Leaf functional and micro-morphological photoprotective attributes in two ecotypes of Colobanthus quitensis from the Andes and Maritime Antarctic

被引:26
作者
Bascunan-Godoy, Luisa [1 ,2 ]
Garcia-Plazaola, Jose I. [3 ]
Bravo, Leon A. [1 ]
Corcuera, Luis J. [1 ]
机构
[1] Univ Concepcion, Dept Bot, Fac Ciencias Nat & Oceanog, Concepcion, Chile
[2] Univ La Serena, Ctr Estudios Avanzados Zonas Aridas, La Serena, Chile
[3] Univ Basque Country, Dept Biol Vegetal & Ecol, E-48080 Bilbao, Spain
关键词
Antarctic plants; Andean plants; Ecotypes; Low temperatures stress; High light stress; Photoprotection strategies; MEMBRANE-PROTEIN DAMAGE; HARVESTING COMPLEX-II; LOW-TEMPERATURE; XANTHOPHYLL CYCLE; VASCULAR PLANTS; PHOTOSYSTEM-II; PHOTOSYNTHETIC PERFORMANCE; CHLOROPHYLL FLUORESCENCE; CHLOROPLAST MEMBRANES; COLD-ACCLIMATION;
D O I
10.1007/s00300-010-0765-4
中图分类号
X176 [生物多样性保护];
学科分类号
090705 ;
摘要
Colobanthus quitensis (Kunth) Bartl. (Cariophyllaceae) is distributed from Mexico to the Maritime Antarctic. It grows forming inconspicuous populations in humid and cold sites along high elevations in the Andes Mountains. Mediterranean Andes is characterized by a wider oscillation of diurnal and seasonal temperature, while the Maritime Antarctic is characterized by permanent low temperatures. Both places may experience high irradiance during sunny days (reaching up to 2,000 mu mol photons m(-2) s(-1)); however, the frequency of sunny days in the Maritime Antarctica is significantly lower (less than 20% of the whole growing season). We study whether acclimation to each environment relies on different photoprotective mechanisms. The Andean ecotype that has a longer growing season and a higher light integral reduces light absorption by the development of smaller chloroplasts with lower stacking granum area and down-regulation of Lhcb2. It also enhances the dissipation of the excess of absorbed energy by higher level of de-epoxidation of xanthophylls pool. On the other hand, the Antarctic ecotype which has developed under a shorter growing season, with lower total irradiance and continuous low temperatures, maximizes photochemical process even at low temperatures and it has a lower light-harvesting/core complex ratio and higher level of photoprotection supplied by an unusually high beta-carotene and xanthophylls cycle pool. It resembles a well full light acclimated plant, probably due to higher excitation pressure imposed by lower temperature even at moderate irradiance. It is suggested that the biochemical plasticity of this species, highlighted by the development of these different strategies, is essential to cope successfully with these particular environments.
引用
收藏
页码:885 / 896
页数:12
相关论文
共 53 条
[1]   PHOTOINHIBITION DURING WINTER STRESS - INVOLVEMENT OF SUSTAINED XANTHOPHYLL CYCLE-DEPENDENT ENERGY-DISSIPATION [J].
ADAMS, WW ;
DEMMIGADAMS, B ;
VERHOEVEN, AS ;
BARKER, DH .
AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY, 1995, 22 (02) :261-276
[2]   Ecophysiology of Antarctic vascular plants [J].
Alberdi, M ;
Bravo, LA ;
Gutiérrez, A ;
Gidekel, M ;
Corcuera, LJ .
PHYSIOLOGIA PLANTARUM, 2002, 115 (04) :479-486
[3]   PHOTOREGULATION OF THE COMPOSITION, FUNCTION, AND STRUCTURE OF THYLAKOID MEMBRANES [J].
ANDERSON, JM .
ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1986, 37 :93-136
[4]  
ANDERSSON B, 2006, PHOTOPROTECTION PHOT, P337
[5]  
ARNON DI, 1949, PLANT PHYSIOL, V24, P15
[6]   PHOTOINHIBITION OF PHOTOSYSTEM-2 - INACTIVATION, PROTEIN DAMAGE AND TURNOVER [J].
ARO, EM ;
VIRGIN, I ;
ANDERSSON, B .
BIOCHIMICA ET BIOPHYSICA ACTA, 1993, 1143 (02) :113-134
[7]   The water-water cycle in chloroplasts: Scavenging of active oxygens and dissipation of excess photons [J].
Asada, K .
ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1999, 50 :601-639
[8]   Low temperature regulates sucrose-phosphate synthase activity in Colobanthus quitensis (Kunth) Bartl. by decreasing its sensitivity to Pi and increased activation by glucose-6-phosphate [J].
Bascunan-Godoy, Luisa ;
Uribe, Elena ;
Zuniga-Feest, Alejandra ;
Corcuera, Luis J. ;
Bravo, Leon A. .
POLAR BIOLOGY, 2006, 29 (12) :1011-1017
[9]   CYCLIC PHOTOPHOSPHORYLATION AND ELECTRON-TRANSPORT [J].
BENDALL, DS ;
MANASSE, RS .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 1995, 1229 (01) :23-38
[10]   Cold Hardiness in Antarctic Vascular Plants [J].
Bravo, L. A. ;
Bascunan-Godoy, L. ;
Perez-Torres, E. ;
Corcuera, L. J. .
PLANT COLD HARDINESS: FROM THE LABORATORY TO THE FIELD, 2009, :198-213