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Study 29 of 31Octreotide literatureACS applied materials & interfaces · Observational2026

The Extent of Ligand-Receptor Interactions for Actively Targeted Nanoparticles as a Function of Ligand Density and Receptor Expression.

Increasing octreotide on nanoparticles improves receptor interactions, but higher receptor levels may reduce particle uptake efficiency.

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Where it sits

this study against the rest of the octreotide corpus
1
Preclinical
25
Observational · this one
0
Open-label
3
Randomised
2
Reviews

Summary and findings

This study evaluated the interaction between mesoporous silica nanoparticles functionalized with varying ratios of octreotide and a scrambled peptide, focusing on somatostatin receptor expression. It was found that both increased octreotide surface concentration and receptor expression led to enhanced ligand-receptor interactions. The study highlights the importance of understanding these interactions for the design of targeted nanocarriers.

How much of this paper we could read: full text read (0.70). We had a clear abstract, so the summary below closely tracks the paper. What this means →
Not reported in abstract.2026

Abstract

The authors’ words, as ACS applied materials & interfaces supplied them

The interaction between mesoporous silica nanoparticles covalently functionalized with different ratios of octreotide, a potent agonist for somatostatin receptors (SSTRs), and a scrambled peptide at a constant total peptide loading and SSTR2 was evaluated as a function of receptor expression. Both an increasing octreotide surface concentration and an increasing receptor expression level led to an increased total ligand-receptor interaction. The highest level of selectivity in terms of differences in sensor response between cells exhibiting a low and a high receptor expression level was observed at intermediate octreotide surface concentrations. However, the kinetics of particle internalization decreased with increasing receptor levels, which led to a decrease in selectivity when judged based on particle uptake as compared to the extent of ligand-receptor interactions. Our results highlight the value of direct evaluation of ligand-receptor interactions in addition to particle uptake analyses for enhancing the mechanistic understanding of nanoparticle behavior in biological systems, enabling rational design of actively targeted nanocarriers.

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