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Sarvesh, S.

Publications and source records attributed to Sarvesh, S..

4 recordsLinked to original sources

ADT-030, a novel PDE10 inhibitor, demonstrates potent antitumor activity in pancreatic ductal adenocarcinoma

Phosphodiesterase 10 (PDE10) has been noted to be highly expressed in multiple types of cancer and is crucial for the growth and maintenance of cancer cells found in colon, lung, and ovarian cancers. Here, we studied a novel orally bioavailable PDE10 inhibitor, ADT-030, and found that it potently inhibits the proliferation and clonogenicity of KRAS-mutant pancreatic ductal adenocarcinoma (PDAC) cells at levels that block recombinant PDE10. ADT-030 also inhibited PDAC cell motility and triggered G2/M cell cycle halt and programmed cell death. These impacts were facilitated by raised cAMP/cGMP levels, activation of PKA/PKG, reduced {beta}-catenin and RAS signaling. Notably, ADT-030 diminished the proliferation of PDAC cells with KRASG12D and KRASG12C mutations that were resistant to both allele-specific and pan-RAS inhibitors. When administered orally, ADT-030 markedly decreased tumor growth, lowered the metastasis to the lungs and liver, and enhanced survival rates without causing systemic toxicity in both syngeneic and patient-derived xenograft (PDX) models of PDAC. ADT-030 also increased chemotherapy response in orthotopic PDAC models. Immune phenotyping and single-cell RNA sequencing revealed remodeling of the tumor microenvironment by ADT-030 with a more favorable anti-tumor immune profile. The findings suggest that ADT-030 holds promise as a potential drug development candidate for treating KRAS-mutant PDAC by simultaneously targeting key oncogenic signaling pathways, resulting in tumor-intrinsic and immunomodulatory effects.

cancer biology↗

ProAgio, a Novel Integrin αvβ3 Targeted Cytotoxin, Suppresses Tumor Growth and Reprograms the PDAC Microenvironment

BackgroundPancreatic ductal adenocarcinoma (PDAC) is characterized by a dense, hypoxic and immune-suppressive tumor microenvironment (TME). Integrin v{beta}3-expressing cells, including endothelial and cancer-associated fibroblasts (CAFs), contribute to the development of this TME. ProAgio is a novel cytotoxin that targets integrin v{beta}3-expressing cells. ProAgio is currently in clinical trials. We have previously shown that the combination of GPH (gemcitabine, paricalcitol, and hydroxychloroquine) influences PDAC TME. Based on the overlapping mechanisms of action, we hypothesized that ProAgio could potentiate effects of GPH and enhance its anti-tumor immunity. MethodsPatient-derived xenograft (PDX) and orthotopic models of PDAC were used to assess the therapeutic activity and mechanism of action of ProAgio in combination with GPH. Immunohistochemistry was used to evaluate hypoxia, EMT and angiogenesis. Changes in the immune cells were measured with multi-parameter flow cytometry. Dynamic contrast-enhanced MRI (DCE-MRI) was used to study tumor perfusion in mice and patients (NCT06182072). FindingsProAgio potentiated the growth inhibitory effects of GPH in PDX and orthotopic models by depleting integrin {beta}3 expressing cells, leading to ECM remodeling, reduced vascular leakage, improved hypoxia, and reversed EMT. DCE-MRI showed a significant increase in tumor perfusion following ProAgio treatment in mice and patients (NCT06182072). Immune profiling revealed that the combination treatment significantly increased the infiltration of {gamma}{delta} T cells, natural killer T (NKT) cells, CD4+ effector T cells, and M1-like macrophages. Furthermore, the combination treatment reduced the expression of myofibroblastic CAFs (myCAFs), further supporting the immunomodulatory and stromal normalizing effects of GPH and ProAgio. ConclusionTargeting integrin v{beta}3 using ProAgio modulates the PDAC TME by improving perfusion, reducing hypoxia, reversing EMT, and alleviating immune suppression. ProAgio potentiates the effects of GPH therapy, which should be evaluated in future trials.

cancer biology↗

ADT-1004: A First-in-Class, Orally Bioavailable Selective pan-RAS Inhibitor for Pancreatic Ductal Adenocarcinoma

Here, we evaluated in vivo antitumor activity, target engagement, selectivity, and tumor specificity of ADT-1004, an orally bioavailable prodrug of ADT-007 having highly potent and selective pan-RAS inhibitory activity. ADT-1004 strongly blocked tumor growth and RAS activation in mouse PDAC models without discernable toxicity. As evidence of target engagement and tumor specificity, ADT-1004 inhibited activated RAS and ERK phosphorylation in PDAC tumors at dosages approximately 10-fold below the maximum tolerated dose and without discernable toxicity. ADT-1004 inhibited ERK phosphorylation in PDAC tumors. In addition, ADT-1004 blocked tumor growth and ERK phosphorylation in PDX PDAC models with KRASG12D, KRASG12V, KRASG12C, or KRASG13Q mutations. ADT-1004 treatment increased CD4+ and CD8+ T cells in the TME consistent with exhaustion and increased MHCII+ M1 macrophage and dendritic cells. ADT-1004 demonstrated superior efficacy over sotorasib and adagrasib in tumor models involving human PDAC cells resistant to these KRASG12C inhibitors. As evidence of selectivity for tumors from PDAC cells with mutant KRAS, ADT-1004 did not impact the growth of tumors from RASWT PDAC cells. Displaying broad antitumor activity in multiple mouse models of PDAC, along with target engagement and selectivity at dosages that were well tolerated, ADT-1004 warrants further development. SignificanceADT-1004 displayed robust antitumor activity in aggressive and clinically relevant PDAC models with unique tumor specificity to block RAS activation and MAPK signaling in RAS mutant cells. As a pan-RAS inhibitor, ADT-1004 has broad activity and potential efficacy advantages over allele-specific KRAS inhibitors by averting resistance. These findings support clinical trials of ADT-1004 for KRAS mutant PDAC.

cancer biology↗

Novel Pan-RAS Inhibitor ADT-007 Induces Tumor Regression in Mouse Models of GI Cancer

Here, we describe a novel pan-RAS inhibitor, ADT-007, that potently inhibited the growth of RAS mutant cancer cells irrespective of the RAS mutation or isozyme. RASWT cancer cells with GTP-activated RAS from upstream mutations were equally sensitive. Conversely, RASWT cancer cells harboring downstream BRAF mutations and normal cells were essentially insensitive to ADT-007. Sensitivity of cancer cells to ADT-007 required activated RAS and dependence on RAS for proliferation, while insensitivity was attributed to metabolic deactivation by UDP-glucuronosyltransferases expressed in RASWT and normal cells but repressed in RAS mutant cancer cells. ADT-007 binds nucleotide-free RAS to block GTP activation of effector interactions and MAPK/AKT signaling, resulting in mitotic arrest and apoptosis. ADT-007 displayed unique advantages over mutant-specific KRAS and pan-KRAS inhibitors, as well as other pan-RAS inhibitors that could impact in vivo antitumor efficacy by escaping compensatory mechanisms leading to resistance. Local administration of ADT-007 showed robust antitumor activity in syngeneic immune-competent and xenogeneic immune-deficient mouse models of colorectal and pancreatic cancer. The antitumor activity of ADT-007 was associated with the suppression of MAPK signaling and activation of innate and adaptive immunity in the tumor immune microenvironment. Oral administration of ADT-007 prodrug also inhibited tumor growth, supporting further development of this novel class of pan-RAS inhibitors for RAS-driven cancers. SIGNIFICANCEADT-007 has unique pharmacological properties with distinct advantages over other RAS inhibitors by circumventing resistance and activating antitumor immunity. ADT-007 prodrugs and analogs with oral bioavailability warrant further development for RAS-driven cancers.

cancer biology↗