Force Application, Measurement, and Manipulation Accessories

Author(s):  
Yakov M. Tseytlin
Keyword(s):  
2021 ◽  
Vol 12 (1) ◽  
Author(s):  
Yijun Zheng ◽  
Mitchell K. L. Han ◽  
Renping Zhao ◽  
Johanna Blass ◽  
Jingnan Zhang ◽  
...  

AbstractProgress in our understanding of mechanotransduction events requires noninvasive methods for the manipulation of forces at molecular scale in physiological environments. Inspired by cellular mechanisms for force application (i.e. motor proteins pulling on cytoskeletal fibers), we present a unique molecular machine that can apply forces at cell-matrix and cell-cell junctions using light as an energy source. The key actuator is a light-driven rotatory molecular motor linked to polymer chains, which is intercalated between a membrane receptor and an engineered biointerface. The light-driven actuation of the molecular motor is converted in mechanical twisting of the entangled polymer chains, which will in turn effectively “pull” on engaged cell membrane receptors (e.g., integrins, T cell receptors) within the illuminated area. Applied forces have physiologically-relevant magnitude and occur at time scales within the relevant ranges for mechanotransduction at cell-friendly exposure conditions, as demonstrated in force-dependent focal adhesion maturation and T cell activation experiments. Our results reveal the potential of nanomotors for the manipulation of living cells at the molecular scale and demonstrate a functionality which at the moment cannot be achieved by other technologies for force application.


2009 ◽  
Vol 09 (02) ◽  
pp. 229-242 ◽  
Author(s):  
CHIEN-JU LIN ◽  
PO-CHOU LIN ◽  
FONG-CHIN SU ◽  
KAI-NAN AN

With progress of modern technology, manually-propelled wheelchairs are still of importance for individuals with mobility impairments. The repeated wheelchair propulsion and strenuous daily activities cause high loads and thus injuries on the upper extremity joints. Over the past few years, a considerable number of studies have been made on biomechanical analysis of wheelchair propulsion and wheelchair-related activities. Thorough investigation of biomechanics during wheelchair propulsion enhances comprehension of mechanism of injuries and provides information to improve wheelchair design and fitting. Numerous investigations have been made to demonstrate factors which cause low effectiveness of force application and inefficiency of movements. Emphasis was also placed on developing analytical models to simulate wheelchair propulsion.


1997 ◽  
Vol 29 (1) ◽  
pp. 27-34 ◽  
Author(s):  
Caroline A. M. Doorenbosch ◽  
Dirkjan H. E. J. Veeger ◽  
Jan Peter van Zandwijk ◽  
Gerrit Jan van Ingen Schenau

2016 ◽  
Vol 19 (2) ◽  
pp. 83-92 ◽  
Author(s):  
K. Arita ◽  
H. Hotokezaka ◽  
M. Hashimoto ◽  
T. Nakano-Tajima ◽  
T. Kurohama ◽  
...  

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