Oxidative Stress and NO Signalling in the Root Apex as an Early Response to Changes in Gravity Conditions
Author(s) -
Sergio Mugnai,
Camilla Pandolfi,
Elisa Masi,
Elisa Azzarello,
Emanuela Monetti,
Diego Comparini,
Boris Voigt,
Dieter Volkmann,
Stefano Mancuso
Publication year - 2014
Publication title -
biomed research international
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.772
H-Index - 126
eISSN - 2314-6141
pISSN - 2314-6133
DOI - 10.1155/2014/834134
Subject(s) - apex (geometry) , gravitropism , elongation , reactive oxygen species , biophysics , hypergravity , oxygen , chemistry , auxin , nitric oxide , biology , botany , microbiology and biotechnology , biochemistry , materials science , mutant , gene , organic chemistry , arabidopsis , ultimate tensile strength , astrobiology , metallurgy
Oxygen influx showed an asymmetry in the transition zone of the root apex when roots were placed horizontally on ground. The influx increased only in the upper side, while no changes were detected in the division and in the elongation zone. Nitric oxide (NO) was also monitored after gravistimulation, revealing a sudden burst only in the transition zone. In order to confirm these results in real microgravity conditions, experiments have been set up by using parabolic flights and drop tower. The production of reactive oxygen species (ROS) was also monitored. Oxygen, NO, and ROS were continuously monitored during normal and hyper- and microgravity conditions in roots of maize seedlings. A distinct signal in oxygen and NO fluxes was clearly detected only in the apex zone during microgravity, with no significant changes in normal and in hypergravity conditions. The same results were obtained by ROS measurement. The detrimental effect of D'orenone, disrupting the polarised auxin transport, on the onset of the oxygen peaks during the microgravity period was also evaluated. Results indicates an active role of NO and ROS as messengers during the gravitropic response, with probable implications in the auxin redistribution.
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