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Dual-axis Cellular Force Microscope for mechanical characterization of living plant cells.

, , , , , , and . CASE, page 942-947. IEEE, (2016)

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Dual-axis Cellular Force Microscope for mechanical characterization of living plant cells., , , , , , and . CASE, page 942-947. IEEE, (2016)Model organisms — A historical perspective, and . Journal of Proteomics, 73 (11): 2054--2063 (Oct 10, 2010)Adaptation and extinction in experimentally fragmented landscapes, , , , , and . Proceedings of the National Academy of Sciences, (2010)A Microrobotic System for Simultaneous Measurement of Turgor Pressure and Cell-Wall Elasticity of Individual Growing Plant Cells., , , , , and . IEEE Robotics Autom. Lett., 4 (2): 641-646 (2019)HiCdat: a fast and easy-to-use Hi-C data analysis tool., , and . BMC Bioinform., (2015)High-throughput analysis of the morphology and mechanics of tip growing cells using a microrobotic platform., , , , , , and . IROS, page 3955-3960. IEEE, (2014)Rcount: simple and flexible RNA-Seq read counting., and . Bioinform., 31 (3): 436-437 (2015)Fast and flexible processing of large FRET image stacks using the FRET-IBRA toolkit., , and . PLoS Comput. Biol., (2022)Real-time automated characterization of 3D morphology and mechanics of developing plant cells., , , , , , , , and . Int. J. Robotics Res., 34 (8): 1136-1146 (2015)Probing the micromechanics of the fastest growing plant cell - The pollen tube., , , , , , , and . EMBC, page 461-464. IEEE, (2016)