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PMID: 12016507 Published · ppublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S. Review

Ionic signaling in plant responses to gravity and touch.

Journal of plant growth regulation ·Vol. 21 ·No. 2 ·2002-06-00 ·Pages 71-88

Fasano JM, Massa GD, Gilroy S

Abstract

Touch and gravity are two of the many stimuli that plants must integrate to generate an appropriate growth response. Due to the mechanical nature of both of these signals, shared signal transduction elements could well form the basis of the cross-talk between these two sensory systems. However, touch stimulation must elicit signaling events across the plasma membrane whereas gravity sensing is thought to represent transformation of an internal force, amyloplast sedimentation, to signal transduction events. In addition, factors such as turgor pressure and presence of the cell wall may also place unique constraints on these plant mechanosensory systems. Even so, the candidate signal transduction elements in both plant touch and gravity sensing, changes in Ca2+, pH and membrane potential, do mirror the known ionic basis of signaling in animal mechanosensory cells. Distinct spatial and temporal signatures of Ca2+ ions may encode information about the different mechanosignaling stimuli. Signals such as Ca2+ waves or action potentials may also rapidly transfer information perceived in one cell throughout a tissue or organ leading to the systemic reactions characteristic of plant touch and gravity responses. Longer-term growth responses are likely sustained via changes in gene expression and asymmetries in compounds such as inositol-1,4,5-triphosphate (IP3) and calmodulin. Thus, it seems likely that plant mechanoperception involves both spatial and temporal encoding of information at all levels, from the cell to the whole plant. Defining this patterning will be a critical step towards understanding how plants integrate information from multiple mechanical stimuli to an appropriate growth response.

Keywords
NASA Discipline Plant Biology Non-NASA Center
MeSH Terms
Calcium/physiology Calcium Channels/physiology Calmodulin/physiology Gravitation Gravity Sensing/physiology Hydrogen-Ion Concentration Mechanotransduction, Cellular/physiology Membrane Potentials Plant Physiological Phenomena Signal Transduction/physiology Touch Tropism/physiology
Chemicals
Calcium Channels Calmodulin Calcium
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Fasano Jeremiah M
Biology Department, The Pennsylvania State University, University Park, Pennsylvania 16802, USA.
Massa Gioia D
Gilroy Simon
Investigators
1 investigators, click to expand
Gilroy S
PA St U, University Park
Article Info
Journal
Journal of plant growth regulation
Abbr.
J Plant Growth Regul
ISSN
0721-7595
Published
2002-06-00
Epub
2002-00-23
Pages
71-88
Language
English
Region
United States
NLM ID
9880968
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