A critical review of adaptive genetic variation in Atlantic salmon: implications for conservation

被引:339
作者
Garcia de Leaniz, C. [1 ]
Fleming, I. A.
Einum, S.
Verspoor, E.
Jordan, W. C.
Consuegra, S.
Aubin-Horth, N.
Lajus, D.
Letcher, B. H.
Youngson, A. F.
Webb, J. H.
Vollestad, L. A.
Villanueva, B.
Ferguson, A.
Quinn, T. P.
机构
[1] Univ Coll Swansea, Dept Sci Biol, Swansea SA2 8PP, W Glam, Wales
[2] Ctr Ocean Sci, St John, NF AC1 5S7, Canada
[3] Norwegian Inst Nat Res, NO-7485 Trondheim, Norway
[4] FRS, Freshwater Lab, Pitlochry PH16 5LB, Perth, Scotland
[5] Zool Soc London, Inst Zool, London NW1 4RY, England
[6] Univ Montreal, Dept Sci Biol, Montreal, PQ H2V 2S9, Canada
[7] St Petersburg State Univ, Fac Biol & Soil Sci, St Petersburg 199178, Russia
[8] US Geol Survey, Biol Resources Div, Turners Falls, MA 01376 USA
[9] Atlantic Salmon Trust, Pitlochry PH16 5JQ, Perth, Scotland
[10] Univ Oslo, Dept Biol, N-0316 Oslo, Norway
[11] Scottish Agr Coll, Penicuik EH26 0PH, Midlothian, Scotland
[12] Queens Univ Belfast, Sch Biol & Biochem, Belfast BT9 7BL, Antrim, North Ireland
[13] Univ Washington, Sch Aquat & Fishery Sci, Seattle, WA 98195 USA
关键词
adaptive variation; local adaptation; heritabilities; phenotypic plasticity; genotype-by-environment interaction; fitness; conservation; Atlantic salmon; salmonids;
D O I
10.1111/j.1469-185X.2006.00004.x
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Here we critically review the scale and extent of adaptive genetic variation in Atlantic salmon (Salmo salar L.), an important model system in evolutionary and conservation biology that provides fundamental insights into population persistence, adaptive response and the effects of anthropogenic change. We consider the process of adaptation as the end product of natural selection, one that can best be viewed as the degree of matching between phenotype and environment. We recognise three potential sources of adaptive variation: heritable variation in phenotypic traits related to fitness, variation at the molecular level in genes influenced by selection, and variation in the way genes interact with the environment to produce phenotypes of varying plasticity. Of all phenotypic traits examined, variation in body size (or in correlated characters such as growth rates, age of seaward migration or age at sexual maturity) generally shows the highest heritability, as well as a strong effect on fitness. Thus, body size in Atlantic salmon tends to be positively correlated with freshwater and marine survival, as well as with fecundity, egg size, reproductive success, and offspring survival. By contrast, the fitness implications of variation in behavioural traits such as aggression, sheltering behaviour, or timing of migration are largely unkown. The adaptive significance of molecular variation in salmonids is also scant and largely circumstantial, despite extensive molecular screening on these species. Adaptive variation can result in local adaptations (LA) when, among other necessary conditions, populations live in patchy environments, exchange few or no migrants, and are subjected to differential selective pressures. Evidence for LA in Atlantic salmon is indirect and comes mostly from ecological correlates in fitness-related traits, the failure of many translocations, the poor performance of domesticated stocks, results of a few common-garden experiments (where different populations were raised in a common environment in an attempt to dissociate heritable from environmentally induced phenotypic variation), and the pattern of inherited resistance to some parasites and diseases. Genotype x environment interactions occurr for many fitness traits, suggesting that LA might be important. However, the scale and extent of adaptive variation remains poorly understood and probably varies, depending on habitat heterogeneity, environmental stability and the relative roles of selection and drift. As maladaptation often results from phenotype-environment mismatch, we argue that acting as if populations are not locally adapted carries a much greater risk of mismanagement than acting under the assumption for local adaptations when there are none. As such, an evolutionary approach to salmon conservation is required, aimed at maintaining the conditions necessary for natural selection to operate most efficiently and unhindered. This may require minimising alterations to native genotypes and habitats to which populations have likely become adapted, but also allowing for population size to reach or extend beyond carrying capacity to encourage competition and other sources of natural mortality.
引用
收藏
页码:173 / 211
页数:39
相关论文
共 50 条
[41]   Temporal and spatial instability in neutral and adaptive (MHC) genetic variation in marginal salmon populations [J].
Ciborowski, Kate ;
Jordan, William C. ;
de Leaniz, Carlos Garcia ;
Consuegra, Sofia .
SCIENTIFIC REPORTS, 2017, 7
[42]   Selection against individuals from genetic introgression of escaped farmed salmon in a natural population of Atlantic salmon [J].
Wacker, Sebastian ;
Aronsen, Tonje ;
Karlsson, Sten ;
Ugedal, Ola ;
Diserud, Ola H. ;
Ulvan, Eva M. ;
Hindar, Kjetil ;
Naesje, Tor F. .
EVOLUTIONARY APPLICATIONS, 2021, 14 (05) :1450-1460
[43]   Implications of Large-Effect Loci for Conservation: A Review and Case Study with Pacific Salmon [J].
Waples, Robin S. ;
Ford, Michael J. ;
Nichols, Krista ;
Kardos, Marty ;
Myers, Jim ;
Thompson, Tasha Q. ;
Anderson, Eric C. ;
Koch, Ilana J. ;
McKinney, Garrett ;
Miller, Michael R. ;
Naish, Kerry ;
Narum, Shawn R. ;
O'Malley, Kathleen G. ;
Pearse, Devon E. ;
Pess, George R. ;
Quinn, Thomas P. ;
Seamons, Todd R. ;
Spidle, Adrian ;
Warheit, Kenneth, I ;
Willis, Stuart C. .
JOURNAL OF HEREDITY, 2022, 113 (02) :121-144
[44]   Temporal and spatial variation in growth of juvenile Atlantic salmon [J].
Arnekleiv, JV ;
Finstad, AG ;
Ronning, L .
JOURNAL OF FISH BIOLOGY, 2006, 68 (04) :1062-1076
[45]   Genetic variation in threshold reaction norms for alternative reproductive tactics in male Atlantic salmon, Salmo salar [J].
Piche, Jacinthe ;
Hutchings, Jeffrey A. ;
Blanchard, Wade .
PROCEEDINGS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2008, 275 (1642) :1571-1575
[46]   GENETIC PROTEIN VARIATION AND NATURAL-SELECTION IN ATLANTIC SALMON (SALMO-SALAR L) PARR [J].
JORDAN, WC ;
YOUNGSON, AF .
JOURNAL OF FISH BIOLOGY, 1991, 39 :185-192
[47]   Evaluation of a river classification system as a conservation measure in the management of Atlantic salmon in Insular Newfoundland [J].
Veinott, G. ;
Cochrane, N. ;
Dempson, J. B. .
FISHERIES MANAGEMENT AND ECOLOGY, 2013, 20 (05) :454-459
[48]   Half a century of genetic interaction between farmed and wild Atlantic salmon: Status of knowledge and unanswered questions [J].
Glover, Kevin A. ;
Solberg, Monica F. ;
McGinnity, Phil ;
Hindar, Kjetil ;
Verspoor, Eric ;
Coulson, Mark W. ;
Hansen, Michael M. ;
Araki, Hitoshi ;
Skaala, Oystein ;
Svasand, Terje .
FISH AND FISHERIES, 2017, 18 (05) :890-927
[49]   Genetic variation in westslope cutthroat trout Oncorhynchus clarkii lewisi: implications for conservation [J].
Daniel P. Drinan ;
Steven T. Kalinowski ;
Ninh V. Vu ;
Bradley B. Shepard ;
Clint C. Muhlfeld ;
Matthew R. Campbell .
Conservation Genetics, 2011, 12 :1513-1523
[50]   Genetic variation in westslope cutthroat trout Oncorhynchus clarkii lewisi: implications for conservation [J].
Drinan, Daniel P. ;
Kalinowski, Steven T. ;
Vu, Ninh V. ;
Shepard, Bradley B. ;
Muhlfeld, Clint C. ;
Campbell, Matthew R. .
CONSERVATION GENETICS, 2011, 12 (06) :1513-1523