Multiple human sensory systems exhibit sensitivity to spatial and temporal variations of physical stimuli. Vision has evolved to offer high spatial acuity with limited temporal sensitivity, while audition has developed complementary characteristics. Neural coding in touch has been believed to transition from a spatial to a temporal domain in relation to surface scale, such that coarse features (e.g., a braille cell or corduroy texture) are coded as spatially distributed signals, while fine textures (e.g., fine-grit sandpaper) are encoded by temporal variation. However, the interplay between the two domains is not well understood. We studied tactile encoding with a custom-designed pin array apparatus capable of deforming the fingerpad at 5 to 80 Hz in each of 14 individual locations spaced 2.5 mm apart. Spatial variation of skin indentation was controlled by moving each of the pins at the same frequency and amplitude, but with phase delays distributed across the array. Results indicate that such stimuli enable rendering of shape features at actuation frequencies up to 20 Hz. Even at frequencies > 20 Hz, however, spatial variation of skin indentation continues to play a vital role. In particular, perceived roughness is affected by spatial variation within the fingerpad even at 80 Hz. We provide evidence that perceived roughness is encoded via a summary measure of skin displacement. Relative displacements in neighboring pins of less than 10 µm generate skin stretch, which regulates the roughness percept.
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http://dx.doi.org/10.1038/s41598-022-17324-7 | DOI Listing |
J Craniofac Surg
January 2025
School of Plastic Surgery, Shandong Second Medical University.
Patients with localized scleroderma on the face typically exhibit asymmetrical linear or patchy skin lesions and indentations on areas such as the scalp and forehead, with a smooth, waxy surface. In the early stages, medication is used to control the progression of the disease. In later stages, plastic surgery is performed to repair facial skin lesions.
View Article and Find Full Text PDFJ Neurophysiol
December 2024
Systems Neurophysiology, Werner Reichardt Center for Integrative Neuroscience, Hertie Institute for Clinical Brain ResearchEberhard Karls University, Tübingen, Germany.
Sensors (Basel)
October 2024
Biomedical Engineering Unit, Department of Industrial Engineering, University of Florence, 50121 Florence, Italy.
Proc Natl Acad Sci U S A
October 2024
HHMI, Scripps Research, La Jolla CA 92037.
The propeller-shaped blades of the PIEZO1 and PIEZO2 ion channels partition into the plasma membrane and respond to indentation or stretching of the lipid bilayer, thus converting mechanical forces into signals that can be interpreted by cells, in the form of calcium flux and changes in membrane potential. While PIEZO channels participate in diverse physiological processes, from sensing the shear stress of blood flow in the vasculature to detecting touch through mechanoreceptors in the skin, the molecular details that enable these mechanosensors to tune their responses over a vast dynamic range of forces remain largely uncharacterized. To survey the molecular landscape surrounding PIEZO channels at the cell surface, we employed a mass spectrometry-based proteomic approach to capture and identify extracellularly exposed proteins in the vicinity of PIEZO1.
View Article and Find Full Text PDFExpert Opin Drug Deliv
October 2024
Novo Nordisk A/S, Devices and Delivery Solutions, Hillerød, Denmark.
Objective: This noninvasive study aimed to understand the interaction between shield-triggered autoinjectors (AI) and skin at the point of activation, hypothesizing that the AI's housing absorbs a significant amount of the user-applied force depending on shield design and skin characteristics.
Methods: Twenty-seven volunteers used a test device measuring applied force versus shield force and indentation depth relative to shield length (2,4,6,8 mm) in standing and sitting positions.
Results: Significant differences were found between applied and shield force for the different shield lengths.
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