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Galacto-conjugation of Navitoclax as an efficient strategy to increase senolytic specificity and reduce platelet
Estela González-Gualda1, Marta Pàez-Ribes1, Beatriz Lozano-Torres2,3,4,5
1CRUK Cambridge Centre Early Detection Programme, Department of Oncology, Hutchison/MRC Research Centre, University of Cambridge, Cambridge, UK.
Abstract:
Pharmacologically active compounds with preferential cytotoxic activity for senescent cells, known as senolytics, can ameliorate or even revert pathological manifestations of senescence in numerous preclinical mouse disease models, including cancer models. However, translation of senolytic therapies to human disease is hampered by their suboptimal specificity for senescent cells and important toxicities that narrow their therapeutic windows. We have previously shown that the high levels of senescence-associated lysosomal β-galactosidase (SA-β-gal) found within senescent cells can be exploited to specifically release tracers and cytotoxic cargoes from galactose-encapsulated nanoparticles within these cells. Here, we show that galacto-conjugation of the BCL-2 family inhibitor Navitoclax results in a potent senolytic prodrug (Nav-Gal), that can be preferentially activated by SA-β-gal activity in a wide range of cell types. Nav-Gal selectively induces senescent cell apoptosis and has a higher senolytic index than Navitoclax (through reduced activation in nonsenescent cells). Nav-Gal enhances the cytotoxicity of standard senescence-inducing chemotherapy (cisplatin) in human A549 lung cancer cells. Concomitant treatment with cisplatin and Nav-Gal in vivo results in the eradication of senescent lung cancer cells and significantly reduces tumour growth. Importantly, galacto-conjugation reduces Navitoclax-induced platelet apoptosis in human and murine blood samples treated ex vivo, and thrombocytopenia at therapeutically effective concentrations in murine lung cancer models. Taken together, we provide a potentially versatile strategy for generating effective senolytic prodrugs with reduced toxicities.
Insights
Senolytics target senescent cells but have toxicities. A new prodrug, Nav-Gal, is activated by senescent cell enzyme (SA-β-gal), selectively killing senescent cells with reduced side effects.
Area of Science:
- Cellular senescence
- Drug development
- Cancer therapy
Background:
- Senolytics target senescent cells, but suboptimal specificity and toxicity limit clinical translation.
- Senescence-associated β-galactosidase (SA-β-gal) is highly expressed in senescent cells.
- Previous work utilized SA-β-gal to release cargo from nanoparticles within senescent cells.
Purpose of the Study:
- To develop a potent senolytic prodrug with improved specificity and reduced toxicity.
- To investigate the senolytic activity and therapeutic potential of a galacto-conjugated Navitoclax (Nav-Gal).
Main Methods:
- Galacto-conjugation of Navitoclax to create Nav-Gal, a prodrug activated by SA-β-gal.
- Assessment of Nav-Gal's senolytic activity and senolytic index in various cell types.
- Evaluation of Nav-Gal's efficacy in combination with cisplatin in vitro and in vivo.
- Ex vivo analysis of Nav-Gal's effect on platelet apoptosis and in vivo assessment of thrombocytopenia.
Main Results:
- Nav-Gal selectively induces apoptosis in senescent cells with a higher senolytic index than Navitoclax.
- Nav-Gal enhances cisplatin-induced cytotoxicity in senescent lung cancer cells.
- Combined Nav-Gal and cisplatin treatment eradicates senescent lung cancer cells and reduces tumor growth in vivo.
- Galacto-conjugation reduces Navitoclax-induced platelet apoptosis and thrombocytopenia.
Conclusions:
- Nav-Gal is a potent senolytic prodrug preferentially activated by SA-β-gal.
- This strategy offers a promising approach for developing senolytic therapies with reduced toxicity.
- Nav-Gal demonstrates potential for improving cancer treatment by targeting senescent cells.
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