Cargando…

Mechanical Stimulation Decreases Auxin and Gibberellic Acid Synthesis but Does Not Affect Auxin Transport in Axillary Buds; It Also Stimulates Peroxidase Activity in Petunia × atkinsiana

Thigmomorphogenesis (or mechanical stimulation-MS) is a term created by Jaffe and means plant response to natural stimuli such as the blow of the wind, strong rain, or touch, resulting in a decrease in length and an increase of branching as well as an increase in the activity of axillary buds. MS is...

Descripción completa

Detalles Bibliográficos
Autores principales: Jędrzejuk, Agata, Kuźma, Natalia, Orłowski, Arkadiusz, Budzyński, Robert, Gehl, Christian, Serek, Margrethe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10053601/
https://www.ncbi.nlm.nih.gov/pubmed/36985685
http://dx.doi.org/10.3390/molecules28062714
_version_ 1785015452183822336
author Jędrzejuk, Agata
Kuźma, Natalia
Orłowski, Arkadiusz
Budzyński, Robert
Gehl, Christian
Serek, Margrethe
author_facet Jędrzejuk, Agata
Kuźma, Natalia
Orłowski, Arkadiusz
Budzyński, Robert
Gehl, Christian
Serek, Margrethe
author_sort Jędrzejuk, Agata
collection PubMed
description Thigmomorphogenesis (or mechanical stimulation-MS) is a term created by Jaffe and means plant response to natural stimuli such as the blow of the wind, strong rain, or touch, resulting in a decrease in length and an increase of branching as well as an increase in the activity of axillary buds. MS is very well known in plant morphology, but physiological processes controlling plant growth are not well discovered yet. In the current study, we tried to find an answer to the question if MS truly may affect auxin synthesis or transport in the early stage of plant growth, and which physiological factors may be responsible for growth arrest in petunia. According to the results of current research, we noticed that MS affects plant growth but does not block auxin transport from the apical bud. MS arrests IAA and GA(3) synthesis in MS-treated plants over the longer term. The main factor responsible for the thickening of cell walls and the same strengthening of vascular tissues and growth arrestment, in this case, is peroxidase (POX) activity, but special attention should be also paid to AGPs as signaling molecules which also are directly involved in growth regulation as well as in cell wall modifications.
format Online
Article
Text
id pubmed-10053601
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-100536012023-03-30 Mechanical Stimulation Decreases Auxin and Gibberellic Acid Synthesis but Does Not Affect Auxin Transport in Axillary Buds; It Also Stimulates Peroxidase Activity in Petunia × atkinsiana Jędrzejuk, Agata Kuźma, Natalia Orłowski, Arkadiusz Budzyński, Robert Gehl, Christian Serek, Margrethe Molecules Article Thigmomorphogenesis (or mechanical stimulation-MS) is a term created by Jaffe and means plant response to natural stimuli such as the blow of the wind, strong rain, or touch, resulting in a decrease in length and an increase of branching as well as an increase in the activity of axillary buds. MS is very well known in plant morphology, but physiological processes controlling plant growth are not well discovered yet. In the current study, we tried to find an answer to the question if MS truly may affect auxin synthesis or transport in the early stage of plant growth, and which physiological factors may be responsible for growth arrest in petunia. According to the results of current research, we noticed that MS affects plant growth but does not block auxin transport from the apical bud. MS arrests IAA and GA(3) synthesis in MS-treated plants over the longer term. The main factor responsible for the thickening of cell walls and the same strengthening of vascular tissues and growth arrestment, in this case, is peroxidase (POX) activity, but special attention should be also paid to AGPs as signaling molecules which also are directly involved in growth regulation as well as in cell wall modifications. MDPI 2023-03-17 /pmc/articles/PMC10053601/ /pubmed/36985685 http://dx.doi.org/10.3390/molecules28062714 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Jędrzejuk, Agata
Kuźma, Natalia
Orłowski, Arkadiusz
Budzyński, Robert
Gehl, Christian
Serek, Margrethe
Mechanical Stimulation Decreases Auxin and Gibberellic Acid Synthesis but Does Not Affect Auxin Transport in Axillary Buds; It Also Stimulates Peroxidase Activity in Petunia × atkinsiana
title Mechanical Stimulation Decreases Auxin and Gibberellic Acid Synthesis but Does Not Affect Auxin Transport in Axillary Buds; It Also Stimulates Peroxidase Activity in Petunia × atkinsiana
title_full Mechanical Stimulation Decreases Auxin and Gibberellic Acid Synthesis but Does Not Affect Auxin Transport in Axillary Buds; It Also Stimulates Peroxidase Activity in Petunia × atkinsiana
title_fullStr Mechanical Stimulation Decreases Auxin and Gibberellic Acid Synthesis but Does Not Affect Auxin Transport in Axillary Buds; It Also Stimulates Peroxidase Activity in Petunia × atkinsiana
title_full_unstemmed Mechanical Stimulation Decreases Auxin and Gibberellic Acid Synthesis but Does Not Affect Auxin Transport in Axillary Buds; It Also Stimulates Peroxidase Activity in Petunia × atkinsiana
title_short Mechanical Stimulation Decreases Auxin and Gibberellic Acid Synthesis but Does Not Affect Auxin Transport in Axillary Buds; It Also Stimulates Peroxidase Activity in Petunia × atkinsiana
title_sort mechanical stimulation decreases auxin and gibberellic acid synthesis but does not affect auxin transport in axillary buds; it also stimulates peroxidase activity in petunia × atkinsiana
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10053601/
https://www.ncbi.nlm.nih.gov/pubmed/36985685
http://dx.doi.org/10.3390/molecules28062714
work_keys_str_mv AT jedrzejukagata mechanicalstimulationdecreasesauxinandgibberellicacidsynthesisbutdoesnotaffectauxintransportinaxillarybudsitalsostimulatesperoxidaseactivityinpetuniaatkinsiana
AT kuzmanatalia mechanicalstimulationdecreasesauxinandgibberellicacidsynthesisbutdoesnotaffectauxintransportinaxillarybudsitalsostimulatesperoxidaseactivityinpetuniaatkinsiana
AT orłowskiarkadiusz mechanicalstimulationdecreasesauxinandgibberellicacidsynthesisbutdoesnotaffectauxintransportinaxillarybudsitalsostimulatesperoxidaseactivityinpetuniaatkinsiana
AT budzynskirobert mechanicalstimulationdecreasesauxinandgibberellicacidsynthesisbutdoesnotaffectauxintransportinaxillarybudsitalsostimulatesperoxidaseactivityinpetuniaatkinsiana
AT gehlchristian mechanicalstimulationdecreasesauxinandgibberellicacidsynthesisbutdoesnotaffectauxintransportinaxillarybudsitalsostimulatesperoxidaseactivityinpetuniaatkinsiana
AT serekmargrethe mechanicalstimulationdecreasesauxinandgibberellicacidsynthesisbutdoesnotaffectauxintransportinaxillarybudsitalsostimulatesperoxidaseactivityinpetuniaatkinsiana