Habitat age influences metacommunity assembly and species richness in successional pond ecosystems

被引:26
作者
Sferra, Christopher O. [1 ]
Hart, Justin L. [2 ]
Howeth, Jennifer G. [1 ]
机构
[1] Univ Alabama, Dept Biol Sci, 1106 Bevill Bldg,Box 870206, Tuscaloosa, AL 35487 USA
[2] Univ Alabama, Dept Geog, 204 Farrah Hall,Box 870322, Tuscaloosa, AL 35487 USA
基金
美国国家科学基金会;
关键词
beaver pond; Castor canadensis; chronosequence; community assembly; dendrochronology; disturbance; diversity-age; metacommunity; secondary succession; zooplankton; MACROCARPA TREE-RINGS; FRESH-WATER; RED-RIVER; ZOOPLANKTON COMMUNITIES; FOREST SUCCESSION; SCALE-DEPENDENCE; FIELD-TEST; DISPERSAL; BEAVER; DIVERSITY;
D O I
10.1002/ecs2.1871
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Metacommunity theory suggests that species diversity can depend upon the time since initiation of community assembly, or habitat age, as the relative influence of regional and local structuring processes changes over succession. There are, however, few studies that evaluate the role of habitat age in structuring species richness (diversity-age) over large, fine-resolution age gradients of secondary succession in metacommunities. To test theoretical predictions of diversity-age relationships in metacommunities, zooplankton species richness and composition along a successional chronosequence in beaver (Castor canadensis) ponds were evaluated. The age of ponds was determined using dendrochronology and historical photography, and ranged from 23 to 69 yr of age. A unimodal relationship between zooplankton species richness and habitat age was observed among the successional ecosystems. This hump-shaped relationship with community assembly time is congruent with theoretical predictions of species richness in metacommunities and can be explained by the increasing importance of local, relative to regional, structuring processes over successional trajectories. Observed patterns of diversity and composition responded to age-mediated effects on the local pond environment; older ponds were deeper, had lower colored dissolved organic carbon, and were permanent. Additionally, there were weak but significant dispersal effects on community composition across the region. The lack of consistent community composition by successional stage reflected variation from differences in pond nutrient availability and species dispersal. The results indicate that regional and local age-dependent structuring mechanisms operate at each successional stage on different local colonist pools and environments yielding communities that reflect succession in their richness response. Consequently, secondary succession should be considered an influential driver of species diversity across temporal and spatial scales in metacommunities.
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页数:18
相关论文
共 114 条
[61]  
Marker AFH., 1980, Archiv fur Hydrobiologie Beihefte, V14, P52
[62]   Quantifying beaver dam dynamics and sediment retention using aerial imagery, habitat characteristics, and economic drivers [J].
Martin, Sherry L. ;
Jasinski, Briana L. ;
Kendall, Anthony D. ;
Dahl, Travis A. ;
Hyndman, David W. .
LANDSCAPE ECOLOGY, 2015, 30 (06) :1129-1144
[63]  
McCune B., 2011, PC ORD VERSION 6 255
[64]   Hydrogeomorphic effects of beaver dams in Glacier National Park, Montana [J].
Meentemeyer, RK ;
Butler, DR .
PHYSICAL GEOGRAPHY, 1999, 20 (05) :436-446
[65]   Is successional research nearing its climax? New approaches for understanding dynamic communities [J].
Meiners, Scott J. ;
Cadotte, Marc W. ;
Fridley, Jason D. ;
Pickett, Steward T. A. ;
Walker, Lawrence R. .
FUNCTIONAL ECOLOGY, 2015, 29 (02) :154-164
[66]   Zooplankton on the move: first results on the quantification of dispersal of zooplankton in a set of interconnected ponds [J].
Michels, E ;
Cottenie, K ;
Neys, L ;
De Meester, L .
HYDROBIOLOGIA, 2001, 442 (1-3) :117-126
[67]   Geographical and genetic distances among zooplankton populations in a set of interconnected ponds: a plea for using GIS modelling of the effective geographical distance [J].
Michels, E ;
Cottenie, K ;
Neys, L ;
De Gelas, K ;
Coppin, P ;
De Meester, L .
MOLECULAR ECOLOGY, 2001, 10 (08) :1929-1938
[68]  
MITCHELLOLDS T, 1987, EVOLUTION, V41, P1149, DOI [10.2307/2409084, 10.1111/j.1558-5646.1987.tb02457.x]
[69]  
Mittelbach GG, 2001, ECOLOGY, V82, P2381, DOI 10.1890/0012-9658(2001)082[2381:WITORB]2.0.CO
[70]  
2