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Boron deficiency affects root vessel anatomy and mineral nutrient allocation of Poncirus trifoliata (L.) Raf.

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Abstract

Citrus plants are frequently exposed to boron (B) deficiency, which has reduced citrus production worldwide. The effects of boron deficiency on citrus rootstock mineral absorption and allocation, and cell and vessel element anatomy are very important in understanding the nutrient absorbing mechanisms and resolving the boron deficiency problems of citrus production. Poncirus trifoliata seedlings were grown in Hoagland’s solution, which contained 0.25 µM H3BO3 (moderate B) and 0 µM H3BO3 (B deficiency). Seedling growth, root tip cell and vessel anatomy, and nutrient contents were investigated 30 days after treatment. B deficiency significantly inhibited the growth of Poncirus trifoliata seedlings, significantly decreased the mean lateral root length and root number, and significantly increased the root diameter and lateral root primordial (LRP) density. Ultrathin section micrographs showed a thickened root tip cell wall and more attachments on the cell wall in the boron-deficient treatment. The vessel wall of all root orders was markedly thickened and the inner vessel diameter decreased in the boron-deficient treatment. The boron and calcium contents in the leaf, stem and root were significantly decreased, and the phosphorus content decreased significantly in the leaf but not in stem or root in the boron-deficient treatment. The changes in root morphology and vessel element anatomical characteristics completely inhibited mineral nutrient absorption and transportation, resulting in a limited nutrient supply and reduced growth of Poncirus trifoliata in the boron-deficient treatment.

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References

  • Ahmad W, Zia MH, Malhi SS, Niaz A, Saifullah (2012) Boron deficiency in soils and crops: a review. In: Aakash Goyal (ed) Crop plant. InTech, pp 77–114

  • Bailey IW (1944) The development of vessels in angiosperms and its significance in morphological research. Am J Bot 31(7):421–428

    Article  Google Scholar 

  • Bogiani JC, Sampaio TF, Abreu-Junior CH, Rosolem CA (2014) Boron uptake and translocation in some cotton cultivars. Plant Soil 375:241–253

    Article  CAS  Google Scholar 

  • Bolãnos L, Lukaszewski K, Bonilla I, Blevins D (2004) Why boron? Plant Physiol Biochem 42:907–912

    Article  PubMed  Google Scholar 

  • Brown PH, Shelp BJ (1997) Boron mobility in plants. Plant Soil 193:85–101

    Article  CAS  Google Scholar 

  • Camacho-Cristóbal JJ, González-Fontes A (2007) Boron deficiency decreases plasmalemma H+-ATPase expression and nitrate uptake, and promotes ammonium assimilation into asparagine in tobacco roots. Planta 226:443–451

    Article  PubMed  Google Scholar 

  • Camacho-Cristóbal JJ, Maldonado JM, González-Fontes A (2005) Boron deficiency increases putrescine levels in tobacco plants. J Plant Physiol 162:921–928

    Article  PubMed  Google Scholar 

  • Camacho-Cristóbal JJ, Rexach J, González-Fontes A (2008a) Boron in plants: deficiency and toxicity. J Integr Plant Biol 5(10):1247–1255

    Article  Google Scholar 

  • Camacho-Cristóbal JJ, Herrera-Rodríguez MB, Beato VM, Rexach J, Navarro-Gochicoa MT, Maldonado JM, González-Fontes A (2008b) The expression of several cell wall-related genes in Arabidopsis roots is down-regulated under boron deficiency. Environ Exp Bot 63:351–358

    Article  Google Scholar 

  • Camacho-Cristóbal JJ, Rexach JM, Herrera-Rodríguez B, Navarro-Gochicoa MT, González-Fontes A (2011) Boron deficiency and transcript level changes. Plant Sci 181:85–89

    Article  PubMed  Google Scholar 

  • Dell B, Brown PH, Bell RW (1997) Boron in soils and plants: reviews. Kluwer, Dordrecht

    Book  Google Scholar 

  • Frost FH (1930) Origin of vessels. Bot Gaz 89:67–94

    Article  Google Scholar 

  • Goldbach HE, Wimmer M (2007) Boron in plants and animals: is there a role beyond cell-wall structure? J Plant Nutr Soil Sci 170:39–48

    Article  CAS  Google Scholar 

  • Goldbach HE, Yu Q, Wingender R, Schulz M, Wimmer M, Findeklee P, Baluška F (2001) Rapid response reactions of roots to boron deprivation. J Plant Nutr Soil Sci 164:173–181

    Article  CAS  Google Scholar 

  • Hajiboland R, Bahrami-Rad S, Bastani S, Tolra R, Poschenrieder C (2013) Boron re-translocation in tea (Camellia sinensis (L.) O. Kuntze) plants. Acta Physiol Plant 35:2373–2381

    Article  CAS  Google Scholar 

  • Han S, Chen LS, Jiang HX, Smith BR, Yang LT, Xie CY (2008) Boron deficiency decreases growth and photosynthesis, and increases starch and hexoses in leaves of citrus seedlings. J Plant Physiol 165:1331–1341

    Article  CAS  PubMed  Google Scholar 

  • Han S, Tang N, Jiang HX, Yang LT, Li Y, Chen LS (2009) CO2 assimilation, photosystem II photochemistry, carbohydrate metabolism and antioxidant system of citrus leaves in response to boron stress. Plant Sci 176:143–153

    Article  CAS  Google Scholar 

  • Ishii T, Matsunaga T, Hayashi N (2001) Formation of rhamnogalacturonan II-borate dimer in pectin determines cell wall thickness of pumpkin tissue. Plant Physiol 126:1698–1705

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Kaya C, Tuna AL, Dikilitas M, Ashraf M (2009) Supplementary phosphorus can alleviate boron toxicity in tomato. Sci Hortic 121:284–288

    Article  CAS  Google Scholar 

  • Kobayashi M, Matoh T, Azuma J (1996) Two chains of rhamnogalacturonan II is cross-linked by borate-diol ester bonds in higher plant cell walls. Plant Physiol 110:1017–1020

    CAS  PubMed  PubMed Central  Google Scholar 

  • Läuchli A (2002) Functions of boron in higher plants: recent advances and open questions. Plant Biol 4:190–192

    Article  Google Scholar 

  • Lehto T, Kallio E, Aphalo PJ (2000) Boron mobility in two coniferous species. Ann Bot 86(3):547–550

    Article  CAS  Google Scholar 

  • Liu GD, Wang RD, Liu LC, Wu LS, Jiang CC (2013) Cellular boron allocation and pectin composition in two citrus rootstock seedlings differing in boron-deficiency response. Plant Soil 370:555–565

    Article  CAS  Google Scholar 

  • Lu YB, Yang LT, Li Y, Xu J, Liao TT, Chen YB, Chen LS (2014) Effects of boron deficiency on major metabolites, key enzymes and gas exchange in leaves and roots of Citrus sinensis seedlings. Tree Physiol 34:608–618

    Article  CAS  PubMed  Google Scholar 

  • Martín-Rejano EM, Camacho-Cristóbal JJ, Herrera-Rodríguez MB, Rexach J, Navarro-Gochicoa MT, González-Fontes A (2011) Auxin and ethylene are involved in the responses of root system architecture to low boron supply in Arabidopsis seedlings. Physiol Plant 142:170–178

    Article  PubMed  Google Scholar 

  • Mei L, Sheng O, Peng S, Zhou G, Wei Q (2011) Growth, root morphology and boron uptake by citrus rootstock seedlings differing in boron-deficiency responses. Sci Hortic 129:426–432

    Article  CAS  Google Scholar 

  • Miwa K, Takano T, Fujiware T (2006) Improvement of seed yields under boron-limiting conditions through overexpression of BOR1, a boron transporter for xylem loading, in Arabidopsis thaliana. Plant J 46:1084–1091

    Article  CAS  PubMed  Google Scholar 

  • Muhammad AF, Sattle R (1982) Vessel structure of Gnetum and the origin of angiosperms. Am J Bot 69:1004–1021

    Article  Google Scholar 

  • Pandey N, Archana (2013) Antioxidant responses and water status in Brassica seedlings subjected to boron stress. Acta Physio Plant 35(3):697–706

    Article  CAS  Google Scholar 

  • Quiles-Pando C, Rexach J, Navarro-Gochicoa MT, Camacho-Cristóbal JJ, Herrera-Rodríguez MB, González-Fontes A (2013) Boron deficiency increases the levels of cytosolic Ca2+ and expression of Ca2+-related genes in Arabidopsis thaliana roots. Plant Physiol Bioch 65:55–60

    Article  CAS  Google Scholar 

  • Ramon OC, Elvira E, Jose SM (2000) Boron and calcium distribution in nitrogen-fixing pea plants. Plant Sci 151:163–170

    Article  Google Scholar 

  • Will S, Eichert T, Fernández V, Möhring J, Müller T, Römheld V (2011) Absorption and mobility of foliar-applied boron in soybean as affected by plant boron status and application as a polyol complex. Plant Soil 344:283–293

    Article  CAS  Google Scholar 

  • Xiao Y (2001) Effects of boron on shoot development. Dissertation, University of Sheffield, UK

  • Zhou GF, Peng SA, Liu YZ, Wei QJ, Han J, Islam MZ (2014) The physiological and nutritional responses of seven different citrus rootstock seedlings to boron deficiency. Trees 28:295–307

    Article  CAS  Google Scholar 

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Acknowledgments

This work was financially supported by the National Natural Science Foundation of China (31000889, 31370627) and the Fundamental Research Funds for the Central Universities in China (2013JC010).

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Correspondence to Li Mei or Shu-ang Peng.

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Communicated by J Gao.

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Mei, L., Li, Q., Wang, H. et al. Boron deficiency affects root vessel anatomy and mineral nutrient allocation of Poncirus trifoliata (L.) Raf.. Acta Physiol Plant 38, 86 (2016). https://doi.org/10.1007/s11738-016-2099-5

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  • DOI: https://doi.org/10.1007/s11738-016-2099-5

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