Publikation: Spatio-temporal integration in plant tropisms
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Tropisms, growth-driven responses to environmental stimuli, cause plant organs to respond in space and time and reorient themselves. Classical experiments from nearly a century ago reveal that plant shoots respond to the integrated history of light and gravity stimuli rather than just responding instantaneously. We introduce a temporally non-local response function for the dynamics of shoot growth formulated as an integro-differential equation whose solution allows us to qualitatively reproduce experimental observations associated with intermittent and unsteady stimuli. Furthermore, an analytic solution for the case of a pulse stimulus expresses the response function as a function of experimentally tractable variables, which we calculate for the case of the phototropic response of Arabidopsis hypocotyls. All together, our model enables us to predict tropic responses to time-varying stimuli, manifested in temporal integration phenomena, and sets the stage for the incorporation of additional effects such as multiple stimuli, gravitational sagging, etc.
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MEROZ, Yasmine, Renaud BASTIEN, L. MAHADEVAN, 2019. Spatio-temporal integration in plant tropisms. In: Interface : Journal of the Royal Society. 2019, 16(154), 20190038. ISSN 1742-5689. eISSN 1742-5662. Available under: doi: 10.1098/rsif.2019.0038BibTex
@article{Meroz2019-05-31Spati-46086,
year={2019},
doi={10.1098/rsif.2019.0038},
title={Spatio-temporal integration in plant tropisms},
number={154},
volume={16},
issn={1742-5689},
journal={Interface : Journal of the Royal Society},
author={Meroz, Yasmine and Bastien, Renaud and Mahadevan, L.},
note={Article Number: 20190038}
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<dcterms:abstract xml:lang="eng">Tropisms, growth-driven responses to environmental stimuli, cause plant organs to respond in space and time and reorient themselves. Classical experiments from nearly a century ago reveal that plant shoots respond to the integrated history of light and gravity stimuli rather than just responding instantaneously. We introduce a temporally non-local response function for the dynamics of shoot growth formulated as an integro-differential equation whose solution allows us to qualitatively reproduce experimental observations associated with intermittent and unsteady stimuli. Furthermore, an analytic solution for the case of a pulse stimulus expresses the response function as a function of experimentally tractable variables, which we calculate for the case of the phototropic response of Arabidopsis hypocotyls. All together, our model enables us to predict tropic responses to time-varying stimuli, manifested in temporal integration phenomena, and sets the stage for the incorporation of additional effects such as multiple stimuli, gravitational sagging, etc.</dcterms:abstract>
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