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1 d using an enriched RAD marker array for the threespine stickleback.
2 a high-quality reference genome assembly for threespine sticklebacks.
3 known to control the corresponding traits in threespine sticklebacks.
4 s controlling armor plate patterning in wild threespine sticklebacks.
5 ontrols male or female sexual development in threespine sticklebacks.
6 how OP shape and size evolve and develop in threespine sticklebacks, a model system for understandin
7 Within each of two natural fish populations (threespine stickleback and Eurasian perch), among-indivi
8 l fish species, including zebrafish, medaka, threespine stickleback and fugu, the amphibian Xenopus t
9 nown about life-history plasticity in female threespine stickleback, considering four traits intimate
10 Here, we study adaptation of color vision in threespine stickleback during the repeated postglacial c
12 Previous cytogenetic studies suggested that threespine stickleback fish (Gasterosteus aculeatus) do
13 The postglacial adaptive radiation of the threespine stickleback fish (Gasterosteus aculeatus) has
14 rate that the frequency of completely plated threespine stickleback fish (Gasterosteus aculeatus) has
15 tains genes that contribute to speciation in threespine stickleback fish (Gasterosteus aculeatus).
16 fferentiation in a sympatric species pair of threespine stickleback fish by mapping the environment-d
17 Here, we leverage natural variation in the threespine stickleback fish Gasterosteus aculeatus to in
19 vic loss in different natural populations of threespine stickleback fish has occurred through regulat
20 quake, the phenotypes of resident freshwater threespine stickleback fish on at least three of these i
21 ions, we carried out genetic crosses between threespine stickleback fish with complete or missing pel
22 phalus solidus persistently infects 0-80% of threespine stickleback (Gasterosteus aculeatus) in lakes
23 m-level effects of adaptive radiation in the threespine stickleback (Gasterosteus aculeatus) over the
24 ciated with postglacial adaptation of marine threespine stickleback (Gasterosteus aculeatus) to fresh
28 in a periodic pigment pattern among juvenile threespine sticklebacks (Gasterosteus aculeatus) from di
29 s in three freshwater populations of Alaskan threespine stickleback, Gasterosteus aculeatus, that evo
30 able male F2 hybrids of benthic and limnetic threespine sticklebacks, Gasterosteus aculeatus Linnaeus
32 lly transplanted lake and stream ecotypes of threespine stickleback into lake and stream habitats, wh
33 t a stable polymorphism in the bony armor of threespine stickleback maintained with a deficit of hete
34 of several important traits is now known for threespine sticklebacks; thus, ninespine sticklebacks pr
35 itu hybridization (FISH), we report that the threespine stickleback Y chromosome is heteromorphic and
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