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Published on: October 25, 2024
Positron emission tomography (PET): expanding the horizons of oncology drug development
Lisa A Hammond1, Louis Denis, Umber Salman
1Institute for Drug Development, Cancer Therapy and Research Center, San Antonio, Texas 78229, USA. Lhammond@idd.org
Abstract:
Positron emission tomography (PET) allows three-dimensional quantitative determination of the distribution of radioactivity permitting measurement of physiological, biochemical, and pharmacological functions at the molecular level. Until recently, no method existed to directly and noninvasively assess transport and metabolism of neoplastic agents as a function of time in various organs as well as in the tumor. Standard preclinical evaluation of potential anticancer agents entails radiolabeling the agent, usually with tritium or 14C, sacrifice experiments, and high-performance liquid chromatography (HPLC) analysis to determine the biodistribution and metabolism in animals. Radiolabeling agents with positron-emitting radionuclides allows the same information to be obtained as well as in vivo pharmacokinetic (PK) data by animal tissue and plasma sampling in combination with PET scanning. In phase I/II human studies, classic PK measurements can be coupled with imaging measurements to define an optimal dosing schedule and help formulate the design of phase III studies that are essential for drug licensure [1]. Many of the novel agents currently in development are cytostatic rather than cytotoxic and therefore, the traditional standard endpoints in phase I and II studies may no longer be relevant. The use of a specialized imaging modality that allows PK and pharmacodynamic (PD) evaluation of a drug of interest has been proposed to permit rapid and sensitive assessment of the biological effects of novel anticancer agents. The progress to date and the challenges of incorporating PET technology into oncology drug development from the preclinical to clinical setting are reviewed in this article.
Insights
Positron emission tomography (PET) enables noninvasive assessment of anticancer drug behavior. This imaging technique provides crucial pharmacokinetic and pharmacodynamic data for optimizing cancer drug development from preclinical to clinical stages.
Area of Science:
- Oncology
- Radiopharmacology
- Pharmacokinetics
Background:
- Positron emission tomography (PET) enables quantitative, 3D assessment of radioactivity distribution.
- Traditionally, anticancer agent evaluation involved invasive methods like radiolabeling with tritium or 14C, animal sacrifice, and HPLC analysis.
- A gap existed in noninvasively assessing neoplastic agent transport and metabolism over time in tumors and organs.
Purpose of the Study:
- To review the progress and challenges of integrating PET technology into oncology drug development.
- To highlight PET's capability for in vivo pharmacokinetic (PK) and pharmacodynamic (PD) evaluation.
- To discuss PET's role in optimizing dosing schedules and informing Phase III trial design for novel anticancer agents.
Main Methods:
- Utilizing PET with positron-emitting radionuclides for biodistribution and metabolism studies.
- Combining PET imaging with animal tissue/plasma sampling for in vivo PK data.
- Coupling classic PK measurements with imaging in human Phase I/II studies.
Main Results:
- PET allows acquisition of biodistribution, metabolism, and PK data comparable to traditional methods but noninvasively.
- PET facilitates PK/PD evaluation, crucial for novel cytostatic agents where traditional endpoints may be insufficient.
- PET imaging aids in defining optimal dosing schedules and designing effective Phase III trials.
Conclusions:
- PET technology offers a powerful tool for the comprehensive evaluation of anticancer agents.
- Incorporating PET accelerates and refines oncology drug development, from preclinical research to clinical application.
- PET enables sensitive assessment of biological effects, supporting the advancement of new cancer therapies.
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