Molecular Pharmaceutics· 2026Q1
Combined Importance of Non-Specific and Specific Interactions on the Cellular Uptake Kinetics of Peptide-Functionalized Mesoporous Silica Nanoparticles Targeting Integrins In Vitro
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- Q1SCImago
- 2026year
Short summary
Peptide-functionalized mesoporous silica nanoparticles (MSNs) targeting integrins showed varying cellular uptake based on peptide density and surface charge, with non-specific interactions significantly influencing active targeting outcomes.
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Key points
- Cellular uptake of peptide-functionalized MSNs targeting integrins depends on both targeting peptide concentration and nanoparticle surface charge.
- Varying the ratio of targeting peptide to scrambled peptide revealed differences in uptake kinetics and active targeting.
- Both anionic and cationic MSNs were tested, showing distinct uptake behaviors.
- Nanoparticle adhesion strength, influenced by ligand and charge, and target cell receptor density dictate uptake outcomes.
- Non-specific nanoparticle-cell interactions play a crucial role in the effectiveness of active targeting.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract Determination of optimum ligand densities on nanoparticles that result in the highest nanoparticle uptake by the target cells has been the focus of many recent reports. However, analysis of the parallel influence of other important parameters affecting nanoparticle uptake, for example, charge, has achieved less attention. Here, we report results related to the influence of targeting peptide surface concentration on the cellular uptake of mesoporous silica nanoparticles, MSNs, targeting αvβ3 integrins on the cell lines differing in receptor density. For each particle system, the total peptide surface concentration was kept constant, and the targeting peptide concentration was varied through variations of the ratio of the targeting peptide to scrambled peptide. Both anionic carboxylated and cationic aminated MSNs were used. Clear differences in the cellular uptake kinetics as well as the degree of active targeting were observed, which are rationalized through a combination of nanoparticle adhesion strength to the cellular membrane influenced both by the presence of targeting ligand and particle surface charge and of receptor density on the target cells. Our results highlight the important influence of non-specific nanoparticle−cell interactions on active targeting outcomes.
The authors' abstract, as published at the source. Molecular Pharmaceutics, 2026 · DOI ↗
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Field: Immunology and Allergy
Immunology and AllergyMedicine