Dynamically Controlled In Situ Cascade Amplification Modulating Receptor Spatial Distribution and Cell Phenotype

Ligand-receptor interactions play a crucial role in disease therapy. However, enhancing ligand-receptor selectivity and precisely controlling subsequent cellular behavior remain significant challenges. In this study, we developed a receptor-mediated cascade amplification strategy via glycopeptides (GPs) to regulate the dynamic self-assembly of artificial ligands, enhancing ligand-receptor selectivity. By designing the assembly sequences, we control the antagonistic relationship between dynamic nanostructures and receptor-mediated internalization. Our findings show that in fast cascade amplification, rapid fiber network formation inhibits internalization, while in slow amplification, receptor aggregation enhances internalization, promoting cellular uptake. This precise regulation further impacts the spatial distribution and function of receptor, ultimately controlling cellular phenotypes. Based on real-world needs, we applied the cascade amplification strategy to enhance the efficacy of PD-L1 tumor immunotherapy. These findings provide new insights into the regulation of ligand-receptor selectivity and receptor activity, offering promising potential for targeted enhancement and precise intervention of cellular activities.

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Publication Details

Journal
Advanced Healthcare Materials
Published
2026-08-26
DOI
https://doi.org/10.1002/adhm.71629
Primary Topic
Supramolecular Self-Assembly in Materials
Type
article
Field-Weighted Citation Impact
0.00
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article

Dynamically Controlled In Situ Cascade Amplification Modulating Receptor Spatial Distribution and Cell Phenotype

Zihua Wang, Ruxiang Li, Ziyu Zhu, Lili Li et al.
Advanced Healthcare Materials
Supramolecular Self-Assembly in Materials
article

Dynamically Controlled In Situ Cascade Amplification Modulating Receptor Spatial Distribution and Cell Phenotype

Zihua Wang, Ruxiang Li, Ziyu Zhu, Lili Li, Sujun Jiang, Xiongwei Chen
article en

Abstract

Ligand-receptor interactions play a crucial role in disease therapy. However, enhancing ligand-receptor selectivity and precisely controlling subsequent cellular behavior remain significant challenges. In this study, we developed a receptor-mediated cascade amplification strategy via glycopeptides (GPs) to regulate the dynamic self-assembly of artificial ligands, enhancing ligand-receptor selectivity. By designing the assembly sequences, we control the antagonistic relationship between dynamic nanostructures and receptor-mediated internalization. Our findings show that in fast cascade amplification, rapid fiber network formation inhibits internalization, while in slow amplification, receptor aggregation enhances internalization, promoting cellular uptake. This precise regulation further impacts the spatial distribution and function of receptor, ultimately controlling cellular phenotypes. Based on real-world needs, we applied the cascade amplification strategy to enhance the efficacy of PD-L1 tumor immunotherapy. These findings provide new insights into the regulation of ligand-receptor selectivity and receptor activity, offering promising potential for targeted enhancement and precise intervention of cellular activities.

Advanced Healthcare Materials
Beijing Institute of Technology (CN), Capital Medical University (CN), Nankai University (CN), Fujian Women and Children Hospital (CN), Cell and Gene Therapy Catapult (GB), China Rural Technology Development Center (CN), National Center for Nanoscience and Technology (CN), Central Compilation & Translation Bureau (CN)
Openalex Percentile: Top 19%
Supramolecular Self-Assembly in Materials
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