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Kenya Goto

Publications and source records attributed to Kenya Goto.

2 recordsLinked to original sources

Force generation by recombinant myosin heads trapped between two functionalized surfaces.

Fluorescence resonance energy transfer measurements have revealed that the lever-arm domain of myosin swings when it hydrolyzes Mg-ATP. It is generally accepted that this swing of the lever arm of myosin is the molecular basis of force generation. On the other hand, the possibility that the force might be generated at the interface between actin and myosin cannot be ignored. However, there is a third possibility, namely, that myosin itself generates force without actin. Thus, using recombinant subfragment 1 molecules of Dictyostelium myosin II that were trapped between two functionalized surfaces of a surface-force apparatus, we determined whether myosin itself could actually generate force. Here, we report that, despite the absence of actin, myosin heads themselves have a capacity to generate a force (at least approximately 0.2 pN/molecule) that is coupled to the structural changes. Although the role of actin should not be neglected because muscle physiologically shortens as a result of the interaction between actin and myosin, in this work the focus is on the question of whether the catalytic domain of myosin has the capacity to generate force.

Adenosine Triphosphate↗

Design and experiments of a near-field optical disk head for very high efficiency.

A high-density optical disk system with super parallel optical heads using a vertical cavity surface emitting laser (VCSEL) array is described for higher data transfer rate and technological capability. Optical heads of the VCSEL array and microlens array play key roles for obtaining higher evanescent light from small apertures with the optical disk, which is coated with lubricant and protective films on the flat surface in order to keep the gap between the super parallel optical head and the disk surface within 20 nm. Higher throughput efficiency has been obtained in the near-field semiconductor optical probe array head. However, the obtained evanescent light power is about 10 microW from a 100 nm probe aperture and 1 m W VCSEL power, which is still not enough to write a bit on the phase change optical disk. One solution to improve the optical power more than 10 times is to develop a special nanofabricated optical probe array of higher throughput efficiency. A metal fine grating fabrication method to get evanescent light wave resonant enhancement has been studied along with a 2-dimensional finite difference time domain simulation technique.

Journal Article↗