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Spatial distribution of isobaric androgens in target tissues using chemical derivatization and MALDI-2 on a trapped
C L Logan Mackay1, Jens Soltwisch2, Bram Heijs3,4
1SIRCAMS, EastChem School of Chemistry, University of Edinburgh Scotland UK.
Abstract:
Prostate cancer is initially treated via androgen deprivation therapy (ADT), a highly successful treatment in the initial pursuit of tumour regression, but commonly restricted by the eventual emergence of a more lethal 'castrate resistant' (CRPC) form of the disease. Intracrine pathways that utilize dehydroepiandrosterone (DHEA) or other circulatory precursor steroids are thought to generate relevant levels of growth-stimulating androgens such as testosterone (T) and dihydrotestosterone (DHT). Decoding this tissue-specific metabolic pathway is key for the development of novel therapeutic treatments. Mass spectrometry imaging (MSI) is an analytical technique that allows the visualization of the distribution of numerous classes of biomolecules within tissue sections. The analysis of androgens by liquid chromatography mass spectrometry (LC/MS)-based methods however presents a challenge due to their generally poor ionization efficiency and low physiological endogenous levels. In MSI, on-tissue chemical derivatization (OTCD) has enabled the limits of steroids to be imaged within tissues to be pushed by overcoming poor ionization performance. However, isobaric interference of key androgen derivatives such as T and DHEA can severely hamper studying the intracrinology in several diseases. Here, we have evaluated the use of laser induced post-ionization (MALDI-2) combined with trapped ion mobility separation (TIMS) and orthogonal time-of-flight (QTOF) MS for the visualization of isobaric derivatized androgens in murine tumour xenograft at about 50 μm spatial resolution. With this combination, isobaric T and DHEA were separated in tissue sections and the signals of derivatized steroids enhanced by about 20 times. The combination of TIMS and MALDI-2 thus shows unique potential to study tissue intracrinology within target tissues. This could offer the opportunity for many novel insights into tissue-specific androgen biology.
Insights
New mass spectrometry imaging methods successfully separate and enhance signals of key androgens like testosterone and dehydroepiandrosterone in prostate cancer tissues. This advancement aids in understanding treatment resistance and developing targeted therapies.
Area of Science:
- Biochemistry
- Analytical Chemistry
- Oncology
Background:
- Prostate cancer is initially treated with androgen deprivation therapy (ADT), but resistance (CRPC) emerges.
- Intracrine pathways using precursor steroids like dehydroepiandrosterone (DHEA) fuel cancer growth.
- Understanding tissue-specific androgen metabolism is crucial for new therapies.
Purpose of the Study:
- To develop and evaluate advanced mass spectrometry imaging (MSI) techniques for visualizing isobaric androgens in prostate cancer xenografts.
- To overcome challenges in androgen detection, including poor ionization and isobaric interference.
Main Methods:
- Utilized laser-induced post-ionization (MALDI-2) coupled with trapped ion mobility separation (TIMS) and QTOF mass spectrometry.
- Applied on-tissue chemical derivatization (OTCD) to enhance steroid detectability.
- Analyzed murine tumor xenografts at approximately 50 μm spatial resolution.
Main Results:
- Successfully separated isobaric testosterone (T) and dehydroepiandrosterone (DHEA) derivatives within tissue sections.
- Achieved approximately a 20-fold enhancement in the signals of derivatized steroids.
- Demonstrated high spatial resolution imaging of androgen distribution.
Conclusions:
- The combination of TIMS and MALDI-2 is a powerful tool for studying tissue intracrinology.
- This technique offers novel insights into tissue-specific androgen biology, particularly in the context of prostate cancer.
- Potential for improved understanding and treatment of castrate-resistant prostate cancer (CRPC).
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