Dissolution-limited absorption remains a major barrier to oral delivery of kinase inhibitors. BMS-135, a potent pan-CK2 inhibitor with robust antitumor efficacy, exhibited poor aqueous solubility (<1 μg/mL) that translated to low oral bioavailability (rat: <3%) and pronounced nonlinear pharmacokinetics following dose escalation─limitations unresolvable by precipitation-resistant solution formulations alone. To address this, we explored amino acid ester prodrugs designed to enhance intestinal solubility. Structure-property analysis demonstrated that polybasic side chains sustaining protonation at intestinal pH were critical for solubility enhancement. The l-lysine ester prodrug (12b) markedly improved solubility (pH 6.5: >1000 μg/mL) and delivered a 25-fold improvement in systemic exposure (F = 64.6%) with improved dose proportionality. Mechanistic investigation via portal vein cannulation revealed predominant intestinal first-pass bioconversion, explaining the minimal systemic prodrug exposure. These findings position amino acid prodrugs as a practical, low-risk strategy for unlocking oral bioavailability of dissolution-limited kinase inhibitors, offering broad applicability in contemporary drug discovery and development.
Targeted covalent inhibitors (TCIs) are low-molecular-weight drugs containing a reactive warhead to inactivate target proteins. In 2023, the IQ consortium DMPK Guidelines for Targeted Covalent Drugs Workgroup surveyed 23 IQ member companies to explore knowledge around this compound class. Areas deserving special consideration included human clearance prediction and modeling approaches to predict dose. Respondents highlighted the importance of achieving sufficient warhead reactivity to engage target, while avoiding excessive off-target binding. Stability assays with glutathione (GSH) were leveraged frequently, but data interpretation challenges were reported for more complex covalent binding assays; these are typically performed in the event of safety signals. Drug binding to endogenous proteins, while not necessarily a safety concern, may result in lower recovery of total radioactivity from human mass balance studies compared to non-TCI drugs. A comparison of drug safety profiles for TCI and non-TCI did not reveal any increased safety risks for TCIs.
Divarasib (GDC-6036), an oral, highly potent, and selective next-generation KRAS G12C inhibitor (KRAS G12Ci), has shown encouraging clinical activity and tolerability as a single agent in patients with KRAS G12C-positive NSCLC. In pre-clinical models, SHP2 inhibition increases KRAS-GDP occupancy and enhances the antitumor activity of KRAS G12C inhibitors. Here, we report clinical safety and activity of combination divarasib and migoprotafib (GDC-1971; SHP2 inhibitor) in patients with NSCLC. As part of an ongoing phase I study (NCT04449874), patients received divarasib 200 mg or 400 mg daily in combination with oral migoprotafib 20, 40, or 60 mg daily, until intolerable toxicity or disease progression. Safety (NCI-CTCAE v5), pharmacokinetics, and preliminary antitumor activity (RECIST v1.1) were assessed. Circulating tumor DNA (ctDNA) analyses were performed at Cycle 1 Day 1 and Cycle 3 Day 1. As of April 1, 2024, a total of 74 patients with NSCLC received combination divarasib and migoprotafib; 48 patients had no prior KRAS G12Ci exposure. Median lines of prior systemic therapy was 2 (range 0-7) and median time on study treatment was 7.2 months (range 0.3-26.0). Overall, 70 (94.6%) patients experienced at least one treatment-related adverse event (TRAE); the most common TRAEs (≥15%) were diarrhea, nausea, vomiting, peripheral edema, increased blood creatine phosphokinase, fatigue, increased amylase, increased aspartate aminotransferase and increased alanine aminotransferase. Grade 3-4 TRAEs occurred in 32 (43.2%) patients, including diarrhea in 11 (14.9%) patients, increased ALT in 4 (5.4%) patients, and pneumonitis, thrombocytopenia, and neutropenia in 3 (4.1%) patients each. There were no Grade 5 TRAEs. TRAEs led to divarasib dose reduction in 23 (31.1%) patients and migoprotafib dose reduction in 32 (43.2%) patients. Divarasib discontinuation due to TRAEs occurred in 2 (2.7%) patients; migoprotafib discontinuations due to TRAEs occurred in 5 (6.8%) patients. The pharmacokinetic profiles of both divarasib and migoprotafib in combination were similar to their respective single-agent profiles. Among the 48 patients who had no prior KRAS G12Ci exposure (all of whom had measurable disease at baseline), the confirmed ORR was 43.8% and the median PFS was 15.2 months (CI 95% 8.4-not estimated). A decline in ctDNA level was observed at Cycle 3 Day 1 upon divarasib plus migoprotafib treatment, similar to single-agent divarasib treatment. Updated data will be presented for patients both with and without prior KRAS G12Ci exposure. Divarasib in combination with migoprotafib demonstrated an acceptable safety profile and preliminary clinical activity in patients with KRAS G12C-positive NSCLC. Jia Luo, Adrian Sacher, Armando Santoro, Luis Paz-Ares, Sanjeev Deva, Hans Prennen, Maria de Miguel, Rafal Dziadziuszko, Scott A. Laurie, Manish R. Patel, Elena Garralda, Gianluca Del Conte, Loes Latten Jansen, Jayesh Desai, Rita De Cassia Costamilan, Patricia LoRusso, Ben Markman, Salvatore Siena, Pierre Freres, Marloes Van Dongen, Eugenio Fernandez, Andres Cervantes, Josiane Mourão Dias, Sergio Azevedo, Kathryn Arbour, Ruth Perets, Se Hyun Kim, Rasha Cosman, Victor Moreno, Matthew G. Krebs, Yoonha Choi, Sandhya Mandlekar, Mark T. Lin, Zhen Shi, Kenneth K. Yau, Julie Chang, Stephanie Royer-Joo, Tomi Jun, Neekesh V. Dharia, Jennifer L. Schutzman, Myung-Ju Ahn. Divarasib plus migoprotafib combination treatment in patients with KRAS G12C-positive non-small cell lung cancer (NSCLC) [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2025; Part 2 (Late-Breaking, Clinical Trial, and Invited Abstracts); 2025 Apr 25-30; Chicago, IL. Philadelphia (PA): AACR; Cancer Res 2025;85(8_Suppl_2):Abstract nr CT022.
Low-volume sampling devices offer the promise of lower discomfort and greater convenience for patients, potentially reducing patient burden and enabling decentralized clinical trials. In this study, we determined whether low-volume sampling devices produce pharmacokinetic (PK) data comparable to conventional venipuncture for a diverse set of monoclonal antibodies (mAbs) and small molecules. We adopted an open-label, non-randomized, parallel-group, single-site study design, with four cohorts of 10 healthy subjects per arm. The study drugs, doses, and routes of administration included: crenezumab (15 mg/kg, intravenous infusion), etrolizumab (210 mg, subcutaneous), GDC-X (oral), and hydroxychloroquine (HCQ, 200 mg, oral). Samples were collected after administration of a single dose of each drug using conventional venipuncture and three low-volume capillary devices: TassoOne Plus for liquid blood, Tasso-M20 for dry blood, both applied to the arm, and Neoteryx Mitra® for dry blood obtained from fingertips. Serum/plasma concentrations from venipuncture and TassoOne Plus samples overlapped and PK parameters were comparable for all drugs, except HCQ. After applying a baseline hematocrit value, the dry blood concentrations and PK parameters for the two monoclonal antibodies were comparable to those obtained from venipuncture. For the two small molecules, two bridging strategies were evaluated for converting dry blood concentrations to equivalent plasma concentrations. A baseline hematocrit correction and/or linear regression-based correction was effective for GDC-X, but not for HCQ. Additionally, the study evaluated the bioanalytical data quality and comparability from the various collection methods, as well as patient preference for the devices.
Targeted covalent inhibitors (TCIs) are an emerging class of anticancer therapeutics. TCIs are designed to selectively engage their targeted proteins via covalent warheads. From the drug development standpoint, the covalent inhibition mechanism is anticipated to elicit the following theoretical benefits: (i) an extended duration of therapeutic action that is determined by the target protein turnover rate and not necessarily by drug half-life, (ii) a lower therapeutic dose owing to greater pharmacological potency, (iii) lower risk of off-target binding and associated adverse events, and (iv) reduced drug-drug interaction (DDI) liability due to high selectivity and low dose. Elucidating the clinical relevance of these expected benefits requires an integrated assessment of pharmacokinetics (PK), efficacy, safety, and DDI data. In this review, we compared the clinical pharmacology attributes of FDA-approved oncology TCIs within the last 10 years against their reversible inhibitor (RI) counterparts. Our findings indicated that (i) PK half-lives of TCIs were typically shorter and (ii) at their respective recommended clinical doses per drug label, the molar unbound steady state areas under the concentration-time curve (AUCss) of TCIs were lower than those of RIs, but with longer clinically observed durations of response. However, (iii) there was no conclusive evidence supporting improved clinical safety profiles for TCIs, and (iv) DDI perpetrator profiles appeared to be similar between TCIs and RIs. The overall clinical pharmacology comparison of TCI vs. RI surveyed in this paper suggested that at least two of the four forecasted clinical benefits were achieved by TCIs.
KRAS G12C mutation is prevalent in ~4% of colorectal cancer (CRC) and is associated with poor prognosis. Divarasib, a KRAS G12C inhibitor, has shown modest activity as a single agent in KRA S G12C -positive CRC at 400 mg. Epidermal growth factor receptor has been recognized as a major upstream activator of RAS–MAPK signaling, a proposed key mechanism of resistance to KRAS G12C inhibition in CRC. Here, we report on divarasib plus cetuximab (epidermal growth factor receptor inhibitor) in patients with KRA S G12C -positive CRC ( n = 29) from arm C of an ongoing phase 1b trial. The primary objective was to evaluate safety. Secondary objectives included preliminary antitumor activity. The safety profile of this combination was consistent with those of single-agent divarasib and cetuximab. Treatment-related adverse events led to divarasib dose reductions in four patients (13.8%); there were no treatment withdrawals. The objective response rate was 62.5% (95% confidence interval: 40.6%, 81.2%) in KRAS G12C inhibitor-naive patients ( n = 24). The median duration of response was 6.9 months. The median progression-free survival was 8.1 months (95% confidence interval: 5.5, 12.3). As an exploratory objective, we observed a decline in KRA S G12C variant allele frequency associated with response and identified acquired genomic alterations at disease progression that may be associated with resistance. The manageable safety profile and encouraging antitumor activity of divarasib plus cetuximab support the further investigation of this combination in KRA S G12C -positive CRC. ClinicalTrials.gov identifier: NCT04449874
Background: GDC-6036 is an oral, highly potent and selective KRAS G12C inhibitor that demonstrated anti-tumor activity in patients with KRAS G12C-positive advanced solid tumors, including CRC. In a previously reported single-agent cohort, GDC-6036 achieved a best response of partial response or complete response in 35% (19/55) of patients, with a confirmed overall response rate (ORR) of 24% (13/55 patients) in KRAS G12C-positive CRC patients (Desai et. al., ESMO 2022). EGFR blockade may sensitize tumors to KRAS G12C inhibition and the combination of an anti-EGFR antibody (cetuximab) with a KRAS G12C inhibitor showed greater anti-tumor activity than single-agent KRAS G12C inhibition in preclinical models (Amodio et. al., 2020). Methods: In an ongoing Phase I study (NCT04449874), patients with advanced or metastatic KRAS G12C-positive CRC were administered GDC-6036 (200-400 mg orally once a day) with cetuximab (400 mg/m2 intravenously initially, then 250 mg/m2 weekly) until intolerable toxicity or disease progression. Endpoints included safety (NCI-CTCAE v5), pharmacokinetics (PK), and preliminary anti-tumor activity (RECIST v1.1). Results: As of the clinical data cut-off date of 21 Nov 2022, 29 patients (enrolled by 07 Oct 2022) had received GDC-6036 and cetuximab. The median lines of prior metastatic therapy was 2 (range 1-8) and the median time on study treatment was 5.2 (range 1.4-11.2) months. All patients experienced at least one treatment-related adverse event (TRAE); the most common TRAEs (≥15%) were rash (grouped terms), diarrhea, nausea, vomiting, dry skin, and paronychia. Grade 3-4 TRAEs occurred in 11 patients (38%). Five patients (17%) experienced at least one serious AE, none of which were treatment-related (including 2 patients who died of CRC progression during the safety follow-up). AEs led to GDC-6036 modifications (interruptions and/or reductions) in 13 (45%) patients, dose reduction in 3 (10%) patients, and no patients discontinued due to AEs. Eleven patients discontinued from study treatment (10 due to disease progression and 1 due to physician’s discretion). The PK profile of GDC-6036 (400 mg once a day) was similar in combination with cetuximab when compared with single-agent. A partial response was achieved in 66% (19/29) of patients, with a confirmed ORR of 62% (18/29 patients). Conclusions: GDC-6036 in combination with cetuximab demonstrated a manageable safety profile and promising clinical activity. These data support that the addition of anti-EGFR therapy to GDC-6036 may lead to robust clinical benefit in patients with KRAS G12C-positive CRC. Citation Format: Jayesh Desai, Sae-Won Han, Jong-Seok Lee, Einat Shacham-Shmueli, Erminia Massarelli, Andrés Cervantes, Elena Garralda, Alejandro Falcon, Wilson H. Miller, Eelke Gort, Thomas Karasic, Salvatore Siena, Rafal Stec, Laura Medina, Luis Paz-Arez, Angelo Delmonte, Adrian Sacher, Hans Prenen, Martin Forster, Tae Won Kim, Matthew G. Krebs, Rasha Cosman, Yoonha Choi, Sandhya Mandlekar, Mark T. Lin, Kenneth K. Yau, Julie Chang, Stephanie Royer-Joo, Neekesh V. Dharia, Jennifer L. Schutzman, Manish Patel. Phase Ib study of GDC-6036 in combination with cetuximab in patients with colorectal cancer (CRC) with KRAS G12C mutation [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2023; Part 2 (Clinical Trials and Late-Breaking Research); 2023 Apr 14-19; Orlando, FL. Philadelphia (PA): AACR; Cancer Res 2023;83(8_Suppl):Abstract nr CT029.
In May 2022, there is an International Regulatory and Pharmaceutical Industry (Innovation and Quality [IQ] Microphysiological Systems [MPS] Affiliate) Workshop on the standardization of complex in vitro models (CIVMs) in drug development. This manuscript summarizes the discussions and conclusions of this joint workshop organized and executed by the IQ MPS Affiliate and the United States Food and Drug Administration (FDA). A key objective of the workshop is to facilitate discussions around opportunities and/or needs for standardization of MPS and chart potential pathways to increase model utilization in the context of regulatory decision making. Participation in the workshop included 200 attendees from the FDA, IQ MPS Affiliate, and 26 global regulatory organizations and affiliated parties representing Europe, Japan, and Canada. It is agreed that understanding global perspectives regarding the readiness of CIVM/MPS models for regulatory decision making and potential pathways to gaining acceptance is useful to align on globally. The obstacles are currently too great to develop standards for every context of use (COU). Instead, it is suggested that a more tractable approach may be to think of broadly applicable standards that can be applied regardless of COU and/or organ system. Considerations and next steps for this effort are described.
BACKGROUND:Divarasib (GDC-6036) is a covalent KRAS G12C inhibitor that was designed to have high potency and selectivity. METHODS:In a phase 1 study, we evaluated divarasib administered orally once daily (at doses ranging from 50 to 400 mg) in patients who had advanced or metastatic solid tumors that harbor a KRAS G12C mutation. The primary objective was an assessment of safety; pharmacokinetics, investigator-evaluated antitumor activity, and biomarkers of response and resistance were also assessed. RESULTS:A total of 137 patients (60 with non-small-cell lung cancer [NSCLC], 55 with colorectal cancer, and 22 with other solid tumors) received divarasib. No dose-limiting toxic effects or treatment-related deaths were reported. Treatment-related adverse events occurred in 127 patients (93%); grade 3 events occurred in 15 patients (11%) and a grade 4 event in 1 patient (1%). Treatment-related adverse events resulted in a dose reduction in 19 patients (14%) and discontinuation of treatment in 4 patients (3%). Among patients with NSCLC, a confirmed response was observed in 53.4% of patients (95% confidence interval [CI], 39.9 to 66.7), and the median progression-free survival was 13.1 months (95% CI, 8.8 to could not be estimated). Among patients with colorectal cancer, a confirmed response was observed in 29.1% of patients (95% CI, 17.6 to 42.9), and the median progression-free survival was 5.6 months (95% CI, 4.1 to 8.2). Responses were also observed in patients with other solid tumors. Serial assessment of circulating tumor DNA showed declines in KRAS G12C variant allele frequency associated with response and identified genomic alterations that may confer resistance to divarasib. CONCLUSIONS:Treatment with divarasib resulted in durable clinical responses across KRAS G12C-positive tumors, with mostly low-grade adverse events. (Funded by Genentech; ClinicalTrials.gov number, NCT04449874.).
Structure-property relationships associated with a series of (carbonyl)oxyalkyl amino acid ester prodrugs of the marketed HIV-1 protease inhibitor atazanavir (1), designed to enhance the systemic drug delivery, were examined. Compared to previously reported prodrugs, optimized candidates delivered significantly enhanced plasma exposure and trough concentration (Cmin at 24 h) of 1 in rats while revealing differentiated PK paradigms based on the kinetics of prodrug activation and drug release. Prodrugs incorporating primary amine-containing amino acid promoieties offered the benefit of rapid bioactivation that translated into low circulating levels of the prodrug while delivering a high Cmax value of 1. Interestingly, the kinetic profile of prodrug cleavage could be tailored for slower activation by structural modification of the amino terminus to either a tertiary amine or a dipeptide motif, which conferred a circulating depot of the prodrug that orchestrated a sustained release of 1 along with substantially reduced Cmax and a further enhanced Cmin.
Cancer immunotherapy has significantly advanced the treatment paradigm in oncology, with approvals of immuno-oncology agents for over 16 indications, many of them first line. Checkpoint inhibitors (CPIs) are recognized as an essential backbone for a successful anticancer therapy regimen. This review focuses on the US Food and Drug Administration (FDA) regulatory approvals of major CPIs and the evolution of translational advances since their first approval close to a decade ago. In addition, critical preclinical and clinical pharmacology considerations, an overview of the pharmacokinetic and dose/regimen aspects, and a discussion of the future of CPI translational and clinical pharmacology as combination therapy becomes a mainstay of industrial immunotherapy development and in clinical practice are also discussed.
To improve the metabolic stability profile of BMS-741672 (1a), we undertook a structure-activity relationship study in our trisubstituted cyclohexylamine series. This ultimately led to the identification of 2d (BMS-753426) as a potent and orally bioavailable antagonist of CCR2. Compared to previous clinical candidate 1a, the tert-butyl amine 2d showed significant improvements in pharmacokinetic properties, with lower clearance and higher oral bioavailability. Furthermore, compound 2d exhibited improved affinity for CCR5 and good activity in models of both monocyte migration and multiple sclerosis in the hCCR2 knock-in mouse. The synthesis of 2d was facilitated by the development of a simplified approach to key intermediate (4R)-9b that deployed a stereoselective reductive amination which may prove to be of general interest.
BMS-813160 (compound 3) was identified as a potent and selective CCR2/5 dual antagonist. Compound 3 displayed good permeability at pH = 7.4 in PAMPA experiments and demonstrated excellent human liver microsome stability. Pharmacokinetic studies established that 3 had excellent oral bioavailability and exhibited low clearance in dog and cyno. Compound 3 was also studied in the mouse thioglycollate-induced peritonitis model, which confirmed its ability to inhibit the migration of inflammatory monocytes and macrophages. As a result of this profile, compound 3 was selected as a clinical candidate.
We describe the design, synthesis and pharmacokinetic (PK) evaluation of a series of amino acid-based prodrugs of the HIV-1 protease inhibitor atazanavir (1) derivatized on the pharmacophoric secondary alcohol using a (carbonyl)oxyalkyl linker. Prodrugs of 1 incorporating simple (carbonyl)oxyalkyl-based linkers and a primary amine in the promoiety were found to exhibit low chemical stability. However, chemical stability was improved by modifying the primary amine moiety to a tertiary amine, resulting in a 2-fold enhancement of exposure in rats following oral dosing compared to dosing of the parent drug 1. Further refinement of the linker resulted in the discovery of 22 as a prodrug that delivered the parent 1 to rat plasma with a 5-fold higher AUC and 67-fold higher C24 when compared to oral administration of the parent drug. The PK profile of 22 indicated that plasma levels of this prodrug were higher than that of the parent, providing a more sustained release of 1 in vivo.
We encountered a dilemma in the course of studying a series of antagonists of the G-protein coupled receptor CC chemokine receptor-2 (CCR2): compounds with polar C3 side chains exhibited good ion channel selectivity but poor oral bioavailability, whereas compounds with lipophilic C3 side chains exhibited good oral bioavailability in preclinical species but poor ion channel selectivity. Attempts to solve this through the direct modulation of physicochemical properties failed. However, the installation of a protonation-dependent conformational switching mechanism resolved the problem because it enabled a highly selective and relatively polar molecule to access a small population of a conformer with lower polar surface area and higher membrane permeability. Optimization of the overall properties in this series yielded the CCR2 antagonist BMS-741672 (7), which embodied properties suitable for study in human clinical trials.
Phosphate and amino acid prodrugs of the HIV-1 protease inhibitor (PI) atazanavir (1) were prepared and evaluated to address solubility and absorption limitations. While the phosphate prodrug failed to release 1 in rats, the introduction of a methylene spacer facilitated prodrug activation, but parent exposure was lower than that following direct administration of 1. Val amino acid and Val-Val dipeptides imparted low plasma exposure of the parent, although the exposure of the prodrugs was high, reflecting good absorption. Screening of additional amino acids resulted in the identification of an L-Phe ester that offered an improved exposure of 1 and reduced levels of the circulating prodrug. Further molecular editing focusing on the linker design culminated in the discovery of the self-immolative L-Phe-Sar dipeptide derivative 74 that gave four-fold improved AUC and eight-fold higher C-trough values of 1 compared with oral administration of the drug itself, demonstrating a successful prodrug approach to the oral delivery of 1.