Mediterranean woody plant specialized metabolites affect germination of Linum perenne at its dry and upper thermal limits

Aims Soil temperature and moisture impact plants not only during growth and survival but also during seed germination and interaction of seeds with the chemical environment. The quantitative impacts of either temperature and moisture or plant specialized metabolites (PSM) on germination are widely s...

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Published inPlant and soil Vol. 446; no. 1-2; pp. 291 - 305
Main Authors Hashoum, Hazem, Saatkamp, Arne, Gauquelin, Thierry, Ruffault, Julien, Fernandez, Catherine, Bousquet-Mélou, Anne
Format Journal Article
LanguageEnglish
Published Cham Springer International Publishing 01.01.2020
Springer
Springer Nature B.V
Springer Verlag
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Online AccessGet full text
ISSN0032-079X
1573-5036
1573-5036
DOI10.1007/s11104-019-04366-6

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Abstract Aims Soil temperature and moisture impact plants not only during growth and survival but also during seed germination and interaction of seeds with the chemical environment. The quantitative impacts of either temperature and moisture or plant specialized metabolites (PSM) on germination are widely studied. However, the combined effect of PSM and moisture or temperature on germination remains poorly understood. Methods We addressed this issue by studying the effect of PSM extracted from four Mediterranean woody plants on germination speed and final percentages of a subordinate herbaceous plant, Linum perenne . Results By using hydro- and thermal time threshold models, we show how PSM interact with temperature and moisture levels to limit germination at dry and upper thermal limits, with the magnitude of effects depending on the source plant. PSM effects on germination, also observed on natural soils, persisted after their removal from the seed environment. Conclusions We conclude that the impact of climate change on reproduction of herbaceous plants can be modulated by effects of PSM from woody plants, which might exacerbate the negative impacts of global changes on biodiversity.
AbstractList Aims Soil temperature and moisture impact plants not only during growth and survival but also during seed germination and interaction of seeds with the chemical environment. The quantitative impacts of either temperature and moisture or plant specialized metabolites (PSM) on germination are widely studied. However, the combined effect of PSM and moisture or temperature on germination remains poorly understood. Methods We addressed this issue by studying the effect of PSM extracted from four Mediterranean woody plants on germination speed and final percentages of a subordinate herbaceous plant, Linum perenne . Results By using hydro- and thermal time threshold models, we show how PSM interact with temperature and moisture levels to limit germination at dry and upper thermal limits, with the magnitude of effects depending on the source plant. PSM effects on germination, also observed on natural soils, persisted after their removal from the seed environment. Conclusions We conclude that the impact of climate change on reproduction of herbaceous plants can be modulated by effects of PSM from woody plants, which might exacerbate the negative impacts of global changes on biodiversity.
AIMS: Soil temperature and moisture impact plants not only during growth and survival but also during seed germination and interaction of seeds with the chemical environment. The quantitative impacts of either temperature and moisture or plant specialized metabolites (PSM) on germination are widely studied. However, the combined effect of PSM and moisture or temperature on germination remains poorly understood. METHODS: We addressed this issue by studying the effect of PSM extracted from four Mediterranean woody plants on germination speed and final percentages of a subordinate herbaceous plant, Linum perenne. RESULTS: By using hydro- and thermal time threshold models, we show how PSM interact with temperature and moisture levels to limit germination at dry and upper thermal limits, with the magnitude of effects depending on the source plant. PSM effects on germination, also observed on natural soils, persisted after their removal from the seed environment. CONCLUSIONS: We conclude that the impact of climate change on reproduction of herbaceous plants can be modulated by effects of PSM from woody plants, which might exacerbate the negative impacts of global changes on biodiversity.
8 Aims: Soil temperature and moisture impact plants not only during growth and survival but also 9 during seed germination and interaction of seeds with the chemical environment. The quantitative 10 impacts of either temperature and moisture or plant specialized metabolites (PSM) on germination 11 are widely studied. However, the combined effect of PSM and moisture or temperature on 12 germination remains poorly understood. 13 Methods: We addressed this issue by studying the effect of PSM extracted from four Mediterranean 14 woody plants on germination speed and final percentages of a subordinate herbaceous plant, Linum 15 perenne. 16 Results: By using hydro-and thermal time threshold models, we show how PSM interact with 17 temperature and moisture levels to limit germination at dry and upper thermal limits, with the 18 magnitude of effects depending on the source plant. PSM effects on germination, also observed on 19 natural soils, persisted after their removal from the seed environment. 20 Conclusions: We conclude that the impact of climate change on reproduction of herbaceous plants 21 can be modulated by effects of PSM from woody plants, which might exacerbate the negative 22 impacts of global changes on biodiversity. 23
AimsSoil temperature and moisture impact plants not only during growth and survival but also during seed germination and interaction of seeds with the chemical environment. The quantitative impacts of either temperature and moisture or plant specialized metabolites (PSM) on germination are widely studied. However, the combined effect of PSM and moisture or temperature on germination remains poorly understood.MethodsWe addressed this issue by studying the effect of PSM extracted from four Mediterranean woody plants on germination speed and final percentages of a subordinate herbaceous plant, Linum perenne.ResultsBy using hydro- and thermal time threshold models, we show how PSM interact with temperature and moisture levels to limit germination at dry and upper thermal limits, with the magnitude of effects depending on the source plant. PSM effects on germination, also observed on natural soils, persisted after their removal from the seed environment.ConclusionsWe conclude that the impact of climate change on reproduction of herbaceous plants can be modulated by effects of PSM from woody plants, which might exacerbate the negative impacts of global changes on biodiversity.
Audience Academic
Author Hashoum, Hazem
Ruffault, Julien
Fernandez, Catherine
Bousquet-Mélou, Anne
Gauquelin, Thierry
Saatkamp, Arne
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crossref_primary_10_3390_plants9101328
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Issue 1-2
Keywords Allelopathy
Climate change
Plant specialized metabolites
Allelochemicals
allelopathy
allelochemicals
Plant Specialized Metabolites
climate change
Language English
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Snippet Aims Soil temperature and moisture impact plants not only during growth and survival but also during seed germination and interaction of seeds with the...
Aims Soil temperature and moisture impact plants not only during growth and survival but also during seed germination and interaction of seeds with the...
AimsSoil temperature and moisture impact plants not only during growth and survival but also during seed germination and interaction of seeds with the chemical...
AIMS: Soil temperature and moisture impact plants not only during growth and survival but also during seed germination and interaction of seeds with the...
8 Aims: Soil temperature and moisture impact plants not only during growth and survival but also 9 during seed germination and interaction of seeds with the...
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SubjectTerms Analysis
Biodiversity
Biodiversity and Ecology
Biomedical and Life Sciences
Climate change
Climatic changes
Ecology
Environmental impact
Environmental Sciences
Germination
herbaceous plants
Life Sciences
Linum perenne
Metabolites
Organic chemistry
Plant Physiology
Plant Sciences
Regular Article
reproduction
Seed germination
Seeds
Soil moisture
Soil Science & Conservation
Soil temperature
Woody plants
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Title Mediterranean woody plant specialized metabolites affect germination of Linum perenne at its dry and upper thermal limits
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