A Theranostic Cathepsin Activity-Based Probe for Noninvasive Intervention in Cardiovascular Diseases
Tommy Weiss-Sadan1, Yael Ben-Nun1, David Maimoun2
1Institute for Drug Research, School of Pharmacy, Faculty of Medicine, The Hebrew University, Jerusalem, Israel, 9112001.
Insights
A novel photodynamic therapy using a cathepsin-targeting probe effectively reduces vascular inflammation and atherosclerosis progression in mice. This theranostic approach shows promise for clinical applications in treating cardiovascular diseases.
Area of Science:
- Cardiovascular Research
- Molecular Imaging
- Photodynamic Therapy
Background:
- Cardiovascular diseases remain a major health issue despite lipid-lowering drugs.
- Atherosclerosis involves vascular inflammation and remodeling, driven by cysteine proteases like cathepsins B, L, and S.
- Elevated cathepsin activity correlates with poor cardiovascular outcomes.
Purpose of the Study:
- To develop and evaluate a non-invasive theranostic approach for vascular inflammation targeting cysteine cathepsins.
- To assess the efficacy of a Photosensitizing quenched Activity-Based Probe (PS-qABP) in modulating atherosclerosis.
Main Methods:
- PS-qABP was tested in LDL receptor-deficient mice.
- Non-invasive imaging and histological analysis were used to evaluate probe accumulation and therapeutic effects.
- Human endarterectomy tissues were analyzed for cathepsin signals and identity confirmation via mass spectrometry.
Main Results:
- PS-qABP rapidly accumulated in inflammatory atheromas in vivo.
- Light therapy significantly reduced lesional immune cell content without impacting smooth muscle cells or collagen.
- Proof-of-concept for clinical application was demonstrated using human tissue samples.
Conclusions:
- Cysteine cathepsin-guided photodynamic therapy is an effective strategy to reduce vascular inflammation.
- This approach can attenuate atherosclerosis progression.
- The theranostic technology holds potential for clinical translation in cardiovascular disease management.
Abstract:
Despite the common use of lipid-lowering medications, cardiovascular diseases continue to be a significant health concern. Atherosclerosis, one of the most frequent causes of cardiovascular morbidity, involves extensive inflammatory activity and remodeling of the vascular endothelium. This relentless inflammatory condition can ultimately give rise to clinical manifestations, such as ischemic heart disease or stroke. Accumulating evidence over the past decades implicates cysteine protease cathepsins in cardiovascular disorders. In particular, Cathepsins B, L, and S are over-expressed during vascular inflammation, and their activity is associated with impaired clinical outcomes. Here we took advantage of these molecular events to introduce a non-invasive detection and treatment approach to modulate vascular inflammation using a Photosensitizing quenched Activity-Based Probed (PS-qABP) that targets these proteases. Methods: We tested the application of this approach in LDL receptor-deficient mice and used non-invasive imaging and heart cross-section staining to assess the theranostic efficacy of this probe. Moreover, we used fresh human endarterectomy tissues to analyze cathepsin signals on gel, and verified cathepsin identity by mass spectrometry. Results: We showed that our PS-qABP can rapidly accumulate in areas of inflammatory atheromas in vivo, and application of light therapy profoundly reduced lesional immune cell content without affecting smooth muscle cell and collagen contents. Lastly, using human tissue samples we provided proof-of-concept for future clinical applications of this technology. Conclusions: Photodynamic therapy guided by cysteine cathepsin activity is an effective approach to reduce vascular inflammation and attenuate atherosclerosis progression. This approach could potentially be applied in clinical settings.
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