Literature DB >> 28117907

Surface-water dynamics and land use influence landscape connectivity across a major dryland region.

Robbi Bishop-Taylor1, Mirela G Tulbure1, Mark Broich1.   

Abstract

Landscape connectivity is important for the long-term persistence of species inhabiting dryland freshwater ecosystems, with spatiotemporal surface-water dynamics (e.g., flooding) maintaining connectivity by both creating temporary habitats and providing transient opportunities for dispersal. Improving our understanding of how landscape connectivity varies with respect to surface-water dynamics and land use is an important step to maintaining biodiversity in dynamic dryland environments. Using a newly available validated Landsat TM and ETM+ surface-water time series, we modelled landscape connectivity between dynamic surface-water habitats within Australia's 1 million km2 semiarid Murray Darling Basin across a 25-yr period (1987-2011). We identified key habitats that serve as well-connected "hubs," or "stepping-stones" that allow long-distance movements through surface-water habitat networks. We compared distributions of these habitats for short- and long-distance dispersal species during dry, average, and wet seasons, and across land-use types. The distribution of stepping-stones and hubs varied both spatially and temporally, with temporal changes driven by drought and flooding dynamics. Conservation areas and natural environments contained higher than expected proportions of both stepping-stones and hubs throughout the time series; however, highly modified agricultural landscapes increased in importance during wet seasons. Irrigated landscapes contained particularly high proportions of well-connected hubs for long-distance dispersers, but remained relatively disconnected for less vagile organisms. The habitats identified by our study may serve as ideal high-priority targets for land-use specific management aimed at maintaining or improving dispersal between surface-water habitats, potentially providing benefits to biodiversity beyond the immediate site scale. Our results also highlight the importance of accounting for the influence of spatial and temporal surface-water dynamics when studying landscape connectivity within highly variable dryland environments.
© 2017 by the Ecological Society of America.

Entities:  

Keywords:  Australia; Landsat; Murray-Darling Basin; flooding; graph theory; land use; landscape connectivity; protected areas; surface-water dynamics; wetlands

Mesh:

Year:  2017        PMID: 28117907     DOI: 10.1002/eap.1507

Source DB:  PubMed          Journal:  Ecol Appl        ISSN: 1051-0761            Impact factor:   4.657


  2 in total

1.  Coupling environment and physiology to predict effects of climate change on the taxonomic and functional diversity of fish assemblages in the Murray-Darling Basin, Australia.

Authors:  Anielly Galego de Oliveira; Dayani Bailly; Fernanda A S Cassemiro; Edivando Vitor do Couto; Nick Bond; Dean Gilligan; Thiago F Rangel; Angelo Antonio Agostinho; Mark J Kennard
Journal:  PLoS One       Date:  2019-11-27       Impact factor: 3.240

2.  Resilience to drought of dryland wetlands threatened by climate change.

Authors:  Steven G Sandi; Jose F Rodriguez; Neil Saintilan; Li Wen; George Kuczera; Gerardo Riccardi; Patricia M Saco
Journal:  Sci Rep       Date:  2020-08-06       Impact factor: 4.379

  2 in total

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