DocumentCode :
252936
Title :
Characterization of cellular mechanical torque by rotation of ferromagnetic nanowire
Author :
Ting-Hsuan Chen ; Wei Liu ; Yuanhang Li
Author_Institution :
Dept. of Mech. & Biomed. Eng., City Univ. of Hong Kong, Hong Kong, China
fYear :
2014
fDate :
13-16 April 2014
Firstpage :
678
Lastpage :
681
Abstract :
Single cell´s left-right biased motion, or chirality, is recent finding that may explain the origin of left right asymmetry at tissue development. Yet sufficient tools are lack to enrich our understanding toward this field. Here, to characterize cytoskeletal chirality, we use nanotechnology that offers spatial cues in the scale similar to the size of cells. We applied ferromagnetic nickel nanowires as the sensors attached to living cells. Within a uniform, horizontal magnetic field, cellular chirality rotates the nanowires and generates a mechanical torque. This cellular torque is eventually balanced with the magnetic torque created from the horizontal magnetic field at a clockwise of counter-clockwise angle. As such, this angular alignment reveals a quantifiable value of cytoskeletal chirality. Importantly, the exhibition of cellular chirality is dependent on cell type and time. Also, as the key factor of cytoskeleton, actin plays an important role in this feature. These findings demonstrate a new approach for future investigation of cell mechanics, with implication for tissue regeneration.
Keywords :
biological tissues; biomagnetism; biomedical measurement; cell motility; chirality; ferromagnetic materials; nanobiotechnology; nanosensors; nanowires; nickel; proteins; torque; Ni; actin; angular alignment; cell mechanics; cell size; cell type; cellular chirality; cellular mechanical torque characterization; counter-clockwise angle; cytoskeletal chirality; cytoskeleton; ferromagnetic nanowire rotation; ferromagnetic nickel nanowire sensor; horizontal magnetic field; left right asymmetry; living cells; magnetic torque; nanotechnology; single cell left-right biased motion; time; tissue development; tissue regeneration; uniform magnetic field; Cells (biology); Force; Magnetic fields; Nanobioscience; Nickel; Stress; Torque; cell chirality; nanowire; torque;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Nano/Micro Engineered and Molecular Systems (NEMS), 2014 9th IEEE International Conference on
Conference_Location :
Waikiki Beach, HI
Type :
conf
DOI :
10.1109/NEMS.2014.6908902
Filename :
6908902
Link To Document :
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