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A navitoclax-loaded nanodevice targeting matrix metalloproteinase-3 for the selective elimination of senescent cells
Blanca Escriche-Navarro1, Eva Garrido2, Félix Sancenón3
1Instituto Interuniversitario de Investigación de Reconocimiento Molecular y Desarrollo Tecnológico (IDM) Universitat Politècnica de València, Universitat de València, Camino de Vera, s/n. 46022, Valencia, Spain; CIBER de Bioingeniería, Biomateriales y Nanomedicina (CIBER-BBN), Av. Monforte de Lemos, 3-5. Pabellón 11. Planta 0, 28029 Madrid, Spain; Unidad Mixta de Investigación en Nanomedicina y Sensores, Universitat Politècnica de València, IIS La Fe. Av. Fernando Abril Martorell, 106 Torre A 7ª planta, 46026, Valencia, Spain.
Abstract:
Cellular senescence is implicated in the occurrence and progression of multiple age-related disorders. In this context, the selective elimination of senescent cells, senolysis, has emerged as an effective therapeutic strategy. However, the heterogeneous senescent phenotype hinders the discovery of a universal and robust senescence biomarker that limits the effective of senolytic with off-target toxic effects. Therefore, the development of more selective strategies represents a promising approach to increase the specificity of senolytic therapy. In this study, we have developed an innovative nanodevice for the selective elimination of senescent cells (SCs) based on the specific enzymatic activity of the senescent secretome. The results revealed that when senescence is induced in proliferating WI-38 by ionizing radiation (IR), the cells secrete high levels of matrix metalloproteinase-3 (MMP-3). Based on this result, mesoporous silica nanoparticles (MSNs) were loaded with the senolytic navitoclax (Nav) and coated with a specific peptide which is substrate of MMP-3 (NPs(Nav)@MMP-3). Studies in cells confirmed the preferential release of cargo in IR-induced senescent cells compared to proliferating cells, depending on MMP-3 levels. Moreover, treatment with NPs(Nav)@MMP-3 induced a selective decrease in the viability of SCs as well as a protective effect on non-proliferating cells. These results demonstrate the potential use of NPs to develop enhanced senolytic therapies based on specific enzymatic activity in the senescent microenvironment, with potential clinical relevance. STATEMENT OF SIGNIFICANCE: The common β-galactosidase activity has been exploited to develop nanoparticles for the selective elimination of senescent cells. However, the identification of new senescent biomarkers is a key factor for the development of improved strategies. In this scenario, we report for the first time the development of NPs targeting senescent cells based on specific enzymatic activity of the senescent secretome. We report a navitoclax-loaded nanodevice responsive to the matrix metalloproteinase-3 (MMP-3) associated with the senescent phenotype. Our nanosystem achieves the selective release of navitoclax in an MMP-3-dependent manner while limiting off-target effects on non-senescent cells. This opens the possibility of using nanoparticles able to detect an altered senescent environment and selectively release its content, thus enhancing the efficacy of senolytic therapies.
Insights
This study introduces a novel nanodevice for targeted senolysis. The device selectively eliminates senescent cells by releasing a drug in response to matrix metalloproteinase-3 (MMP-3), a biomarker of cellular senescence.
Area of Science:
- Biomedical Engineering
- Gerontology
- Nanotechnology
Background:
- Cellular senescence contributes to age-related diseases.
- Current senolytic therapies lack specificity due to heterogeneous senescence biomarkers.
- Targeted elimination of senescent cells (senolysis) is a promising therapeutic strategy.
Purpose of the Study:
- To develop a novel nanodevice for selective senolysis.
- To target senescent cells based on specific enzymatic activity in the senescent secretome.
- To improve the specificity and reduce off-target effects of senolytic therapy.
Main Methods:
- Developed mesoporous silica nanoparticles (MSNs) loaded with navitoclax (Nav).
- Coated MSNs with a peptide substrate for matrix metalloproteinase-3 (MMP-3).
- Investigated nanoparticle cargo release and senolytic efficacy in response to MMP-3 in IR-induced senescent cells.
Main Results:
- IR-induced senescent cells exhibited high MMP-3 secretion.
- The nanodevice preferentially released its cargo in senescent cells, dependent on MMP-3 levels.
- Treatment with the nanodevice selectively reduced senescent cell viability with minimal impact on non-senescent cells.
Conclusions:
- The developed nanodevice demonstrates selective elimination of senescent cells based on MMP-3 activity.
- This approach enhances senolytic therapy specificity and reduces off-target effects.
- The nanodevice holds potential for clinical applications in treating age-related disorders.
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