Acta Agriculturae Zhejiangensis ›› 2021, Vol. 33 ›› Issue (10): 1991-2000.DOI: 10.3969/j.issn.1004-1524.2021.10.23
• Review • Previous Articles
MAO Shuanga(
), ZHOU Wanlib, YANG Fana, DI Xiaolinb, LIN Jixiangb, YANG Qingjieb,*(
)
Received:2020-12-02
Online:2021-10-25
Published:2021-11-02
Contact:
YANG Qingjie
CLC Number:
MAO Shuang, ZHOU Wanli, YANG Fan, DI Xiaolin, LIN Jixiang, YANG Qingjie. Research progress on mechanism of plant roots response to salt-alkali stress[J]. Acta Agriculturae Zhejiangensis, 2021, 33(10): 1991-2000.
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| [1] | 赵可夫, 范海, 王宝增, 等. 改良和利用盐渍化土壤的研究进展[J]. 园林科技信息, 2004 (1):32-35. |
| ZHAO K F, FAN H, WANG B Z, et al. Research progress on improvement and utilization of saline soil[J]. Garden Technology Information, 2004 (1):32-35.(in Chinese) | |
| [2] | 王佺珍, 刘倩, 高娅妮, 等. 植物对盐碱胁迫的响应机制研究进展[J]. 生态学报, 2017, 37(16):5565-5577. |
| WANG Q Z, LIU Q, GAO Y N, et al. Review on the mechanisms of the response to salinity-alkalinity stress in plants[J]. Acta Ecologica Sinica, 2017, 37(16):5565-5577.(in Chinese with English abstract) | |
| [3] | 徐月乔. 盐碱胁迫下灰绿型与黄绿型羊草根际效应和光合生理响应[D]. 长春: 东北师范大学, 2019. |
| XU Y Q. The response of rhizosphere effect and photosynthetic physiology of gray green and yellow green ecotypes of Leymus chinensis to salt-alkaline stress[D]. Changchun: Northeast Normal University, 2019. (in Chinese with English abstract) | |
| [4] | 李秉钧, 颜耀, 吴文景, 等. 环境因子对植物根系及其构型的影响研究进展[J]. 亚热带水土保持, 2019, 31(3):41-45. |
| LI B J, YAN Y, WU W J, et al. Study progress on the impact of environment factor to the plant root system and configuration[J]. Subtropical Soil and Water Conservation, 2019, 31(3):41-45.(in Chinese) | |
| [5] | 弋良朋, 王祖伟. 盐胁迫下3种滨海盐生植物的根系生长和分布[J]. 生态学报, 2011, 31(5):1195-1202. |
| YI L P, WANG Z W. Root system characters in growth and distribution among three littoral halophytes[J]. Acta Ecologica Sinica, 2011, 31(5):1195-1202. (in Chinese with English abstract) | |
| [6] | 吴麟, 张伟伟, 葛晓敏, 等. 植物对淹水胁迫的响应机制研究进展[J]. 世界林业研究, 2012, 25(6):27-33. |
| WU L, ZHANG W W, GE X M, et al. A review of the response mechanisms of plants to waterlogging stress[J]. World Forestry Research, 2012, 25(6):27-33.(in Chinese with English abstract) | |
| [7] | 马献发, 宋凤斌, 张继舟. 根系对土壤环境胁迫响应的研究进展[J]. 中国农学通报, 2011, 27(5):44-48. |
| MA X F, SONG F B, ZHANG J Z. Advances of research of roots responses to environmental stress on soil[J]. Chinese Agricultural Science Bulletin, 2011, 27(5):44-48.(in Chinese with English abstract) | |
| [8] | PRATHIMA V, ANJUM M S, REDDY P P, et al. Assessment of anxiety related to dental treatments among patients attending dental clinics and hospitals in Ranga Reddy District, Andhra Pradesh, India[J]. Oral Health & Preventive Dentistry, 2014, 12(4):357-364. |
| [9] | 陈方圆, 古勇波, 白江珊, 等. 淹水和盐胁迫对湿地植物菰生长的影响[J]. 生态学杂志, 2020, 39(5):1484-1491. |
| CHEN F Y, GU Y B, BAI J S, et al. Effects of flooding and salt stress on the growth of Zizania latifolia[J]. Chinese Journal of Ecology, 2020, 39(5):1484-1491.(in Chinese with English abstract) | |
| [10] | 谷娇娇, 胡博文, 贾琰, 等. 盐胁迫对水稻根系相关性状及产量的影响[J]. 作物杂志, 2019(4):176-182. |
| GU J J, HU B W, JIA Y, et al. Effects of salt stress on root related traits and yield of rice[J]. Crops, 2019(4):176-182.(in Chinese with English abstract) | |
| [11] | 郝统, 赵晋忠, 杜维俊, 等. 新型改良剂对碱胁迫下大豆萌发的影响[J]. 山西农业科学, 2019, 47(4):548-552. |
| HAO T, ZHAO J Z, DU W J, et al. Effect of new modifiers on soybean germination under alkali stress[J]. Journal of Shanxi Agricultural Sciences, 2019, 47(4):548-552.(in Chinese with English abstract) | |
| [12] | 索艺宁, 张春可, 于乔乔, 等. 盐、碱胁迫下水稻苗期根数和根长的QTL分析[J]. 华北农学报, 2018, 33(5):9-15. |
| SUO Y N, ZHANG C K, YU Q Q, et al. QTL analysis of root number and root length in rice seedling stage under salt and alkali stress[J]. Acta Agriculturae Boreali-Sinica, 2018, 33(5):9-15.(in Chinese with English abstract) | |
| [13] | 曹明. 盐碱胁迫对羊草个体生长及克隆繁殖性状的影响[D]. 长春: 东北师范大学, 2017. |
| CAO M. Effects of saline-alkali stress on the individual and clonal growth traits of Leymus chinensis[D]. Changchun: Northeast Normal University, 2017. (in Chinese with English abstract) | |
| [14] | 于天一, 王春晓, 孙学武, 等. 碱胁迫对花生幼苗根系形态及干物质累积的影响[J]. 中国油料作物学报, 2017, 39(2):190-196. |
| YU T Y, WANG C X, SUN X W, et al. Effects of alkaline stress on root morphology and dry matter accumulation characteristics of peanut seedling[J]. Chinese Journal of Oil Crop Sciences, 2017, 39(2):190-196.(in Chinese with English abstract) | |
| [15] | 杨慧. 盐胁迫对菊芋根系及根际土壤主要特征影响的研究[D]. 南京: 南京农业大学, 2016. |
| YANG H. Preliminary researches on root distribution and rhizosphere soil properties of Jerusalem artichoke under salt stress[D]. Nanjing: Nanjing Agricultural University, 2016. (in Chinese with English abstract) | |
| [16] |
ZHAO Y K, WANG T, ZHANG W S, et al. SOS3 mediates lateral root development under low salt stress through regulation of auxin redistribution and maxima in Arabidopsis[J]. New Phytologist, 2011, 189(4):1122-1134.
DOI URL |
| [17] |
ZOLLA G, HEIMER Y M, BARAK S. Mild salinity stimulates a stress-induced morphogenic response in Arabidopsis thaliana roots[J]. Journal of Experimental Botany, 2010, 61(1):211-224.
DOI URL |
| [18] | 洪茵恬, 王晨光, 张永香, 等. 盐胁迫对线辣椒根系生长及基因表达的影响[J]. 西北农业学报, 2019, 28(7):1129-1137. |
| HONG Y T, WANG C G, ZHANG Y X, et al. Effects of salt stress on root growth and gene expression of Capsicum annuum L[J]. Acta Agriculturae Boreali-Occidentalis Sinica, 2019, 28(7):1129-1137.(in Chinese with English abstract) | |
| [19] | 岳小红, 曹靖, 耿杰, 等. 盐分胁迫对啤酒大麦幼苗生长、离子平衡和根际pH变化的影响[J]. 生态学报, 2018, 38(20):7373-7380. |
| YUE X H, CAO J, GENG J, et al. Effects of different types of salt stress on growth, ion balance and rhizosphere pH changes in beer barley seedlings[J]. Acta Ecologica Sinica, 2018, 38(20):7373-7380.(in Chinese with English abstract) | |
| [20] | 陈振, 张巨松, 严青青, 等. 不同基因型海岛棉根系形态参数对混合盐碱胁迫的响应[J]. 新疆农业科学, 2019, 56(11):1961-1970. |
| CHEN Z, ZHANG J S, YAN Q Q, et al. Responses of root morphological parameters to complex saline-alkali stress among island cotton varieties with different genotypes[J]. Xinjiang Agricultural Sciences, 2019, 56(11):1961-1970.(in Chinese with English abstract) | |
| [21] | 江洪, 白莹莹, 饶应福, 等. 新围垦盐土地三种人工林群落细根生物量及其影响因素分析[J]. 植物学报, 2016, 51(3):343-352. |
| JIANG H, BAI Y Y, RAO Y F, et al. Fine root biomass and morphological characteristics in three different artificial forest communities in newly reclaimed saline soil[J]. Chinese Bulletin of Botany, 2016, 51(3):343-352.(in Chinese with English abstract) | |
| [22] | 瞿欢欢, 邓洪平, 梁盛, 等. 毛竹扩张对濒危植物桫椤根系形态可塑性的影响[J]. 生态学报, 2020, 40(4):1219-1227. |
| QU H H, DENG H P, LIANG S, et al. Effects of Phyllostachys heterocycla expansion on morphological plasticity of endangered plant Alsophila spinulosa root system[J]. Acta Ecologica Sinica, 2020, 40(4):1219-1227.(in Chinese with English abstract) | |
| [23] |
RAHNAMA A, FAKHRI S, MESKARBASHEE M. Root growth and architecture responses of bread wheat cultivars to salinity stress[J]. Agronomy Journal, 2019, 111(6):2991-2998.
DOI URL |
| [24] | 肖雯, 张振霞, 贾恢先. 几种盐地植物根解剖结构的研究[J]. 甘肃农业大学学报, 1998, 33(1):90-93. |
| XIAO W, ZHANG Z X, JIA H X. Study on root anatomic structure of some halophytes[J]. Journal of Gansu Agricultural University, 1998, 33(1):90-93.(in Chinese with English abstract) | |
| [25] | 朱宇旌, 张勇, 胡自治, 等. 小花碱茅根适应盐胁迫的显微结构研究[J]. 中国草地, 2001, 23(1):38-41. |
| ZHU Y J, ZHANG Y, HU Z Z, et al. Studies on the microscopic structure of Puccinellia tenuiflora roots under different salinity stress[J]. Grassland of China, 2001, 23(1):38-41.(in Chinese with English abstract) | |
| [26] | 万长贵, 邹琇莹. 碱茅草耐盐和脱盐机理初探[J]. 草业科学, 1990, 7(3):3-8. |
| WAN C G, ZOU X Y. A study on salt tolerance of Puccinellia chinampoensis and its’ desalinizing effect on the soil[J]. Pratacultural Science, 1990, 7(3):3-8.(in Chinese with English abstract) | |
| [27] | 於丽华, 王宇光, 康杰, 等. 盐胁迫对甜菜植株显微结构影响的初步研究[J]. 中国农学通报, 2018, 34(34):14-19. |
| YU L H, WANG Y G, KANG J, et al. The microscopic structure of sugarbeet under salinity stress: a preliminary study[J]. Chinese Agricultural Science Bulletin, 2018, 34(34):14-19.(in Chinese with English abstract) | |
| [28] |
WEST G, INZE' D, BEEMSTER G T S. Cell cycle modulation in the response of the primary root of Arabidopsis to salt stress[J]. Plant Physiology, 2004, 135(2):1050-1058.
DOI URL |
| [29] | 姜伟, 崔世茂, 李慧霞, 等. 盐胁迫对辣椒幼苗根、茎、叶显微结构的影响[J]. 蔬菜, 2017(3):6-15. |
| JIANG W, CUI S M, LI H X, et al. The effect of salt-waki pressure on the microstructure of the roots, stems and leaves of pepper seedlings[J]. Vegetables, 2017(3):6-15.(in Chinese) | |
| [30] | 田晨霞, 张咏梅, 王凯, 等. 紫花苜蓿组织解剖结构对NaHCO3盐碱胁迫的响应[J]. 草业学报, 2014, 23(5):133-142. |
| TIAN C X, ZHANG Y M, WANG K, et al. The anatomical structure responses in alfalfa to salinity-alkalinity stress of NaHCO3[J]. Acta Prataculturae Sinica, 2014, 23(5):133-142.(in Chinese with English abstract) | |
| [31] | 吴杨, 高慧纯, 张必弦, 等. 24-表油菜素内酯对盐碱胁迫下大豆生育、生理及细胞超微结构的影响[J]. 中国农业科学, 2017, 50(5):811-821. |
| WU Y, GAO H C, ZHANG B X, et al. Effects of 24-brassinolide on the fertility, physiological characteristics and cell ultra-structure of soybean under saline-alkali stress[J]. Scientia Agricultura Sinica, 2017, 50(5):811-821.(in Chinese with English abstract) | |
| [32] | 潘雄波, 向丽霞, 胡晓辉, 等. 外源亚精胺对盐碱胁迫下番茄幼苗根系线粒体功能的影响[J]. 应用生态学报, 2016, 27(2):491-498. |
| PAN X B, XIANG L X, HU X H, et al. Effects of exogenous spermidine on mitochondrial function of tomato seedling roots under salinity-alkalinity stress[J]. Chinese Journal of Applied Ecology, 2016, 27(2):491-498.(in Chinese with English abstract) | |
| [33] | 张衷华. NaHCO3胁迫对烟草的毒害机理研究[D]. 哈尔滨: 东北林业大学, 2011. |
| ZHANG Z H. Comparative toxicity of NaHCO3 and NaCl stress on tabacco (Nicotiana tabacum Linn.)[D]. Harbin: Northeast Forestry University, 2011. (in Chinese with English abstract) | |
| [34] | 范玲玲, 陈刚, 陈义芳, 等. NaHCO3胁迫下星星草根中Ca2+与Ca2+-ATPase的超微细胞化学定位[J]. 植物学报, 2010, 45(3):337-344. |
| FAN L L, CHEN G, CHEN Y F, et al. Ultracytochemical localization of Ca2+ and Ca2+-ATPase in the root of Puccinellia tenuiflora under NaHCO3 stress[J]. Chinese Bulletin of Botany, 2010, 45(3):337-344.(in Chinese with English abstract) | |
| [35] | 王继伟, 赵成章, 赵连春, 等. 内陆盐沼芦苇根系形态及生物量分配对土壤盐分因子的响应[J]. 生态学报, 2018, 38(13):4843-4851. |
| WANG J W, ZHAO C Z, ZHAO L C, et al. Response of root morphology and biomass of Phragmites australis to soil salinity in inland salt marsh[J]. Acta Ecologica Sinica, 2018, 38(13):4843-4851.(in Chinese with English abstract) | |
| [36] | 徐芬芬, 彦有娟, 韦蓉香. NaCl和Na2CO3胁迫对水稻根系生长的影响[J]. 杂交水稻, 2020, 35(3):76-78. |
| XU F F, YAN Y J, WEI R X. Effects of NaCl and Na2CO3 stress on growth of rice root[J]. Hybrid Rice, 2020, 35(3):76-78.(in Chinese with English abstract) | |
| [37] | 张晓磊, 刘晓静, 齐敏兴, 等. 混合盐碱对紫花苜蓿苗期根系特征的影响[J]. 中国生态农业学报, 2013, 21(3):340-346. |
| ZHANG X L, LIU X J, QI M X, et al. Alfalfa seeding root characteristics under complex saline-alkali stress[J]. Chinese Journal of Eco-Agriculture, 2013, 21(3):340-346.(in Chinese with English abstract) | |
| [38] | 张军, 吴秀宁, 王新军. 盐胁迫对小麦幼苗根系生长的影响[J]. 商洛学院学报, 2016, 30(4):52-55. |
| ZHANG J, WU X N, WANG X J. Effects of salt stress on root growth of wheat at its seedling stage[J]. Journal of Shangluo University, 2016, 30(4):52-55.(in Chinese with English abstract) | |
| [39] | 严青青, 张巨松, 徐海江, 等. 盐碱胁迫对海岛棉幼苗生物量分配和根系形态的影响[J]. 生态学报, 2019, 39(20):7632-7640. |
| YAN Q Q, ZHANG J S, XU H J, et al. Effects of saline-alkali stress on biomass allocation and root morphology of Sea Island cotton seedlings[J]. Acta Ecologica Sinica, 2019, 39(20):7632-7640.(in Chinese with English abstract) | |
| [40] | 马富举, 李丹丹, 蔡剑, 等. 干旱胁迫对小麦幼苗根系生长和叶片光合作用的影响[J]. 应用生态学报, 2012, 23(3):724-730. |
| MA F J, LI D D, CAI J, et al. Responses of wheat seedlings root growth and leaf photosynjournal to drought stress[J]. Chinese Journal of Applied Ecology, 2012, 23(3):724-730.(in Chinese with English abstract) | |
| [41] | 刘良全. 小麦根系对盐、旱胁迫的生物学响应及其化学调控研究[D]. 临汾: 山西师范大学, 2010. |
| LIU L Q. Effect of seed soaking with chemical regulators on root of wheat under nacl and drought stresses[D]. Linfen: Shanxi Normal University, 2010. (in Chinese with English abstract) | |
| [42] |
CAMPESTRE M P, ANTONELLI C, CALZADILLA P I, et al. The alkaline tolerance in Lotus japonicus is associated with mechanisms of iron acquisition and modification of the architectural pattern of the root[J]. Journal of Plant Physiology, 2016, 206:40-48.
DOI URL |
| [43] | 刘少华, 朱学伸, 闫敏, 等. NaCl浸种对盐胁迫下杂交稻幼苗根系生长特性的影响[J]. 西南大学学报(自然科学版), 2020, 42(8):59-65. |
| LIU S H, ZHU X S, YAN M, et al. Effect of NaCl seed soaking on the growth characteristics of hybrid rice seedling roots under salt stress[J]. Journal of Southwest University(Natural Science Edition), 2020, 42(8):59-65.(in Chinese with English abstract) | |
| [44] | 邵长安. 外源水杨酸对盐碱胁迫下燕麦生理的影响[D]. 呼和浩特: 内蒙古师范大学, 2019. |
| SHAO C A. Effect of exogenous salicylic acid on physiology of oats under salt-alkali stress[D]. Hohhot: Inner Mongolia Normal University, 2019. (in Chinese with English abstract) | |
| [45] | 张海英. 盐胁迫和碱胁迫对制干辣椒生长发育及果实品质的影响[D]. 石河子: 石河子大学, 2019. |
| ZHANG H Y. Effects of salt stress and alkali salt stress on the growth and fruit quality of the industry pepper[D]. Shihezi: Shihezi University, 2019. (in Chinese with English abstract) | |
| [46] | 李双男, 郭慧娟, 侯振安. 不同盐碱胁迫对棉花离子组稳态及Na+相关基因表达影响[J]. 棉花学报, 2019, 31(6):515-528. |
| LI S N, GUO H J, HOU Z A. Ionic homeostasis and expression of Na+ related genes of cotton under different salt and alkali stresses[J]. Cotton Science, 2019, 31(6):515-528.(in Chinese with English abstract) | |
| [47] |
YANG C W, SHI D C, WANG D L. Comparative effects of salt and alkali stresses on growth, osmotic adjustment and ionic balance of an alkali-resistant halophyte Suaeda glauca(Bge.)[J]. Plant Growth Regulation, 2008, 56(2):179-190.
DOI URL |
| [48] |
CHEN W C, CUI P J, SUN H Y, et al. Comparative effects of salt and alkali stresses on organic acid accumulation and ionic balance of seabuckthorn (Hippophae rhamnoides L.)[J]. Industrial Crops and Products, 2009, 30(3):351-358.
DOI URL |
| [49] |
SINGH M, SINGH V P, PRASAD S M. Responses of photosynjournal, nitrogen and proline metabolism to salinity stress in Solanum lycopersicum under different levels of nitrogen supplementation[J]. Plant Physiology and Biochemistry, 2016, 109:72-83.
DOI URL |
| [50] |
YANG C W, CHONG J N, LI C Y, et al. Osmotic adjustment and ion balance traits of an alkali resistant halophyte Kochia sieversiana during adaptation to salt and alkali conditions[J]. Plant and Soil, 2007, 294(1/2):263-276.
DOI URL |
| [51] | ZINTA G, KHAN A, ABDELGAWAD H, et al. Unveiling the redox control of plant reproductive development during abiotic stress[J]. Frontiers in Plant Science, 2016, 7:700. |
| [52] | 薛鑫, 张芊, 吴金霞. 植物体内活性氧的研究及其在植物抗逆方面的应用[J]. 生物技术通报, 2013(10):6-11. |
| XUE X, ZHANG Q, WU J X. Research of reactive oxygen species in plants and its application on stress tolerance[J]. Biotechnology Bulletin, 2013(10):6-11.(in Chinese with English abstract) | |
| [53] | 冯时, 王纪忠, 童瑶, 等. 盐胁迫对草莓苗形态指标和抗氧化系统酶活性的影响[J]. 现代农业科技, 2019(13):65-66. |
| FENG S, WANG J Z, TONG Y, et al. Effects of salt stress on morphological indexes and antioxidant enzyme activity in strawberry seedlings[J]. Modern Agricultural Science and Technology, 2019(13):65-66.(in Chinese with English abstract) | |
| [54] |
ZHANG K H, TANG J R, WANG Y, et al. The tolerance to saline-alkaline stress was dependent on the roots in wheat[J]. Physiology and Molecular Biology of Plants, 2020, 26(5):947-954.
DOI URL |
| [55] |
WEN T, DONG L J, WANG L, et al. Changes in root architecture and endogenous hormone levels in two Malus rootstocks under alkali stress[J]. Scientia Horticulturae, 2018, 235:198-204.
DOI URL |
| [56] |
DINNENY J R, LONG T A, WANG J Y, et al. Cell identity mediates the response of Arabidopsis roots to abiotic stress[J]. Science, 2008, 320(5878):942-945.
DOI URL |
| [57] |
SUN F F, ZHANG W S, HU H Z, et al. Salt modulates gravity signaling pathway to regulate growth direction of primary roots in Arabidopsis[J]. Plant Physiology, 2008, 146(1):178-188.
DOI URL |
| [58] | 刘轩, 梁微, 李宇星, 等. 碱胁迫下两种苹果砧木幼苗根系生长和脱落酸含量的差异[J]. 中国南方果树, 2019, 48(3):94-98. |
| LIU X, LIANG W, LI Y X, et al. Effect of abscisic acid on root growth of two apple rootstock seedlings under alkali stress[J]. South China Fruits, 2019, 48(3):94-98.(in Chinese) | |
| [59] | 徐芬芬, 韦蓉香. NAA对盐胁迫下水稻根系生长的缓解效应[J]. 杂交水稻, 2020, 35(2):75-77. |
| XU F F, WEI R X. Mitigative effects of NAA on root growth of rice under the salt stress[J]. Hybrid Rice, 2020, 35(2):75-77.(in Chinese with English abstract) | |
| [60] | 朱丽芳. 富平楸子根系质子泵对碱胁迫的响应机制研究[D]. 杨凌: 西北农林科技大学, 2019. |
| ZHU L F. Study on the response mechanism of the proton pump of Fuping catalpa root system to alkaline stress[D]. Yangling: Northwest A&F University, 2019. | |
| [61] |
郭瑞, 周际, 杨帆, 等. 小麦根系在碱胁迫下的生理代谢反应[J]. 植物生态学报, 2017, 41(6) :683-692.
DOI |
|
GUO R, ZHOU J, YANG F, et al. Metabolic responses of wheat roots to alkaline stress[J]. Chinese Journal of Plant Ecology, 2017, 41(6):683-692.(in Chinese with English abstract)
DOI URL |
|
| [62] |
FAN X D, WANG J Q, YANG N, et al. Gene expression profiling of soybean leaves and roots under salt, saline-alkali and drought stress by high-throughput Illumina sequencing[J]. Gene, 2013, 512(2):392-402.
DOI URL |
| [63] | WERETILNYK E A, HANSON A D. Molecular cloning of a plant betaine-aldehyde dehydrogenase, an enzyme implicated in adaptation to salinity and drought[J]. Proceedings of the National Academy of Sciences of the United States of America, 1990, 87(7):2745-2749. |
| [64] |
KOBAYASHI F, MAETA E, TERASHIMA A, et al. Positive role of a wheat HvABI5 ortholog in abiotic stress response of seedlings[J]. Physiologia Plantarum, 2008, 134(1):74-86.
DOI URL |
| [65] | DUANMU H Z, WANG Y, BAI X, et al. Wild soybean roots depend on specific transcription factors and oxidation reduction related genesin response to alkaline stress[J]. Functional & Integrative Genomics, 2015, 15(6):651-660. |
| [66] | 李慧卿, 陈超, 陈冉冉, 等. 利用CRISPR/Cas9双基因敲除系统初步解析大豆GmSnRK1.1和GmSnRK1.2对ABA及碱胁迫的响应[J]. 遗传, 2018, 40(6):496-507. |
| LI H Q, CHEN C, CHEN R R, et al. Preliminary analysis of the role of GmSnRK1.1 and GmSnRK1.2 in the ABA and alkaline stress response of the soybean using the CRISPR/Cas9-based gene double-knockout system[J]. Hereditas, 2018, 40(6):496-507.(in Chinese with English abstract) | |
| [67] | 王齐. 小麦转录因子TaNTL5参与盐碱胁迫应答的分子机制研究[D]. 济南: 山东大学, 2018. |
| WANG Q. Molecular mechanism of wheat transcription factor TaNTL5 involved in saline-alkali stress[D]. Jinan: Shandong University, 2018. (in Chinese with English abstract) | |
| [68] | 崔康莉. 小麦渐渗系SR4碱胁迫应答基因TaCCD1和TaStpk-B的功能研究[D]. 济南: 山东大学, 2017. |
| CUI K L. Functional analysis of alkaline stress response genes TaCCD1 and TaStpk-B in wheat introgression line SR4[D]. Jinan: Shandong University, 2017. (in Chinese with English abstract) | |
| [69] | 苗新. 小麦碱胁迫应答基因TaOMT4和TaGPAT6的功能研究[D]. 济南: 山东大学, 2017. |
| MIAO X. Functional analysis of alkali stress responsive genes TaOMT4 and TaGPAT6 from wheat[D]. Jinan: Shandong University, 2017. (in Chinese with English abstract) |
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