Anterior-Posterior Patterning in Lepidopteran Wings

被引:9
作者
McKenna, Kenneth Z. [1 ]
Kudla, Anna M. [2 ]
Nijhout, H. Frederik [2 ]
机构
[1] Univ Calif San Diego, Div Biol Sci, Sect Cellular & Dev Biol, La Jolla, CA 92093 USA
[2] Duke Univ, Dept Biol, Durham, NC 27706 USA
来源
FRONTIERS IN ECOLOGY AND EVOLUTION | 2020年 / 8卷
基金
美国国家科学基金会;
关键词
expression domains; pattern diversity; tails; color boundaries; nymphalid groundplan; PRECIS-COENIA LEPIDOPTERA; BUTTERFLY WINGS; IROQUOIS-COMPLEX; OPTOMOTOR-BLIND; IMAGINAL DISKS; COLOR PATTERN; EVOLUTION; EXPRESSION; HEDGEHOG; GRADIENT;
D O I
10.3389/fevo.2020.00146
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
The color patterns on the wings of butterflies and moths are among the most complex manifestations of pattern formation in nature. The complexities of these patterns arise from the diversification of a conserved set of homologous elements known as the Nymphalid Ground Plan that can change color, shift position, expand, or disappear altogether. Recent work has shown that the anterior-posterior (AP) axis of the butterfly wing may also have an important role in the development and evolution of wing-pattern diversity. Here we characterize the AP axis by mapping expression domains of key regulatory genes onto the wing. We show that the butterfly wing can be subdivided into four primary regions, with the boundaries of these domains arising at the positions of the M1, M3, and Cu2 wing-veins. We find that the correlation among variation in the border ocelli is strongest for those within the same domain. We show how these domains may be used to determine phenotypic outcomes by surveying the frequency of color boundaries, tail development, and wing shape discontinuities across five major butterfly families: Lycaenidae, Nymphalidae, Papilionidae, Pieridae, and Riodinidae. Of the more than 200 genera we surveyed in this study, color pattern discontinuities emerge most often at the boundary veins M1, M3, and Cu2, and shape discontinuities and tails at veins M3 and Cu2. These findings reveal a hitherto unrecognized mode of evolution of patterning in the Lepidoptera.
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页数:14
相关论文
共 71 条
[21]  
DAbrera B., 1980, Butterflies of the Afrotropical Region
[22]  
DABRERA B.L., 1984, Danaidae, Ithomiidae Heliconidae and Morphidae
[23]   Expanding the nymphalid groundplan's domain of applicability: pattern homologies in an arctiid moth (Utetheisa ornatrix) [J].
Gawne, Richard ;
Nijhout, H. Frederik .
BIOLOGICAL JOURNAL OF THE LINNEAN SOCIETY, 2019, 126 (04) :912-924
[24]   Gene Regulatory Network Homoplasy Underlies Recurrent Sexually Dimorphic Fruit Fly Pigmentation [J].
Hughes, Jesse T. ;
Williams, Melissa E. ;
Johnson, Rachel ;
Grover, Sumant ;
Rebeiz, Mark ;
Williams, Thomas M. .
FRONTIERS IN ECOLOGY AND EVOLUTION, 2020, 8
[25]   Recruitment of a hedgehog regulatory circuit in butterfly eyespot evolution [J].
Keys, DN ;
Lewis, DL ;
Selegue, JE ;
Pearson, BJ ;
Goodrich, LV ;
Johnson, RL ;
Gates, J ;
Scott, MP ;
Carroll, SB .
SCIENCE, 1999, 283 (5401) :532-534
[26]  
Komiya Yuko, 2008, Organogenesis, V4, P68
[27]   Control of pupal commitment in the imaginal disks of Precis coenia (Lepidoptera: Nymphalidae) [J].
Kremen, C ;
Nijhout, HF .
JOURNAL OF INSECT PHYSIOLOGY, 1998, 44 (3-4) :287-296
[28]  
Lecuit T, 1998, DEVELOPMENT, V125, P4901
[29]   Genomes of skipper butterflies reveal extensive convergence of wing patterns [J].
Li, Wenlin ;
Cong, Qian ;
Shen, Jinhui ;
Zhang, Jing ;
Hallwachs, Winnie ;
Janzen, Daniel H. ;
Grishin, Nick V. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2019, 116 (13) :6232-6237
[30]   Butterfly wings shaped by a molecular cookie cutter: evolutionary radiation of lepidopteran wing shapes associated with a derived Cut/wingless wing margin boundary system [J].
Macdonald, Warren P. ;
Martin, Arnaud ;
Reed, Robert D. .
EVOLUTION & DEVELOPMENT, 2010, 12 (03) :296-304