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Published on: July 31, 2016
Imaging the DNA Alkylator Melphalan by CEST MRI: An Advanced Approach to Theranostics
Ethel J Ngen1,2, Amnon Bar-Shir1,2, Anna Jablonska1,2
1Division of Magnetic Resonance Research, Russell H. Morgan Department of Radiology and Radiological Science, The Johns Hopkins University School of Medicine , Baltimore, Maryland 21205, United States.
Abstract:
Brain tumors are among the most lethal types of tumors. Therapeutic response variability and failure in patients have been attributed to several factors, including inadequate drug delivery to tumors due to the blood-brain barrier (BBB). Consequently, drug delivery strategies are being developed for the local and targeted delivery of drugs to brain tumors. These drug delivery strategies could benefit from new approaches to monitor the delivery of drugs to tumors. Here, we evaluated the feasibility of imaging 4-[bis(2-chloroethyl)amino]-l-phenylalanine (melphalan), a clinically used DNA alkylating agent, using chemical exchange saturation transfer magnetic resonance imaging (CEST MRI), for theranostic applications. We evaluated the physicochemical parameters that affect melphalan's CEST contrast and demonstrated the feasibility of imaging the unmodified drug by saturating its exchangeable amine protons. Melphalan generated a CEST signal despite its reactivity in an aqueous milieu. The maximum CEST signal was observed at pH 6.2. This CEST contrast trend was then used to monitor therapeutic responses to melphalan in vitro. Upon cell death, the decrease in cellular pH from ∼7.4 to ∼6.4 caused an amplification of the melphalan CEST signal. This is contrary to what has been reported for other CEST contrast agents used for imaging cell death, where a decrease in the cellular pH following cell death results in a decrease in the CEST signal. Ultimately, this method could be used to noninvasively monitor melphalan delivery to brain tumors and also to validate therapeutic responses to melphalan clinically.
Insights
This study shows chemical exchange saturation transfer (CEST) MRI can image melphalan, a brain tumor drug, and monitor treatment response. The method visualizes drug delivery and cell death by detecting pH changes in tumors.
Area of Science:
- Oncology
- Radiology
- Pharmacology
Background:
- Brain tumors are highly lethal, with treatment failure often linked to poor drug delivery across the blood-brain barrier (BBB).
- Effective monitoring of drug delivery and therapeutic response is crucial for improving brain tumor treatment outcomes.
- Current methods for monitoring drug delivery and treatment efficacy in brain tumors are limited.
Purpose of the Study:
- To evaluate the feasibility of using chemical exchange saturation transfer magnetic resonance imaging (CEST MRI) to image melphalan, a DNA alkylating agent.
- To assess melphalan's potential for theranostic applications in brain tumor treatment.
- To investigate the use of melphalan's CEST signal for monitoring therapeutic responses in vitro.
Main Methods:
- Evaluated physicochemical parameters influencing melphalan's CEST contrast.
- Demonstrated imaging of unmodified melphalan by saturating its amine protons.
- Utilized melphalan's pH-dependent CEST signal (maximum at pH 6.2) to monitor in vitro therapeutic responses.
Main Results:
- Melphalan generated a detectable CEST signal despite its reactivity.
- A decrease in cellular pH (∼7.4 to ∼6.4) upon cell death amplified the melphalan CEST signal, contrary to other CEST agents.
- This pH-dependent amplification provides a novel way to image cell death.
Conclusions:
- CEST MRI can successfully image melphalan, a clinically used chemotherapy drug.
- The method allows for noninvasive monitoring of melphalan delivery to brain tumors.
- This approach can validate therapeutic responses to melphalan, offering a new theranostic tool for brain tumor treatment.
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