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Optimal Dosing for Targeted Therapies in Oncology: Drug Development Cases Leading by Example
Jeffrey R Sachs1, Kapil Mayawala2, Satvik Gadamsetty3
1Department of PPDM-Quantitative Pharmacology and Pharmacometrics, Merck & Co., Inc., Kenilworth, New Jersey.
Abstract:
One of the key objectives of oncology first-in-human trials has often been to establish the maximum tolerated dose (MTD). However, targeted therapies might not exhibit dose-limiting toxicities (DLT) at doses significantly higher than sufficiently active doses, and there is frequently a limited ability to objectively quantify adverse events. Thus, while MTD-based determination of recommended phase II dose may have yielded appropriate dosing for some cytotoxics, targeted therapeutics (including monoclonal antibodies and/or immunotherapies) sometimes need alternative or complementary strategies to help identify dose ranges for a randomized dose-ranging study. One complementary strategy is to define a biologically efficacious dose (BED) using an "effect marker." An effect marker could be a target engagement, pharmacodynamic, or disease progression marker (change in tumor size for solid tumors or bone marrow blast count for some hematologic tumors). Although the concept of BED has been discussed extensively, we review specific examples in which the approach influenced oncology clinical development. Data extracted from the literature and the examples support improving dose selection strategies to benefit patients, providers, and the biopharmaceutical industry. Although the examples illustrate key contributions of effect markers in dose selection, no one-size-fits-all approach to dosing can be justified. Higher-than-optimal dosing can increase toxicity in later trials (and in clinical use), which can have a negative impact on efficacy (via lower adherence or direct sequelae of toxicities). Proper dose selection in oncology should follow a multifactorial decision process leading to a randomized, dose-ranging study instead of a single phase II dose.
Insights
Establishing the maximum tolerated dose (MTD) is not always ideal for targeted cancer therapies. Biologically efficacious dose (BED) determination using effect markers offers a complementary strategy for optimal dose selection in oncology clinical trials.
Area of Science:
- Oncology
- Clinical Pharmacology
- Drug Development
Background:
- Traditional oncology trials focused on maximum tolerated dose (MTD).
- Targeted therapies may lack dose-limiting toxicities (DLT) at efficacious doses.
- Quantifying adverse events for targeted agents can be challenging.
Purpose of the Study:
- To explore alternative dose-finding strategies beyond MTD for targeted oncology therapeutics.
- To review the application of biologically efficacious dose (BED) determination using effect markers.
- To support improved dose selection for patient benefit and industry efficiency.
Main Methods:
- Literature review of oncology clinical development cases.
- Analysis of examples where effect markers influenced dose selection.
- Discussion of complementary strategies to MTD-based dosing.
Main Results:
- Biologically efficacious dose (BED) using effect markers (e.g., target engagement, pharmacodynamics) can guide dose selection.
- Examples demonstrate the impact of effect markers on oncology trial design.
- No single dosing strategy fits all targeted therapeutics.
Conclusions:
- Effect markers provide valuable data for selecting optimal doses of targeted therapies.
- Over-dosing can lead to increased toxicity and reduced efficacy.
- A multifactorial approach culminating in randomized dose-ranging studies is recommended for oncology dose selection.
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