Related Experiment Video
Updated: Jan 30, 2026

A Two-Step Method for Percutaneous Transhepatic Choledochoscopic Lithotomy
Published on: September 13, 2022
Force fluctuations within focal adhesions mediate ECM-rigidity sensing to guide directed cell migration
Sergey V Plotnikov1, Ana M Pasapera, Benedikt Sabass
1Cell Biology and Physiology Center, National Heart Lung and Blood Institute, National Institutes of Health, Bethesda, MD 20892, USA.
None:
Cell migration toward areas of higher extracellular matrix (ECM) rigidity via a process called "durotaxis" is thought to contribute to development, immune response, and cancer metastasis. To understand how cells sample ECM rigidity to guide durotaxis, we characterized cell-generated forces on the nanoscale within single mature integrin-based focal adhesions (FAs). We found that individual FAs act autonomously, exhibiting either stable or dynamically fluctuating ("tugging") traction. We show that a FAK/phosphopaxillin/vinculin pathway is essential for high FA traction and to enable tugging FA traction over a broad range of ECM rigidities. We show that tugging FA traction is dispensable for FA maturation, chemotaxis, and haptotaxis but is critical to direct cell migration toward rigid ECM. We conclude that individual FAs dynamically sample rigidity by applying fluctuating pulling forces to the ECM to act as sensors to guide durotaxis, and that FAK/phosphopaxillin/vinculin signaling defines the rigidity range over which this dynamic sensing process operates.
More Related Videos
Related Concept Videos
06:00Wet Beveling of Microinjection Needles Utilizing Constant Air Pressure for Feedback on Needle Opening
08:12Fully Endoscopic Mitral Valve Repair with Percutaneous Cannulation of Groin Vessels
03:56A Two-Step Method for Percutaneous Transhepatic Choledochoscopic Lithotomy
05:39Three-Dimensional Printing Guide Template Assisted Percutaneous Vertebroplasty (PVP)
09:31In Vivo, Percutaneous, Needle Based, Optical Coherence Tomography of Renal Masses
11:27Preparation and Respirometric Assessment of Mitochondria Isolated from Skeletal Muscle Tissue Obtained by Percutaneous Needle Biopsy

