Hydraulic and Photosynthetic Performance of Antarctic Plants Under Successive Freeze-Thaw Cycles

被引:0
作者
Vallejos, Valentina [1 ,2 ,3 ]
Fuentes, Francisca [4 ]
Sancho-Knapik, Domingo [5 ]
Gago, Jorge [6 ]
Ramirez, Constanza F. [1 ,2 ,3 ]
Rivera, Betsy K. [4 ]
Cavieres, Lohengrin A. [3 ,7 ]
Galmes, Jeroni [6 ]
Peguero-Pina, Jose Javier [5 ]
Gil-Pelegrin, Eustaquio [8 ]
Saez, Patricia L. [3 ,4 ]
机构
[1] Univ Concepcion, Ctr Biotecnol, Lab Cult Tejidos Vegetales, Concepcion, Chile
[2] Univ Concepcion, Fac Ciencias Forestales, Concepcion, Chile
[3] Inst Ecol & Biodivers IEB, Concepcion, Chile
[4] Univ La Frontera, Fac Ciencias Agr & Medioambiente, Lab Fisiol & Biol Mol Vegetal, Inst Agroindustria,Dept Ciencias Agron & Recursos, Temuco, Chile
[5] Ctr Invest & Tecnol Agroalimentaria Aragon CITA, Dept Sistemas Agr Forestales & Medio Ambiente, Zaragoza, Spain
[6] Univ Concepcion, Fac Ciencias Nat & Oceanograf, Dept Bot, ECOBIOSIS, Concepcion, Chile
[7] Univ Illes Balears, INAGEA, Res Grp Plant Biol Mediterranean Condit, Balear Isl, Spain
[8] Consejo Super Invest Cient EEAD CSIC, Dept Biol Vegetal, Estn Expt Aula, Zaragoza, Spain
关键词
Antarctic vascular plants; climate change; Colobanthus quitensis; Deschampsia antarctica; freeze-thaw cycles; hydraulics; photosynthesis; PLASMA-MEMBRANE AQUAPORINS; MESOPHYLL CONDUCTANCE; LEAF ANATOMY; STOMATAL CONDUCTANCE; INDUCED EMBOLISM; VASCULAR PLANTS; WATER RELATIONS; XYLEM; CAVITATION; DROUGHT;
D O I
10.1111/pce.15528
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Climate change projections predict warming and increased weather variability, mainly in polar regions, altering freeze-thaw patterns. However, the effects of rising temperatures and more frequent freeze-thaw events on the water and CO2 management of Antarctic plants remain unclear. To address this, we conducted a laboratory experiment to investigate how growth temperature (5 degrees C and 15 degrees C) and successive freeze-thaw cycles influence the hydraulic and photosynthetic performance of Deschampsia antarctica (D. antarctica) and Colobanthus quitensis (C. quitensis). Our results showed that warmer conditions improved hydraulic and photosynthetic performance in both species, driven by anatomical adjustments in leaf xylem vessels. Additionally, plants exposed to successive freeze-thaw cycles exhibited a coordinated decline in whole-plant hydraulic conductivity and leaf gas exchange, regardless of growth temperature. The magnitude of changes (%) in photosynthetic traits after freeze-thaw cycles varied between species, with D. antarctica showing similar responses at both growth temperatures, while C. quitensis experienced more pronounced changes at the lower temperature. Overall, these findings suggest that while Antarctic plants benefit from warmer temperatures, repeated freeze-thaw events could disrupt their hydraulic balance and limit photosynthesis, particularly under natural environmental conditions.
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页数:13
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共 91 条
  • [81] Extreme Temperatures in the Antarctic
    Turner, John
    Lu, Hua
    King, John
    Marshall, Gareth J.
    Phillips, Tony
    Bannister, Dan
    Colwell, Steve
    [J]. JOURNAL OF CLIMATE, 2021, 34 (07) : 2653 - 2668
  • [82] VULNERABILITY OF XYLEM TO CAVITATION AND EMBOLISM
    TYREE, MT
    SPERRY, JS
    [J]. ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1989, 40 : 19 - 38
  • [83] Transient Effects of Snow Cover Duration on Primary Growth and Leaf Traits in a Tundra Shrub
    Unterholzner, Lucrezia
    Prendin, Angela Luisa
    Dibona, Raffaella
    Menardi, Roberto
    Casolo, Valentino
    Gargiulo, Sara
    Boscutti, Francesco
    Carrer, Marco
    [J]. FRONTIERS IN PLANT SCIENCE, 2022, 13
  • [84] IN-SITU ESTIMATION OF NET CO2 ASSIMILATION, PHOTOSYNTHETIC ELECTRON FLOW AND PHOTORESPIRATION IN TURKEY OAK (Q-CERRIS L) LEAVES - DIURNAL CYCLES UNDER DIFFERENT LEVELS OF WATER-SUPPLY
    VALENTINI, R
    EPRON, D
    DEANGELIS, P
    MATTEUCCI, G
    DREYER, E
    [J]. PLANT CELL AND ENVIRONMENT, 1995, 18 (06) : 631 - 640
  • [85] Plant xylem hydraulics: What we understand, current research, and future challenges
    Venturas, Martin D.
    Sperry, John S.
    Hacke, Uwe G.
    [J]. JOURNAL OF INTEGRATIVE PLANT BIOLOGY, 2017, 59 (06) : 356 - 389
  • [86] Differential coordination of stomatal conductance, mesophyll conductance, and leaf hydraulic conductance in response to changing light across species
    Xiong, Dongliang
    Douthe, Cyril
    Flexas, Jaume
    [J]. PLANT CELL AND ENVIRONMENT, 2018, 41 (02) : 436 - 450
  • [87] Leaf anatomy mediates coordination of leaf hydraulic conductance and mesophyll conductance to CO2 in Oryza
    Xiong, Dongliang
    Flexas, Jaume
    Yu, Tingting
    Peng, Shaobing
    Huang, Jianliang
    [J]. NEW PHYTOLOGIST, 2017, 213 (02) : 572 - 583
  • [88] Non-structural carbohydrate dynamics and growth in tomato plants grown at fluctuating light and temperature
    Zepeda, Ana Cristina
    Heuvelink, Ep
    Marcelis, Leo F. M.
    [J]. FRONTIERS IN PLANT SCIENCE, 2022, 13
  • [89] Research progress on the relationship between leaf senescence and quality, yield and stress resistance in horticultural plants
    Zhao, Wenxue
    Zhao, Huayuan
    Wang, Huasen
    He, Yong
    [J]. FRONTIERS IN PLANT SCIENCE, 2022, 13
  • [90] Zinta G., 2022, FRONT GENET, V13, DOI [10.3389/fgene.2022.909007, DOI 10.3389/fgene.2022.909007]