综述

水稻根系细胞膜质子泵在氮磷钾养分吸收中的作用

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  • 1南京农业大学 资源与环境科学学院, 南京 210095
    2杭州师范大学 生命与环境科学学院, 杭州 310036
*通讯联系人, E-mail:yiyong1973@njau.edu.cn

收稿日期: 2015-07-13

  修回日期: 2015-10-16

  网络出版日期: 2016-01-10

基金资助

国家自然科学基金资助项目(31471937);教育部新世纪优秀人才资助项目(NCET-11-0672)

Involvement of Plasma Membrane H+-ATPase in Uptake of Nitrogen, Phosphorus and Potassium by Rice Root

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  • 1College of Resources and Environmental Sciences,Nanjing Agricultural University, Nanjing 210095, China
    2College of Life and Environmental Sciences, Hangzhou Normal University, Hangzhou 310036, China
*Corresponding author, E-mail:yiyong1973@njau.edu.cn

Received date: 2015-07-13

  Revised date: 2015-10-16

  Online published: 2016-01-10

摘要

水稻是我国最重要的粮食作物,其产量的形成与养分的吸收密切相关。氮、磷、钾是植物最重要的三种营养元素,它们在根系的吸收和转运直接影响养分的利用效率。植物细胞膜质子泵能够将细胞质中的H+泵出细胞,在细胞膜内外形成H+浓度梯度,建立膜电位,并形成质子驱动力,从而为各种养分离子的跨膜运输提供动力。本文综述了近年来关于水稻根系细胞膜质子泵在铵态氮、磷酸盐和钾离子吸收中的作用机理,为水稻养分利用效率的提高提供理论依据。

关键词: 水稻; ; ; ; 细胞膜质子泵

本文引用格式

许飞云, 张茂星, 曾后清, 朱毅勇 . 水稻根系细胞膜质子泵在氮磷钾养分吸收中的作用[J]. 中国水稻科学, 2016 , 30(1) : 106 -110 . DOI: 10.16819/j.1001-7216.2016.5115

Abstract

Rice is an important staple crop in China. The yield of rice is closely related to the uptake of plant nutrients. As the major essential elements, nitrogen, phosphorus and potassium, their transport across the plasma membrane is critical for the nutrient absorption efficiency. The plasma membrane H+-ATPase actively drives H+ outside the plant cells. Thus the proton gradient across the plasma membrane not only builds up the membrane potential but also forms the proton motive force for the transport of various nutrients. This review illustrates the mechanism of plasma membrane H+-ATPase of rice roots involved in the uptake of nitrogen, phosphate and potassium to provide more strategies for improving the nutrition use efficiency.

参考文献

[1] Marschner H.Mineral nutrition of higher plants. 2nd edn. London:Academic Press, 1995, 231-254.
[2] Falkengren-Grerup U, Mansson K F, Olsson M O.Uptake capacity of amino acids by ten grasses and forbs in relation to soil acidity and nitrogen availability.Environ Exp Bot, 2000, 44:207-219.
[3] Raghothama K G, Karthikeyan A S.Phosphate acquisition.Plant Soil, 2005, 274: 37-49.
[4] Ludewig U,von Wiren N, Frommer W B. Uniport of NH4+ by the root hair plasma membrane ammonium transporter LeAMT1; 1.J Biol Chem, 2002, 277: 13548-13555.
[5] Shahram K, Joseph O, Jonathan, et al. Mechanism of ammonia transport by Amt/MEP/Rh: Structure of AmtB at 1.35 A.Science, 2004, 305: 1587-1594.
[6] Raghothama K G.Phosphate acquisition.Annu Rev Plant Physiol Plant Mol Biol, 1999, 50:665-693.
[7] Fuchs I, Stölzle S, Ivashikina N, et al.Rice K+ uptake channel OsAKT1 is sensitive to salt stress.Planta, 2005, 221: 212-221.
[8] Yao X, Horie T, Xue S, et al.Differential sodium and potassium transport selectivities of the rice OsHKT2;1 andOsHKT2;2 transporters in plant cells.Plant Physiol, 2010, 152: 341-355.
[9] Serrano R.Structure and function of plasma membrane ATPase.Ann Rev Plant Physiol Plant Mol Biol, 1989, 40:61-94.
[10] Arango M, Gevaudant F, Oufattole M,et al.The plasma membrane proton pump ATPase: The significance of gene subfamailies.Planta, 2003, 216:355-356.
[11] Palmgren M G.Plant plasma membrane H+-ATPases: Powerhouses for nutrient uptake.Ann Rev Plant Physiol Plant Mol Biol, 2001, 52:817-845.
[12] Micheler B, Boutry M.The plasma membrane H+-ATPase: A highly regulated enzyme with multiple physiological functions.Plant Physiol, 1995, 108:1-6.
[13] Sze H, Li X, Palmgren M G.Energization of plant cell membranes by H+-pumping ATPases: Regulation and biosynthesis.Plant Cell Environ, 1999,11: 677-689.
[14] Santi S, Locci G, Monte R, et al.Induction of nitrate uptake in maize roots: Expression of a putative high-affinity nitrate transporter and plasma membrane H+-A TPase isoforms.J Exp Bot, 2003, 54(389): 1851-1864.
[15] Yan F, Zhu Y, Caroline Muller, et al.Adaptation of H+-pumping and plasma membrane H+ ATPase activity in proteoid roots of white lupin under phosphate deficiency.Plant Physiol, 2002, 129: 50-63.
[16] Briskin D P.Plasma membrane H+-transporting ATPase: Role in potassium ion transport.Physiol Plant, 1986, 68(68):159-163.
[17] Britto D T, Glass A D M, Kronzucker H J, et al. Cytosolic concent rat ions and transmembrane fluxes of NH4+ / NH3-: An evaluat ion of recent proposals.Plant Physiol, 2001, 125:523-526.
[18] Wang M, Siddiqi M Y, Ruth T J, et al.Ammonium uptake by rice roots: Ⅱ. Kinetics of 13NH4+ influx across the plasmalemma.Plant Physiol,1993, 103:1259-1267.
[19] Schubert S, Yan F.Nitrate and ammonium nutrition of plants: Effects on acid/base balance and adaptation of root cell plasmalemma H+-ATPase.Z Panzenernahr Bodenk, 1997, 160:275-281.
[20] Yamaya T, Oaks A.Metabolic regulation of ammonium uptake and assimilation//Amancio S, Stulen I (eds) Nitrogen Acquisition and Assimilation in Higher Plants (Plant Ecophysiology Series)Dordrecht, the Netherlands: Kluwer Academic Publisher, 2004: 35-64.
[21] 狄廷均,朱毅勇,仇美华,等.水稻根系细胞膜H+- ATPase对铵硝营养的响应差异.中国水稻科学, 2007,21(4):360-366.
[21] Di T J,Zhu Y Y,Qiu M H,et al.Response of plasma membrane H+-ATPase of rice root to ammonium and nitrate nutrition.Chin J Rice Sci, 2007, 21(4):360-366.(in Chinese with English abstract)
[22] Zhu Y, Di T, Xu G, et al.Adaptation of plasma membrane H+-ATPase of rice roots to low pH as related to ammonium nutrition.Plant Cell Environ, 2009, 32:1428-1440.
[23] Yan F, Schubert S, Mengel K.Effect of low root medium pH on net proton release, root respiration, and root growth of corn (Zea mays L.) and broad bean (Vicia faba L.).Plant Physiol, 1992, 99: 415-421.
[24] Garrido F, Rodrigo G, Carlos A, et al.Rice varieties tonoplast and plasma membrane H+-ATPase differential activities in response to nitrate pules.J Biol Sci, 2008, 8(1): 107-112.
[25] Smith S E, Smith F A, Jakobsen I.Mycorrhizal fungi can dominate phosphate supply to plants irrespective of growth responses.Plant Physiol, 2003,133:16-20.
[26] Schachtman D P, Reid R J, Ayling S M.Phosphorus uptake by plants: From soil to cell.Plant Physiol, 1998,116:447-453.
[27] Preuss C P, Huang C Y, Tyerman S D.Proton-coupled high-affinity phosphate transport revealed from heterologous characterization in Xenopus of barley-root plasma membrane transporter, HvPHT1;1. Plant,Cell Environ, 2011,34:681-689.
[28] Shen H, Chen J, Wang Z, et al.Root plasma membrane H+-ATPase is involved in the adaptation of soybean to phosphorus starvation.J Exp Bot, 2006, 57: 1353-1362.
[29] Zhang R, Liu G, Wu N, et al.Adaptation of plasma membrane H+-ATPase and H+ pump to P deficiency in rice roots.Plant Soil, 2011, 349: 3-11.
[30] Zeng H, Liu G, Toshinori Kinoshita,et al.Stimulation oof phosphorus uptake bu ammonium nutrition involves plasma membrane H+ ATPase in rice roots.Plant Soil, 2012,357:205-214.
[31] Grunes D L.Effect of nitrogen on the availability of soil and fertilizer phosphorous to plants.Adv Agron, 1959,11:369-396.
[32] Miller M H.Effect of nitrogen on phosphorus absorption by plants//Carson W.ed. The Plant Root and Its Environment.Charlottesville:Univ. Press of Virginia, 1974, 643-668.
[33] Smith F W, Jackson W A.Nitrogen enhancement of phosphate transport in roots of Zea mays L: I. Effects of ammonium and nitrate pretreatment.Plant Physiol, 1987, 84:1314-1318.
[34] Jing J, Rui Y, Zhang F, et al.Localized application of phosphorus and ammonium improves growth of maize seedlings by stimulating root proliferation and rhizosphere acidification.Field Crops Res, 2010, 119:355-364.
[35] Crawford N M, Glass A D M.Molecular and physiological aspects of nitrate uptake in plants.Trends Plant Sci,1998, 3: 389-395.
[36] Wu P, Ma L, Hou X, et al.Phosphate starvation triggers distinct alterations of genome expression in ara bidopsis roots and leaves.Plant Physiol, 2003,132:1260-1271.
[37] Raghothama K G, Karthikeyan A S.Phosphate acquisition.Plant Soil, 2005, 274:37-49.
[38] Chang C, Hu Y, Sun S, et al.Proton pump OsA8 is linked to phosphorus uptake and translocation in rice.J Exper Bot, 2008, 60: 557-565.
[39] Maathuis F J M, Sanders D. Mechanism of potassium absorption by higher plant roots.Physiol Plant,1996, 96:158-168.
[40] Rodriguez-Navarro A.Potassium transport in fungi and plants.Biochim Biophys Acta, 2000, 1469:1-30.
[41] Alvarez-Pizarro J C, Gomes-Filho E, Prisco J T. NH4+-stimulated low-K+ uptake is associated with the induction of H+ extrusion but the plasma membrane H+-ATPase in sorghum roots under K+ deficiency.J Plant Physiol, 2011, 168: 1617-1626.
[42] Konstantine D. Balkos, Herbert J.Optimization of ammonium acquisition and metabolism by potassium in rice (Oryza sativa L. cv. IR-72). Plant,Cell Environ. 2010, 33: 23-34.
[43] Floor ten Hoopen, Tracey A C, Pai Pedas, et al. Competition between uptake of ammonium and potassium in barley and Arabidopsis roots: Molecular mechanisms and physiological consequences.J Experi Bot, 2010,61: 2303-2315.
[44] Gajdanowicz P, Michard E, Sandmann M,et al.Potassium (K+) gradients serve as a mobile energy source in plant vascular tissues.Proc Natl Acad Sci U S A, 2011, 108(2):864-869.
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