Beta diversity of plant species in human-transformed landscapes: Control of community assembly by regional productivity and historical connectivity

Publikation: Beiträge in ZeitschriftenZeitschriftenaufsätzeForschungbegutachtet

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Beta diversity of plant species in human-transformed landscapes: Control of community assembly by regional productivity and historical connectivity. / Conradi, Timo; Temperton, Victoria Martine; Kollmann, Johannes.
in: Perspectives in Plant Ecology, Evolution and Systematics, Jahrgang 24, 01.02.2017, S. 1-10.

Publikation: Beiträge in ZeitschriftenZeitschriftenaufsätzeForschungbegutachtet

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@article{8fdfdedb725c41e396225f63277c6a78,
title = "Beta diversity of plant species in human-transformed landscapes: Control of community assembly by regional productivity and historical connectivity",
abstract = "Spatial variation in species composition ({\textquoteleft}beta diversity{\textquoteright}) is comprised of two components, spatial turnover and nestedness. Disentangling the drivers of each component allows a refined evaluation of the community assembly mechanisms that generate regional diversity patterns. This study examines how environmental sorting as well as past and present dispersal processes regulate spatial turnover and nestedness of plant species in human-transformed grassland landscapes, and whether the relative importance of these drivers varies among two landscapes with contrasting regional soil productivity. We found that nestedness always resulted from differences in historical connectivity to the characteristic species pool of pre-transformed calcareous grassland landscapes, irrespective of regional productivity. This was probably due to dispersal limitation of numerous species from this rich species pool under current landscape configuration and management, the absence of which cannot be compensated for by contemporary immigration rates in modern landscapes. By contrast, spatial turnover was driven by opposing mechanisms in nutrient-rich vs. nutrient-poor landscapes. In the landscape with low soil fertility due to phosphorous (P) limitation, spatial turnover was generated by variation in past and present dispersal processes. In the fertile landscape, species turnover was driven by environmental factors and increased mainly with differences in P and nitrate supply. The findings are consistent with theoretical considerations and empirical evidence from small-scale experiments that often find a reduced importance of dispersal at higher soil resource supply, showing that this pattern also manifests at the landscape scale. In summary, our study indicates that contrasting assembly mechanisms generate spatial compositional turnover in landscapes with contrasting soil conditions, which has significant implications for conservation and habitat restoration. It also demonstrates that detailed reconstructions of the land-use history of individual sites and their surroundings are critical for understanding beta diversity in human-transformed landscapes.",
keywords = "Ecosystems Research, Calcareous grasslands, Environmental filtering, Habitat fragmentation, Metacommunity, Nestedness, Species pools",
author = "Timo Conradi and Temperton, {Victoria Martine} and Johannes Kollmann",
year = "2017",
month = feb,
day = "1",
doi = "10.1016/j.ppees.2016.10.001",
language = "English",
volume = "24",
pages = "1--10",
journal = "Perspectives in Plant Ecology, Evolution and Systematics",
issn = "1433-8319",
publisher = "Elsevier GmbH",

}

RIS

TY - JOUR

T1 - Beta diversity of plant species in human-transformed landscapes

T2 - Control of community assembly by regional productivity and historical connectivity

AU - Conradi, Timo

AU - Temperton, Victoria Martine

AU - Kollmann, Johannes

PY - 2017/2/1

Y1 - 2017/2/1

N2 - Spatial variation in species composition (‘beta diversity’) is comprised of two components, spatial turnover and nestedness. Disentangling the drivers of each component allows a refined evaluation of the community assembly mechanisms that generate regional diversity patterns. This study examines how environmental sorting as well as past and present dispersal processes regulate spatial turnover and nestedness of plant species in human-transformed grassland landscapes, and whether the relative importance of these drivers varies among two landscapes with contrasting regional soil productivity. We found that nestedness always resulted from differences in historical connectivity to the characteristic species pool of pre-transformed calcareous grassland landscapes, irrespective of regional productivity. This was probably due to dispersal limitation of numerous species from this rich species pool under current landscape configuration and management, the absence of which cannot be compensated for by contemporary immigration rates in modern landscapes. By contrast, spatial turnover was driven by opposing mechanisms in nutrient-rich vs. nutrient-poor landscapes. In the landscape with low soil fertility due to phosphorous (P) limitation, spatial turnover was generated by variation in past and present dispersal processes. In the fertile landscape, species turnover was driven by environmental factors and increased mainly with differences in P and nitrate supply. The findings are consistent with theoretical considerations and empirical evidence from small-scale experiments that often find a reduced importance of dispersal at higher soil resource supply, showing that this pattern also manifests at the landscape scale. In summary, our study indicates that contrasting assembly mechanisms generate spatial compositional turnover in landscapes with contrasting soil conditions, which has significant implications for conservation and habitat restoration. It also demonstrates that detailed reconstructions of the land-use history of individual sites and their surroundings are critical for understanding beta diversity in human-transformed landscapes.

AB - Spatial variation in species composition (‘beta diversity’) is comprised of two components, spatial turnover and nestedness. Disentangling the drivers of each component allows a refined evaluation of the community assembly mechanisms that generate regional diversity patterns. This study examines how environmental sorting as well as past and present dispersal processes regulate spatial turnover and nestedness of plant species in human-transformed grassland landscapes, and whether the relative importance of these drivers varies among two landscapes with contrasting regional soil productivity. We found that nestedness always resulted from differences in historical connectivity to the characteristic species pool of pre-transformed calcareous grassland landscapes, irrespective of regional productivity. This was probably due to dispersal limitation of numerous species from this rich species pool under current landscape configuration and management, the absence of which cannot be compensated for by contemporary immigration rates in modern landscapes. By contrast, spatial turnover was driven by opposing mechanisms in nutrient-rich vs. nutrient-poor landscapes. In the landscape with low soil fertility due to phosphorous (P) limitation, spatial turnover was generated by variation in past and present dispersal processes. In the fertile landscape, species turnover was driven by environmental factors and increased mainly with differences in P and nitrate supply. The findings are consistent with theoretical considerations and empirical evidence from small-scale experiments that often find a reduced importance of dispersal at higher soil resource supply, showing that this pattern also manifests at the landscape scale. In summary, our study indicates that contrasting assembly mechanisms generate spatial compositional turnover in landscapes with contrasting soil conditions, which has significant implications for conservation and habitat restoration. It also demonstrates that detailed reconstructions of the land-use history of individual sites and their surroundings are critical for understanding beta diversity in human-transformed landscapes.

KW - Ecosystems Research

KW - Calcareous grasslands

KW - Environmental filtering

KW - Habitat fragmentation

KW - Metacommunity

KW - Nestedness

KW - Species pools

UR - http://www.scopus.com/inward/record.url?scp=84995757557&partnerID=8YFLogxK

UR - https://www.mendeley.com/catalogue/5f0da668-f586-3705-a37e-85e6b2eabc0f/

U2 - 10.1016/j.ppees.2016.10.001

DO - 10.1016/j.ppees.2016.10.001

M3 - Journal articles

AN - SCOPUS:84995757557

VL - 24

SP - 1

EP - 10

JO - Perspectives in Plant Ecology, Evolution and Systematics

JF - Perspectives in Plant Ecology, Evolution and Systematics

SN - 1433-8319

ER -

DOI

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