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Variation in wild pea (Pisum sativum subsp. elatius) seed dormancy and its relationship to the environment and seed coat traits

BACKGROUND: Seed germination is one of the earliest key events in the plant life cycle. The timing of transition from seed to seedling is an important developmental stage determining the survival of individuals that influences the status of populations and species. Because of wide geographical distr...

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Autores principales: Hradilová, Iveta, Duchoslav, Martin, Brus, Jan, Pechanec, Vilém, Hýbl, Miroslav, Kopecký, Pavel, Smržová, Lucie, Štefelová, Nikola, Vaclávek, Tadeáš, Bariotakis, Michael, Machalová, Jitka, Hron, Karel, Pirintsos, Stergios, Smýkal, Petr
Formato: Online Artículo Texto
Lenguaje:English
Publicado: PeerJ Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6336014/
https://www.ncbi.nlm.nih.gov/pubmed/30656074
http://dx.doi.org/10.7717/peerj.6263
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author Hradilová, Iveta
Duchoslav, Martin
Brus, Jan
Pechanec, Vilém
Hýbl, Miroslav
Kopecký, Pavel
Smržová, Lucie
Štefelová, Nikola
Vaclávek, Tadeáš
Bariotakis, Michael
Machalová, Jitka
Hron, Karel
Pirintsos, Stergios
Smýkal, Petr
author_facet Hradilová, Iveta
Duchoslav, Martin
Brus, Jan
Pechanec, Vilém
Hýbl, Miroslav
Kopecký, Pavel
Smržová, Lucie
Štefelová, Nikola
Vaclávek, Tadeáš
Bariotakis, Michael
Machalová, Jitka
Hron, Karel
Pirintsos, Stergios
Smýkal, Petr
author_sort Hradilová, Iveta
collection PubMed
description BACKGROUND: Seed germination is one of the earliest key events in the plant life cycle. The timing of transition from seed to seedling is an important developmental stage determining the survival of individuals that influences the status of populations and species. Because of wide geographical distribution and occurrence in diverse habitats, wild pea (Pisum sativum subsp. elatius) offers an excellent model to study physical type of seed dormancy in an ecological context. This study addresses the gap in knowledge of association between the seed dormancy, seed properties and environmental factors, experimentally testing oscillating temperature as dormancy release clue. METHODS: Seeds of 97 pea accessions were subjected to two germination treatments (oscillating temperatures of 25/15 °C and 35/15 °C) over 28 days. Germination pattern was described using B-spline coefficients that aggregate both final germination and germination speed. Relationships between germination pattern and environmental conditions at the site of origin (soil and bioclimatic variables extracted from WorldClim 2.0 and SoilGrids databases) were studied using principal component analysis, redundancy analysis and ecological niche modelling. Seeds were analyzed for the seed coat thickness, seed morphology, weight and content of proanthocyanidins (PA). RESULTS: Seed total germination ranged from 0% to 100%. Cluster analysis of germination patterns of seeds under two temperature treatments differentiated the accessions into three groups: (1) non-dormant (28 accessions, mean germination of 92%), (2) dormant at both treatments (29 acc., 15%) and (3) responsive to increasing temperature range (41 acc., with germination change from 15 to 80%). Seed coat thickness differed between groups with dormant and responsive accessions having thicker testa (median 138 and 140 µm) than non-dormant ones (median 84 mm). The total PA content showed to be higher in the seed coat of dormant (mean 2.18 mg g(−1)) than those of non-dormant (mean 1.77 mg g(−1)) and responsive accessions (mean 1.87 mg g(−1)). Each soil and bioclimatic variable and also germination responsivity (representing synthetic variable characterizing germination pattern of seeds) was spatially clustered. However, only one environmental variable (BIO7, i.e., annual temperature range) was significantly related to germination responsivity. Non-dormant and responsive accessions covered almost whole range of BIO7 while dormant accessions are found in the environment with higher annual temperature, smaller temperature variation, seasonality and milder winter. Ecological niche modelling showed a more localized potential distribution of dormant group. Seed dormancy in the wild pea might be part of a bet-hedging mechanism for areas of the Mediterranean basin with more unpredictable water availability in an otherwise seasonal environment. This study provides the framework for analysis of environmental aspects of physical seed dormancy.
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spelling pubmed-63360142019-01-17 Variation in wild pea (Pisum sativum subsp. elatius) seed dormancy and its relationship to the environment and seed coat traits Hradilová, Iveta Duchoslav, Martin Brus, Jan Pechanec, Vilém Hýbl, Miroslav Kopecký, Pavel Smržová, Lucie Štefelová, Nikola Vaclávek, Tadeáš Bariotakis, Michael Machalová, Jitka Hron, Karel Pirintsos, Stergios Smýkal, Petr PeerJ Plant Science BACKGROUND: Seed germination is one of the earliest key events in the plant life cycle. The timing of transition from seed to seedling is an important developmental stage determining the survival of individuals that influences the status of populations and species. Because of wide geographical distribution and occurrence in diverse habitats, wild pea (Pisum sativum subsp. elatius) offers an excellent model to study physical type of seed dormancy in an ecological context. This study addresses the gap in knowledge of association between the seed dormancy, seed properties and environmental factors, experimentally testing oscillating temperature as dormancy release clue. METHODS: Seeds of 97 pea accessions were subjected to two germination treatments (oscillating temperatures of 25/15 °C and 35/15 °C) over 28 days. Germination pattern was described using B-spline coefficients that aggregate both final germination and germination speed. Relationships between germination pattern and environmental conditions at the site of origin (soil and bioclimatic variables extracted from WorldClim 2.0 and SoilGrids databases) were studied using principal component analysis, redundancy analysis and ecological niche modelling. Seeds were analyzed for the seed coat thickness, seed morphology, weight and content of proanthocyanidins (PA). RESULTS: Seed total germination ranged from 0% to 100%. Cluster analysis of germination patterns of seeds under two temperature treatments differentiated the accessions into three groups: (1) non-dormant (28 accessions, mean germination of 92%), (2) dormant at both treatments (29 acc., 15%) and (3) responsive to increasing temperature range (41 acc., with germination change from 15 to 80%). Seed coat thickness differed between groups with dormant and responsive accessions having thicker testa (median 138 and 140 µm) than non-dormant ones (median 84 mm). The total PA content showed to be higher in the seed coat of dormant (mean 2.18 mg g(−1)) than those of non-dormant (mean 1.77 mg g(−1)) and responsive accessions (mean 1.87 mg g(−1)). Each soil and bioclimatic variable and also germination responsivity (representing synthetic variable characterizing germination pattern of seeds) was spatially clustered. However, only one environmental variable (BIO7, i.e., annual temperature range) was significantly related to germination responsivity. Non-dormant and responsive accessions covered almost whole range of BIO7 while dormant accessions are found in the environment with higher annual temperature, smaller temperature variation, seasonality and milder winter. Ecological niche modelling showed a more localized potential distribution of dormant group. Seed dormancy in the wild pea might be part of a bet-hedging mechanism for areas of the Mediterranean basin with more unpredictable water availability in an otherwise seasonal environment. This study provides the framework for analysis of environmental aspects of physical seed dormancy. PeerJ Inc. 2019-01-14 /pmc/articles/PMC6336014/ /pubmed/30656074 http://dx.doi.org/10.7717/peerj.6263 Text en ©2019 Hradilová et al. http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, reproduction and adaptation in any medium and for any purpose provided that it is properly attributed. For attribution, the original author(s), title, publication source (PeerJ) and either DOI or URL of the article must be cited.
spellingShingle Plant Science
Hradilová, Iveta
Duchoslav, Martin
Brus, Jan
Pechanec, Vilém
Hýbl, Miroslav
Kopecký, Pavel
Smržová, Lucie
Štefelová, Nikola
Vaclávek, Tadeáš
Bariotakis, Michael
Machalová, Jitka
Hron, Karel
Pirintsos, Stergios
Smýkal, Petr
Variation in wild pea (Pisum sativum subsp. elatius) seed dormancy and its relationship to the environment and seed coat traits
title Variation in wild pea (Pisum sativum subsp. elatius) seed dormancy and its relationship to the environment and seed coat traits
title_full Variation in wild pea (Pisum sativum subsp. elatius) seed dormancy and its relationship to the environment and seed coat traits
title_fullStr Variation in wild pea (Pisum sativum subsp. elatius) seed dormancy and its relationship to the environment and seed coat traits
title_full_unstemmed Variation in wild pea (Pisum sativum subsp. elatius) seed dormancy and its relationship to the environment and seed coat traits
title_short Variation in wild pea (Pisum sativum subsp. elatius) seed dormancy and its relationship to the environment and seed coat traits
title_sort variation in wild pea (pisum sativum subsp. elatius) seed dormancy and its relationship to the environment and seed coat traits
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6336014/
https://www.ncbi.nlm.nih.gov/pubmed/30656074
http://dx.doi.org/10.7717/peerj.6263
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