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Enhanced boron transport into the ear of wheat as a mechanism for boron efficiency

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Abstract

Genotypic variation in boron (B) efficiency in wheat (Triticum aestivum L.) is expressed as large differences in grain set and pollen fertility under low soil B, but the mechanisms responsible for such differences are unknown. This paper aims to determine whether differences in B transport and retranslocation can explain cultivar differences in B efficiency between B-efficient (Fang 60) and B-inefficient (SW41) wheat cultivars. Plants were grown with adequate 11B (10 μM), until the premeiotic interphase stage in anther development, then transferred into 10B at 0.1 or 10 μM. After five days, ending at the young microspore stage, plants were returned to adequate 11B. Plants were harvested at 0, 1 and 5 days after transferring into 10B, and at anthesis when fresh pollen was examined for viability. After 5 days in 0.1 μM B, pollen viability in SW41 was depressed by 47%, but pollen of Fang 60 was not affected. When B supply was low, the proportion of plant B partitioned into the ear of Fang 60 was almost twice as high as that in SW 41, enabling Fang 60 to maintain B concentration in the ear at 6.8 mg kg−1 dry weight (DW), whereas it dropped to 3.8 mg kg−1 DW in SW 41. Boron accumulation in the ear, when external supply was restricted, did not come from the 11B previously taken up by the plant. The greater 10B accumulation in ears of Fang 60 compared to SW 41, with limited external B supply, indicated that B efficiency was associated with xylem transport of B. The greater increase of 10B:11B ratio in the ear of Fang 60 compared to SW 41, over the 5 days of B interruption further indicated that greater B efficiency was associated with a stronger capability for long distance transport of B from the rooting medium into the ear via the xylem rather with than retranslocation of B from vegetative parts.

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References

  • Anantawiroon P, Subedi K D and Rerkasem B 1997 Screening wheat for boron deficiency. In Boron in Soil and Plant. Eds. R W Bell and B Rerkasem. pp. 101–104. Kluwer Academic Publishers, The Netherlands.

    Google Scholar 

  • Asher C J and Blamey F P C 1987 Experimental control of plant nutrient status using programmed nutrient addition. J. Plant Nutr. 10, 1371–1380.

    CAS  Google Scholar 

  • Bennet MD, Rao MK, Smith J B and Bayliss MW 1973 Cell devel-opment in the anther, the ovule and the young seed of Triticum aestivum L. var. Chinese Spring. Phil. Trans. Royal Soc. London Ser. B 266, 39–81.

    Google Scholar 

  • Brown P H and Shelp B J 1997 Boron mobility in plants. Plant Soil 193, 85–101.

    Article  CAS  Google Scholar 

  • Cheng C and Rerkasem B 1993 Effect of boron in the pollen viability of wheat. Plant Soil155/156, 313–315.

    Article  Google Scholar 

  • Dell B, Huang L and Bell R W 2002 Boron in Plant Reproduction. In Boron in Plant and Animal Nutrition. Eds. HE Goldbach, B Rerkasem, M A Wimmer, P H Brown, M Thellier and R W Bell. pp. 103–117. Kluwer Academic Publishers, The Netherlands.

    Google Scholar 

  • Heslop-Harrison J, Heslop-Harrison Y and Shivahna K R 1984 The evaluation of pollen quality, and a further appraisal of the fluorochromatic (FCR) test procedure. Theor. Appl. Genet. 67, 367–375.

    Google Scholar 

  • Huang L, Pant J, Bell R W, Dell B and Deane K 1996 Effects of boron deficiency and low temperature on wheat sterility. In Ster-ility in Wheat I Sub-Tropical Asia: Extent, Causes and Solutions, ACIAR Proceedings No. 72. Eds. HM Rawson and KD Subedi. pp. 90–101. ACIAR, Camberra.

    Google Scholar 

  • Huang L, Pant J, Dell B and Bell W R 2000 Effects of boron deficiency on anther development and floret fertility in wheat (Triticum aestivum L. Wilgoyne). Ann. Bot. 85, 493–500.

    Article  CAS  Google Scholar 

  • Huang L, Pant J, Dell B and Bell WR 2001 Boron supply into wheat (Triticum aestivum L. cv. Wilgoyne) ear whilst still enclosed within leaf sheaths. J. Exp. Bot. 52, 1731–1738.

    Article  CAS  PubMed  Google Scholar 

  • LiB H, Li W H, Kui MC, Chao WS, Jern HP, Li CR, Chu W J and Wang C L 1978 Studies on cause of sterility of wheat. J. Northeast Agric. College 3, 1–19 (in Chinese, with English translation).

    Google Scholar 

  • Marschner H 1995 Mineral nutrition of higher plants. Second edition. Academic Press, Harcourt Brace & Company, New York.

    Google Scholar 

  • Van Noordwijk M, Widianto M H and Hairiah K 1991 Old tree root channels in acid soils in the humid tropics: Important for crop root penetration, water infiltration and nitrogen management. Plant Soil 134, 37–44.

    Google Scholar 

  • Rawson H M 1996 The developmental stage during which boron limitation causes sterility in wheat genotypes and the recovery of ferility. Aust. J. Plant Physiol. 23, 709–717.

    CAS  Google Scholar 

  • Rawson H M and Hofstra G 1969 Translocation of remobilization of 14C assimilated at different stages by each leaf of the wheat plant. Aust. J. Biol. Sci. 22, 321–331.

    Google Scholar 

  • Rerkasem B and Jamjod S 1989 Correcting boron deficiency in-duced ear sterility in wheat and barley. Thai J. Soils Fert. 11, 200–209 (in Thai with English summary).

    Google Scholar 

  • Rerkasem B and Lordkaew S 1996 Tissue Boron. In Sterility in Wheat in Sub-Tropical Asia Extent, Causes and Solutions, ACIAR Proceedings No. 72. Eds. H M Rawson and K D Subedi. pp. 36–38. ACIR, Camberra.

    Google Scholar 

  • Rerkasem B and Jamjod S 1997 Genetypic variation in plant re-sponse to low boron and implications for plant breeding. Plant Soil 193, 169–180.

    Article  CAS  Google Scholar 

  • Rerkasem B, Saunders D A and Dell B 1989 Grain set failure and boron deficiency in wheat in Thailand. J. Agric. (CMU) 5, 1–10.

    Google Scholar 

  • Rerkasem B, Netsangtip R, Lordkaew S and Cheng C 1993 Grain set failure in boron deficient wheat. Plant Soil 155/156, 309–312.

    Article  Google Scholar 

  • Rerkasem B and Loneragan J F 1994 Boron deficiency in two wheat genotypes in a warm, subtropical region. Agron. J. 86, 887–890

    CAS  Google Scholar 

  • Rerkasem B, Lordkaew S and Dell B 1997 Boron requirement for reproductive development in wheat. In Plant Nutrition for Sus-tainable Food Production and Environment. Eds. T Ando, K Fujita, T Mae, H Matsumoto, S Mori and J Sekiya. pp. 69–73. Kluwer Academic Publishers, The Netherlands.

    Google Scholar 

  • Richards R A, Condon A G and Rebetzke G J 2001 Trait to im-prove yield in day environment. In Application of Physiology in Wheat Breeding. Eds. M P Reynolds, J I Ortiz-Monasterio and A McNab. pp. 88–100. Mexico DF, CIMMYT.

  • Shelp B J, Penner R and Zhu Z 1992 Broccoli (Brassica oleracea var. italica) cultivar response to boron deficiency. Can. J. Plant Sci. 72, 883–888.

    CAS  Google Scholar 

  • Stangoulis J C R, Brown P H, Bellaloui N, Reid R J and Graham R D 2001 The efficiency of boron utilisation in canola. Aust. J. Plant Physiol. 28, 1109–1114.

    CAS  Google Scholar 

  • Subedi K D, Budhathoki C B, Subedi M and Tuladhar J K 1993 Survey and research report on wheat sterility problem (1992/93). LARC working Paper No. 93/49. Nepal, Lumle Agricultural Research Centre.

    Google Scholar 

  • Subedi K D, Budhathoki C B, Subedi M and Yubak D 1997 Re-sponse of wheat genotypes to sowing date and boron fertilization aimed at controlling sterility in a rice-wheat rotation in Nepal. Plant Soil 188, 249–256.

    Article  CAS  Google Scholar 

  • Subedi K D, Gregory P J and Gooding M J 1999 Boron accumula-tion and partitioning in wheat cultivars with contrasting tolerance to boron deficiency. Plant Soil 214, 141–152.

    Article  CAS  Google Scholar 

  • Tandon J P and Naqvi S M A 1992 Wheat varietal screening for boron deficiency in india. In Boron Deficiency in Wheat, Wheat Special Report No 11. Eds. C E Mann and B Rerkasem. pp. 76–78. Mexico DF, CIMMYT.

  • Vergne P, Delvallee I and Dmas C 1987 Rapid assessment of microspore and pollen development stage in wheat and maize using DAPI and membrane permeabilization. Stain Technol. 62, 299–304.

    CAS  PubMed  Google Scholar 

  • Zarcinas B A, Cartwright B and Spouncer L R 1987 Nitric acid digestion and multielement analysis of plant material by induct-ively coupled plasma spectrometry. Comm. Soil Sci. Plant Anal. 18, 131–146.

    CAS  Google Scholar 

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Nachiangmai, D., Dell, B., Bell, R. et al. Enhanced boron transport into the ear of wheat as a mechanism for boron efficiency. Plant Soil 264, 141–147 (2004). https://doi.org/10.1023/B:PLSO.0000047757.39309.6f

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