Freshwater Biodiversity and Aquatic Insect Diversification

被引:172
作者
Dijkstra, Klaas-Douwe B. [1 ,2 ]
Monaghan, Michael T. [3 ]
Pauls, Steffen U. [4 ,5 ,6 ]
机构
[1] Nat Biodivers Ctr, NL-2300 RA Leiden, Netherlands
[2] Univ Museum Zool, Cambridge CB2 3EJ, England
[3] Leibniz Inst Freshwater Ecol & Inland Fisheries I, D-12587 Berlin, Germany
[4] Biodivers & Climate Res Ctr, D-60325 Frankfurt, Germany
[5] Senckenberg Res Inst, D-60325 Frankfurt, Germany
[6] Nat Hist Museum Frankfurt, D-60325 Frankfurt, Germany
来源
ANNUAL REVIEW OF ENTOMOLOGY, VOL 59, 2014 | 2014年 / 59卷
基金
奥地利科学基金会;
关键词
aquatic habitats; ecology; phylogenetics; adaptation; speciation; POPULATION GENETIC-STRUCTURE; DIVING BEETLES COLEOPTERA; WING SHAPE EVOLUTION; GLOBAL DIVERSITY; SEXUAL SELECTION; PHYLOGENETIC ANALYSIS; ANOPHELES-GAMBIAE; HABITAT TYPE; CADDISFLIES TRICHOPTERA; MAYFLIES EPHEMEROPTERA;
D O I
10.1146/annurev-ento-011613-161958
中图分类号
Q96 [昆虫学];
学科分类号
摘要
Inland waters cover less than 1% of Earth's surface but harbor more than 6% of all insect species: Nearly 100,000 species from 12 orders spend one or more life stages in freshwater. Little is known about how this remarkable diversity arose, although allopatric speciation and ecological adaptation are thought to be primary mechanisms. Freshwater habitats are highly susceptible to environmental change and exhibit marked ecological gradients. Standing waters appear to harbor more dispersive species than running waters, but there is little understanding of how this fundamental ecological difference has affected diversification. In contrast to the lack of evolutionary studies, the ecology and habitat preferences of aquatic insects have been intensively studied, in part because of their widespread use as bioindicators. The combination of phylogenetics with the extensive ecological data provides a promising avenue for future research, making aquatic insects highly suitable models for the study of ecological diversification.
引用
收藏
页码:143 / 163
页数:21
相关论文
共 144 条
[71]   Habitat type predicts genetic population differentiation in freshwater invertebrates [J].
Marten, Andreas ;
Braendle, Martin ;
Brandl, Roland .
MOLECULAR ECOLOGY, 2006, 15 (09) :2643-2651
[72]   Ecological speciation in phytophagous insects [J].
Matsubayashi, Kei W. ;
Ohshima, Issei ;
Nosil, Patrik .
ENTOMOLOGIA EXPERIMENTALIS ET APPLICATA, 2010, 134 (01) :1-27
[73]   Why are there so many insect species? Perspectives from fossils and phylogenies [J].
Mayhew, Peter J. .
BIOLOGICAL REVIEWS, 2007, 82 (03) :425-454
[74]   ONSET OF GLACIATION DROVE SIMULTANEOUS VICARIANT ISOLATION OF ALPINE INSECTS IN NEW ZEALAND [J].
McCulloch, Graham A. ;
Wallis, Graham P. ;
Waters, Jonathan M. .
EVOLUTION, 2010, 64 (07) :2033-2043
[75]   The tempo and mode of three-dimensional morphological evolution in male reproductive structures [J].
McPeek, Mark A. ;
Shen, Li ;
Torrey, John Z. ;
Farid, Hany .
AMERICAN NATURALIST, 2008, 171 (05) :E158-E178
[76]   The evolution of female mating preferences: Differentiation from species with promiscuous males can promote speciation [J].
McPeek, Mark A. ;
Gavrilets, Sergey .
EVOLUTION, 2006, 60 (10) :1967-1980
[77]   SPECIES RECOGNITION AND PATTERNS OF POPULATION VARIATION IN THE REPRODUCTIVE STRUCTURES OF A DAMSELFLY GENUS [J].
McPeek, Mark A. ;
Symes, Laurel B. ;
Zong, Denise M. ;
McPeek, Curtis L. .
EVOLUTION, 2011, 65 (02) :419-428
[78]   Insular radiation of the genus Hydropsyche (Insecta, Trichoptera: Hydropsychidae) Pictet, 1834 in the Philippines and its implications for the biogeography of Southeast Asia [J].
Mey, W .
JOURNAL OF BIOGEOGRAPHY, 2003, 30 (02) :227-236
[79]   The phylogeny of diving beetles (Coleoptera: Dytiscidae) and the evolution of sexual conflict [J].
Miller, KB .
BIOLOGICAL JOURNAL OF THE LINNEAN SOCIETY, 2003, 79 (03) :359-388
[80]   Diversity of Anisoptera (Odonata): Infering speciation processes from patterns of morphological diversity [J].
Misof, B .
ZOOLOGY, 2002, 105 (04) :355-365