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番茄作物抗盐性研究进展

王利民 黄东风 林琼 李昱 栗方亮 何春梅 张青

王利民, 黄东风, 林琼, 李昱, 栗方亮, 何春梅, 张青. 番茄作物抗盐性研究进展[J]. 福建农业学报, 2015, 30(10): 1019-1026. doi: 10.19303/j.issn.1008-0384.2015.10.019
引用本文: 王利民, 黄东风, 林琼, 李昱, 栗方亮, 何春梅, 张青. 番茄作物抗盐性研究进展[J]. 福建农业学报, 2015, 30(10): 1019-1026. doi: 10.19303/j.issn.1008-0384.2015.10.019
WANG Li-min, HUANG Dong-feng, LIN Qiong, LI Yu, LI Fang-liang, HE Chun-mei, ZHANG Qing. Recent Advances in Research on Salt Tolerance of Tomato Plants[J]. Fujian Journal of Agricultural Sciences, 2015, 30(10): 1019-1026. doi: 10.19303/j.issn.1008-0384.2015.10.019
Citation: WANG Li-min, HUANG Dong-feng, LIN Qiong, LI Yu, LI Fang-liang, HE Chun-mei, ZHANG Qing. Recent Advances in Research on Salt Tolerance of Tomato Plants[J]. Fujian Journal of Agricultural Sciences, 2015, 30(10): 1019-1026. doi: 10.19303/j.issn.1008-0384.2015.10.019

番茄作物抗盐性研究进展

doi: 10.19303/j.issn.1008-0384.2015.10.019
基金项目: 

福州市市校合作项目(2012-G-118)

福建省种业创新与产业化工程项目(2014S1477-1)

中国科学院南京土壤研究所土壤与农业可持续发展国家重点实验室开放基金(Y412201437)

福建省财政专项——福建省农业科学院科技创新团队建设项目(2014CX-5)

详细信息
    作者简介:

    王利民(1979-),男,助理研究员,从事生态学与水土保持研究(E-mail:wlm791002@126.com);林琼(1972-),男,副研究员,从事土壤肥料研究(E-mail:gb898@126.com)

  • 中图分类号: S641.2

Recent Advances in Research on Salt Tolerance of Tomato Plants

  • 摘要: 番茄是广泛种植的作物,但由于土壤次生盐渍化问题,导致了番茄产量下降。本文主要介绍了盐渍化对番茄生长发育的危害,并从植株水平、细胞水平和分子水平阐述了番茄抗盐性的机理。在此基础上,进一步比较分析了化学措施、基因工程及微生物接种等抗盐技术的有效性及其机理,表明了有机无机物配施、抗盐锻炼、抗盐砧木嫁接及丛枝真菌接种技术等传统措施对促进番茄抗盐性均有良好的效应;利用农杆菌介导法和花粉管通道途径等现代转多基因技术在增强番茄抗盐性方面取得了良好的效果。同时,应加强传统措施和现代技术的融合优化,从而增强番茄抗盐的能力。
  • [1] SELVAKUMAR G,KIM K,HU S,et al.Effect of salinity on plants and the role of arbuscular mycorrhizal fungi and plant growth-promoting rhizobacteria in alleviation of salt stress[J].Physiological Mechanisms and Adaptation Strategies in Plants Under Changing Environment,2014:115-144.
    [2] ROZEMA J,FLOWERS T.Crops for a salinized world[J].Science,2008,322(5907):1478-1480.
    [3] 范远,任长忠,李品芳,等.盐碱胁迫下燕麦生长及阳离子吸收特征[J].应用生态学报,2011,(11):2875-2882.
    [4] 李宁,许向阳,姜景彬,等.番茄生物学研究的相关网络资源[J].植物学报,2010,45(1):95-101.
    [5] 邓用川,陈菊培,林栖凤,等.导入红树DNA的番茄后代在NaCl胁迫下的某些生理变化[J].海南大学学报:自然科学版,2003,21(3):255-258.
    [6] SINGH J,SASTRY E V D,SINGH V.Effect of salinity on tomato(Lycopersicon esculentum Mill.)during seed germination stage[J].Physiology and Molecular Biology of Plants,2012,18(1):45-50.
    [7] MURSHED R,LOPEZ-LAURI F,SALLANON H.Effect of salt stress on tomato fruit antioxidant systems depends on fruit development stage[J].Physiology and Molecular Biology of Plants,2014,20(1):15-29.
    [8] POR P,SZOPKD,TARI I.Ionic homeostasis disturbance is involved in tomato cell death induced by NaCl and salicylic acid[J].In Vitro Cellular and Developmental Biology-Plant,2012,48(3):377-382.
    [9] 何勇,朱祝军.等渗的Ca(NO3)2和NaCl胁迫对番茄根系呼吸和活性氧代谢的影响[J].浙江大学学报:农业与生命科学版,2013,39(4):396-402.
    [10] GONG B,WEN D,BLOSZIES S,et al.Comparative effects of NaCl and NaHCO3 stresses on respiratory metabolism,antioxidant system,nutritional status,and organic acid metabolism in tomato roots[J].Acta Physiologiae Plantarum,2014,36:2 167-2 181.
    [11] TOP O,BAR C,KMEN B,et al.Exploration of three Solanum species for improvement of antioxidant traits in tomato[J].Hort Science,2014,49(8):1003-1009.
    [12] FRARY A,GL D,KELED,et al.Salt tolerance in Solanum pennellii:antioxidant response and related QTL[J].BMC Plant Biology,2010,10(1):58.
    [13] 马龙.硒缓解加工番茄盐毒害的抗氧化应急机制研究[D].新疆:石河子大学,2013.
    [14] NEBAUER S G,SNCHEZ M,MARTNEZ L,et al.Differences in photosynthetic performance and its correlation with growth among tomato cultivars in response to different salts[J].Plant Physiology and Biochemistry,2013,63:61-69.
    [15] BOLARIN M C,ESTAM T,CARO M,et al.Relationship between tomato fruit growth and fruit osmotic potential under salinity[J].Plant Science,2001,160(6):1153-1159.
    [16] KAHLAOUI B,HACHICHA M,REJEB S,et al.Response of two tomato cultivars to field-applied proline under irrigation with saline water:Growth,chlorophyll fluorescence and nutritional aspects[J].Photosynthetica,2014,52(3):421-429.
    [17] MITTOVA V,VOLOKITA M,GUY M.Antioxidative systems and stress tolerance:insight from wild and cultivated tomato species[J].Reactive Oxygen and Nitrogen Species Signaling and Communication in Plants,2015,23:89-131.
    [18] 郏艳红,王姝.不同基因型番茄耐盐性的研究[J].北方园艺,2013,(2):12-14.
    [19] 赵春梅,刘箭.转ER-sHSP基因番茄植株的耐盐性检测[J].中国农学通报,2013,29(16):79-83.
    [20] SAFDAR N,MIRZA B,ULLAH N.Comparative physiological responses of the yeast halotolerance genes expressed in transgenic lines of tomato cv Rio Grande under saline conditions[J].Acta Physiologiae Plantarum,2013,35(3):919-929.
    [21] SEO Y S,CHOI J Y,KIM S J,et al.Constitutive expression of CaRma1 H1,a hot pepper ER-localized RING E3ubiquitin ligase,increases tolerance to drought and salt stresses in transgenic tomato plants[J].Plant Cell Reports,2012,31(9):1659-1665.
    [22] 葛菁萍,林鹏.盐度变化对秋茄种群遗传分化的影响[J].生态学报,2004,24(4):730-735.
    [23] ALSADON A A,IBRAHIM A A,WAHB-ALLAH M A,et al.Tomato under salinity stress:correlation between growth and yield components and responsive genes[J].ISHS Acta Horticulturae 1081:XIII International Symposium on Processing Tomato,2014:111-119.
    [24] YANO K,AOKI K,SHIBATA D.Genomic databases for tomato[J].Plant Biotechnology,2007,24(1):17-25.
    [25] JIN F,LI S,DANG L,et al.PL1fusion gene:a novel visual selectable marker gene that confers tolerance to multiple abiotic stresses in transgenic tomato[J].Transgenic Research,2012,21(5):1057-1070.
    [26] 林栖凤,邓用川,李冠一.耐盐番茄、辣椒、茄子的分子育种研究[J].中国科技成果,2006,(10):40-41.
    [27] DASGAN H Y,AKTAS H,ABAK K,et al.Determination of screening techniques to salinity tolerance in tomatoes and investigation of genotype responses[J].Plant Science,2002,163(4):695-703.
    [28] GLVEZ F J,BAGHOUR M,HAO G,et al.Expression of LeNHX isoforms in response to salt stress in salt sensitive and salt tolerant tomato species[J].Plant Physiology and Biochemistry,2011,51:109-115.
    [29] 张学英,彭士琪,郭振怀.枣授粉受精及胚胎发育研究[J].林业科学,2004,40(5):210-213.
    [30] 冯彩芬.番茄LeCBLs的功能研究[D].杭州:浙江师范大学,2012.
    [31] 赵秋月,张广臣.盐胁迫下番茄种子萌发及抗逆机理的研究[J].安徽农业科学,2013,41(33):12835-12838.
    [32] 陈玉姬,王伟,李烨,等.加工番茄幼苗品种间的耐盐性比较研究[J].新疆农业大学学报,2012,(6):457-462.
    [33] 李俊,李建明,胡晓辉,等.亚精胺浸种对番茄幼苗抗盐碱的生理特性研究[J].西北植物学报,2012,32(9):1788-1795.
    [34] MANSOUR M M F.Plasma membrane permeability as an indicator of salt tolerance in plants[J].Biologia Plantarum,2013,57(1):421-429.
    [35] 张婷,刘之慧.甜菜碱对盐胁迫下番茄种子萌发的影响[J].上海蔬菜,2013,(5):59-60.
    [36] SIAUSSAT D,LAPARIE M,MARIA A,et al.Heat shock protein responses to salinity,food deprivation,and temperature in the invasive ground beetle Merizodus soledadinus at the Kerguelen Islands[J].Polar Biology,2013,36(2):201-209.
    [37] FOOLAD M R.Recent advances in genetics of salt tolerance in tomato[J].Plant Cell,Tissue and Organ Culture,2004,76(2):101-119.
    [38] WANG H S,YU C,TANG X F,et al.Tomato endoplasmic reticulum(ER)-type omega-3 fatty acid desaturase(LeFAD3)functions in early seedling tolerance to salinity stress[J].Plant Cell Reports,2014,33:131-142.
    [39] 王维香,汪晓峰,严庆海.盐胁迫对番茄幼苗(Lycopersicon esculentum L.)抗氧化酶活性和同工酶的影响[J].四川农业大学学报,2013,31(2):169-175.
    [40] 张林青.水杨酸浓度对盐胁迫下番茄幼苗形态建成的影响[J].江苏农业科学,2012,40(6):139-141.
    [41] SINGH P K,GAUTAM S.Role of salicylic acid on physiological and biochemical mechanism of salinity stress tolerance in plants[J].Acta Physiologiae Plantarum,2013,35(8):2345-2353.
    [42] 宋科,姚政,徐四新,等.盐胁迫下番茄种子萌发和幼苗生长发育的调控研究[J].上海农业学报,2013,29(6):64-68.
    [43] 张毅,石玉,胡晓辉,等.外源Spd对盐碱胁迫下番茄幼苗氮代谢及主要矿质元素含量的影响[J].应用生态学报,2013,24(5):1401-1408.
    [44] GROPA M D,BENAVIDES M P.Polyamines and abiotic stress:Recent advances[J].Amino Acids,2008,34:35-45.
    [45] HU X H,ZHANG Y,SHI Y,et al.Effect of exogenous spermidine on polyamine content and metabolism in tomato exposed to salinity-alkalinity mixed stress[J].Plant Physiology and Biochemistry,2012,57:200-209.
    [46] ZHU K,ZHANG J,CUI W,et al.Role of heme oxygenase-1in spermidine-induced alleviation of salt toxicity during alfalfa seed germination[J].Plant and Soil,2014,375(1/2):275-287.
    [47] WARGENT J J,PICKUP D A,PAUL N D,et al.Reduction of photosynthetic sensitivity in response to abiotic stress in tomato is mediated by a new generation plant activator[J].BMC Plant Biology,2013,13(1):108.
    [48] AREMU A O,MASONDO N A,SUNMONU T O,et al.A novel inhibitor of cytokinin degradation(INCYDE)in uences the biochemical parameters and photosynthetic apparatus in NaCl-stressed tomato plants[J].Planta,2014,240(4):877-889.
    [49] JIANG J F,LI J G,DONG Y H.Effect of calcium nutrition on resistance of tomato against bacterial wilt induced by Ralstonia solanacearum[J].European Journal of Plant Pathology,2013,136(3):547-555.
    [50] YIN L,WANG S,LI J,et al.Application of silicon improves salt tolerance through ameliorating osmotic and ionic stresses in the seedling of Sorghum bicolor[J].Acta Physiologiae Plantarum,2013,35(11):3099-3107.
    [51] DIAO M,MA L,WANG J,et al.Selenium promotes the growth and photosynthesis of tomato seedlings under salt stress by enhancing chloroplast antioxidant defense system[J].Journal of Plant Growth Regulation,2014,33(3):671-682.
    [52] CHINSAMY M,KULKARNI M G,VAN STADEN J.Garden-waste-vermicompost leachate alleviates salinity stress in tomato seedlings by mobilizing salt tolerance mechanisms[J].Plant Growth Regulation,2013,71(1):41-47.
    [53] 符建荣,王强,叶静,等.不同盐胁迫型有机无机复混肥对土壤的致盐力及作物生长的影响[J].浙江农业学报,2005,17(5):239-243.
    [54] 韩晓玲,张乃文,贾敬芬.生物有机无机复混肥对番茄产量、品质及土壤的影响[J].土壤肥料,2005,(3):51-53.
    [55] 朱余清,王军.控释肥料用量对中蔬4号番茄产量和品质的影响[J].江苏农业科学,2012,40(10):143-145.
    [56] GHANEM M E,MARTNEZ-ANDU'JAR C,ALBACETEA,et al.Nitrogen form alters hormonal balance in salt-treated tomato(Solanum lycopersicum L.)[J].Journal of Plant Growth Regulation,2011,30(2):144-157.
    [57] GEMES K,POOR P,HORVATH E,et al.Cross-talk between salicylic acid and NaCl-generated reactive oxygen species and nitric oxide in tomato during acclimation to high salinity[J].Physiologia Plantarum,2011,142(2):179-192.
    [58] TOMATO GENOME CONSORTIUM.The tomato genome sequence provides insights into fleshy fruit evolution[J].Nature,2012,485(7400):635-641.
    [59] CHOI J Y,SEO Y S,KIM S J,et al.Constitutive expression of CaXTH3,a hot pepper xyloglucan endotransg lucosy lase/hydrolase,enhanced tolerance to salt and drought stresses without phenotypic defects in tomato plants(Solanum lycopersicum cv.Dotaerang)[J].Plant Cell Reports,2011,30(5):867-877.
    [60] 殷武平,陈罡,朱月林,等.转StBADH基因T1代番茄植株的耐盐性研究[J].上海农业学报,2013,29(3):1-6.
    [61] LIM M Y,PULLA R K,PARK J M,et al.Over-expression of l-gulono-γ-lactone oxidase(GLOase)gene leads to ascorbate accumulation with enhanced abiotic stress tolerance in tomato[J].In Vitro Cellular and Developmental Biology-Plant,2012,48(5):453-461.
    [62] HU N,TANG N,YAN F,et al.Effect of LeERF1and LeERF2overexpression in the response to salinity of young tomato(Solanum lycopersicum cv.Micro-Tom)seedlings[J].Acta Physiologiae Plantarum,2014,36:1 703-1 712.
    [63] LI F,WU Q Y,DUAN M,et al.Transgenic tomato plants overexpressing chloroplastic monodehydroascorbate reductase are resistant to salt-and PEG-induced osmotic stress[J].Photosynthetica,2012,50(1):120-128.
    [64] SUN W H,LIU X Y,WANG Y,et al.Effect of water stress on yield and nutrition quality of tomato plant overexpressing StAPX[J].Biologia Plantarum,2014,58(1):99-104.
    [65] LI J,SIMA W,OUYANG B,et al.Identification and Expression Pattern of a ZPR1Gene in wild tomato(Solanum Pennellii).Plant Molecular Biology Reporter,2013,31(2):409-417.
    [66] LYU J I,MIN S R,LEE J H,et al.Overexpression of a trehalose-6-phosphate synthase/phosphatase fusion gene enhances tolerance and photosynthesis during drought and salt stress without growth aberrations in tomato[J].Plant Cell,Tissue and Organ Culture,2013,112(2):257-262.
    [67] 林栖凤,邓用川,李冠一.耐盐番茄、辣椒、茄子的分子育种研究[J].中国科技成果,2006,(10):40-41.
    [68] 刘晶,周树峰,陈华,等.农杆菌介导的双价抗盐基因转化番茄的研究[J].中国农业科学,2005,38(8):1636-1644.
    [69] HOFMANN M G,SINHA A K,PROELS R K,et al.Cloning and characterization of a novel LpWRKY1transcription factor in tomato[J].Plant Physiology and Biochemistry,2008,46(5):533-540.
    [70] ZHONG S,FEI Z,CHEN Y R,et al.Single-base resolution methylomes of tomato fruit development reveal epigenome modifications associated with ripening[J].Nature Biotechnology,2013,31(2):154-159.
    [71] PAN Y,SEYMOUR G B,LU C,et al.An ethylene response factor(ERF5)promoting adaptation to drought and salt tolerance in tomato[J].Plant Cell Reports,2012,31(2):349-360.
    [72] ZHU M,CHEN G,ZHANG J,et al.The abiotic stressresponsive NAC-type transcription factor SlNAC4regulates salt and drought tolerance and stress-related genes in tomato(Solanum lycopersicum)[J].Plant Cell Reports,2014:33(11):1851-1863.
    [73] 王毅,门立志,曹云娥,等.番茄品种与砧木苗期耐盐性指标评价及耐盐品种筛选[J].中国蔬菜,2014,(2):24-30.
    [74] DI GIOIA F,SIGNORE A,SERIO F,et al.Grafting improves tomato salinity tolerance through sodium partitioning within the shoot[J].HortScience,2013,48(7):855-862.
    [75] HAJIBOLAND R,ALIASGHARZADEH N,LAIEGH S F,et al.Colonization with arbuscular mycorrhizal fungi improves salinity tolerance of tomato(Solanum lycopersicum L.)plants[J].Plant and Soil,2010,331(1-2):313-327.
    [76] 王斌,郭开发,赵思峰,等.NaCl胁迫下促进加工番茄生长的AM真菌筛选[J].新疆农业科学,2013,50(2):319-324.
    [77] AL-KARAKI G N,HAMMAD R,RUSAN M.Response of two tomato cultivars differing in salt tolerance to inoculation with mycorrhizal fungi under salt stress[J].Mycorrhiza,2001,11(1):43-47.
    [78] PASTOR N,ROSAS S,LUNA V,et al.Inoculation with Pseudomonas putida PCI2,a phosphate solubilizing rhizobacterium,stimulates the growth of tomato plants[J].Symbiosis,2014,62(3):157-167.
    [79] 吴涛,依艳丽,谢文军,等.产生物表面活性剂耐盐菌的筛选鉴定及其对石油污染盐渍化土壤的修复[J].环境科学学报,2013,33(12):3359-3367.
    [80] CAYUELA E,ESTAM T,PARRA M,et al.NaCl pretreatment at the seedling stage enhances fruit yield of tomato plants irrigated with salt water[J].Plant and Soil,2001,230(2):231-238.
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  • 收稿日期:  2015-08-12
  • 刊出日期:  2015-10-18

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