Abstract BACKGROUND Cholesterol in the brain is derived wholly from de novo biosynthesis as the blood-brain barrier prevents uptake from the circulation. The overexpression of cholesterol synthesis genes is associated with decreased survival in glioblastoma (GBM), suggesting that gliomas may be sensitive to the inhibition of cholesterol biosynthesis. DSP-0390 is an investigational small molecule that inhibits EBP, a key enzyme in cholesterol biosynthesis. Preclinical studies demonstrated antitumor activity of DSP-0390 in orthotopic xenograft GBM models. METHODS This phase I dose escalation study aims to assess the safety, PK, PD, and preliminary antitumor activity of oral DSP-0390 monotherapy for recurrent HGG (NCT05023551). Key eligibility criteria include histologically confirmed grade III or IV glioma (WHO 2016); treatment with ≥ 1 prior therapy; no treatment options beyond standard of care; KPS ≥ 70. RESULTS As of 9 May 2023, 24 patients (37.5% women) were enrolled across 6 dose levels (20 mg QD to 240 mg QD) with a median age of 51 years (range 24-76) including 17 (70.8 %) with GBM, 3 (12.5%) with anaplastic astrocytoma and 2 (8.3%) with anaplastic oligodendroglioma. Ten patients (41.7%) had IDH mutant tumors. Four patients (16.7%) were on stable dose of corticosteroids at baseline, of which 2 were able to discontinue or dose reduce the corticosteroid while on DSP-0390. There were no reported DLTs. The most common treatment-related TEAEs included grade 1 or 2 nausea (7 patients [29.2%]) and alanine aminotransferase increased (6 patients [25.0%]). Only one grade 3 related AE (dry skin) was noted. Two patients with IDH mutant grade 3 glioma had tumor reduction and remain on DSP-0390 for ≥ 9 months. Dose dependent changes in PK and PD were observed. CONCLUSIONS DSP-0390 has been well tolerated to date with dose escalation ongoing. A dose response relationship was observed between PK and PD biomarkers.
Abstract BACKGROUND Cholesterol in the brain is derived wholly from de novo biosynthesis as the blood-brain barrier prevents uptake from the circulation. The overexpression of cholesterol synthesis genes is associated with decreased survival in glioblastoma (GBM), suggesting that gliomas may be sensitive to the inhibition of cholesterol biosynthesis. DSP-0390 is an investigational small molecule that inhibits EBP, a key enzyme in cholesterol biosynthesis. Preclinical studies demonstrated antitumor activity of DSP-0390 in orthotopic xenograft GBM models. METHODS This phase I dose escalation study aims to assess the safety, PK, PD, and preliminary antitumor activity of oral DSP-0390 monotherapy for recurrent HGG (NCT05023551). Key eligibility criteria include histologically confirmed grade III or IV glioma (WHO 2016); treatment with ≥1 prior therapy; no treatment options beyond standard of care; KPS ≥70. RESULTS As of 9 May 2023, 24 patients (37.5% women) were enrolled across 6 dose levels (20 mg QD to 240 mg QD) with a median age of 51 years (range 24-76) including 17 (70.8 %) with GBM, 3 (12.5%) with anaplastic astrocytoma and 2 (8.3%) with anaplastic oligodendroglioma. Ten patients (41.7%) had IDH mutant tumors. Four patients (16.7%) were on stable dose of corticosteroids at baseline, of which 2 were able to discontinue or dose reduce the corticosteroid while on DSP-0390. There were no reported DLTs. The most common treatment-related TEAEs included grade 1 or 2 nausea (7 patients [29.2%]) and alanine aminotransferase increased (6 patients [25.0%]). Only one grade 3 related AE (dry skin) was noted. Two patients with IDH mutant grade 3 glioma had tumor reduction and remain on DSP-0390 for ≥9 months. Dose dependent changes in PK and PD were observed. CONCLUSIONS DSP-0390 has been well tolerated to date with dose escalation ongoing. A dose response relationship was observed between PK and PD biomarkers.
TPS2077 Background: The brain’s cells are fully dependent on their own de novo biosynthesis of cholesterol as the blood-brain barrier prevents its uptake from the circulation. In normal glial cells, proper regulation of cholesterol synthesis depends on its cell density and is turned off when the cell density exceeds a certain level. On the other hand, gliomas maintain high levels of cholesterol synthesis to support abnormal growth under any condition. Upregulation of cholesterol synthesis genes is associated with decreased survival in patients with glioblastoma (GBM). Therefore, gliomas are potentially sensitive to cholesterol synthesis inhibition. DSP-0390, an investigational small molecule, is an inhibitor of EBP, an enzyme in one of the last and crucial steps of cholesterol biosynthesis. By inhibiting de novo cholesterol synthesis, cytotoxicity can be induced more selectively against hyperproliferative GBM cells. DSP-0390 has shown significant antitumor activity in orthotopic xenograft models of human GBM (data on file). Methods: DSP-0390 will be evaluated in a phase 1 study in patients with recurrent, high-grade glioma (NCT05023551). Key eligibility criteria: age ≥18 years; Karnofsky Performance Status score ≥70%; and adequate renal, hepatic, and hematologic function. Patients must not have multifocal disease, leptomeningeal metastasis or extracranial metastasis, abnormal electrocardiograms, or significant cardiovascular disease. In Dose Escalation, 21–30 patients with World Health Organization (WHO) grade III or IV malignant glioma who progressed after ≥1 prior therapy will be enrolled. Dose level enrollment will be guided by a Bayesian Logistic Regression Model until identification of the maximum tolerated dose or recommended dose for expansion. Dose Expansion for clinical activity will enroll approximately 20–40 patients with WHO grade IV GBM who progressed after primary therapy and have measurable disease. Patients will receive oral DSP-0390 once daily. Study endpoints include safety (treatment-emergent adverse events [AEs], serious AEs, and dose-limiting toxicities), efficacy (6-month progression-free survival [PFS], objective response, PFS, duration of response, and 12-month overall survival), pharmacokinetics (PK), and pharmacodynamic biomarkers. This study is currently recruiting in the United States and Japan. Clinical trial information: NCT05023551.