Hierarchical Fluid Interface Enables Spatiotemporal Regulation of Ligand Distribution to Increase Kinetics and Thermodynamics of Interfacial Binding Reaction

Author:

Niu Qi1,Qu Xin23,Li Shiyu1,Shi Xianai2,Yang Jianmin2,Feng Jianzhou4,Huang Chen4,Song Yanling1,Yang Chaoyong145ORCID,Wu Lingling4ORCID

Affiliation:

1. The MOE Key Laboratory of Spectrochemical Analysis & Instrumentation Department of Chemical Biology College of Chemistry and Chemical Engineering Xiamen University 361005 Xiamen China

2. College of Biological Science and Engineering Fuzhou University 350108 Fuzhou China

3. Fuzhou University Jianming Joint Medical Research Center 350108 Fuzhou China

4. Institute of Molecular Medicine Shanghai Key Laboratory for Nucleic Acid Chemistry and Nanomedicine Department of Urology Department of Gastrointestinal Surgery Renji Hospital Shanghai Jiao Tong University School of Medicine 200127 Shanghai China

5. Innovation Laboratory for Sciences and Technologies of Energy Materials of Fujian Province (IKKEM) 361104 Xiamen China

Abstract

AbstractIn nature, regulation of the spatiotemporal distribution of interfacial receptors and ligands leads to optimum binding kinetics and thermodynamics of receptor–ligand binding reactions within interfaces. Inspired by this, we report a hierarchical fluid interface (HieFluidFace) to regulate the spatiotemporal distribution of interfacial ligands to increase the rate and thermodynamic favorability of interfacial binding reactions. Each aptamer‐functionalized gold nanoparticle, termed spherical aptamer (SAPT), is anchored on a supported lipid bilayer without fluidity, like an “island”, and is surrounded by many fluorescent aptamers (FAPTs) with free fluidity, like “rafts”. Such ligand “island‐rafts” model provides a large reactive cross‐section for rapid binding to cellular receptors. The synergistic multivalency of SAPTs and FAPTs improves interfacial affinity for tight capture. Moreover, FAPTs accumulate at binding sites to bind to cellular receptors with clustered fluorescence to “lighten” cells for direct identification. Thus, HieFluidFace in a microfluidic chip achieves high‐performance capture and identification of circulating tumor cells from clinical samples, providing a new paradigm to optimize the kinetics and thermodynamics of interfacial binding reactions.

Funder

National Natural Science Foundation of China

Innovative Research Team of High-level Local University in Shanghai

National Key Research and Development Program of China

Publisher

Wiley

Subject

General Chemistry,Catalysis

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