Steady-state stomatal responses of C


Journal

Plant, cell & environment
ISSN: 1365-3040
Titre abrégé: Plant Cell Environ
Pays: United States
ID NLM: 9309004

Informations de publication

Date de publication:
12 2020
Historique:
received: 22 04 2020
accepted: 09 09 2020
pubmed: 16 9 2020
medline: 3 6 2021
entrez: 15 9 2020
Statut: ppublish

Résumé

Blue light induced stomatal opening has been studied by applying a short pulse (~5 to 60 s) of blue light to a background of saturating photosynthetic red photons, but little is known about steady-state stomatal responses. Here we report stomatal responses to blue light at high and low CO

Identifiants

pubmed: 32929764
doi: 10.1111/pce.13888
doi:

Substances chimiques

Carbon Dioxide 142M471B3J

Types de publication

Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S.

Langues

eng

Sous-ensembles de citation

IM

Pagination

3020-3032

Subventions

Organisme : NASA
ID : NASA-CUBES project award number NNX17AJ31G
Pays : United States

Informations de copyright

© 2020 John Wiley & Sons Ltd.

Références

Assmann, S. M. (1988). Enhancement of the stomatal response to blue light by red light, reduced intercellular concentrations of CO2, and low vapor pressure differences. Plant Physiology, 87, 226-231.
Assmann, S. M., Simoncini, L., & Schroeder, J. I. (1985). Blue light activates electrogenic ion pumping in guard cell protoplasts of Vicia faba. Nature, 318, 285-287.
Brodersen, C. R., & Vogelmann, T. C. (2010). Do changes in light direction affect absorption profile in leaves. Functional Plant Biology, 37, 403-412.
Brogårdh, T. (1975). Regulation of transpiration in Avena. Responses to red and blue light steps. Physiologia Plantarum, 35, 303-309.
Chen, Z., Chen, G., Dai, F., Wang, Y., Hills, A., Ruan, Y.-L., … Blatt, M. R. (2017). Molecular evolution of grass stomata. Trends in Plant Science, 22, 124-139.
Demmig-Adams, B., Cohu, C. M., Muller, O., & Adams, W. W., III. (2012). Modulation of photosynthetic energy conversion in nature: From seconds to seasons. Photosynthesis Research, 113, 75-88.
Frank, H. A., & Cogdell, R. J. (1996). Carotenoids in photosynthesis. Photochemistry and Photobiology, 63, 257-264.
Franks, J., & Farquhar, G. D. (2007). The mechanical diversity of stomata and its significance in gas-exchange control. Plant Physiology, 143, 78-87.
Ghannoum, O., von Caemmerer, S., Ziska, L. H., & Conroy, J. P. (2000). The growth response of C4 plants to rising atmospheric CO2 partial pressure: A reassessment. Plant, Cell and Environment, 23, 931-942.
Gotoh, E., Oiwamoto, K., Inoue, S., Shimazaki, K., & Doi, M. (2019). Stomatal response to blue light in crassulacean acid metabolism plants Kalanchoe pinnata and Kalanchoe daigremontiana. Journal of Experimental Botany, 70, 1367-1374.
Gould, K. S., Vogelmann, T. C., Han, T., & Clearwater, M. J. (2002). Profiles of photosynthesis within red and green leaves of Quintinia serrata. Physiologia Plantarum, 116, 127-133.
Grantz, D. A., & Assmann, S. M. (1991). Stomatal response to blue light: Water use efficiency in sugarcane and soybean. Plant, Cell and Environment, 14, 683-690.
Haupt, W., & Scheuerlein, R. (1990). Chloroplast movement. Plant, Cell and Environment, 13, 595-614.
Hetherington, A. M., & Woodward, F. I. (2003). The role of stomata in sensing and driving environmental change. Nature, 424, 901-908.
Hogewoning, S. W., Wientjes, E., Douwstra, P., Trouwborst, G., van Ieperen, W., Groce, R., & Harbinson, J. (2012). Photosynthetic quantum yield dynamics: From photosystems to leaves. Plant Cell, 24, 1921-1935.
Inoue, S., & Kinoshita, T. (2017). Blue light regulation of stomatal opening and the plasma membrane H+-ATPase. Plant Physiology, 174, 531-538.
Jarillo, J. A., Gabrys, H., Capel, J., Alonso, J. M., Ecker, J. R., & Cashmore, A. R. (2001). Phototropin-related NPL1 controls chloroplast relocation induced by blue light. Nature, 410, 952-954.
Kagawa, T., Sakai, T., Suetsugu, N., Oikawa, K., Ishiguro, S., Kato, T., … Wada, M. (2001). Arabidopsis NPL1: A phototropin homolog controlling the chloroplast high-light avoidance response. Science, 291, 2138-2141.
Karlsson, P. E. (1986). Blue light regulation of stomata in wheat seedlings. I. Influence of red background illumination and initial conductance level. Physiologia Plantarum, 66, 202-206.
Kasahara, M., Kagawa, T., Oikawa, K., Suetsugu, N., Miyao, M., & Wada, M. (2002). Chloroplast avoidance movement reduces photodamage in plants. Nature, 420, 829-832.
Knapp, A. K. (1993). Gas exchange dynamics in C3 and C4 grasses: Consequences of differences in stomatal conductance. Ecology, 73, 113-123.
Laisk, A., Oja, V., Eichelmann, H., & Dall'Osto, L. (2014). Action spectra of photosystems II and I and quantum yield of photosynthesis in leaves in state 1. Biochimica et Biophysica Acta, 1837, 315-325.
Lawson, T., & Blatt, M. R. (2014). Stomatal size, speed, and responsiveness impact on photosynthesis and water use efficiency. Plant Physiology, 164, 1556-1570.
Leakey, A. D. B. (2009). Rising atmospheric carbon dioxide concentration and the future of C4 crops for food and fuel. Proceedings of the Royal Society B, 276, 2333-2343.
Leakey, A. D. B., Ferguson, J. N., Pignon, C. P., Wu, A., Jin, Z., Hammer, G. L., & Lobell, D. B. (2019). Water use efficiency as a constraint and target for improving the resilience and productivity of C3 and C4 crops. Annual Review of Plant Biology, 70, 781-808.
Matthews, J. S. A., Vialet-Chabrand, S., & Lawson, T. (2020). Role of blue and red light in stomatal dynamic behavior. Journal of Experimental Botany, 71, 2253-2269.
McAusland, L., Vialet-Chabrand, S., Davey, P., Baker, N. R., Brendel, O., & Lawson, T. (2016). Effects of kinetics of light-induced stomatal responses on photosynthesis and water use efficiency. New Phytologist, 211, 1209-1220.
McCree, K. J. (1972). The action spectrum, absorptance and quantum yield of photosynthesis in crop plants. Agricultural Meteorology, 9, 191-216.
Mott, K. A. (2007). Leaf hydraulic conductivity and stomatal responses to humidity in amphistomatous leaves. Plant, Cell and Environment, 30, 1444-1449.
Mott, K. A. (2009). Stomatal responses to light and CO2 depend on the mesophyll. Plant, Cell and Environment, 32, 1479-1486.
Mott, K. A., Sibbernsen, E. D., & Shope, J. C. (2008). The role of the mesophyll in stomatal responses to light and CO2. Plant, Cell and Environment, 31, 1299-1306.
Pattison, P. M., Tsao, J. Y., Brainard, G. C., & Bugbee, B. (2018). LEDs for photons, physiology and food. Nature, 563, 493-500.
Sharkey, T. D., & Raschke, K. (1981). Effect of light quality on stomatal opening in leaves of Xanthium strumarium L. Plant Physiology, 68, 1170-1174.
Shimazaki, K., Doi, M., Assmann, S. M., & Kinoshita, T. (2007). Light regulation of stomatal movement. Annual Review of Plant Biology, 58, 219-247.
Shimazaki, K., Lino, M., & Zeiger, E. (1986). Blue light-dependent proton extrusion by guard-cell protoplasts of Vicia faba. Nature, 319, 324-326.
Siefermann-Harms, D. (1985). Carotenoids in photosynthesis. I. Location in photosynthetic membranes and light-harvesting function. Biochimica et Biophysica Acta, 811, 325-355.
Srivastava, A., & Zeiger, E. (1995). Guard cell zeaxanthin tracks photosynthetically active radiation and stomatal apertures in Vicia faba leaves. Plant, Cell and Environment, 18, 813-817.
Suetsugu, N., Takami, T., Ebisu, Y., Watanabe, H., Iiboshi, C., Doi, M., & Shimazaki, K. I. (2014). Guard cell chloroplasts are essential for blue light-dependent stomatal opening in Arabidopsis. PLoS One, 9, e108374
Sweet, K. J., Peak, D., & Mott, K. A. (2017). Stomatal heterogeneity in response to humidity and temperature: Testing a mechanistic model. Plant, Cell and Environment, 40, 2771-2779.
Trojan, A., & Gabryś, H. (1996). Chloroplast distribution in Arabidopsis thaliana (L.) depends on light conditions during growth. Plant Physiology, 111, 419-425.
Vogelmann, T. C., & Evans, J. R. (2002). Profiles of light absorption and chlorophyll within spinach leaves from chlorophyll fluorescence. Plant, Cell and Environment, 25, 1313-1323.
Wada, M. (2013). Chloroplast movement. Plant Science, 210, 177-182.
Wada, M. & Kong S.G. (2011). Analysis of chloroplast movement and relocation in Arabidopsis. Methods in Molecular Biology 774. In Chloroplast Research in Arabidopsis', Methods and Protocols(ed R. Paul Jarvis), Vol. 1, pp. 87-102. Humana Press, Totowa, NJ.
Wang, Y., Noguchi, K., & Terashima, I. (2008). Distinct light responses of the adaxial and abaxial stomata in intact leaves of Helianthus annus L. Plant, Cell and Environment, 31, 1307-1316.
Wong, S. C., Cowan, I. R., & Farquhar, G. D. (1979). Stomatal conductance correlates with photosynthetic capacity. Nature, 282, 424-426.
Wong, S. C., Cowan, I. R., & Farquhar, G. D. (1985). Leaf conductance in relation to rate of CO2 assimilation. I. Influence of nitrogen nutrition, phosphorus nutrition, photon flux density, and ambient partial pressure of CO2 during ontogeny. Plant Physiology, 78, 821-825.
Zeiger, E., Assmann, S. M., & Meidner, H. (1983). The photobiology of Paphiopedilum stomata: Opening under blue but not red light. Photochemistry and Photobiology, 38, 627-630.
Zeiger, E., Talbott, L. D., Frechilla, S., Srivastava, A., & Zhu, J. (2002). The guard cell chloroplast: A perspective for the twenty-first century. New Phytologist, 153, 415-424.

Auteurs

Shuyang Zhen (S)

Crop Physiology Laboratory, Department of Plants Soils and Climate, Utah State University, Logan, Utah, USA.

Bruce Bugbee (B)

Crop Physiology Laboratory, Department of Plants Soils and Climate, Utah State University, Logan, Utah, USA.

Articles similaires

Photosynthesis Ribulose-Bisphosphate Carboxylase Carbon Dioxide Molecular Dynamics Simulation Cyanobacteria
Semiconductors Photosynthesis Polymers Carbon Dioxide Bacteria
Fragaria Light Plant Leaves Osmosis Stress, Physiological
Zea mays Triticum China Seasons Crops, Agricultural

Classifications MeSH