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Published on: June 18, 2013
Imaging mass spectrometry differentiates the effects of doxorubicin formulations on non-targeted tissues
Željko Debeljak1,2, Ivana Vinković Vrček3, Nikša Drinković4
1University Hospital Osijek, Osijek, Croatia. zeljko.debeljak@gmail.com.
Abstract:
Administration of cytotoxic agents like doxorubicin (DOX) is restrained by the effects on different non-targeted/non-cancerous tissues, which instigates the development of nano-enabled drug delivery systems, among others. In this study, imaging mass spectrometry (IMS) was selected to examine the effects of DOX nanoformulations on non-targeted tissues. Chemical alterations induced by liposomal (LPS) and poly (lactic-co-glycolic acid) (PLG) nanoformulations were assessed against the ones induced by the conventional (CNV) formulation. Kidney cryosections of the treated and control Wistar rats were used as a model of the non-targeted tissue and analyzed by MALDI TOF IMS in the 200-1000 Da m/z range. Principal component analysis (PCA) and Volcano plots of the average mass spectra demonstrated a large overlap between treatments. However, the Venn diagram of significant m/z values revealed a nanoformulation-specific fingerprint consisting of 59 m/z values, which set them apart from the CNV formulation characterized by the fingerprint of 22 significant m/z values. Fingerprint m/z values that were putatively annotated by metabolome database search were linked to apoptosis, cell migration and proliferation. In CNV and PLG cases, false discovery rate adjusted ANOVA showed no differences in the spatial distribution of fingerprint m/z values between the histological substructures like glomeruli and convoluted tubules indicating their tissue-nonselective effect. LPS caused the least significant changes in m/z values and some of the LPS-specific fingerprint m/z values were primarily distributed in the glomeruli. The IMS based procedure successfully differentiated the effects of DOX formulations on the model non-targeted tissue, thus indicating the importance of IMS in effective drug development.
Insights
Imaging mass spectrometry differentiated doxorubicin nanoformulations in non-targeted kidney tissues. Liposomal formulations showed fewer changes than conventional ones, indicating potential for targeted drug delivery.
Area of Science:
- Pharmacology
- Biomedical Engineering
- Analytical Chemistry
Background:
- Cytotoxic drug administration is limited by off-target effects.
- Nano-enabled drug delivery systems aim to improve drug targeting and reduce toxicity.
- Imaging mass spectrometry (IMS) offers a method to analyze drug effects in tissues.
Purpose of the Study:
- To evaluate the effects of doxorubicin (DOX) nanoformulations on non-targeted kidney tissues using IMS.
- To compare the chemical alterations induced by liposomal (LPS) and poly(lactic-co-glycolic acid) (PLG) nanoformulations against conventional (CNV) DOX.
Main Methods:
- Wistar rat kidney cryosections were analyzed using MALDI TOF IMS (200-1000 Da m/z).
- Principal component analysis (PCA) and Volcano plots were used to analyze mass spectra.
- Venn diagrams identified unique m/z values for each formulation.
- Metabolome database searches were performed for m/z value annotation.
Main Results:
- IMS revealed distinct nanoformulation-specific fingerprints (59 m/z values for nanoformulations vs. 22 for CNV).
- Annotated m/z values were linked to apoptosis, cell migration, and proliferation.
- Conventional and PLG formulations showed non-selective effects across kidney structures.
- Liposomal formulations induced fewer changes, with some specific m/z values localized to glomeruli.
Conclusions:
- IMS successfully differentiated the effects of various DOX formulations on non-targeted kidney tissue.
- Liposomal DOX formulations demonstrated a more targeted effect compared to conventional and PLG formulations.
- IMS is a valuable tool for assessing drug delivery system efficacy and guiding drug development.
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