Belowground mechanism reveals climate change impacts on invasive clonal plant establishment
Climate change and disturbance can alter invasion success of clonal plants by differentially affecting the clonal traits influencing their establishment as young plants. Clonal traits related to the vegetative reproduction of native Pascopyrum smithii and non-native Bromus inermis grass seedlings we...
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Published in: | Scientific reports Vol. 12; no. 1; p. 2860 |
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Abstract | Climate change and disturbance can alter invasion success of clonal plants by differentially affecting the clonal traits influencing their establishment as young plants. Clonal traits related to the vegetative reproduction of native
Pascopyrum smithii
and non-native
Bromus inermis
grass seedlings were evaluated under altered precipitation frequencies and a single grazing event.
Pascopyrum smithii
maintained similar vegetative reproduction under three simulated precipitation frequencies whereas
B. inermis
vegetative reproduction declined as precipitation became more intermittent. Vegetative reproduction of the non-native
B. inermis
was greater than the native
P. smithii
under all simulated precipitation frequencies except the most intermittent scenario. A single grazing event did not affect either species’ response to intra-annual precipitation variability but did slightly reduce their clonal growth and increase their bud dormancy. In young plants, clonal traits of the invasive grass favored its superior expansion and population growth compared to the native grass except under the most severe climate change scenario. Grassland restoration using native
P. smithii
seeds would be successful in most years due to its resilient clonal growth in a changing climate. Clonal infrastructure development in young plants is critical to clonal plant establishment and persistence in a changing climate and under disturbed conditions. |
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AbstractList | Climate change and disturbance can alter invasion success of clonal plants by differentially affecting the clonal traits influencing their establishment as young plants. Clonal traits related to the vegetative reproduction of native
Pascopyrum smithii
and non-native
Bromus inermis
grass seedlings were evaluated under altered precipitation frequencies and a single grazing event.
Pascopyrum smithii
maintained similar vegetative reproduction under three simulated precipitation frequencies whereas
B. inermis
vegetative reproduction declined as precipitation became more intermittent. Vegetative reproduction of the non-native
B. inermis
was greater than the native
P. smithii
under all simulated precipitation frequencies except the most intermittent scenario. A single grazing event did not affect either species’ response to intra-annual precipitation variability but did slightly reduce their clonal growth and increase their bud dormancy. In young plants, clonal traits of the invasive grass favored its superior expansion and population growth compared to the native grass except under the most severe climate change scenario. Grassland restoration using native
P. smithii
seeds would be successful in most years due to its resilient clonal growth in a changing climate. Clonal infrastructure development in young plants is critical to clonal plant establishment and persistence in a changing climate and under disturbed conditions. Abstract Climate change and disturbance can alter invasion success of clonal plants by differentially affecting the clonal traits influencing their establishment as young plants. Clonal traits related to the vegetative reproduction of native Pascopyrum smithii and non-native Bromus inermis grass seedlings were evaluated under altered precipitation frequencies and a single grazing event. Pascopyrum smithii maintained similar vegetative reproduction under three simulated precipitation frequencies whereas B. inermis vegetative reproduction declined as precipitation became more intermittent. Vegetative reproduction of the non-native B. inermis was greater than the native P. smithii under all simulated precipitation frequencies except the most intermittent scenario. A single grazing event did not affect either species’ response to intra-annual precipitation variability but did slightly reduce their clonal growth and increase their bud dormancy. In young plants, clonal traits of the invasive grass favored its superior expansion and population growth compared to the native grass except under the most severe climate change scenario. Grassland restoration using native P. smithii seeds would be successful in most years due to its resilient clonal growth in a changing climate. Clonal infrastructure development in young plants is critical to clonal plant establishment and persistence in a changing climate and under disturbed conditions. Climate change and disturbance can alter invasion success of clonal plants by differentially affecting the clonal traits influencing their establishment as young plants. Clonal traits related to the vegetative reproduction of native Pascopyrum smithii and non-native Bromus inermis grass seedlings were evaluated under altered precipitation frequencies and a single grazing event. Pascopyrum smithii maintained similar vegetative reproduction under three simulated precipitation frequencies whereas B. inermis vegetative reproduction declined as precipitation became more intermittent. Vegetative reproduction of the non-native B. inermis was greater than the native P. smithii under all simulated precipitation frequencies except the most intermittent scenario. A single grazing event did not affect either species’ response to intra-annual precipitation variability but did slightly reduce their clonal growth and increase their bud dormancy. In young plants, clonal traits of the invasive grass favored its superior expansion and population growth compared to the native grass except under the most severe climate change scenario. Grassland restoration using native P. smithii seeds would be successful in most years due to its resilient clonal growth in a changing climate. Clonal infrastructure development in young plants is critical to clonal plant establishment and persistence in a changing climate and under disturbed conditions. Abstract Climate change and disturbance can alter invasion success of clonal plants by differentially affecting the clonal traits influencing their establishment as young plants. Clonal traits related to the vegetative reproduction of native Pascopyrum smithii and non-native Bromus inermis grass seedlings were evaluated under altered precipitation frequencies and a single grazing event. Pascopyrum smithii maintained similar vegetative reproduction under three simulated precipitation frequencies whereas B. inermis vegetative reproduction declined as precipitation became more intermittent. Vegetative reproduction of the non-native B. inermis was greater than the native P. smithii under all simulated precipitation frequencies except the most intermittent scenario. A single grazing event did not affect either species’ response to intra-annual precipitation variability but did slightly reduce their clonal growth and increase their bud dormancy. In young plants, clonal traits of the invasive grass favored its superior expansion and population growth compared to the native grass except under the most severe climate change scenario. Grassland restoration using native P. smithii seeds would be successful in most years due to its resilient clonal growth in a changing climate. Clonal infrastructure development in young plants is critical to clonal plant establishment and persistence in a changing climate and under disturbed conditions. |
ArticleNumber | 2860 |
Author | Butler, Jack L. Ott, Jacqueline P. Bam, Surendra Xu, Lan |
Author_xml | – sequence: 1 givenname: Surendra surname: Bam fullname: Bam, Surendra organization: Department of Ecology, Environment and Evolution, La Trobe University – sequence: 2 givenname: Jacqueline P. surname: Ott fullname: Ott, Jacqueline P. email: jacqueline.ott@usda.gov organization: Forest and Grassland Research Laboratory, US Forest Service, Rocky Mountain Research Station – sequence: 3 givenname: Jack L. surname: Butler fullname: Butler, Jack L. organization: Forest and Grassland Research Laboratory, US Forest Service, Rocky Mountain Research Station – sequence: 4 givenname: Lan surname: Xu fullname: Xu, Lan email: lan.xu@sdstate.edu organization: Department of Natural Resource Management, South Dakota State University |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/35190658$$D View this record in MEDLINE/PubMed |
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Snippet | Climate change and disturbance can alter invasion success of clonal plants by differentially affecting the clonal traits influencing their establishment as... Abstract Climate change and disturbance can alter invasion success of clonal plants by differentially affecting the clonal traits influencing their... Abstract Climate change and disturbance can alter invasion success of clonal plants by differentially affecting the clonal traits influencing their... |
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SubjectTerms | 631/158/1745 631/158/2178 631/158/2453 Bromus - growth & development Climate Change Dormancy Environmental impact Environmental restoration Environmental Restoration and Remediation - methods Grasses Grassland Grasslands Grazing Humanities and Social Sciences Introduced Species Invasive plants multidisciplinary Pascopyrum smithii Poaceae - growth & development Population growth Precipitation Rain Science Science (multidisciplinary) Seedlings Seedlings - growth & development Seeds Vegetative reproduction |
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Title | Belowground mechanism reveals climate change impacts on invasive clonal plant establishment |
URI | https://link.springer.com/article/10.1038/s41598-022-06918-w https://www.ncbi.nlm.nih.gov/pubmed/35190658 https://www.proquest.com/docview/2630747882 https://search.proquest.com/docview/2631864344 https://pubmed.ncbi.nlm.nih.gov/PMC8861118 https://doaj.org/article/654216c8ac5b4211ada16175d8a892e1 |
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