Effects of drought on the development and architecture of barley root system
Anetta Kuczyńska
akuc@igr.poznan.plInstytut Genetyki Roślin Polskiej Akademii Nauk, ul. Strzeszyńska 34, 60-479 Poznań (Poland)
Maria Surma
Instytut Genetyki Roślin Polskiej Akademii Nauk, ul. Strzeszyńska 34, 60-479 Poznań (Poland)
Tadeusz Adamski
Instytut Genetyki Roślin Polskiej Akademii Nauk, ul. Strzeszyńska 34, 60-479 Poznań (Poland)
Paweł Krajewski
Instytut Genetyki Roślin Polskiej Akademii Nauk, ul. Strzeszyńska 34, 60-479 Poznań (Poland)
Krzysztof Mikołajczak
Instytut Genetyki Roślin Polskiej Akademii Nauk, ul. Strzeszyńska 34, 60-479 Poznań (Poland)
Piotr Ogrodowicz
Instytut Genetyki Roślin Polskiej Akademii Nauk, ul. Strzeszyńska 34, 60-479 Poznań (Poland)
Michał Kempa
Instytut Genetyki Roślin Polskiej Akademii Nauk, ul. Strzeszyńska 34, 60-479 Poznań (Poland)
Hanna Ćwiek-Kupczyńska
Instytut Genetyki Roślin Polskiej Akademii Nauk, ul. Strzeszyńska 34, 60-479 Poznań (Poland)
Renata Trzeciak
Instytut Genetyki Roślin Polskiej Akademii Nauk, ul. Strzeszyńska 34, 60-479 Poznań (Poland)
Supporting Agencies
Prace zostały wykonane w ramach badań podstawowych na rzecz postępu biologicznego w produkcji roślinnej na podstawie decyzji Ministra Rolnictwa i Rozwoju Wsi nr HOR.hn.802.18.2018, Zadanie 106.
Keywords:
fenotypowanie, genotypowanie, obrazowanie korzeni, plonowanie, stres abiotyczny, susza, właściwości elektryczne systemu korzeniowegoReferences
Anjum S., Xie X., Wang L., Saleem M., Man C., Lei W. 2011. Morphological, physiological and biochemical responses of plants to drought stress. J. African Agri. Res. 6 (9): 2026 — 2032.
Brouwer R., De Wit C. T. 1968. A simulation model of plant growth with special attention to root growth and its consequences. In: Root Growth. Proceedings of Fifteenth Easter School in Agricultural Science, University of Nottingham, ed. Whittington W. J. London UK: Butterworths: 224 — 242.
Cermák J., Ulrich R., Stanek Z., Koller J., Aubrecht L. 2006. Electrical measurement of tree root absorbing surfaces by the earth impedance method: 2. Verification based on allometric relationships and root severing experiments. Tree Physiol. 26: 1113 — 1121.
Chloupek O. 1972. The relationship between electric capacitance and some other parameters of plant roots. Biol. Plantarum 14: 227 — 230.
Chloupek O., Dostál V., Streda T., Psota V., Dvorácková O. 2010. Drought tolerance of barley varieties in relation to their root system size. Plant Breed. 129: 630 — 636.
Cseresnyés I., Rajkai K., Takács T. 2016. Indirect monitoring of root activity in soybean cultivars under contrasting moisture regimes by measuring electrical capacitance. Acta Physiol. Plant. 38: 121.
Hermanská A., Streda T., Chloupek O. 2015. Improved wheat grain yield by a new method of root selection. Agron. Sustain. Dev. 35: 195 — 202.
Kormanek M., Głab T., Klimek-Kopyra A. 2016. Modification of the tree root electrical capacitance method under laboratory conditions. Tree Physiol. 36: 121 — 127.
Manschadi A. M., Christopher J., DeVoil P., Hammer G. L. 2006. The role of root architectural traits in adaptation of wheat to water-limited environments. Funct. Plant Biol. 33: 823 — 837.
Milchunas D. G. 2012. Biases and errors associated with different root production methods and their effects on field estimates of belowground net primary production. In: Measuring Roots, ed. S. Mancuso (Berlin: Springer Verlag): 303 — 339.
Nakhforoosh A., Grausgruber H., Kaul H.-P., Bodner G. 2014. Wheat root diversity and root functional characterization. Plant Soil 380: 211 — 229.
Postic F., Doussan C. 2016. Benchmarking electrical methods for rapid estimation of root biomass. Plant Methods 12:33.
Rahdari P., Hoseini S. M. 2012. Drought Stress: A Review. Intl. J. Agron. Plant Prod. 3 (10): 443 — 446.
Streda T., Dostál V., Horáková V., Chloupek O. 2012. Effective use of water by wheat varieties with different root system size in rain-fed experiments in Central Europe. Agr. Water Manage. 104: 203 — 209.
Svacina P., Streda T., Chloupek O. 2014. Uncommon selection by root system size increases barley yield. Agron. Sustain. Dev. 34: 545 — 551.
Szwed M., Karg G., Pińskwar I., Radziejewski M., Graczyk D., Kędziora A., Kundzewicz Z. W. 2010. Climate change and its effect on agriculture, water resources and human health sectors in Poland. Nat. Hazards Earth Syst. Sci. 10:1725 — 1737.
Troughton A. 1978. The influence of reproductive development upon the root system of perennial ryegrass and some effects upon herbage production. J. Agric. Sci., Camb. 91:427 — 431. Google Scholar
Brouwer R., De Wit C. T. 1968. A simulation model of plant growth with special attention to root growth and its consequences. In: Root Growth. Proceedings of Fifteenth Easter School in Agricultural Science, University of Nottingham, ed. Whittington W. J. London UK: Butterworths: 224 — 242.
Cermák J., Ulrich R., Stanek Z., Koller J., Aubrecht L. 2006. Electrical measurement of tree root absorbing surfaces by the earth impedance method: 2. Verification based on allometric relationships and root severing experiments. Tree Physiol. 26: 1113 — 1121.
Chloupek O. 1972. The relationship between electric capacitance and some other parameters of plant roots. Biol. Plantarum 14: 227 — 230.
Chloupek O., Dostál V., Streda T., Psota V., Dvorácková O. 2010. Drought tolerance of barley varieties in relation to their root system size. Plant Breed. 129: 630 — 636.
Cseresnyés I., Rajkai K., Takács T. 2016. Indirect monitoring of root activity in soybean cultivars under contrasting moisture regimes by measuring electrical capacitance. Acta Physiol. Plant. 38: 121.
Hermanská A., Streda T., Chloupek O. 2015. Improved wheat grain yield by a new method of root selection. Agron. Sustain. Dev. 35: 195 — 202.
Kormanek M., Głab T., Klimek-Kopyra A. 2016. Modification of the tree root electrical capacitance method under laboratory conditions. Tree Physiol. 36: 121 — 127.
Manschadi A. M., Christopher J., DeVoil P., Hammer G. L. 2006. The role of root architectural traits in adaptation of wheat to water-limited environments. Funct. Plant Biol. 33: 823 — 837.
Milchunas D. G. 2012. Biases and errors associated with different root production methods and their effects on field estimates of belowground net primary production. In: Measuring Roots, ed. S. Mancuso (Berlin: Springer Verlag): 303 — 339.
Nakhforoosh A., Grausgruber H., Kaul H.-P., Bodner G. 2014. Wheat root diversity and root functional characterization. Plant Soil 380: 211 — 229.
Postic F., Doussan C. 2016. Benchmarking electrical methods for rapid estimation of root biomass. Plant Methods 12:33.
Rahdari P., Hoseini S. M. 2012. Drought Stress: A Review. Intl. J. Agron. Plant Prod. 3 (10): 443 — 446.
Streda T., Dostál V., Horáková V., Chloupek O. 2012. Effective use of water by wheat varieties with different root system size in rain-fed experiments in Central Europe. Agr. Water Manage. 104: 203 — 209.
Svacina P., Streda T., Chloupek O. 2014. Uncommon selection by root system size increases barley yield. Agron. Sustain. Dev. 34: 545 — 551.
Szwed M., Karg G., Pińskwar I., Radziejewski M., Graczyk D., Kędziora A., Kundzewicz Z. W. 2010. Climate change and its effect on agriculture, water resources and human health sectors in Poland. Nat. Hazards Earth Syst. Sci. 10:1725 — 1737.
Troughton A. 1978. The influence of reproductive development upon the root system of perennial ryegrass and some effects upon herbage production. J. Agric. Sci., Camb. 91:427 — 431. Google Scholar
Kuczyńska, A. . (2019) “Effects of drought on the development and architecture of barley root system”, Bulletin of Plant Breeding and Acclimatization Institute, (286), pp. 117–121. doi: 10.37317/biul-2019-0026.
Authors
Anetta Kuczyńskaakuc@igr.poznan.pl
Instytut Genetyki Roślin Polskiej Akademii Nauk, ul. Strzeszyńska 34, 60-479 Poznań Poland
Authors
Maria SurmaInstytut Genetyki Roślin Polskiej Akademii Nauk, ul. Strzeszyńska 34, 60-479 Poznań Poland
Authors
Tadeusz AdamskiInstytut Genetyki Roślin Polskiej Akademii Nauk, ul. Strzeszyńska 34, 60-479 Poznań Poland
Authors
Paweł KrajewskiInstytut Genetyki Roślin Polskiej Akademii Nauk, ul. Strzeszyńska 34, 60-479 Poznań Poland
Authors
Krzysztof MikołajczakInstytut Genetyki Roślin Polskiej Akademii Nauk, ul. Strzeszyńska 34, 60-479 Poznań Poland
Authors
Piotr OgrodowiczInstytut Genetyki Roślin Polskiej Akademii Nauk, ul. Strzeszyńska 34, 60-479 Poznań Poland
Authors
Michał KempaInstytut Genetyki Roślin Polskiej Akademii Nauk, ul. Strzeszyńska 34, 60-479 Poznań Poland
Authors
Hanna Ćwiek-KupczyńskaInstytut Genetyki Roślin Polskiej Akademii Nauk, ul. Strzeszyńska 34, 60-479 Poznań Poland
Authors
Renata TrzeciakInstytut Genetyki Roślin Polskiej Akademii Nauk, ul. Strzeszyńska 34, 60-479 Poznań Poland
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