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Measurement of NLG207 (formerly CRLX101) nanoparticle-bound and released camptothecin in human plasma
Keith T Schmidt1, Cody J Peer1, Alwin D R Huitema2
1Clinical Pharmacology Program, Center for Cancer Research, National Cancer Institute, National Institutes of Health, Bethesda, MD, USA.
Abstract:
Camptothecin (CPT), a potent inhibitor of topoisomerase I and HIF-1α, failed to demonstrate utility as an anti-cancer agent in early clinical trial investigations, primarily due to limited clinical activity and significant toxicity attributable to unfavorable physicochemical properties (e.g. low plasma solubility, pH-labile lactone ring). NLG207 (formerly CRLX101), a nanoparticle-drug conjugate (NDC) of CPT designed to optimize plasma pharmacokinetics and facilitate drug delivery to tumors, is included as part of combination treatment in two Phase II clinical trials ongoing at the National Cancer Institute (NCT02769962 and NCT03531827). To better understand the potential for drug-drug interactions and to correlate drug exposure to clinical outcomes and pharmacodynamic biomarkers, a robust analytical method was developed to measure CPT in human plasma. Two sample processing methods were developed to quantify both NDC-bound CPT and free CPT, primarily via alteration of pH conditions. A solid-phase extraction recovered >79 % of CPT prior to quantitative analysis by ultra HPLC-MS/MS. Dynamic calibration ranges of 10 to 10,000 ng/mL and 1 to 1000 ng/mL for total and free CPT, respectively were utilized to capture clinical ranges. NLG207 NDCs demonstrated significant rates of CPT release in human plasma at room temperature after 2 h but were shown to be stable at 4 °C for 24 h and through 4 freeze/thaw cycles. This assay was used to quantitate CPT plasma concentrations in clinical samples to confirm clinical utility following NLG207 treatment in subjects with advanced prostate cancer.
Insights
A new analytical method accurately measures camptothecin (CPT) in plasma, crucial for understanding NLG207 nanoparticle-drug conjugate efficacy and safety in cancer patients.
Area of Science:
- Pharmacology and Toxicology
- Analytical Chemistry
- Oncology
Background:
- Camptothecin (CPT) has shown limited anti-cancer utility due to poor solubility and toxicity.
- NLG207, a nanoparticle-drug conjugate (NDC) of CPT, aims to improve pharmacokinetics and tumor delivery.
- Accurate measurement of CPT in plasma is essential for clinical trials of NLG207.
Purpose of the Study:
- Develop and validate a robust analytical method to quantify CPT in human plasma.
- Differentiate between NDC-bound and free CPT to assess drug release and exposure.
- Correlate CPT drug exposure with clinical outcomes and pharmacodynamic biomarkers.
Main Methods:
- Developed two sample processing methods (pH alteration) for quantifying total and free CPT.
- Utilized solid-phase extraction and ultra-high-performance liquid chromatography-tandem mass spectrometry (UHPLC-MS/MS).
- Established dynamic calibration ranges of 10-10,000 ng/mL for total CPT and 1-1000 ng/mL for free CPT.
Main Results:
- The UHPLC-MS/MS assay demonstrated high recovery (>79%) and sensitivity for CPT.
- NLG207 NDCs showed significant CPT release in plasma at room temperature within 2 hours.
- CPT release was minimal at 4°C for 24 hours and after 4 freeze-thaw cycles, indicating sample stability.
Conclusions:
- The developed analytical method is suitable for quantifying CPT in clinical samples from NLG207-treated patients.
- This assay will aid in understanding drug-drug interactions and correlating CPT exposure with clinical outcomes.
- The findings support the clinical utility of NLG207 in advanced prostate cancer treatment.
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