Nitrogen-potassium balance improves leaf photosynthetic capacity by regulating leaf nitrogen allocation in apple

Xinxiang Xu, Xu Zhang, Wei Ni, Chunling Liu, Hanhan Qin, Yafei Guan, Jingquan Liu, Ziquan Feng, Yue Xing, Ge Tian, Zhanling Zhu, Shunfeng Ge, Yuanmao Jiang

Horticulture Research ›› 2024, Vol. 11 ›› Issue (1) : 253.

PDF
Horticulture Research ›› 2024, Vol. 11 ›› Issue (1) : 253. DOI: 10.1093/hr/uhad253
ARTICLES

Nitrogen-potassium balance improves leaf photosynthetic capacity by regulating leaf nitrogen allocation in apple

Author information +
History +

Abstract

Nitrogen (N) and potassium (K) are two important mineral nutrients in regulating leaf photosynthesis. However, the influence of N and K interaction on photosynthesis is still not fully understood. Using a hydroponics approach, we studied the effects of different N and K conditions on the physiological characteristics, N allocation and photosynthetic capacity of apple rootstock M9T337. The results showed that high N and low K conditions significantly reduced K content in roots and leaves, resulting in N/K imbalance, and allocated more N in leaves to non-photosynthetic N. Low K conditions increased biochemical limitation (BL), mesophyll limitation (MCL), and stomatal limitation (SL). By setting different N supplies, lowering N levels under low K conditions increased the proportion of water-soluble protein N (Nw) and sodium dodecyl sulfate-soluble proteins (Ns) by balancing N/K and increased the proportion of carboxylation N and electron transfer N. This increased the maximum carboxylation rate and mesophyll conductance, which reduced MCL and BL and alleviated the low K limitation of photosynthesis in apple rootstocks. In general, our results provide new insights into the regulation of photosynthetic capacity by N/K balance, which is conducive to the coordinated supply of N and K nutrients.

Cite this article

Download citation ▾
Xinxiang Xu, Xu Zhang, Wei Ni, Chunling Liu, Hanhan Qin, Yafei Guan, Jingquan Liu, Ziquan Feng, Yue Xing, Ge Tian, Zhanling Zhu, Shunfeng Ge, Yuanmao Jiang. Nitrogen-potassium balance improves leaf photosynthetic capacity by regulating leaf nitrogen allocation in apple. Horticulture Research, 2024, 11(1): 253 https://doi.org/10.1093/hr/uhad253

References

[1.]
Wang Y, Wu WH. Potassium transport and signaling in higher plants. Annu Rev Plant Biol. 2013;64:451-76
[2.]
Oosterhuis DM, Loka DA, Kawakami EM. et al. The physiology of potassium in crop production. Adv Agron. 2014;126:203-33
[3.]
de Bang TC, Husted S, Laursen KH. et al. The molecular-physiological functions of mineral macronutrients and their consequences for deficiency symptoms in plants. New Phytol. 2021;229:2446-69
[4.]
Hu W, Jiang N, Yang J. et al. Potassium (K) supply affects K accu-mulation and photosynthetic physiology in two cotton (Gossyp-ium hirsutum L.) cultivars with different K sensitivities. Field Crop Res. 2016;196:51-63
[5.]
Johnson R, Vishwakarma K, Hossen MS. et al. Potassium in plants: growth regulation, signaling, and environmental stress tolerance. Plant Physiol Biochem. 2022;172:56-69
[6.]
Zorb C, Senbayram M, Peiter E. Potassium in agriculture - status and perspectives. J Plant Physiol. 2014;171:656-69
[7.]
Simkin AJ, Lopez-Calcagno PE, Raines CA. Feeding the world: improving photosynthetic efficiency for sustainable crop pro-duction. JExp Bot. 2019;70:1119-40
[8.]
Lu Z, Ren T, Pan Y. et al. Differences on photosynthetic limita-tions between leaf margins and leaf centers under potassium deficiency for Brassica napus L. Sci Rep. 2016;6:21725
[9.]
Battie-Laclau P, Laclau JP, Beri C. et al. Photosynthetic and anatomical responses of Eucalyptus grandis leaves to potassium and sodium supply in a field experiment. Plant Cell Environ. 2014;37:70-81
[10.]
Hu W, Yang J, Meng Y. et al. Potassium application affects carbo-hydrate metabolism in the leaf subtending the cotton (Gossyp-ium hirsutum L.) boll and its relationship with boll biomass. Field Crop Res. 2015;179:120-31
[11.]
Hu W, Lu Z, Gu H. et al. Potassium availability influences the mesophyll structure to coordinate the conductance of CO2 and H2O during leaf expansion. Plant Cell Environ. 2022;45: 2987-3000
[12.]
Hu W, Ren T, Meng F. et al. Leaf photosynthetic capacity is regulated by the interaction of nitrogen and potassium through coordination of CO2 diffusion and carboxylation. Physiol Plant. 2019;167:418-32
[13.]
Peng HX, Wei XY, Xiao YX. et al. Management of Valsa Canker on apple with adjustments to potassium nutrition. Plant Dis. 2016;100:884-9
[14.]
Xu XX, Liu GY, Liu JQ. et al. Potassium alleviated high nitrogen-induced apple growth inhibition by regulating photosynthetic nitrogen allocation and enhancing nitrogen utilization capacity. Hortic Plant J. 2023;
[15.]
Leghari SJ, Wahocho NA, Laghari GM. et al. Role of nitrogen for plant growth and development: a review. Adv Environ Biol. 2016;10:209-18
[16.]
Xuan W, Beeckman T, Xu G. Plant nitrogen nutrition: sensing and signaling. Curr Opin Plant Biol. 2017;39:57-65
[17.]
Mu X, Chen Q, Chen F. et al. Within-leaf nitrogen allocation in adaptation to low nitrogen supply in maize during grain-filling stage. Front Plant Sci. 2016;7:699
[18.]
Hou W, Trankner M, Lu J. et al. Interactive effects of nitrogen and potassium on photosynthesis and photosynthetic nitrogen allocation of rice leaves. BMC Plant Biol. 2019;19:302
[19.]
Park M, Cho S, Park J. et al. Size-dependent variation in leaf functional traits and nitrogen allocation trade-offs in Robinia pseudoacacia and Cornus controversa. Tree Physiol. 2019;39: 755-66
[20.]
Sun WJ, Zhang JC, Ji XL. et al. Low nitrate alleviates iron defi-ciency by regulating iron homeostasis in apple. Plant Cell Environ. 2021;44:1869-84
[21.]
Wen S, Liu B, Long S. et al. Low nitrogen level improves low-light tolerance in tall fescue by regulating carbon and nitrogen metabolism. Environ Exp Bot. 2022;194:104749
[22.]
Dziedek C, Hardtle W, von Oheimb G. et al. Nitrogen addition enhances drought sensitivity of young deciduous tree species. Front Plant Sci. 2016;7:1100
[23.]
Peng WT, Qi WL, Nie MM. et al. Magnesium supports nitrogen uptake through regulating NRT2.1/2.2 in soybean. Plant Soil. 2020;457:97-111
[24.]
Wang F, Ge S, Xu X. et al. Multiomics analysis reveals new insights into the apple fruit quality decline under high nitrogen conditions. J Agric Food Chem. 2021;69:5559-72
[25.]
Li J, Hu W, Lu Z. et al. Imbalance between nitrogen and potassium fertilization influences potassium deficiency symptoms in win-ter oilseed rape (Brassica napus L.) leaves. Crop J. 2022;10:565-76
[26.]
Tsay YF, Ho CH, Chen HY. et al. Integration of nitrogen and potassium signaling. Annu Rev Plant Biol. 2011;62:207-26
[27.]
Coskun D, Britto DT, Kronzucker HJ. The nitrogen-potassium intersection: membranes, metabolism, and mechanism. Plant Cell Environ. 2017;40:2029-41
[28.]
Wang M, Zheng Q, Shen Q. et al. The critical role of potassium in plant stress response. Int J Mol Sci. 2013;14:7370-90
[29.]
Xu G, Fan X, Miller AJ. Plant nitrogen assimilation and use efficiency. Annu Rev Plant Biol. 2012;63:153-82
[30.]
Sun T, Zhang J, Zhang Q. et al. Integrative physiological, tran-scriptome, and metabolome analysis reveals the effects of nitro-gen sufficiency and deficiency conditions in apple leaves and roots. Environ Exp Bot. 2021;192:104633
[31.]
Perchlik M, Tegeder M. Leaf amino acid supply affects photosyn-thetic and plant nitrogen use efficiency under nitrogen stress. Plant Physiol. 2018;178:174-88
[32.]
Lin SH, Kuo HF, Canivenc G. et al. Mutation of the Arabidop-sis NRT1.5 nitrate transporter causes defective root-to-shoot nitrate transport. Plant Cell. 2008;20:2514-28
[33.]
Wu Z, Luo J, Han Y. et al. Low nitrogen enhances nitrogen use efficiency by triggering NO3- uptake and its long-distance translocation. J Agric Food Chem. 2019;67:6736-47
[34.]
Takashima T, Hikosaka K, Hirose T. Photosynthesis or persis-tence: nitrogen allocation in leaves of evergreen and deciduous Quercus species. Plant Cell Environ. 2004;27:1047-54
[35.]
Zhong C, Jian SF, Huang J. et al. Trade-off of within-leaf nitrogen allocation between photosynthetic nitrogen-use efficiency and water deficit stress acclimation in rice (Oryza sativa L.). Plant Physiol Biochem. 2019;135:41-50
[36.]
Lu Z, Lu J, Pan Y. et al. Anatomical variation of mesophyll con-ductance under potassium deficiency has a vital role in deter-mining leaf photosynthesis. Plant Cell Environ. 2016;39:2428-39
[37.]
Xu XX, Wang F, Xing Y. et al. Appropriate and constant potas-sium supply promotes the growth of M9T337 apple rootstocks by regulating endogenous hormones and carbon and nitrogen metabolism. Front Plant Sci. 2022;13:827478
[38.]
Wright IJ, Westoby M. Leaves at low versus high rainfall: coordination of structure, lifespan and physiology. New Phytol. 2002;155:403-16
[39.]
Xie K, Lu Z, Pan Y. et al. Leaf photosynthesis is mediated by the coordination of nitrogen and potassium: the importance of anatomical-determined mesophyll conductance to CO2 and carboxylation capacity. Plant Sci. 2020;290:110267
[40.]
Tenhaken R. Cell wall remodeling under abiotic stress. Front Plant Sci. 2015;5:5
[41.]
Evans JR. Mesophyll conductance: walls, membranes and spatial complexity. New Phytol. 2021;229:1864-76
[42.]
Zhu XG, Ed S, Long SP. Optimizing the distribution of resources between enzymes of carbon metabolism can dramatically increase photosynthetic rate: a numerical simulation using an evolutionary algorithm. Plant Physiol. 2007;145:513-26
[43.]
Xu X, Du X, Wang F. et al. Effects of potassium levels on plant growth, accumulation and distribution of carbon, and nitrate metabolism in apple dwarf rootstock seedlings. Front Plant Sci. 2020;11:904
[44.]
Xu X, Zhang X, Liu C. et al. Appropriate increasing potas-sium supply alleviates the inhibition of high nitrogen on root growth by regulating antioxidant system, hormone balance, carbon assimilation and transportation in apple. Sci Hortic. 2023;311:111828
[45.]
Porra RJ, Thompson WA, Kriedemann PE. Determination of accurate extinction coefficients and simultaneous equations for assaying chlorophylls a and b extracted with four different sol-vents: verification of the concentration of chlorophyll standards by atomic absorption spectroscopy. Biochim Biophys Acta Bioenerg. 1989;975:384-94
[46.]
Long SP, Bernacchi CJ. Gas exchange measurements, what can they tell us about the underlying limitations to photosynthesis? Procedures and sources of error. JExp Bot. 2003;54:2393-401
[47.]
Harley PC, Loreto F, Di Marco G. et al. Theoretical considerations when estimating the mesophyll conductance to CO2 flux by analysis of the response of photosynthesis to CO2. Plant Physiol. 1992;98:1429-36
[48.]
Grassi G, Magnani F. Stomatal, mesophyll conductance and bio-chemical limitations to photosynthesis as affected by drought and leaf ontogeny in ash and oak trees. Plant Cell Environ. 2005;28: 834-49
[49.]
Lu Z, Xie K, Pan Y. et al. Potassium mediates coordination of leaf photosynthesis and hydraulic conductance by modifications of leaf anatomy. Plant Cell Environ. 2019;42:2231-44
[50.]
Liu T, Ren T, White PJ. et al. Storage nitrogen co-ordinates leaf expansion and photosynthetic capacity in winter oilseed rape. JExp Bot. 2018;69:2995-3007
[51.]
Thomas RL, Sheard RW, Moyer JR. Comparison of conventional and automated procedures for nitrogen, phosphorus, and potas-sium analysis of plant material using a single digestion. Agron J. 1967;59:240-3
[52.]
Niinemets Ü, Tenhunen JD. A model separating leaf structural and physiological effects on carbon gain along light gradients for the shade-tolerant species Acer saccharum. Plant Cell Environ. 1997;20:845-66
[53.]
Lv S, Jiang P, Chen X. et al. Multiple compartmentalization of sodium conferred salt tolerance in Salicornia europaea. Plant Physiol Biochem. 2012;51:47-52
PDF

Accesses

Citations

Detail

Sections
Recommended

/