Trait-based formal definition of plant functional types and functional communities in the multi-species and multi-traits context

被引:11
作者
Tsakalos, James L. [1 ]
Renton, Michael [1 ,2 ]
Riviera, Fiamma [1 ]
Veneklaas, Erik J. [1 ,2 ]
Dobrowolski, Mark P. [1 ,3 ]
Mucina, Ladislav [1 ,4 ,5 ]
机构
[1] Univ Western Australia, Sch Biol Sci, 35 Stirling Hwy, Perth, WA 6009, Australia
[2] Univ Western Australia, Sch Agr & Environm, 35 Stirling Hwy, Perth, WA 6009, Australia
[3] Iluka Resources Ltd, 240 St Georges Terrace, Perth, WA 6000, Australia
[4] Murdoch Univ, Harry Butler Inst, 90 South St, Perth, WA 6150, Australia
[5] Stellenbosch Univ, Ctr Geog Anal, Dept Geog & Environm Studies, Private Bag X1, ZA-7602 Stellenbosch, South Africa
基金
澳大利亚研究理事会;
关键词
Complexity reduction; Environmental drivers; Global biodiversity hotspot; Mediterranean-type scrub and woodland; Numerical classification; Resource-impoverished soils; Species-rich vegetation; WOODY-PLANTS; KWONGAN SCRUB; ECOLOGY; FIRE; DIVERSITY; CLASSIFICATION; EVOLUTIONARY; ASSOCIATIONS; REDUNDANCY; VEGETATION;
D O I
10.1016/j.ecocom.2019.100787
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
The concepts of traits, plant functional types (PFT), and functional communities are effective tools for the study of complex phenomena such as plant community assembly. Here, we (1) suggest a procedure formalising the classification of response traits to construct a PFT system; (2) integrate the PFT, and species compositional data to formally define functional communities; and, (3) identify environmental drivers that underpin the functional-community patterns. A species-trait data set featuring species pooled from two study sites (Eneabba and Cooljarloo, Western Australia), both supporting kwongan vegetation (sclerophyllous scrub and woodland communities), was subjected to classification to define PFTs. Species of both study sites were replaced with the newly derived PFTs and projected cover abundance-weighted means calculated for every plot. Functional communities were defined by classifications of the abundance-weighted PFT data in the respective sites. Distance-based redundancy analysis (using the abundance-weighted community and environmental data) was used to infer drivers of the functional community patterns for each site. A classification based on trait data assisted in reducing trait-space complexity in the studied vegetation and revealed 26 PFTs shared across the study sites. In total, seven functional communities were identified. We demonstrate a putative functional-community pattern-driving effect of soil-texture (clay-sand) gradients at Eneabba (42% of the total inertia explained) and that of water repellence at Cooljarloo (36%). Synthesis. This paper presents a procedure formalising the classification of multiple response traits leading to the delineation of PFTs and functional communities. This step captures plant responses to stresses and disturbance characteristic of kwongan vegetation, including low nutrient status, water stress, and fire (a landscape-level disturbance factor). Our study is the first to introduce a formal procedure assisting their formal recognition. Our results support the role of short-term abiotic drivers structuring the formation of fine-scale functional community patterns in a complex, species-rich vegetation of Western Australia.
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页数:10
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共 39 条
[21]   Functional traits, spatial patterns and species associations: what is their combined role in the assembly of wetland plant communities? [J].
Sieben, Erwin J. J. ;
le Roux, Peter C. .
PLANT ECOLOGY, 2017, 218 (04) :433-445
[22]   The importance of rare species: a trait-based assessment of rare species contributions to functional diversity and possible ecosystem function in tall-grass prairies [J].
Jain, Meha ;
Flynn, Dan F. B. ;
Prager, Case M. ;
Hart, Georgia M. ;
DeVan, Caroline M. ;
Ahrestani, Farshid S. ;
Palmer, Matthew I. ;
Bunker, Daniel E. ;
Knops, Johannes M. H. ;
Jouseau, Claire F. ;
Naeem, Shahid .
ECOLOGY AND EVOLUTION, 2014, 4 (01) :104-112
[23]   Functional connectivity and population persistence in woodland birds: insights for management from a multi-species conservation genetics study [J].
Radford, James Q. ;
Amos, Nevil ;
Harrisson, Katherine ;
Sunnucks, Paul ;
Pavlova, Alexandra .
EMU-AUSTRAL ORNITHOLOGY, 2021, 121 (1-2) :147-159
[24]   Disentangling the Ecological Determinants of Species and Functional Trait Diversity in Herb-Layer Plant Communities in European Temperate Forests [J].
Kermavnar, Janez ;
Kutnar, Lado ;
Marinsek, Aleksander .
FORESTS, 2021, 12 (05)
[25]   Unmanned Aerial Vehicle (UAV) Imagery for Plant Communities: Optimizing Visible Light Vegetation Index to Extract Multi-Species Coverage [J].
Wang, Meng ;
Zhang, Zhuoran ;
Gao, Rui ;
Zhang, Junyong ;
Feng, Wenjie .
PLANTS-BASEL, 2025, 14 (11)
[26]   Functional traits and phylogenetic structure based on root neighborhoods shape the mechanisms of species coexistence in underground communities [J].
Liu, Minxia ;
Miao, Lele ;
Yang, Chunliang ;
Zhang, Xin .
OIKOS, 2025, 2025 (05)
[27]   Using a Multi-Trait Approach to Manipulate Plant Functional Diversity in a Biodiversity-Ecosystem Function Experiment [J].
Schittko, Conrad ;
Hawa, Mahmoud ;
Wurst, Susanne .
PLOS ONE, 2014, 9 (06)
[28]   Species diversity and functional trait-based approaches in ecological assessment utilizing free-living marine nematodes in Jiaozhou Bay, China [J].
Karim, Md Abdul ;
Zhou, Hong ;
Uddin, Saif Md ;
Montero-Taboada, Rebeca ;
Jiang, Qianqian ;
Zeng, Ruiwen .
MARINE POLLUTION BULLETIN, 2024, 209
[29]   Synchronous Responses of Plant Functional Traits to Nitrogen Deposition From Dominant Species to Functional Groups and Whole Communities in Alpine Grasslands on the Qinghai-Tibetan Plateau [J].
Li, Shuai ;
Zhao, Zhenzhen ;
Dong, Shikui ;
Shen, Hao ;
Xu, Yudan ;
Xiao, Jiannan ;
Gao, Xiaoxia ;
Wu, Shengnan ;
Stufkens, Paul .
FRONTIERS IN PLANT SCIENCE, 2022, 13
[30]   Chronic browsing by an introduced mammalian herbivore in a tropical island alters species composition and functional traits of forest understory plant communities [J].
Anujan, Krishna ;
Ratnam, Jayashree ;
Sankaran, Mahesh .
BIOTROPICA, 2022, 54 (05) :1248-1258