Register      Login
Functional Plant Biology Functional Plant Biology Society
Plant function and evolutionary biology
RESEARCH ARTICLE

Shrub leaf area and leaf vein trait trade-offs in response to the light environment in a vegetation transitional zone

Dingyue Liu A , Chengzhang Zhao https://orcid.org/0000-0002-8610-6599 A * , Geyang Li A , Zhini Chen A B , Suhong Wang A , Chenglu Huang A and Peixian Zhang A
+ Author Affiliations
- Author Affiliations

A Gansu Province Wetland Resources Protection and Industrial Development Engineering Research Center, College of Geography and Environmental Sciences, Northwest Normal University, Lanzhou, Gansu 730100, China.

B Xinglongshan Forest Ecosystem National Positioning Observation and Research Station, Lanzhou 730100, China.

* Correspondence to: zhaocz1710@163.com

Handling Editor: Jairo Palta

Functional Plant Biology 51, FP24011 https://doi.org/10.1071/FP24011
Submitted: 28 October 2023  Accepted: 18 March 2024  Published: 15 April 2024

© 2024 The Author(s) (or their employer(s)). Published by CSIRO Publishing

Abstract

The leaf is an important site for energy acquisition and material transformation in plants. Leaf functional traits and their trade-off mechanisms reflect the resource utilisation efficiency and habitat adaptation strategies of plants, and contribute to our understanding of the mechanism by which the distribution pattern of plant populations in arid and semi-arid areas influences the evolution of vegetation structure and function. We selected two natural environments, the tree–shrub community canopy area and the shrub–grass community open area in the transition zone between the Qinghai–Tibet Plateau and the Loess Plateau. We studied the trade-off relationships of leaf area with leaf midvein diameter and leaf vein density in Cotoneaster multiflorus using the standardised major axis (SMA) method. The results show that the growth pattern of C. multiflorus, which has small leaves of high density and extremely small vein diameters, in the open area. The water use efficiency and net photosynthetic rate of plants in the open area were significantly greater than those of plants growing in the canopy area. The adaptability of C. multiflorus to environments with high light and low soil water content reflects its spatial colonisation potential in arid and semiarid mountains.

Keywords: anisotropic growth, arid and semiarid zone, leaf area, leaf vein density, leaf vein diameter, light, shrub, transition zone between the Qinghai–Tibet Plateau and Loess Plateau.

References

Ahrens CW, Andrew ME, Mazanec RA, et al. (2020) Plant functional traits differ in adaptability and are predicted to be differentially affected by climate change. Ecology and Evolution 10, 232-248.
| Crossref | Google Scholar | PubMed |

Albaugh TJ, Maier CA, Campoe OC, et al. (2020) Crown architecture, crown leaf area distribution, and individual tree growth efficiency vary across site, genetic entry, and planting density. Trees 34, 73-88.
| Crossref | Google Scholar |

Alhassan A-RM, Ma W, Li G, Jiang Z, Wu J, Chen G (2018) Response of soil organic carbon to vegetation degradation along a moisture gradient in a wet meadow on the Qinghai–Tibet Plateau. Ecology and Evolution 8, 11999-12010.
| Crossref | Google Scholar | PubMed |

Barros V, Frosi G, Santos M, Ramos DG, Falcão HM, Santos MG (2018) Arbuscular mycorrhizal fungi improve photosynthetic energy use efficiency and decrease foliar construction cost under recurrent water deficit in woody evergreen species. Plant Physiology and Biochemistry 127, 469-477.
| Crossref | Google Scholar |

Berlyn GP, Miksche JP (1976) ‘Botanical microtechnique and cytochemistry.’ (Ames Iowa State University Press)

Bertolino LT, Caine RS, Gray JE (2019) Impact of stomatal density and morphology on water-use efficiency in a changing world. Frontiers in Plant Science 10, 225.
| Crossref | Google Scholar | PubMed |

Bie PP (2021) Seed dormancy characteristics of cotoneaster and cotoneaster and studies on the release of dormancy. Master’s Thesis, Beijing Forestry University, China.

Brandt M, Tucker CJ, Kariryaa A, et al. (2020) An unexpectedly large count of trees in the West African Sahara and Sahel. Nature 587, 78-82.
| Google Scholar | PubMed |

Brodie JF, Roland CA, Stehn SE, Smirnova E (2019) Variability in the expansion of trees and shrubs in boreal Alaska. Ecology 100(5), e02660.
| Crossref | Google Scholar |

Brodribb TJ, Jordan GJ (2011) Water supply and demand remain balanced during leaf acclimation of Nothofagus cunninghamii trees. New Phytologist 192, 437-448.
| Crossref | Google Scholar | PubMed |

Chen L (2017) Overview of afforestation techniques in Xinglongshan Nature Reserve. Gansu Forestry 163(04), 42-44.
| Google Scholar |

Chen J, Wang Y, Sun J, Liang E, Shen M, Yang B, Jia X, Zhang J (2021) Precipitation dominants synergies and trade-offs among ecosystem services across the Qinghai–Tibet Plateau. Global Ecology and Conservation 32, e01886.
| Crossref | Google Scholar |

Cifuentes L, Moreno F (2022) Trait coordination at leaf level explains the resistance to excess light stress in shade-tolerant tropical tree species. Tree Physiology 42(7), 1325-1336.
| Crossref | Google Scholar | PubMed |

Dai L, Ge J, Wang L, Zhang Q, Liang T, Bolan N, Lischeid G, Rinklebe J (2022) Influence of soil properties, topography, and land cover on soil organic carbon and total nitrogen concentration: a case study in Qinghai–Tibet plateau based on random forest regression and structural equation modeling. Science of The Total Environment 821, 153440.
| Crossref | Google Scholar |

Davis E, Trant A, Hermanutz L, et al. (2021) Plant–environment interactions in the low Arctic Torngat Mountains of Labrador. Ecosystems 24, 1038-1058.
| Crossref | Google Scholar |

Deans RM, Brodribb TJ, Busch FA, et al. (2020) Optimization can provide the fundamental link between leaf photosynthesis, gas exchange and water relations. Nature Plants 6, 1116-1125.
| Crossref | Google Scholar | PubMed |

Díaz S, Kattge J, Cornelissen JHC, et al. (2016) The global spectrum of plant form and function. Nature 529, 167-171.
| Crossref | Google Scholar | PubMed |

Freschet GT, Violle C, Bourget MY, Scherer-Lorenzen M, Fort F (2018) Allocation, morphology, physiology, architecture: the multiple facets of plant above- and below-ground responses to resource stress. New Phytologist 219, 1338-1352.
| Crossref | Google Scholar | PubMed |

Givnish TJ (1987) Comparative studies of leaf form: assessing the relative roles of selective pressures and phylogenetic constraints. New Phytologist 106, 131-160.
| Crossref | Google Scholar |

Gong L, Liang K, Liu C (2023) Spatial and temporal variation characteristics of the water and carbon variables in the water conservation zone of the Yellow River and their influencing factors. Progress in Geography 42(09), 1677-1690.
| Crossref | Google Scholar |

Greenwood S, Ruiz-Benito P, Martínez-Vilalta J, Lloret F, Kitzberger T, Allen CD, Fensham R, Laughlin DC, Kattge J, Bonisch G, Kraft NJB, Jump AS (2017) Tree mortality across biomes is promoted by drought intensity, lower wood density and higher specific leaf area. Ecology Letters 20, 539-553.
| Crossref | Google Scholar |

Grigoriev AA, Shalaumova YV, Balakin DS, Erokhina OV, Abdulmanova SY, Moiseev PA, Camarero JJ (2022) Alpine shrubification: juniper encroachment into tundra in the Ural Mountains. Forests 13(12), 2106.
| Crossref | Google Scholar |

Han C (2020) Study on soil conservation and water conservation functions of forest ecosystem in Xinglong Mountain. PhD Thesis, Lanzhou University, Gansu, China.

Han L, Zhao C-Z, Xu T, Feng W, Duan B-B, Zheng H-L (2016) Trade-off between leaf size and vein density of Achnatherum splendens in Zhangye wetland. Chinese Journal of Plant Ecology 40, 788-797.
| Crossref | Google Scholar |

He N, Liu C, Tian M, et al. (2018) Variation in leaf anatomical traits from tropical to cold-temperate forests and linkage to ecosystem functions. Functional Ecology 32, 10-19.
| Crossref | Google Scholar |

Joshi J, Stocker BD, Hofhansl F, et al. (2022) Towards a unified theory of plant photosynthesis and hydraulics. Nature Plants 8, 1304-1316.
| Crossref | Google Scholar | PubMed |

Kleiman D, Aarssen LW (2007) The leaf size/number trade-off in trees. Journal of Ecology 95, 376-382.
| Crossref | Google Scholar |

Li C, Fu B, Wang S, et al. (2021) Drivers and impacts of changes in China’s drylands. Nature Reviews Earth & Environment 2, 858-873.
| Crossref | Google Scholar |

Mediavilla S, Martín I, Escudero A (2020) Vein and stomatal traits in leaves of three co-occurring Quercus species differing in leaf life span. European Journal of Forest Research 139, 829-840.
| Crossref | Google Scholar |

Mekonnen ZA, Riley WJ, Berner LT, Bouskill NJ, Torn MS, Iwahana G, Breen AL, Myers-Smith IH, Criado MG, Liu Y, Euskirchen ES, Goetz SJ, Mack MC, Grant RF (2021) Arctic tundra shrubification: a review of mechanisms and impacts on ecosystem carbon balance. Environmental Research Letters 16, 053001.
| Crossref | Google Scholar |

Nardini A (2022) Hard and tough: the coordination between leaf mechanical resistance and drought tolerance. Flora 288, 152023.
| Crossref | Google Scholar |

Niklas KJ (1986) Biomechanical responses of chive (Allium schoenoprasum var. shoenoprasum) leaves to changes in water potential. American Journal of Botany 73, 636-637.
| Google Scholar |

Peng G, Xiong Y, Yin M, Wang X, Zhou W, Cheng Z, Zhang Y-J, Yang D (2022) Leaf venation architecture in relation to leaf size across leaf habits and vein types in subtropical woody plants. Frontiers in Plant Science 13, 873036.
| Crossref | Google Scholar | PubMed |

Pitman EJG (1939) A note on normal correlation. Biometrika 31, 9-12.
| Crossref | Google Scholar |

Poorter H, Niinemets U, Ntagkas N, Siebenkäs A, Mäenpää M, Matsubara S, Pons T (2019) A meta-analysis of plant responses to light intensity for 70 traits ranging from molecules to whole plant performance. New Phytologist 223, 1073-1105.
| Crossref | Google Scholar | PubMed |

Rosas T, Mencuccini M, Barba J, Cochard H, Saura-Mas S, Martínez-Vilalta J (2019) Adjustments and coordination of hydraulic, leaf and stem traits along a water availability gradient. New Phytologist 223, 632-646.
| Crossref | Google Scholar | PubMed |

Sack L, Scoffoni C (2013) Leaf venation: structure, function, development, evolution, ecology and applications in the past, present and future. New Phytologist 198, 983-1000.
| Crossref | Google Scholar | PubMed |

Sack L, Scoffoni C, McKown AD, Frole K, Rawls M, Havran JC, Tran H, Tran T (2012) Developmentally based scaling of leaf venation architecture explains global ecological patterns. Nature Communications 3, 837.
| Crossref | Google Scholar | PubMed |

Sanchez-Martinez P, Martínez-Vilalta J, Dexter KG, Segovia RA, Mencuccini M (2020) Adaptation and coordinated evolution of plant hydraulic traits. Ecology Letters 23, 1599-1610.
| Crossref | Google Scholar |

Schuldt B, Knutzen F, Delzon S, Jansen S, Müller-Haubold H, Burlett R, Clough Y, Leuschner C (2016) How adaptable is the hydraulic system of European beech in the face of climate change-related precipitation reduction? New Phytologist 210, 443-458.
| Crossref | Google Scholar | PubMed |

Scoffoni C, McKown AD, Rawls M, Sack L (2012) Dynamics of leaf hydraulic conductance with water status: quantification and analysis of species differences under steady state. Journal of Experimental Botany 63, 643-658.
| Google Scholar |

Scoffoni C, Kunkle J, Pasquet-Kok J, Vuong C, Patel AJ, Montgomery RA, Givnish TJ, Sack L (2015) Light-induced plasticity in leaf hydraulics, venation, anatomy, and gas exchange in ecologically diverse Hawaiian lobeliads. New Phytologist 207, 43-58.
| Crossref | Google Scholar | PubMed |

Scoffoni C, Albuquerque C, Brodersen CR, Townes SV, John GP, Cochard H, Buckley TN, McElrone AJ, Sack L (2017) Leaf vein xylem conduit diameter influences susceptibility to embolism and hydraulic decline. New Phytologist 213, 1076-1092.
| Crossref | Google Scholar | PubMed |

Trueba S, Pan R, Scoffoni C, John GP, Davis SD, Sack L (2019) Thresholds for leaf damage due to dehydration: declines of hydraulic function, stomatal conductance and cellular integrity precede those for photochemistry. New Phytologist 223, 134-149.
| Crossref | Google Scholar | PubMed |

Wang D, Sun Y, Tu M, Zhang P, Wang X, Wang T, Li J (2021) Response of Zebrina pendula leaves to enhanced UV-B radiation. Functional Plant Biology 48, 851-859.
| Crossref | Google Scholar | PubMed |

Warton DI, Duursma RA, Falster DS, Taskinen S (2012) Smatr 3 – an R package for estimation and inference about allometric lines. Methods in Ecology and Evolution 3, 257-259.
| Crossref | Google Scholar |

Wei Q, Ling L, Chai C, Zhang G, Yan P, Tao J, Xue R (2012) Soil physical and chemical properties during forest succession in Xinglong Mountain, Gansu. Acta Ecologica Sinica 32(15), 4700-4713.
| Crossref | Google Scholar |

Wei Q, Ling L, Wang D, et al. (2019) Relationships between decomposition rate of leaf litter and initial quality of main tree species in Xinglong Mountain of Gansu Province. Bulletin of Soil and Water Conservation 39(01), 9-15.
| Google Scholar |

Wen L, Jinlan W, Xiaojiao Z, Shangli S, Wenxia C (2018) Effect of degradation and rebuilding of artificial grasslands on soil respiration and carbon and nitrogen pools on an alpine meadow of the Qinghai–Tibetan Plateau. Ecological Engineering 111, 134-142.
| Crossref | Google Scholar |

Xiao Q, Lin Zhaorong, Jiang Fengyan, et al. (2023) Effects of grazing intensity on leaf anatomy of dominant plants in alpine meadows. Journal of Grassland Science 31(10), 3018-3025.
| Crossref | Google Scholar |

Yang X, Lu M, Wang Y, Wang Y, Liu Z, Chen S (2021) Response mechanism of plants to drought stress. Horticulturae 7, 50.
| Crossref | Google Scholar |

Ye M, Wu M, Zhang H, Zhang Z, Zhang Z (2021) High leaf vein density promotes leaf gas exchange by enhancing leaf hydraulic conductance in Oryza sativa L. plants. Frontiers in Plant Science 12, 693815.
| Crossref | Google Scholar | PubMed |

Zhang Q, Yang J, Duan X, et al. (2022a) The eastward expansion of the climate humidification trend in northwest China and the synergistic influences on the circulation mechanism. Climate Dynamics 59, 2481-2497.
| Crossref | Google Scholar |

Zhang Y, Guo Q, Luo S, Pan J, Yao S, Gao C, Guo Y, Wang G (2022b) Light regimes regulate leaf and twigs traits of Camellia oleifera (Abel) in Pinus massoniana plantation understory. Forests 13, 918.
| Crossref | Google Scholar |

Zhao J, Huang S, Huang Q, Wang H, Leng G, Fang W (2020) Time-lagged response of vegetation dynamics to climatic and teleconnection factors. Catena 189, 104474.
| Crossref | Google Scholar |

Zhao H, Cheng H, Xie Q, et al. (2022) Evaluation and screening of drought resistance index of 6 species of shrubs in arid region. Journal of Northwest Forestry College 37(03), 24-29.
| Google Scholar |