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2019 | 41 | 04 |

Tytuł artykułu

Contributions of radiation interception and radiation-use efficiency to biomass decrease due to potassium starvation depend on potassium deficiency intensities

Autorzy

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
Yield loss due to insufficient potassium fertilizer supply has been well documented; however, the information about the negative effect of potassium deficiency on crop yield caused by ecophysiological determinants is not enough. A field experiment with three K treatments (severe K deficiency treatment, K₁; moderate K deficiency treatment, K₂; and sufficient K supply treatment, K₃) was conducted to (1) assess the effects of potassium deficiency on green leaf area index (GLAI) reduction; (2) quantify the contributions of single leaf area, leaf senescence, and leaf appearance to GLAI reduction under potassium deficiency; (3) reveal the changes in the contributions of accumulated radiation interception (RIacc) and radiation-use efficiency (RUE) to above-ground biomass (AM) decrease of oilseed rape under different K supplies. GLAI was restrained due to potassium deficiency, with a reduction ranging from 10.6 to 45.4%. The reduced single leaf area and accelerated leaf senescence caused by potassium starvation accounted for 5.9–23.7% and 2.4–29.0% reduction in GLAI, but delayed leaf appearance rate contributed little. The RIacc during the seedling stage in the K₁, K₂, and K₃ treatments was 101.2, 110.7, and 120.0 MJ m⁻² , respectively, and the RUE in the K₁, K₂, and K₃ treatments was 1.03, 2.22, and 2.98 g MJ⁻¹ , respectively, which caused a 61.7% and 48.2% reduction of the final harvested AM in the K₁ and K₂ treatments compared with the K₃ treatment. When AM reduction was less than 24.8%, RIacc was the main determining factor; however, it transferred to RUE when biomass decreased more. In conclusion, GLAI decreased due to potassium starvation was mainly caused by the reduced single leaf area and accelerated leaf senescence, and the relative contribution of RIacc and RUE to AM decline was related to the degree of potassium deficiency.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

41

Numer

04

Opis fizyczny

Article 48 [11p.], fig.,ref.

Twórcy

autor
  • Microelement Research of Center, Huazhong Agricultural University, Wuhan 430070, China
  • Microelement Research of Center, Huazhong Agricultural University, Wuhan 430070, China 2 Key Laboratory of Arable Land Conservation (Middle and Lower Reaches of Yangtze River), Ministry of Agriculture, Wuhan 430070, China
autor
  • Microelement Research of Center, Huazhong Agricultural University, Wuhan 430070, China
  • Microelement Research of Center, Huazhong Agricultural University, Wuhan 430070, China 2 Key Laboratory of Arable Land Conservation (Middle and Lower Reaches of Yangtze River), Ministry of Agriculture, Wuhan 430070, China
autor
  • Microelement Research of Center, Huazhong Agricultural University, Wuhan 430070, China
  • Microelement Research of Center, Huazhong Agricultural University, Wuhan 430070, China 2 Key Laboratory of Arable Land Conservation (Middle and Lower Reaches of Yangtze River), Ministry of Agriculture, Wuhan 430070, China
autor
  • Microelement Research of Center, Huazhong Agricultural University, Wuhan 430070, China
  • Microelement Research of Center, Huazhong Agricultural University, Wuhan 430070, China 2 Key Laboratory of Arable Land Conservation (Middle and Lower Reaches of Yangtze River), Ministry of Agriculture, Wuhan 430070, China
autor
  • Microelement Research of Center, Huazhong Agricultural University, Wuhan 430070, China
  • Microelement Research of Center, Huazhong Agricultural University, Wuhan 430070, China 2 Key Laboratory of Arable Land Conservation (Middle and Lower Reaches of Yangtze River), Ministry of Agriculture, Wuhan 430070, China
autor
  • Microelement Research of Center, Huazhong Agricultural University, Wuhan 430070, China
  • Microelement Research of Center, Huazhong Agricultural University, Wuhan 430070, China 2 Key Laboratory of Arable Land Conservation (Middle and Lower Reaches of Yangtze River), Ministry of Agriculture, Wuhan 430070, China

Bibliografia

  • Ayaz S, McKenzie B, McNeil D, Hill G (2004) Light interception and utilization of four grain legumes sown at different populations and depths. J Agric Sci 142:297–308
  • Bassu S, Giunta F, Motzo R (2011) Effects of sowing date and cultivar on radiation use efficiency in durum wheat. Crop Pasture Sci 62:39–47
  • Battie-Laclau P, Laclau JP, Piccolo MdC, Arenque BC, Mietton L, Muniz MRA, Jordan-Meille L, Buckeridge MS, Nouvellon Y, Ranger J, Bouillet JP (2013) Influence of potassium and sodium nutrition on leaf area components in Eucalyptus grandis trees. Plant Soil 371:19–35
  • Chapman JF, Daniels RW, Scarisbrick DH (1984) Field studies on ¹⁴C assimilate fixation and movement in oilseed rape (Brassica napus L.). J Agric Sci 102:23–31
  • Chartier M, Fabre B, Gosse G, Rode JC (1983) Bilanradiatif d’un couvert de colza. 6è Congrès International sur le Colza, Paris, pp 154–165
  • Colnenne C, Meynard JM, Roche R, Reau R (2002) Effects of nitrogen deficiencies on autumnal growth of oilseed rape. Eur J Agron 17:11–28
  • Cong R, Li H, Zhang Z, Ren T, Li XK, Lu JW (2016) Evaluate regional potassium fertilization strategy of winter oilseed rape under intensive cropping systems: large-scale field experiment analysis. Field Crop Res 193:34–42
  • Cristiano PM, Posse G, Bella CMD (2015) Total and above-ground radiation use efficiency in C3 and C₄ grass species influenced by nitrogen and water availability. Grassl Sci 61:131–141
  • Evans LT (1998) Greater crop production: whence and whither? In: Feeding a World population of more than eight billion people—a challenge to science. Oxford University Press, North Carolina, pp 89–97
  • Fletcher AL, Johnstone PR, Chakwizira E, Brown HE (2013) Radiation capture and radiation use efficiency in response to N supply for crop species with contrasting canopies. Field Crops Res 150:126–134
  • Garofalo P, Rinaldi M (2015) Leaf gas exchange and radiation use efficiency of sunflower (Helianthus annuus L.) in response to different deficit irrigation strategies: from solar radiation to plant growth analysis. EurJ Agron 64:88–97
  • Gerardeaux E, Jordanmeille L, Pellerin S (2009a) Radiation interception and conversion to biomass in two potassium-deficient cotton crops in South Benin. J Agric Sci 147:155–168
  • Gerardeaux E, Saur E, Constantin J, Porté A, Jordanmeille L (2009b) Effect of carbon assimilation on dry weight production and partitioning during vegetative growth. Plant Soil 324:329–343
  • Gerardeaux E, Jordan-Meille L, Constantin J, Pellerin S, Dingkuhn M (2010) Changes in plant morphology and dry matter partitioning caused by potassium deficiency in Gossypium hirsutum (L.) Environ Exp Bot 67(3):451–459
  • Gregory P, Eastham J (1996) Growth of shoots and roots, and interception of radiation by wheat and lupin crops on a shallow, duplex soil in response to time of sowing. Aust J Agric Res 47:427–447
  • Jordan-Meille L, Pellerin S (2004) Leaf area establishment of a maize (Zea mays L.) field crop under potassium deficiency. Plant Soil 265:5–92
  • Kang W, Fan M, Ma Z, Shi X, Zheng H (2014) Luxury absorption of potassium by potato plants. Am J Potato Res 91:573–578
  • Kirkegaard JA, Sprague SJ, Lilley JM, Mccormick JI, Virgona JM, Morrison MJ (2012) Physiological response of spring canola (Brassica napus) to defoliation in diverse environments. Field Crops Res 125:61–68
  • Lancashire PD, Bleiholder H, Boom TVD, Langelüddeke P, Stauss R, Weber E, Witzenberger A (1991) A uniform decimal code for growth stages of crops and weeds. Ann Appl Bio 119:561–601
  • Leigh RA, Wyn Jones RG (1984) A hypothesis relating critical potassium concentrations for growth to the distribution and functions of this ion in the plant cell. New Physiol 97:1–13
  • Long SP, Marshall-Colon A, Zhu XG (2015) Meeting the global food demand of the future by engineering crop photosynthesis and yield potential. Cell 161:56–66
  • Lu ZF, Lu JW, Pan YH, Li XK, Cong RH, Ren T (2016) Genotypic variation in photosynthetic limitation responses to K deficiency of Brassica napus L. is associated with potassium utilization efficiency. Funct Plant Biol 43:880–891
  • Ma N, Yuan JZ, Li M, Li J, Zhang LY, Liu LX, Naeem MS, Zhang CL (2014) Videotape population exploration: growth, photosynthesis, and yield components at different planting densities in winter oilseed rape. Plos One 9:e114232
  • Mahbod M, Zand-Parsa S, Sepaskhah AR (2014) Adjustment of radiation use efficiency of winter wheat by air temperature at different irrigation regimes and nitrogen rates. Arch Agron Soil Sci 60(1):49–66
  • Major DJ, Bole JB, Charnetski WA (1978) Distribution of photosynthates after ¹⁴CO₂ assimilation by stems, leaves, and pods of rape plants. Can J Plant Sci 58:783–787
  • Massignam A, Chapman S, Hammer G, Fukai S (2009) Physiological determinants of maize and sunflower grain yield as affected by nitrogen supply. Field Crops Res 113:256–267
  • Mitchell PL, Sheehy JE. (2018) Potential yield of wheat in the United Kingdom: how to reach 20 t ha⁻¹? Field Crops Res 224: 115–125
  • Monteith JL (1977) Climate and the efficiency of crop production in Britain. Philos Trans R Soc Lond 281:277–294
  • Moriconi JI, Santamaría GE (2013) A theoretical framework to study potassium utilization efficiency in response to withdrawal of potassium. J Exp Bot 64:4289–4299
  • Nanda R, Bhargava SC, Tomar DPS, Rawson HM (1996) Phenological development of Brassica campestris, B. juncea, B. napus and B. carinata grown in controlled environments and from 14 sowing dates in the field. Field Crops Res 46:93–103
  • Pan YH, Lu ZF, Lu ZF, Ren T, Li XK, Cong RH (2017) Effects of low sink demand on leaf photosynthesis under potassium deficiency. Plant Physiol Biochem 113:110–121
  • Plénet D, Etchebest S, Mollier A, Pellerin S (2000) Growth analysis of maize field crops under phosphorus deficiency. I. leaf growth. Plant Soil 223:119–132
  • Rama RN (1986) Potassium requirements for growth and its related processes determined by plant analysis in wheat. Plant Soil 96:125–131
  • Ren T, Lu JW, Li H, Zou J, Xu HL, Liu XW, Li XK (2013) Potassium-fertilizer management in winter oilseed-rape production in China. J Plant Nutr Soil Sci 176:429–440
  • Römheld V, Kirkby EA (2010) Research on potassium in agriculture: needs and prospects. Plant Soil 335:155–180
  • Salvagiotti F, Miralles DJ (2008) Radiation interception, biomass production and grain yield as affected by the interaction of nitrogen and sulfur fertilization in wheat. EurJ Agron 28:282–290
  • Sandaña P, Pinochet D (2011) Ecophysiological determinants of biomass and grain yield of wheat under P deficiency. Field Crops Res 120:311–319
  • Sandaña P, Ramírez M, Pinochet D (2012) Radiation interception and radiation use efficiency of wheat and pea under different P availabilities. Field Crops Res 127:44–50
  • Sinclair TR, Muchow RC (1999) Occam’s razor, radiationuse efficiency, and vapor pressure deficit. Field Crops Res 62(2–3):239–243
  • Sinclair TR, Gilbert RA, Perdomo RE, Jmjr S, Powell G, Montes G (2004) Sugarcane leaf area development under field conditions in Florida, USA. Field Crops Res 88:171–178
  • Singh SK, Reddy VR, Sicher RC (2018) Seasonal critical concentration and relationships of leaf phosphorus and potassium status with biomass and yield traits of soybean. J Plant Nutr Soil Sci 181:575–585
  • Sparks DL, Huang PM (1985) Physical chemistry of soil potassium, 1st edn. Madison, Wisconsin, pp 201–276
  • Stöckle C, Kemanian A (2009) Crop radiation capture and use efficiency: a framework for crop growth analysis. Crop Physiol 145–170
  • Tomas RL, Sheard RW, Moyer JR (1967) Comparison of conventional and automated procedures for nitrogen, phosphorus, and potassium analysis of plant material using a single digestion. Agron J 59:240–243
  • Wang CL, Hai JB, Yang JL, Yang JL, Tian JH, Chen WJ, Chen T, Luo HB, Wang H (2016) Influence of leaf and silique photosynthesis on seeds yield and seeds oil quality of oilseed rape (Brassica napus L.). Eur J Agron 74:112–118
  • Zhao D, Oosterhuis DM, Bednarz CW (2001) Influence of potassium deficiency on photosynthesis, chlorophyll content, and chloroplast ultrastructure of cotton plants. Photosynthetica 39:103–109
  • Zou J, Lu JW, Li YS, Li XK (2011) Regional evaluation of winter rapeseed response to K fertilization, K use efficiency, and critical level of soil K in the Yangtze River valley. J Integr Agric 10:911–920

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

bwmeta1.element.agro-b3f8e64e-014a-452b-8fb3-e1af21da4cb6
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