Azenosertib Is a Potent and Selective WEE1 Kinase Inhibitor with Broad Antitumor Activity Across a Range of Solid
Jianhui Ma1, Wen Liu1, Jiali Li1
1Zentalis Pharmaceuticals, Inc., San Diego, California.
Abstract:
Genomic instability and accumulation of DNA damage are hallmarks of tumor development and progression. To ensure the maintenance of genomic integrity, cells rely on a coordinated DNA damage response network that regulates cell-cycle progression, including activation of WEE1-dependent cell cycle checkpoints. If DNA damage occurs during replication, the WEE1 checkpoint is activated, thereby preventing the progression of the cell cycle. This allows damaged DNA to be repaired before cells enter mitosis, or if the damage is too extensive, induction of apoptosis. These observations have made WEE1 a promising anticancer therapeutic target. Azenosertib (ZN-c3) is a novel, selective, and orally bioavailable WEE1 inhibitor. The antiproliferative activity of azenosertib on cancer cell lines is consistent with a WEE1-dependent mechanism of action exemplified by reduction of pY15-CDK1 levels and increases in DNA damage markers. Azenosertib further exacerbates the effect of replicative stress and DNA damage by allowing cancer cells to prematurely enter mitosis, leading to mitotic catastrophe and apoptosis. Azenosertib has optimized pharmacokinetic and pharmacodynamic properties, yielding robust tumor growth inhibition in a broad range of tumor models, and is highly effective at delaying the duration of tumor regrowth after cessation of treatment. We have explored various dosing schedules in preclinical efficacy models for azenosertib that preserve antitumor activity with minimal toxicity. Phase I studies with azenosertib as monotherapy have shown preliminary clinical activity in patients with advanced solid tumors. The data presented herein support further studies of azenosertib monotherapy across multiple solid tumor indications.
Insights
Azenosertib, a WEE1 inhibitor, shows promise in cancer treatment by causing cancer cell death through mitotic catastrophe. This novel drug demonstrates significant tumor growth inhibition and is being explored in clinical trials for solid tumors.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Genome instability and DNA damage are key drivers of cancer development.
- The WEE1 kinase plays a critical role in DNA damage response and cell cycle regulation.
- Targeting WEE1 presents a promising strategy for anticancer therapy.
Purpose of the Study:
- To evaluate the efficacy and mechanism of action of azenosertib (ZN-c3), a novel WEE1 inhibitor.
- To assess the preclinical antitumor activity and pharmacokinetic/pharmacodynamic properties of azenosertib.
- To support further clinical investigation of azenosertib in solid tumors.
Main Methods:
- Investigated azenosertib's antiproliferative effects on cancer cell lines.
- Analyzed WEE1-dependent mechanisms, including pY15-CDK1 levels and DNA damage markers.
- Assessed tumor growth inhibition and regrowth delay in preclinical models.
- Explored various dosing schedules to optimize efficacy and minimize toxicity.
Main Results:
- Azenosertib demonstrated WEE1-dependent antiproliferative activity.
- The drug induced premature entry into mitosis, leading to mitotic catastrophe and apoptosis.
- Azenosertib exhibited optimized pharmacokinetic/pharmacodynamic properties, robust tumor growth inhibition, and delayed tumor regrowth.
- Phase I studies indicated preliminary clinical activity in patients with advanced solid tumors.
Conclusions:
- Azenosertib is a potent WEE1 inhibitor with significant preclinical antitumor activity.
- The drug's mechanism involves inducing mitotic catastrophe and apoptosis in cancer cells.
- Azenosertib shows potential as a monotherapy for various solid tumor indications, warranting further clinical studies.
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