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Life Sciences in Space Research|July 17, 2015
Proper selection of 1 g controls in simulated microgravity research as illustrated with clinorotated plant cell suspension culturesKhaled Y Kamal, Ruth Hemmersbach, F Javier Medina, et al.
Life (Basel, Switzerland)|October 27, 2022
Red Light Enhances Plant Adaptation to Spaceflight and Mars <i>g</i>-LevelsFrancisco-Javier Medina, Aránzazu Manzano, Raúl Herranz, et al.
Iscience|July 20, 2022
Recent transcriptomic studies to elucidate the plant adaptive response to spaceflight and to simulated space environmentsAránzazu Manzano, Eugénie Carnero-Diaz, Raúl Herranz, et al.
Plant Signaling & Behavior|March 12, 2014
Mechanisms of disruption of meristematic competence by microgravity in Arabidopsis seedlingsRaúl Herranz, Miguel A Valbuena, Khaled Youssef, et al.
Journal of Muscle Research and Cell Motility|June 6, 2006
The structural role of high molecular weight tropomyosins in dipteran indirect flight muscle and the effect of phosphorylationJesús Mateos, Raúl Herranz, Alberto Domingo, et al.
Plants (Basel, Switzerland)|April 30, 2021
Analysis of Graviresponse and Biological Effects of Vertical and Horizontal Clinorotation in <i>Arabidopsis thaliana</i> Root TipAlicia Villacampa, Ludovico Sora, Raúl Herranz, et al.
Plant Physiology and Biochemistry : PPB|January 10, 2022
Spaceflight studies identify a gene encoding an intermediate filament involved in tropism pathwaysTatsiana Shymanovich, Joshua P Vandenbrink, Raúl Herranz, et al.
Methods in Molecular Biology (Clifton, N.J.)|May 19, 2015
Use of microgravity simulators for plant biological studiesRaúl Herranz, Miguel A Valbuena, Aránzazu Manzano, et al.
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