into Survival; September 16-19, 2015; New York, NY. Philadelphia (PA): AACR; Cancer Immunol Res 2016;4(1 Suppl):Abstract nr B094.
Translation of significant biochemical activity of pyridyl aminothiazole class of Chk1 inhibitors into functional CEA potency required analysis and adjustment of both physical properties and kinase selectivity profile of the series. The steps toward optimization of cellular potency included elimination of CDK7 activity, reduction of molecular weight and polar surface area and increase in lipophilicity of the molecules in the series.
While lipid nanoparticles (LNPs) proved to be effective in delivering siRNA to the liver and hepatocellular carcinoma (HCC) via systemic administration, they showed inferior or no efficacy in the extrahepatic tumor models. To understand the underlying mechanism for LNP activity in delivering siRNA to extrahepatic tumors, we determined siRNA biodistribution and gene-silencing activity of the LNP-siRNA nanoparticles containing different percentages of a polyethylene glycol (PEG) lipid, distinct PEG lipids with a short (C-14) or long (C-18) alkyl chain, or an identical composition with different particle sizes in mouse subcutaneous tumor xenograft models derived from either human HCC (Hep3B) or colon cancer (HT29 or HCT116) cells. We show that the LNPs containing C-18 DSA PEG exhibited a higher retention of siRNA in both Hep3B and HT29 tumors than those with C-14 DMA PEG following an intravenous administration. Intriguingly, LNPs containing 2% of DSA or DMA PEG resulted in similar levels (∼50%) of target knockdown in Hep3B tumors while those containing 6% of DSA or DMA PEG caused no target silencing. Also, none of these LNPs reduced target expression in HT29 tumors despite the retention of siRNA in tumor tissues. When LNPs with an identical composition (2% DMG PEG) but different particle sizes (80 nm vs. 120 nm) were tested, we observed a comparable and moderate suppression of target expression in Hep3B tumors, but no target knockdown in HCT116 tumors. This is despite the fact that the expression of low density lipid receptor, which is shown to be involved in mediating LNP efficacy, is detected in HT29 and HCT116 tumors. Finally, intratumor injection of LNPs only induced minimal target silencing in subcutaneous tumors while provoking significant target knockdown in the liver. Together, enhanced tumor retention of siRNA might not be readily translated to target silencing activity in tumors. Other factors such as the efficiency of transfecting tumor cells and the passive targeting effect through opsonization could impact on LNP efficacy in extrahepatic tumors. Citation Format: {Authors}. {Abstract title} [abstract]. In: Proceedings of the 103rd Annual Meeting of the American Association for Cancer Research; 2012 Mar 31-Apr 4; Chicago, IL. Philadelphia (PA): AACR; Cancer Res 2012;72(8 Suppl):Abstract nr 2888. doi:1538-7445.AM2012-2888
A major hurdle for harnessing small interfering RNA (siRNA) for therapeutic application is an effective and safe delivery of siRNA to target tissues and cells via systemic administration. While lipid nanoparticles (LNPs) composed of a cationic lipid, poly-(ethylene glycol) lipid and cholesterol, are effective in delivering siRNA to hepatocytes via systemic administration, they may induce multi-faceted toxicities in a dose-dependent manner, independently of target silencing. To understand the underlying mechanism of toxicities, pharmacological probes including anti-inflammation drugs and specific inhibitors blocking different pathways of innate immunity were evaluated for their abilities to mitigate LNP-siRNA-induced toxicities in rodents. Three categories of rescue effects were observed: (i) pretreatment with a Janus kinase (Jak) inhibitor or dexamethasone abrogated LNP-siRNA-mediated lethality and toxicities including cytokine induction, organ impairments, thrombocytopenia and coagulopathy without affecting siRNA-mediated gene silencing; (ii) inhibitors of PI3K, mammalian target of rapamycin (mTOR), p38 and IκB kinase (IKK)1/2 exhibited a partial alleviative effect; (iii) FK506 and etoricoxib displayed no protection. Furthermore, knockout of Jak3, tumor necrosis factor receptors (Tnfr)p55/p75, interleukin 6 (IL-6) or interferon (IFN)-γ alone was insufficient to alleviate LNP-siRNA-associated toxicities in mice. These indicate that activation of innate immune response is a primary trigger of systemic toxicities and that multiple innate immune pathways and cytokines can mediate toxic responses. Jak inhibitors are effective in mitigating LNP-siRNA-induced toxicities.
Antiangiogenic agents such as vascular endothelial growth factor receptor 2 (VEGFR2) inhibitors may prove most efficacious in the setting of early disease and in the prevention of dissemination and growth of micrometastases. This hypothesis was tested in a metastatic orthotopic rat model of breast cancer with the use of a novel orally bioavailable VEGFR2 kinase inhibitor, MK-0888. Mat B III rat mammary cancer cells were implanted into the mammary fat pads of syngeneic female F344 rats. Primary tumor growth was very aggressive, with micrometastases detected 8 days after cell implantation in ipsilateral axillary and inguinal lymph nodes. Lung metastases were detected 15 days after cell implantation by histological analysis. MK-0888 suppressed primary and metastatic tumor growth and reduced the incidence of metastasis in a dose- and schedule-dependent manner. Inhibitions of primary and metastatic tumor growth, as well as intratumoral antiangiogenesis effects, were detected in situ by immunohistochemical analysis of tumor cells, endothelial cell proliferation, microvascular density, and blood vessel maturity. In the Mat B HI rat mammary cancer metastasis model, our results provide further evidence supporting the ongoing clinical development of VEGFR2 kinase inhibitors, as well as clinically applicable in situ detection and verification of the inhibitor effect in tumor and metastasis biopsies. (The J Histotechnol 33(1):15-24, 2010)
Despite recent progress, systemic delivery remains the major hurdle for development of safe and effective small inhibitory RNA (siRNA)-based therapeutics. Encapsulation of siRNA into liposomes is a promising option to overcome obstacles such as low stability in serum and inefficient internalization by target cells. However, a major liability of liposomes is the potential to induce an acute inflammatory response, thereby increasing the risk of numerous adverse effects. In this study, we characterized a liposomal siRNA delivery vehicle, LNP201, which is capable of silencing an mRNA target in mouse liver by over 80%. The biodistribution profile, efficacy after single and multiple doses, mechanism of action, and inflammatory toxicity are characterized for LNP201. Furthermore, we demonstrate that the glucocorticoid receptor (GR) agonist dexamethasone (Dex) inhibits LNP201-induced cytokine release, inflammatory gene induction, and mitogen-activated protein kinase (MAPK) phosphorylation in multiple tissues. These data present a possible clinical strategy for increasing the safety profile of siRNA-based drugs while maintaining the potency of gene silencing.
A high throughput screening campaign was designed to identify allosteric inhibitors of Chk1 kinase by testing compounds at high concentration. Activity was then observed at K(m) for ATP and at near-physiological concentrations of ATP. This strategy led to the discovery of a non-ATP competitive thioquinazolinone series which was optimized for potency and stability. An X-ray crystal structure for the complex of our best inhibitor bound to Chk1 was solved, indicating that it binds to an allosteric site approximately 13A from the ATP binding site. Preliminary data is presented for several of these compounds.
From HTS lead 1, a novel benzoisoquinolinone class of ATP-competitive Chk1 inhibitors was devised and synthesized via a photochemical route. Using X-ray crystallography as a guide, potency was rapidly enhanced through the installation of a tethered basic amine designed to interact with an acidic residue (Glu91) in the enzyme pocket. Further SAR was explored at the solvent front and near to the H1 pocket and resulted in the discovery of low MW, sub-nanomolar inhibitors of Chk1.
The development of 2,5-dihydro-4H-pyrazolo[4,3-c]quinolin-4-ones as inhibitors of Chk1 kinase is described. Introduction of a fused ring at the C7/C8 positions of the pyrazoloquinolinone provided an increase in potency while guidance from overlapping inhibitor bound Chk1 X-ray crystal structures contributed to the discovery of a potent and solubilizing propyl amine moiety in compound 52 (Chk1 IC(50)=3.1 nM).
The development of 3-(indol-2-yl)indazoles as inhibitors of Chek1 kinase is described. Introduction of amides and heteroaryl groups at the C6 position of the indazole ring system provided sufficient Chek1 potency and selectivity over Cdk7 to permit escape from DNA damage-induced arrest in a cellular assay. Enzyme potency against Chek1 was optimized by the incorporation of a hydroxymethyl triazole moiety in compound 21 (Chek1 IC(50)=0.30nM) that was shown by X-ray crystallography to displace one of three highly conserved water molecules in the HI region of the ATP-binding cleft.
Through a comparison of X-ray co-crystallographic data for 1 and 2 in the Chek1 active site, it was hypothesized that the affinity of the indolylquinolinone series (2) for Chek1 kinase would be improved via C6 substitution into the hydrophobic region I (HI) pocket. An efficient route to 6-bromo-3-indolyl-quinolinone (9) was developed, and this series was rapidly optimized for potency by modification at C6. A general trend was observed among these low nanomolar Chek1 inhibitors that compounds with multiple basic amines, or elevated polar surface area (PSA) exhibited poor cell potency. Minimization of these parameters (basic amines, PSA) resulted in Chek1 inhibitors with improved cell potency, and preliminary pharmacokinetic data are presented for several of these compounds.
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Pyrimidino-thiazolyl carbonitriles were prepared that are potent VEGFR-2 (KDR) kinase inhibitors. The modification of lead structures resulted in 3m which exhibited the best overall profile in KDR inhibitory activity, iv/po pharmacokinetics, and reduced hERG affinity.