ArticleACS applied materials & interfaces2025
Nanoscale Cellular Traction Force Quantification: CRISPR-Cas12a Supercharged DNA Tension Sensors in Nanoclustered Ligand Patterns.
Article in ACS applied materials & interfaces, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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Who cites it
8 citing papers in PubMed.
- Advancements and applications of click chemistry in protein labeling and bioconjugation.RSC advances · 2026Review
- Integrin-mediated mechanotransduction in the tumor microenvironment: macrophage-centered signaling mechanisms and immune remodeling.Journal of translational medicine · 2026Review
- Traction Force Microscopy with DNA FluoroCubes.Langmuir : the ACS journal of surfaces and colloids · 2026Article
- Serial intravital microscopy reveals temporal dynamics of autoreactive germinal centers in the spleen.iScience · 2026Article
- Display of clustered antigen by follicular dendritic cells tunes B-cell receptor activation.bioRxiv : the preprint server for biology · 2025Article
- Article
- Accessible Sensing Sites in Metal-Insulator-Metal Plasmonic Nanostructure for Biosensing Applications.ACS applied materials & interfaces · 2025Article
- Thermoplasmonic Nanorings via Sputter Deposition.Materials (Basel, Switzerland) · 2025Article
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4 authors.
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Abstract
High-throughput measurement of cellular traction forces at the nanoscale remains a significant challenge in mechanobiology, limiting our understanding of how cells interact with their microenvironment. Here, we present a novel technique for fabricating protein nanopatterns in standard multiwell microplate formats (96/384-wells), enabling the high-throughput quantification of cellular forces using DNA tension gauge tethers (TGTs) amplified by CRISPR-Cas12a. Our method employs sparse colloidal lithography to create nanopatterned surfaces with feature sizes ranging from sub 100 to 800 nm on transparent, planar, and fully PEGylated substrates. These surfaces allow for the orthogonal immobilization of two different proteins or biomolecules using click-chemistry, providing precise spatial control over cellular signaling cues. We demonstrate the robustness and versatility of this platform through imaging techniques, including total internal reflection fluorescence microscopy, confocal laser scanning microscopy, and high-throughput imaging. Applying this technology, we measured the early stage mechanical forces exerted by 3T3 fibroblasts across different nanoscale features, detecting forces ranging from 12 to 56 pN. By integrating the Mechano-Cas12a Assisted Tension Sensor (MCATS) system, we achieved rapid and high-throughput quantification of cellular traction forces, analyzing over 2 million cells within minutes. Our findings reveal that nanoscale clustering of integrin ligands significantly influences the mechanical responses of cells. This platform offers a powerful tool for mechanobiology research, facilitating the study of cellular forces and mechanotransduction pathways in a high-throughput manner compatible with standard cell culture systems.
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