Effect of simulated warming on leaf functional traits of urban greening plants
Response and adaptation strategies of plants to the environment have always been the core issues in ecological research. So far, relatively little study exists on its functional traits responses to warming, especially in an urban environment. This information is the key to help understand plant resp...
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Published in | BMC plant biology Vol. 20; no. 1; p. 139 |
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Main Authors | , , , , , , |
Format | Journal Article |
Language | English |
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England
BioMed Central Ltd
03.04.2020
BioMed Central BMC |
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Online Access | Get full text |
ISSN | 1471-2229 1471-2229 |
DOI | 10.1186/s12870-020-02359-7 |
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Abstract | Response and adaptation strategies of plants to the environment have always been the core issues in ecological research. So far, relatively little study exists on its functional traits responses to warming, especially in an urban environment. This information is the key to help understand plant responses and trade-off strategy to urban warming.
We chose the common greening trees of mature age in Beijing (Fraxinus pennsylvanica, Koelreuteria paniculata, and Sophora japonica) as the research subjects, and used infrared heaters to simulate warming for three gradients of natural temperature (CK), moderate warming (T1) and severe warming (T2). Results showed that:(1) Leaf dry matter content (LDMC), chlorophyll content (CHL), leaf tissue density (LTD), and stomatal density (SD) all increased with temperature warming. Specific leaf area (SLA), stomatal size (SS), and stomatal aperture (SA) decreased with simulated warming. (2) SLA was extremely significantly negatively correlated with CHL, LDMC, LTD and SD (P < 0.01), and was extremely significantly positively correlated with SS (P < 0.01). SA was extremely negatively correlated with SD (P < 0.01), and was extremely significantly positively correlated with SS (P < 0.01). There was a significant positive correlation between LDMC and LTD (P < 0.01). This showed that urban greening trees adapted to the environment by coordinating adjustment among leaf functional traits. (3) Under the T1 treatment, the R
and slope among the leaf traits were higher than CK, and the significance was also enhanced. The correlation between leaf traits was strengthened in this warming environment. Conversely, it will weaken the correlation between leaf traits under the T2 treatment.
Our study demonstrated that there was a strong trade-off between leaf functional traits in the urban warming environment. Plants in the warming environment have adopted relatively consistent trade-offs and adaptation strategies. Moderate warming was more conducive to strengthening their trade-off potential. It is further verified that the global leaf economics spectrum also exists in urban ecosystems, which is generally tend to a quick-investment return type with the characteristics of thick leaves, strong photosynthetic capacity, low transpiration efficiency and long life in urban environments. |
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AbstractList | Abstract Background Response and adaptation strategies of plants to the environment have always been the core issues in ecological research. So far, relatively little study exists on its functional traits responses to warming, especially in an urban environment. This information is the key to help understand plant responses and trade-off strategy to urban warming. Results We chose the common greening trees of mature age in Beijing (Fraxinus pennsylvanica, Koelreuteria paniculata, and Sophora japonica) as the research subjects, and used infrared heaters to simulate warming for three gradients of natural temperature (CK), moderate warming (T1) and severe warming (T2). Results showed that:(1) Leaf dry matter content (LDMC), chlorophyll content (CHL), leaf tissue density (LTD), and stomatal density (SD) all increased with temperature warming. Specific leaf area (SLA), stomatal size (SS), and stomatal aperture (SA) decreased with simulated warming. (2) SLA was extremely significantly negatively correlated with CHL, LDMC, LTD and SD (P < 0.01), and was extremely significantly positively correlated with SS (P < 0.01). SA was extremely negatively correlated with SD (P < 0.01), and was extremely significantly positively correlated with SS (P < 0.01). There was a significant positive correlation between LDMC and LTD (P < 0.01). This showed that urban greening trees adapted to the environment by coordinating adjustment among leaf functional traits. (3) Under the T1 treatment, the R 2 and slope among the leaf traits were higher than CK, and the significance was also enhanced. The correlation between leaf traits was strengthened in this warming environment. Conversely, it will weaken the correlation between leaf traits under the T2 treatment. Conclusion Our study demonstrated that there was a strong trade-off between leaf functional traits in the urban warming environment. Plants in the warming environment have adopted relatively consistent trade-offs and adaptation strategies. Moderate warming was more conducive to strengthening their trade-off potential. It is further verified that the global leaf economics spectrum also exists in urban ecosystems, which is generally tend to a quick-investment return type with the characteristics of thick leaves, strong photosynthetic capacity, low transpiration efficiency and long life in urban environments. Background Response and adaptation strategies of plants to the environment have always been the core issues in ecological research. So far, relatively little study exists on its functional traits responses to warming, especially in an urban environment. This information is the key to help understand plant responses and trade-off strategy to urban warming. Results We chose the common greening trees of mature age in Beijing (Fraxinus pennsylvanica, Koelreuteria paniculata, and Sophora japonica) as the research subjects, and used infrared heaters to simulate warming for three gradients of natural temperature (CK), moderate warming (T1) and severe warming (T2). Results showed that:(1) Leaf dry matter content (LDMC), chlorophyll content (CHL), leaf tissue density (LTD), and stomatal density (SD) all increased with temperature warming. Specific leaf area (SLA), stomatal size (SS), and stomatal aperture (SA) decreased with simulated warming. (2) SLA was extremely significantly negatively correlated with CHL, LDMC, LTD and SD (P < 0.01), and was extremely significantly positively correlated with SS (P < 0.01). SA was extremely negatively correlated with SD (P < 0.01), and was extremely significantly positively correlated with SS (P < 0.01). There was a significant positive correlation between LDMC and LTD (P < 0.01). This showed that urban greening trees adapted to the environment by coordinating adjustment among leaf functional traits. (3) Under the T1 treatment, the R2 and slope among the leaf traits were higher than CK, and the significance was also enhanced. The correlation between leaf traits was strengthened in this warming environment. Conversely, it will weaken the correlation between leaf traits under the T2 treatment. Conclusion Our study demonstrated that there was a strong trade-off between leaf functional traits in the urban warming environment. Plants in the warming environment have adopted relatively consistent trade-offs and adaptation strategies. Moderate warming was more conducive to strengthening their trade-off potential. It is further verified that the global leaf economics spectrum also exists in urban ecosystems, which is generally tend to a quick-investment return type with the characteristics of thick leaves, strong photosynthetic capacity, low transpiration efficiency and long life in urban environments. Background Response and adaptation strategies of plants to the environment have always been the core issues in ecological research. So far, relatively little study exists on its functional traits responses to warming, especially in an urban environment. This information is the key to help understand plant responses and trade-off strategy to urban warming. Results We chose the common greening trees of mature age in Beijing (Fraxinus pennsylvanica, Koelreuteria paniculata, and Sophora japonica) as the research subjects, and used infrared heaters to simulate warming for three gradients of natural temperature (CK), moderate warming (T1) and severe warming (T2). Results showed that:(1) Leaf dry matter content (LDMC), chlorophyll content (CHL), leaf tissue density (LTD), and stomatal density (SD) all increased with temperature warming. Specific leaf area (SLA), stomatal size (SS), and stomatal aperture (SA) decreased with simulated warming. (2) SLA was extremely significantly negatively correlated with CHL, LDMC, LTD and SD (P < 0.01), and was extremely significantly positively correlated with SS (P < 0.01). SA was extremely negatively correlated with SD (P < 0.01), and was extremely significantly positively correlated with SS (P < 0.01). There was a significant positive correlation between LDMC and LTD (P < 0.01). This showed that urban greening trees adapted to the environment by coordinating adjustment among leaf functional traits. (3) Under the T1 treatment, the R.sup.2 and slope among the leaf traits were higher than CK, and the significance was also enhanced. The correlation between leaf traits was strengthened in this warming environment. Conversely, it will weaken the correlation between leaf traits under the T2 treatment. Conclusion Our study demonstrated that there was a strong trade-off between leaf functional traits in the urban warming environment. Plants in the warming environment have adopted relatively consistent trade-offs and adaptation strategies. Moderate warming was more conducive to strengthening their trade-off potential. It is further verified that the global leaf economics spectrum also exists in urban ecosystems, which is generally tend to a quick-investment return type with the characteristics of thick leaves, strong photosynthetic capacity, low transpiration efficiency and long life in urban environments. Keywords: leaf functional traits, Leaf economics spectrum, Warming, Urban greening, Adaptation strategy BACKGROUND: Response and adaptation strategies of plants to the environment have always been the core issues in ecological research. So far, relatively little study exists on its functional traits responses to warming, especially in an urban environment. This information is the key to help understand plant responses and trade-off strategy to urban warming. RESULTS: We chose the common greening trees of mature age in Beijing (Fraxinus pennsylvanica, Koelreuteria paniculata, and Sophora japonica) as the research subjects, and used infrared heaters to simulate warming for three gradients of natural temperature (CK), moderate warming (T1) and severe warming (T2). Results showed that:(1) Leaf dry matter content (LDMC), chlorophyll content (CHL), leaf tissue density (LTD), and stomatal density (SD) all increased with temperature warming. Specific leaf area (SLA), stomatal size (SS), and stomatal aperture (SA) decreased with simulated warming. (2) SLA was extremely significantly negatively correlated with CHL, LDMC, LTD and SD (P < 0.01), and was extremely significantly positively correlated with SS (P < 0.01). SA was extremely negatively correlated with SD (P < 0.01), and was extremely significantly positively correlated with SS (P < 0.01). There was a significant positive correlation between LDMC and LTD (P < 0.01). This showed that urban greening trees adapted to the environment by coordinating adjustment among leaf functional traits. (3) Under the T1 treatment, the R² and slope among the leaf traits were higher than CK, and the significance was also enhanced. The correlation between leaf traits was strengthened in this warming environment. Conversely, it will weaken the correlation between leaf traits under the T2 treatment. CONCLUSION: Our study demonstrated that there was a strong trade-off between leaf functional traits in the urban warming environment. Plants in the warming environment have adopted relatively consistent trade-offs and adaptation strategies. Moderate warming was more conducive to strengthening their trade-off potential. It is further verified that the global leaf economics spectrum also exists in urban ecosystems, which is generally tend to a quick-investment return type with the characteristics of thick leaves, strong photosynthetic capacity, low transpiration efficiency and long life in urban environments. Response and adaptation strategies of plants to the environment have always been the core issues in ecological research. So far, relatively little study exists on its functional traits responses to warming, especially in an urban environment. This information is the key to help understand plant responses and trade-off strategy to urban warming. We chose the common greening trees of mature age in Beijing (Fraxinus pennsylvanica, Koelreuteria paniculata, and Sophora japonica) as the research subjects, and used infrared heaters to simulate warming for three gradients of natural temperature (CK), moderate warming (T1) and severe warming (T2). Results showed that:(1) Leaf dry matter content (LDMC), chlorophyll content (CHL), leaf tissue density (LTD), and stomatal density (SD) all increased with temperature warming. Specific leaf area (SLA), stomatal size (SS), and stomatal aperture (SA) decreased with simulated warming. (2) SLA was extremely significantly negatively correlated with CHL, LDMC, LTD and SD (P < 0.01), and was extremely significantly positively correlated with SS (P < 0.01). SA was extremely negatively correlated with SD (P < 0.01), and was extremely significantly positively correlated with SS (P < 0.01). There was a significant positive correlation between LDMC and LTD (P < 0.01). This showed that urban greening trees adapted to the environment by coordinating adjustment among leaf functional traits. (3) Under the T1 treatment, the R and slope among the leaf traits were higher than CK, and the significance was also enhanced. The correlation between leaf traits was strengthened in this warming environment. Conversely, it will weaken the correlation between leaf traits under the T2 treatment. Our study demonstrated that there was a strong trade-off between leaf functional traits in the urban warming environment. Plants in the warming environment have adopted relatively consistent trade-offs and adaptation strategies. Moderate warming was more conducive to strengthening their trade-off potential. It is further verified that the global leaf economics spectrum also exists in urban ecosystems, which is generally tend to a quick-investment return type with the characteristics of thick leaves, strong photosynthetic capacity, low transpiration efficiency and long life in urban environments. Response and adaptation strategies of plants to the environment have always been the core issues in ecological research. So far, relatively little study exists on its functional traits responses to warming, especially in an urban environment. This information is the key to help understand plant responses and trade-off strategy to urban warming.BACKGROUNDResponse and adaptation strategies of plants to the environment have always been the core issues in ecological research. So far, relatively little study exists on its functional traits responses to warming, especially in an urban environment. This information is the key to help understand plant responses and trade-off strategy to urban warming.We chose the common greening trees of mature age in Beijing (Fraxinus pennsylvanica, Koelreuteria paniculata, and Sophora japonica) as the research subjects, and used infrared heaters to simulate warming for three gradients of natural temperature (CK), moderate warming (T1) and severe warming (T2). Results showed that:(1) Leaf dry matter content (LDMC), chlorophyll content (CHL), leaf tissue density (LTD), and stomatal density (SD) all increased with temperature warming. Specific leaf area (SLA), stomatal size (SS), and stomatal aperture (SA) decreased with simulated warming. (2) SLA was extremely significantly negatively correlated with CHL, LDMC, LTD and SD (P < 0.01), and was extremely significantly positively correlated with SS (P < 0.01). SA was extremely negatively correlated with SD (P < 0.01), and was extremely significantly positively correlated with SS (P < 0.01). There was a significant positive correlation between LDMC and LTD (P < 0.01). This showed that urban greening trees adapted to the environment by coordinating adjustment among leaf functional traits. (3) Under the T1 treatment, the R2 and slope among the leaf traits were higher than CK, and the significance was also enhanced. The correlation between leaf traits was strengthened in this warming environment. Conversely, it will weaken the correlation between leaf traits under the T2 treatment.RESULTSWe chose the common greening trees of mature age in Beijing (Fraxinus pennsylvanica, Koelreuteria paniculata, and Sophora japonica) as the research subjects, and used infrared heaters to simulate warming for three gradients of natural temperature (CK), moderate warming (T1) and severe warming (T2). Results showed that:(1) Leaf dry matter content (LDMC), chlorophyll content (CHL), leaf tissue density (LTD), and stomatal density (SD) all increased with temperature warming. Specific leaf area (SLA), stomatal size (SS), and stomatal aperture (SA) decreased with simulated warming. (2) SLA was extremely significantly negatively correlated with CHL, LDMC, LTD and SD (P < 0.01), and was extremely significantly positively correlated with SS (P < 0.01). SA was extremely negatively correlated with SD (P < 0.01), and was extremely significantly positively correlated with SS (P < 0.01). There was a significant positive correlation between LDMC and LTD (P < 0.01). This showed that urban greening trees adapted to the environment by coordinating adjustment among leaf functional traits. (3) Under the T1 treatment, the R2 and slope among the leaf traits were higher than CK, and the significance was also enhanced. The correlation between leaf traits was strengthened in this warming environment. Conversely, it will weaken the correlation between leaf traits under the T2 treatment.Our study demonstrated that there was a strong trade-off between leaf functional traits in the urban warming environment. Plants in the warming environment have adopted relatively consistent trade-offs and adaptation strategies. Moderate warming was more conducive to strengthening their trade-off potential. It is further verified that the global leaf economics spectrum also exists in urban ecosystems, which is generally tend to a quick-investment return type with the characteristics of thick leaves, strong photosynthetic capacity, low transpiration efficiency and long life in urban environments.CONCLUSIONOur study demonstrated that there was a strong trade-off between leaf functional traits in the urban warming environment. Plants in the warming environment have adopted relatively consistent trade-offs and adaptation strategies. Moderate warming was more conducive to strengthening their trade-off potential. It is further verified that the global leaf economics spectrum also exists in urban ecosystems, which is generally tend to a quick-investment return type with the characteristics of thick leaves, strong photosynthetic capacity, low transpiration efficiency and long life in urban environments. Response and adaptation strategies of plants to the environment have always been the core issues in ecological research. So far, relatively little study exists on its functional traits responses to warming, especially in an urban environment. This information is the key to help understand plant responses and trade-off strategy to urban warming. We chose the common greening trees of mature age in Beijing (Fraxinus pennsylvanica, Koelreuteria paniculata, and Sophora japonica) as the research subjects, and used infrared heaters to simulate warming for three gradients of natural temperature (CK), moderate warming (T1) and severe warming (T2). Results showed that:(1) Leaf dry matter content (LDMC), chlorophyll content (CHL), leaf tissue density (LTD), and stomatal density (SD) all increased with temperature warming. Specific leaf area (SLA), stomatal size (SS), and stomatal aperture (SA) decreased with simulated warming. (2) SLA was extremely significantly negatively correlated with CHL, LDMC, LTD and SD (P < 0.01), and was extremely significantly positively correlated with SS (P < 0.01). SA was extremely negatively correlated with SD (P < 0.01), and was extremely significantly positively correlated with SS (P < 0.01). There was a significant positive correlation between LDMC and LTD (P < 0.01). This showed that urban greening trees adapted to the environment by coordinating adjustment among leaf functional traits. (3) Under the T1 treatment, the R.sup.2 and slope among the leaf traits were higher than CK, and the significance was also enhanced. The correlation between leaf traits was strengthened in this warming environment. Conversely, it will weaken the correlation between leaf traits under the T2 treatment. Our study demonstrated that there was a strong trade-off between leaf functional traits in the urban warming environment. Plants in the warming environment have adopted relatively consistent trade-offs and adaptation strategies. Moderate warming was more conducive to strengthening their trade-off potential. It is further verified that the global leaf economics spectrum also exists in urban ecosystems, which is generally tend to a quick-investment return type with the characteristics of thick leaves, strong photosynthetic capacity, low transpiration efficiency and long life in urban environments. |
ArticleNumber | 139 |
Audience | Academic |
Author | Xu, Chengyang Zhu, Qiuyu Yao, Jiangming Li, Jinhang Zhu, Jiyou Zhu, Hua Cao, Yujuan |
Author_xml | – sequence: 1 givenname: Jiyou surname: Zhu fullname: Zhu, Jiyou – sequence: 2 givenname: Hua surname: Zhu fullname: Zhu, Hua – sequence: 3 givenname: Yujuan surname: Cao fullname: Cao, Yujuan – sequence: 4 givenname: Jinhang surname: Li fullname: Li, Jinhang – sequence: 5 givenname: Qiuyu surname: Zhu fullname: Zhu, Qiuyu – sequence: 6 givenname: Jiangming surname: Yao fullname: Yao, Jiangming – sequence: 7 givenname: Chengyang surname: Xu fullname: Xu, Chengyang |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/32245420$$D View this record in MEDLINE/PubMed |
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Cites_doi | 10.1111/j.1461-0248.2008.01219.x 10.1016/j.envexpbot.2007.05.011 10.1139/x00-141 10.1007/s11258-014-0414-z 10.1093/treephys/20.2.87 10.1007/s10310-015-0496-z 10.1046/j.0269-8463.2001.00563.x 10.1093/aob/mcr225 10.3389/fpls.2017.01511 10.1007/s11104-011-0891-y 10.2135/cropsci1991.0011183X003100020042x 10.1111/j.1469-8137.2008.02528.x 10.1016/j.ccs.2014.02.002 10.1046/j.1365-2435.2002.00672.x 10.3390/f9100616 10.1890/0012-9658(2001)082[0637:PRTEWI]2.0.CO;2 10.1023/A:1009896111405 10.1111/j.1523-1739.2006.00364.x 10.1111/j.1365-2486.2010.02294.x 10.1111/j.1365-2745.2011.01945.x 10.1038/nature01333 10.1016/j.tplants.2007.11.009 10.1007/s11104-012-1403-4 10.1016/j.ufug.2014.02.004 10.1046/j.1469-8137.1999.00433.x 10.1016/j.ufug.2015.11.013 10.1111/j.1365-2435.2006.01218.x 10.1016/j.eja.2007.07.003 10.1007/s11056-012-9354-4 10.1038/s41598-017-18525-1 10.1038/nature02121 10.1007/s10725-007-9227-6 10.1046/j.1469-8137.1999.00428.x 10.1016/j.ppees.2016.05.003 10.1139/X08-152 10.1038/srep37101 10.1038/nature02403 10.1016/j.ufug.2014.08.003 10.1186/s12870-015-0494-5 10.1504/IJGW.2018.090182 10.1046/j.1469-8137.2002.00357.x 10.1111/gcb.13550 10.1023/B:VEGE.0000046055.27285.fd 10.1111/1365-2745.12031 10.1046/j.1469-8137.1999.00427.x 10.1007/s00468-013-0923-8 10.1111/j.1469-8137.1995.tb03067.x 10.1126/science.1231574 10.1016/j.ufug.2011.01.001 10.1111/1365-2435.12162 10.1088/1748-9326/1/1/014001 10.1186/1471-2229-11-35 10.1016/j.biocon.2005.09.005 |
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Keywords | Warming leaf functional traits Urban greening Adaptation strategy Leaf economics spectrum |
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References | JM Beaulieu (2359_CR52) 2008; 179 JMG Hudson (2359_CR38) 2011; 17 ND Luchini (2359_CR48) 1997; 56 YK Sang (2359_CR27) 2013; 366 B Viswanathan (2359_CR11) 2011; 10 F Vendramini (2359_CR19) 2002; 154 A Cochrane (2359_CR29) 2015; 216 A Wahid (2359_CR25) 2007; 61 ML Mckinney (2359_CR32) 2006; 127 EP Hamerlynck (2359_CR43) 2000; 148 JY Zhu (2359_CR56) 2018; 9 CD Thomas (2359_CR3) 2004; 427 E Valencia (2359_CR39) 2016; 21 A Hund (2359_CR45) 2008; 28 R An (2359_CR2) 2017; 19 M Razzaghmanesh (2359_CR30) 2016; 15 J Bauhus (2359_CR54) 2000; 30 PJ Wilson (2359_CR36) 1999; 143 N Ülo (2359_CR6) 2008; 13 H Yin (2359_CR26) 2008; 54 IJ Wright (2359_CR22) 2004; 428 MJ Spasojevic (2359_CR41) 2012; 100 B Jin (2359_CR17) 2011; 11 H Poorter (2359_CR33) 2010; 143 JLD Osnas (2359_CR28) 2013; 340 S Lavorel (2359_CR15) 2013; 101 Y Yang (2359_CR24) 2011; 349 JY Zhu (2359_CR53) 2018; 40 DM Oliver (2359_CR49) 2016; 6 F Tardieu (2359_CR37) 2010; 143 P Devalpine (2359_CR8) 2001; 82 JA Oliet (2359_CR46) 2012; 43 G Lazzerini (2359_CR13) 2014; 13 YF Chai (2359_CR16) 2015; 20 WK Cornwell (2359_CR55) 2008; 11 AH Wissemeier (2359_CR50) 1991; 31 CZ Zhao (2359_CR44) 2009; 39 G Derroire (2359_CR21) 2018; 8 SF Moffatt (2359_CR31) 2004; 174 E Youngsteadt (2359_CR7) 2016; 23 JG Hodgson (2359_CR20) 2011; 108 B Shipley (2359_CR34) 2002; 16 FI Woodward (2359_CR51) 1995; 131 X Sun (2359_CR42) 2015; 15 TL Root (2359_CR10) 2003; 421 J Lu (2359_CR12) 2014; 13 LS Santiago (2359_CR23) 2007; 21 J Wang (2359_CR47) 2013; 27 I Chandramathy (2359_CR5) 2018; 14 S Lehmann (2359_CR4) 2014; 5 Y Li (2359_CR40) 2017; 8 J Harte (2359_CR14) 2006; 1 QD Read (2359_CR18) 2014; 28 JR Malcolm (2359_CR9) 2010; 20 CA Gunderson (2359_CR1) 2000; 20 E Garnier (2359_CR35) 2001; 15 |
References_xml | – volume: 11 start-page: 1065 year: 2008 ident: 2359_CR55 publication-title: Ecol Lett doi: 10.1111/j.1461-0248.2008.01219.x – volume: 61 start-page: 199 year: 2007 ident: 2359_CR25 publication-title: Environ Exp Bot doi: 10.1016/j.envexpbot.2007.05.011 – volume: 30 start-page: 1886 year: 2000 ident: 2359_CR54 publication-title: Can J For Res doi: 10.1139/x00-141 – volume: 216 start-page: 27 year: 2015 ident: 2359_CR29 publication-title: Plant Ecol doi: 10.1007/s11258-014-0414-z – volume: 20 start-page: 87 year: 2000 ident: 2359_CR1 publication-title: Tree Physiol doi: 10.1093/treephys/20.2.87 – volume: 20 start-page: 501 year: 2015 ident: 2359_CR16 publication-title: J For Res doi: 10.1007/s10310-015-0496-z – volume: 15 start-page: 688 year: 2001 ident: 2359_CR35 publication-title: Funct Ecol doi: 10.1046/j.0269-8463.2001.00563.x – volume: 108 start-page: 1337 year: 2011 ident: 2359_CR20 publication-title: Annals Botany doi: 10.1093/aob/mcr225 – volume: 8 start-page: 1511 year: 2017 ident: 2359_CR40 publication-title: Frontiers Plant Sci doi: 10.3389/fpls.2017.01511 – volume: 349 start-page: 377 year: 2011 ident: 2359_CR24 publication-title: Plant Soil doi: 10.1007/s11104-011-0891-y – volume: 31 start-page: 435 year: 1991 ident: 2359_CR50 publication-title: Crop Sci doi: 10.2135/cropsci1991.0011183X003100020042x – volume: 179 start-page: 975 year: 2008 ident: 2359_CR52 publication-title: New Phytol doi: 10.1111/j.1469-8137.2008.02528.x – volume: 5 start-page: 1 year: 2014 ident: 2359_CR4 publication-title: City Cult Soc doi: 10.1016/j.ccs.2014.02.002 – volume: 16 start-page: 682 year: 2002 ident: 2359_CR34 publication-title: Funct Ecol doi: 10.1046/j.1365-2435.2002.00672.x – volume: 9 start-page: 616 year: 2018 ident: 2359_CR56 publication-title: Forests doi: 10.3390/f9100616 – volume: 82 start-page: 637 year: 2001 ident: 2359_CR8 publication-title: Ecology doi: 10.1890/0012-9658(2001)082[0637:PRTEWI]2.0.CO;2 – volume: 148 start-page: 183 year: 2000 ident: 2359_CR43 publication-title: Plant Ecol doi: 10.1023/A:1009896111405 – volume: 20 start-page: 538 year: 2010 ident: 2359_CR9 publication-title: Conserv Biol doi: 10.1111/j.1523-1739.2006.00364.x – volume: 17 start-page: 1013 year: 2011 ident: 2359_CR38 publication-title: Glob Chang Biol doi: 10.1111/j.1365-2486.2010.02294.x – volume: 100 start-page: 652 year: 2012 ident: 2359_CR41 publication-title: J Ecol doi: 10.1111/j.1365-2745.2011.01945.x – volume: 421 start-page: 57 year: 2003 ident: 2359_CR10 publication-title: Nature doi: 10.1038/nature01333 – volume: 13 start-page: 60 year: 2008 ident: 2359_CR6 publication-title: Trends Plant Sci doi: 10.1016/j.tplants.2007.11.009 – volume: 366 start-page: 273 year: 2013 ident: 2359_CR27 publication-title: Plant Soil doi: 10.1007/s11104-012-1403-4 – volume: 13 start-page: 517 year: 2014 ident: 2359_CR13 publication-title: Urban For Urban Green doi: 10.1016/j.ufug.2014.02.004 – volume: 143 start-page: 33 year: 2010 ident: 2359_CR37 publication-title: New Phytologist doi: 10.1046/j.1469-8137.1999.00433.x – volume: 15 start-page: 89 year: 2016 ident: 2359_CR30 publication-title: Urban For Urban Green doi: 10.1016/j.ufug.2015.11.013 – volume: 21 start-page: 19 year: 2007 ident: 2359_CR23 publication-title: Funct Ecol doi: 10.1111/j.1365-2435.2006.01218.x – volume: 28 start-page: 178 year: 2008 ident: 2359_CR45 publication-title: Eur J Agron doi: 10.1016/j.eja.2007.07.003 – volume: 43 start-page: 535 year: 2012 ident: 2359_CR46 publication-title: New For doi: 10.1007/s11056-012-9354-4 – volume: 40 start-page: 72 year: 2018 ident: 2359_CR53 publication-title: J Beijing Forestry Univ – volume: 8 start-page: 285 year: 2018 ident: 2359_CR21 publication-title: Sci Rep doi: 10.1038/s41598-017-18525-1 – volume: 427 start-page: 145 year: 2004 ident: 2359_CR3 publication-title: Nature doi: 10.1038/nature02121 – volume: 54 start-page: 45 year: 2008 ident: 2359_CR26 publication-title: Plant Growth Regul doi: 10.1007/s10725-007-9227-6 – volume: 143 start-page: 163 year: 2010 ident: 2359_CR33 publication-title: New Phytol doi: 10.1046/j.1469-8137.1999.00428.x – volume: 21 start-page: 31 year: 2016 ident: 2359_CR39 publication-title: Perspect Plant Ecol Evol Syst doi: 10.1016/j.ppees.2016.05.003 – volume: 39 start-page: 1 year: 2009 ident: 2359_CR44 publication-title: Can J For Res doi: 10.1139/X08-152 – volume: 56 start-page: 494 year: 1997 ident: 2359_CR48 publication-title: Int J Cancer – volume: 6 start-page: 37101 year: 2016 ident: 2359_CR49 publication-title: Sci Rep doi: 10.1038/srep37101 – volume: 428 start-page: 821 year: 2004 ident: 2359_CR22 publication-title: Nature doi: 10.1038/nature02403 – volume: 13 start-page: 682 year: 2014 ident: 2359_CR12 publication-title: Urban For Urban Green doi: 10.1016/j.ufug.2014.08.003 – volume: 15 start-page: 116 year: 2015 ident: 2359_CR42 publication-title: BMC Plant Biol doi: 10.1186/s12870-015-0494-5 – volume: 19 start-page: 1 year: 2017 ident: 2359_CR2 publication-title: Obes Rev – volume: 14 start-page: 238 year: 2018 ident: 2359_CR5 publication-title: Int J Global Warming doi: 10.1504/IJGW.2018.090182 – volume: 154 start-page: 147 year: 2002 ident: 2359_CR19 publication-title: New Phytol doi: 10.1046/j.1469-8137.2002.00357.x – volume: 23 start-page: 1436 year: 2016 ident: 2359_CR7 publication-title: Glob Chang Biol doi: 10.1111/gcb.13550 – volume: 174 start-page: 119 year: 2004 ident: 2359_CR31 publication-title: Plant Ecol doi: 10.1023/B:VEGE.0000046055.27285.fd – volume: 101 start-page: 4 year: 2013 ident: 2359_CR15 publication-title: J Ecol doi: 10.1111/1365-2745.12031 – volume: 143 start-page: 155 year: 1999 ident: 2359_CR36 publication-title: New Phytol doi: 10.1046/j.1469-8137.1999.00427.x – volume: 27 start-page: 1775 year: 2013 ident: 2359_CR47 publication-title: Trees doi: 10.1007/s00468-013-0923-8 – volume: 131 start-page: 311 year: 1995 ident: 2359_CR51 publication-title: New Phytol doi: 10.1111/j.1469-8137.1995.tb03067.x – volume: 340 start-page: 741 year: 2013 ident: 2359_CR28 publication-title: Science doi: 10.1126/science.1231574 – volume: 10 start-page: 133 year: 2011 ident: 2359_CR11 publication-title: Urban For Urban Green doi: 10.1016/j.ufug.2011.01.001 – volume: 28 start-page: 37 year: 2014 ident: 2359_CR18 publication-title: Funct Ecol doi: 10.1111/1365-2435.12162 – volume: 1 start-page: 014001 year: 2006 ident: 2359_CR14 publication-title: Environ Res Lett doi: 10.1088/1748-9326/1/1/014001 – volume: 11 start-page: 35 year: 2011 ident: 2359_CR17 publication-title: BMC Plant Biol doi: 10.1186/1471-2229-11-35 – volume: 127 start-page: 247 year: 2006 ident: 2359_CR32 publication-title: Biol Conserv doi: 10.1016/j.biocon.2005.09.005 |
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Snippet | Response and adaptation strategies of plants to the environment have always been the core issues in ecological research. So far, relatively little study exists... Background Response and adaptation strategies of plants to the environment have always been the core issues in ecological research. So far, relatively little... BACKGROUND: Response and adaptation strategies of plants to the environment have always been the core issues in ecological research. So far, relatively little... Abstract Background Response and adaptation strategies of plants to the environment have always been the core issues in ecological research. So far, relatively... |
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SubjectTerms | Acclimatization - physiology Adaptation Adaptation strategy Apertures China Chlorophyll Chlorophyll - metabolism Density Dry matter Ecological research economics Ecosystems Environmental aspects Fraxinus pennsylvanica Global warming Greening infrared heaters Koelreuteria paniculata Leaf area leaf dry matter content Leaf economics spectrum leaf functional traits leaf thickness Leaves Morphology Parks, Recreational Photosynthesis Photosynthesis - physiology Physiology Plant Leaves - physiology Plant Physiological Phenomena plant response Plant tissues Plants Researchers Simulation specific leaf area Stomata stomatal movement Studies Styphnolobium japonicum Sustainable living Temperature Tradeoffs Transpiration Trees Trees - physiology Urban areas Urban environments Urban greening Urban heat islands Urbanization Warming |
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