Home LiteratureArticle Details
PMID: 26038271 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Rapid response of leaf photosynthesis in two fern species Pteridium aquilinum and Thelypteris dentata to changes in CO2 measured by tunable diode laser absorption spectroscopy.

Journal of plant research ·Vol. 128 ·No. 5 ·2015-09-00 ·Pages 777-89

Nishida K, Kodama N, Yonemura S, Hanba YT

Abstract

We investigated stomatal conductance (g(s)) and mesophyll conductance (g(m)) in response to atmospheric CO2 concentration [CO2] in two primitive land plants, the fern species Pteridium aquilinum and Thelypteris dentata, using the concurrent measurement of leaf gas exchange and carbon isotope discrimination. [CO2] was initially decreased from 400 to 200 μmol mol(-1), and then increased from 200 to 700 μmol mol(-1), and finally decreased from 700 to 400 μmol mol(-1). Analysis by tunable diode laser absorption spectroscopy (TDLAS) revealed a rapid and continuous response in g m within a few minutes. In most cases, both ferns showed rapid and significant responses of g m to changes in [CO2]. The largest changes (quote % decrease) were obtained when [CO2] was decreased from 400 to 200 μmol mol(-1). This is in contrast to angiosperms where an increase in g(m) is commonly observed at low [CO2]. Similarly, fern species observed little or no response of g(s) to changes in [CO2] whereas, a concomitant decline of g(m) and g(s) with [CO2] is often reported in angiosperms. Together, these results suggest that regulation of g(m) to [CO2] may differ between angiosperms and ferns.

MeSH Terms
Carbon Dioxide/metabolism Ferns/metabolism Photosynthesis Plant Leaves/metabolism Pteridium/metabolism
Chemicals
Carbon Dioxide
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Nishida Keisuke
The Graduate School of Science, Kyoto Institute of Technology, Matsugasaki, Sakyo-ku, Kyoto, 606-8585, Japan, nishida-keisuke0725@hotmail.co.jp.
Kodama Naomi
Yonemura Seiichiro
Hanba Yuko T
References (36)
36 references, click to expand
  1. Theoretical Considerations when Estimating the Mesophyll Conductance to CO(2) Flux by Analysis of the Response of Photosynthesis to CO(2).
    Plant Physiol. 1992 Apr;98(4):1429-36 PMID: 16668811
  2. Evidence for involvement of photosynthetic processes in the stomatal response to CO2.
    Plant Physiol. 2006 Feb;140(2):771-8 PMID: 16407445
  3. On measuring the response of mesophyll conductance to carbon dioxide with the variable J method.
    J Exp Bot. 2012 Jan;63(1):413-25 PMID: 21914657
  4. Horsetails and ferns are a monophyletic group and the closest living relatives to seed plants.
    Nature. 2001 Feb 1;409(6820):618-22 PMID: 11214320
  5. Global chloroplast phylogeny and biogeography of bracken (Pteridium; Dennstaedtiaceae).
    Am J Bot. 2009 May;96(5):1041-9 PMID: 21628254
  6. Mesophyll conductance to CO2: current knowledge and future prospects.
    Plant Cell Environ. 2008 May;31(5):602-21 PMID: 17996013
  7. Estimating mesophyll conductance to CO2: methodology, potential errors, and recommendations.
    J Exp Bot. 2009;60(8):2217-34 PMID: 19357431
  8. Rapid variations of mesophyll conductance in response to changes in CO2 concentration around leaves.
    Plant Cell Environ. 2007 Oct;30(10):1284-98 PMID: 17727418
  9. Evolution of stomatal responsiveness to CO(2) and optimization of water-use efficiency among land plants.
    New Phytol. 2009 Aug;183(3):839-47 PMID: 19402882
  10. The stomata of the fern Adiantum capillus-veneris do not respond to CO2 in the dark and open by photosynthesis in guard cells.
    Plant Physiol. 2008 Jun;147(2):922-30 PMID: 18467462
  11. Mesophyll diffusion conductance to CO2: an unappreciated central player in photosynthesis.
    Plant Sci. 2012 Sep;193-194:70-84 PMID: 22794920
  12. Leaf functional anatomy in relation to photosynthesis.
    Plant Physiol. 2011 Jan;155(1):108-16 PMID: 21075960
  13. Temperature response of carbon isotope discrimination and mesophyll conductance in tobacco.
    Plant Cell Environ. 2013 Apr;36(4):745-56 PMID: 22882584
  14. Irradiance and phenotype: comparative eco-development of sun and shade leaves in relation to photosynthetic CO2 diffusion.
    J Exp Bot. 2006;57(2):343-54 PMID: 16356943
  15. Mesophyll conductance to CO₂, assessed from online TDL-AS records of ¹³CO₂ discrimination, displays small but significant short-term responses to CO₂ and irradiance in Eucalyptus seedlings.
    J Exp Bot. 2011 Nov;62(15):5335-46 PMID: 21841176
  16. Mesophyll conductance to CO(2) transport estimated by two independent methods: effect of variable CO(2) concentration and abscisic acid.
    J Exp Bot. 2009;60(8):2315-23 PMID: 19433478
  17. Using tunable diode laser spectroscopy to measure carbon isotope discrimination and mesophyll conductance to CO₂ diffusion dynamically at different CO₂ concentrations.
    Plant Cell Environ. 2011 Apr;34(4):580-91 PMID: 21251018
  18. A 40-million-year history of atmospheric CO(2).
    Philos Trans A Math Phys Eng Sci. 2013 Oct 28;371(2001):20130096 PMID: 24043869
  19. Variable mesophyll conductance revisited: theoretical background and experimental implications.
    Plant Cell Environ. 2012 Dec;35(12):2087-103 PMID: 22590996
  20. Assimilatory Power (Postillumination CO(2) Uptake) in Leaves: Measurement, Environmental Dependencies, and Kinetic Properties.
    Plant Physiol. 1984 Nov;76(3):723-9 PMID: 16663913
  21. Assessing the generality of global leaf trait relationships.
    New Phytol. 2005 May;166(2):485-96 PMID: 15819912
  22. Importance of leaf anatomy in determining mesophyll diffusion conductance to CO2 across species: quantitative limitations and scaling up by models.
    J Exp Bot. 2013 May;64(8):2269-81 PMID: 23564954
  23. Superimposed behaviour of gm under ABA-induced stomata closing and low CO2.
    Plant Cell Environ. 2015 Mar;38(3):385-7 PMID: 25158891
  24. Investigation of the freely available easy-to-use software 'EZR' for medical statistics.
    Bone Marrow Transplant. 2013 Mar;48(3):452-8 PMID: 23208313
  25. Low stomatal and internal conductance to CO2 versus Rubisco deactivation as determinants of the photosynthetic decline of ageing evergreen leaves.
    Plant Cell Environ. 2006 Dec;29(12):2168-84 PMID: 17081250
  26. Estimation of Mesophyll Conductance to CO(2) Flux by Three Different Methods.
    Plant Physiol. 1992 Apr;98(4):1437-43 PMID: 16668812
  27. Mesophyll conductance decreases in the wild type but not in an ABA-deficient mutant (aba1) of Nicotiana plumbaginifolia under drought conditions.
    Plant Cell Environ. 2015 Mar;38(3):388-98 PMID: 24995523
  28. Stomatal control as a driver of plant evolution.
    J Exp Bot. 2011 May;62(8):2419-23 PMID: 21576397
  29. Photosynthesis limitations in three fern species.
    Physiol Plant. 2013 Dec;149(4):599-611 PMID: 23692357
  30. Light and CO2 do not affect the mesophyll conductance to CO2 diffusion in wheat leaves.
    J Exp Bot. 2009;60(8):2291-301 PMID: 19255060
  31. The photosynthetic response of tobacco plants overexpressing ice plant aquaporin McMIPB to a soil water deficit and high vapor pressure deficit.
    J Plant Res. 2013 Jul;126(4):517-27 PMID: 23371744
  32. Influence of leaf dry mass per area, CO2, and irradiance on mesophyll conductance in sclerophylls.
    J Exp Bot. 2009;60(8):2303-14 PMID: 19286919
  33. Effects of HgCl(2) on CO(2) dependence of leaf photosynthesis: evidence indicating involvement of aquaporins in CO(2) diffusion across the plasma membrane.
    Plant Cell Physiol. 2002 Jan;43(1):70-8 PMID: 11828024
  34. Overexpression of the barley aquaporin HvPIP2;1 increases internal CO(2) conductance and CO(2) assimilation in the leaves of transgenic rice plants.
    Plant Cell Physiol. 2004 May;45(5):521-9 PMID: 15169933
  35. Diffusional limitations explain the lower photosynthetic capacity of ferns as compared with angiosperms in a common garden study.
    Plant Cell Environ. 2015 Mar;38(3):448-60 PMID: 24995519
  36. Phylogeny and evolution of ferns (monilophytes) with a focus on the early leptosporangiate divergences.
    Am J Bot. 2004 Oct;91(10):1582-98 PMID: 21652310
Article Info
Journal
Journal of plant research
Abbr.
J Plant Res
ISSN
1618-0860
Published
2015-09-00
Epub
2015-00-03
Pages
777-89
Language
English
Region
Japan
NLM ID
9887853
PMCID
PMC4550647
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com