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Nanodevice-Mediated Immune Cell Recruitment: Targeting Senescent Cells via MMP-3-Responsive CXCL12-Coated
Blanca Escriche-Navarro1,2,3,4, Eva Garrido1,3, Sandra Clara-Trujillo1,2
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.
Abstract:
Senescent cells are involved in age-related disorders in different organs and are therapeutic targets for fibrotic and chronic pathologies. Immune-modulating agents, able to enhance senescent cell detection and elimination by endogenous immune cells, have emerged as pharmacological strategies. We report herein a nanoparticle for immune cell-mediated senolytic therapy designed to recruit immune cells in response to specific enzymatic matrix metalloproteinase-3 (MMP-3) activity in the senescence-associated secretory phenotype. For this, mesoporous silica nanoparticles (MSNs) are coated with a peptide substrate of the metalloproteinase MMP-3, and the peptide is decorated with chemokine CXCL12 that enhances immune cell recruitment (NPs@CXCL12). Controlled release studies confirmed the progressive and specific release of CXCL12 in the presence of MMP-3. The ability of immune cell recruitment in response to a senescent microenvironment (senescent WI-38 fibroblasts) is confirmed by Transwell migration assays with green fluorescent Jurkat T-cells, showing NPs@CXCL12 has an enhanced chemotaxis effect toward senescent cells compared to free CXCL12 (2-fold). Moreover, the cytotoxic capacity of human primary natural killer (NK) cells over senescent WI-38 is also confirmed, and their migration trajectories in response to NPs@CXCL12 or free CXCL12 are monitored by using a microfluidic device. Results confirm the ability of NPs@CXCL12 to generate a chemotactic gradient able to attract NK cells. When compared with free CXCL12, the NPs@CXCL12 system showed a reduction of up to 15.56% in the population of NK cells migrating toward free CXCL12 under competitive conditions. This study demonstrates the potential of designing nanoparticles to recruit immune cells under specific responses to eliminate senescent cells. Results confirm that NPs@CXCL12 can effectively establish a chemotactic gradient to attract NK cells.
Insights
Researchers developed a nanoparticle therapy that recruits immune cells to eliminate senescent cells, which contribute to age-related diseases. This targeted approach enhances immune cell-mediated senolytic therapy for fibrotic and chronic conditions.
Area of Science:
- Biomedical Engineering
- Immunology
- Cell Biology
Background:
- Senescent cells contribute to age-related disorders and fibrotic pathologies.
- Immune-modulating agents are emerging as therapeutic strategies for senescent cell elimination.
- Targeting the senescence-associated secretory phenotype is a key therapeutic goal.
Purpose of the Study:
- To design and evaluate a nanoparticle system for immune cell-mediated senolytic therapy.
- To recruit immune cells specifically in response to matrix metalloproteinase-3 (MMP-3) activity.
- To enhance the elimination of senescent cells by endogenous immune cells.
Main Methods:
- Mesoporous silica nanoparticles (MSNs) coated with an MMP-3 peptide substrate and decorated with chemokine CXCL12 (NPs@CXCL12).
- Controlled release studies to assess CXCL12 release kinetics in the presence of MMP-3.
- Transwell migration assays and microfluidic devices to evaluate immune cell (Jurkat T-cells, NK cells) recruitment and migration toward senescent cells.
Main Results:
- NPs@CXCL12 demonstrated progressive and specific release of CXCL12 in response to MMP-3.
- NPs@CXCL12 showed a 2-fold enhanced chemotaxis effect toward senescent cells compared to free CXCL12.
- NPs@CXCL12 effectively generated a chemotactic gradient attracting natural killer (NK) cells, with reduced migration toward free CXCL12 under competitive conditions.
Conclusions:
- The developed nanoparticle system (NPs@CXCL12) shows potential for targeted immune cell recruitment.
- This approach can enhance senescent cell elimination through immune cell-mediated senolytic therapy.
- The study highlights the promise of designing responsive nanoparticles for treating age-related and fibrotic diseases.
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