Visual pigments of Arctic charr (Salvelinus alpinus (L.)) and whitefish (Coregonus lavaretus (L.)) morphs in subarctic lakes

被引:0
作者
K. K. Kahilainen
T. Smura
R. Knudsen
P.-A. Amundsen
M. Jokela-Määttä
K. Donner
机构
[1] University of Helsinki,Kilpisjärvi Biological Station
[2] University of Helsinki,Department of Environmental Sciences
[3] University of Helsinki,Department of Biosciences
[4] UiT The Arctic University of Norway,Department of Arctic and Marine Biology
来源
Hydrobiologia | 2016年 / 783卷
关键词
Adaptive radiation; Ecological speciation; Niche; Eye; Light; Photoreceptors; Retina; Visual pigments;
D O I
暂无
中图分类号
学科分类号
摘要
Foraging trait specialization is important for polymorphic Arctic charr and whitefish, but visual capabilities of different morphs are unexplored. Photoreceptor complements and absorbance spectra of rod visual pigments were studied by microspectrophotometry in two sympatric Arctic charr morphs and three sympatric whitefish morphs from two subarctic lakes. Four spectral classes of photoreceptor cells, rods and three types of cones, were found in all morphs of both species. Arctic charr rods had a pure A1 pigment (rhodopsin) with wavelength of maximum absorbance λmax ≈ 511–512 nm and no significant differences either between littoral and profundal morphs or sampling times (January/August). Rods of littoral and pelagic whitefish had practically pure A2 pigment (porphyropsin), whereas profundal whitefish had chromophore mixtures with A2:A1 ≈ 0.8:0.2 in June, A1 decreasing to a smaller fraction in September. λmax values of littoral and pelagic whitefish rods were similar and did not change significantly with season (539.3 ± 0.3 nm/539.3 ± 1.1 nm and 538.4 ± 0.4/539.8 ± 0.3 nm in June/September) but differed from profundal whitefish (λmax = 531.5 ± 0.8/536.7 ± 1.0 nm). Differences between Arctic charr and whitefish morphs suggest importance of local light environment determining visual pigment composition.
引用
收藏
页码:223 / 237
页数:14
相关论文
共 226 条
  • [1] Aho AC(1988)Low retinal noise in animals with low body temperature allows high visual sensitivity Nature 334 348-350
  • [2] Donner K(2004)On the relation between the photoactivation energy and the absorbance spectrum of visual pigments Vision Research 44 2153-2158
  • [3] Hydén C(2004)Thermal activation and photoactivation of visual pigments Biophysical Journal 86 3653-3662
  • [4] Larsen LO(2007)Chromophore switch from 11- Journal of Physiology 585 57-74
  • [5] Reuter T(2009)-dehydroretinal (A2) to 11- Aquatic Ecology 43 765-775
  • [6] Ala-Laurila P(2004)-retinal (A1) decreases dark noise in salamander red rods Annales Zoologici Fennici 41 301-307
  • [7] Pahlberg J(2008)Winter ecology of Arctic charr ( Environmental Biology of Fishes 83 45-55
  • [8] Koskelainen A(1956)) and brown trout ( Journal of the Optical Society of America 46 634-639
  • [9] Donner K(1980)) in a subarctic lake, Norway Journal of Physiology 309 591-621
  • [10] Ala-Laurila P(2010)Resource competition and interactive segregation between sympatric whitefish morphs Philosophical Transactions of the Royal Society B 365 1783-1800