Optomechanical measurement of the stiffness of single adherent cells
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Summary
The reported optomechanical technique can provide high-throughput stiffness measurement of single adherent cells over time with minimal perturbation.
- Type
- article
- Published
- 2015-07-29
- Cited by
- 20
- References
- 55
- Access
- Open access
- OpenAlex
- https://openalex.org/W1883739999
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:494174
Keywords
Stiffness, Optics, Materials science, Nanotechnology, Physics
References
- IL-13受体α2降低血吸虫病肉芽肿的炎症反应并延长宿主存活时间[英]/Mentink-Kane MM,Cheever AW,Thompson RW,et al//Proc Natl Acad Sci U S A
- The physical properties of cytoplasm: A study by means of the magnetic particle method Part I. Experimental
- Cell shape and substrate rigidity both regulate cell stiffness.
- Potential role of IL‐8, platelet‐activating factor and TNF‐α in the sequestration of neutrophils in the lung: effects on neutrophil deformability, adhesion receptor expression, and chemotaxis
- Analysis of Cytoskeleton-Destabilizing Agents by Optimized Optical Navigation and AFM Force Measurements
- A and V
- Atomic force microscopy of 3T3 and SW-13 cell lines: an investigation of cell elasticity changes due to fixation.
- Nanomolar concentrations of nocodazole alter microtubule dynamic instability in vivo and in vitro.
- A multilayer structured acoustic cloak with homogeneous isotropic materials
- Continuous inertial focusing, ordering, and separation of particles in microchannels
- Digital holographic microscopy: a noninvasive contrast imaging technique allowing quantitative visualization of living cells with subwavelength axial accuracy.
- Optical tweezers for measuring red blood cell elasticity: application to the study of drug response in sickle cell disease
- Fixed endothelial cells exhibit physiologically relevant nanomechanics of the cortical actin web
- Osteoblast Elastic Modulus Measured by Atomic Force Microscopy Is Substrate Dependent
- Connections between single-cell biomechanics and human disease states: gastrointestinal cancer and malaria.
- Nucleotide exchange factor GEF-H1 mediates cross-talk between microtubules and the actin cytoskeleton
- Cell shape, cytoskeletal mechanics, and cell cycle control in angiogenesis.
- Mechanical properties of L929 cells measured by atomic force microscopy: effects of anticytoskeletal drugs and membrane crosslinking.
- Real-time deformability cytometry: on-the-fly cell mechanical phenotyping
- Nanomechanical analysis of cells from cancer patients.
Cited by
- Dynamic mechanical measurement of the viscoelasticity of single adherent cells
- Micro- and nano-technologies to probe the mechano-biology of the brain.
- Microcantilevers track single-cell mass
- Evidence of differential mass change rates between human breast cancer cell lines in culture
- Simultaneous Measurement of Multiple Mechanical Properties of Single Cells Using AFM by Indentation and Vibration
- Multifrequency Optomechanical Stiffness Measurement of Single Adherent Cells on a Solid Substrate with High Throughput.
- Acute and Chronic Neural Stimulation via Mechano-Sensitive Ion Channels
- Optomechanical non-contact measurement of microparticle compressibility in liquids.
- Smart Cell-Culture Systems: Integration of Sensors and Actuators into Microphysiological Systems
- Optomechanical microrheology of single adherent cancer cells
- Developing an Optomechanical Approach for Characterizing Mechanical Properties of Single Adherent Cells
- Evaluation of the Response Characteristics of On-Chip Gel Actuators for Various Single Cell Manipulations
- Simultaneous time-varying viscosity, elasticity, and mass measurements of single adherent cancer cells across cell cycle
- Dynamic Size-Tracking of Single Cells Using Microfluidics-Integrated Microwave Sensors
- Real-time irradiation system using patterned light to actuate light-driven on-chip gel actuators
- High-Resolution Dielectric Characterization of Single Cells and Microparticles Using Integrated Microfluidic Microwave Sensors
- Acoustic Wave‐Induced Stroboscopic Optical Mechanotyping of Adherent Cells
- Micro- and Nanotechnologies to Probe Brain Mechanobiology
- Microfluidics Integrated Microwave Sensors in Tandem with Optical Microscopy for Sizing and Material Classification of Single Cells and Microplastics
- Mechanical and Microwave Resonators for Sensing and Sizing Single Cells
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