|
[1]LIU H,LI C X,CAI L L,et al. Versatile MXenzymes scavenging ROS for promotion of seed germination under salt stress[J]. Journal of Agricultural and Food Chemistry,2024,72(44):24311‑24324.
[2]ONDRASEK G,RENGEL Z. Environmental salinization processes:Detection,implications and solutions[J].Science of the Total Environment,2021,754:142432.
[3]罗玢晔,陈胜艳,杨宇佳,等. 盐胁迫下野菊离子的吸收转运情况及相关基因的表达[J]. 东北林业大学学报,2024,52(2):68‑74.
LUO B Y,CHEN S Y,YANG Y J,et al. Ion uptake,transportation and the expression of related genes in Chrysanthemum indicum under salt stress[J]. Journal of Northeast Forestry University,2024,52(2):68‑74. [4]ZHAO C Z,ZHANG H,SONG C P,et al. Mechanisms of plant responses and adaptation to soil salinity[J].The Innovation,2020,1(1):100017.
[5]郭丽,索素敏,杨红丽,等. 野生薄皮木种子萌发特性及耐盐性研究[J]. 河南农业科学,2022,51(8):128‑133.
GUO L,SUO S M,YANG H L,et al. Seed germination characteristics and salt resistance of wild Leptodermis oblonga Bunge[J].Journal of Henan Agricultural Sciences,2022,51(8):128‑133.
[6]THEVENET D,PASTOR V,BACCELLI I,et al. The priming molecule β‑aminobutyric acid is naturally present in plants and is induced by stress[J].New Phytologist,2017,213(2):552‑559.
[7]张丽娜,董建江,刘炎红,等. 通过β-氨基丁酸激发效应增强烟草对干旱和低温胁迫的耐受能力[J].安徽农业大学学报,2018,45(1):171‑174.
ZHANG L N,DONG J J,LIU Y H,et al. Priming effect of β‑aminobutyric acid in alleviating drought and low‑temperature stress in tobacco[J].Journal of Anhui Agricultural University,2018,45(1):171‑174.
[8]刘松. β-氨基丁酸诱导烟草幼苗抵御干旱胁迫和镉胁迫的初步研究[D]. 合肥:中国科学技术大学,2016.
LIU S. Preliminary study on β‑aminobutyric acid induced tobacco seedlings to resist drought stress and cadmium stress[D].Hefei:University of Science and Technology of China,2016.
[9]JISHA K C,PUTHUR J T. Seed priming with beta‑amino butyric acid improves abiotic stress tolerance in rice seedlings[J].Rice Science,2016,23 (5):242‑254.
[10]JAVADI T,ROHOLLAHI D,GHADERI N,et al.Mitigating the adverse effects of drought stress on the morpho‑physiological traits and anti‑oxidative enzyme activities of Prunus avium through β‑amino butyric acid drenching[J].Scientia Horticulturae,2017,218:156‑163.
[11]徐倩,李华雄,鲜小林,等. β-氨基丁酸对NaHCO3胁迫下杜鹃光合特性和抗氧化系统的影响[J].林业科学研究,2018,31(2):133‑140.
XU Q,LI H X,XIAN X L,et al. Effects of BABA on photosynthetic characteristics and antioxidative system in Rhododendron under NaHCO3 stress[J].Forest Research,2018,31(2):133‑140.
[12]董娟娥,杜红岩,张康健,等. 观赏与药用杜仲无性系的选择[J]. 林业科学,2008,44(5):165‑169.
DONG J E,DU H Y,ZHANG K J,et al. Selection of ornamental and officinal clones of Eucommia ulmoides[J]. Scientia Silvae Sinicae,2008,44(5):165‑169.
[13]HE X R,WANG J H,LI M X,et al. Eucommia ulmoides Oliv. :Ethnopharmacology,phytochemistry and pharmacology of an important traditional Chinese medicine[J]. Journal of Ethnopharmacology,2014,151(1):78‑92.
[14]ZHANG Y P,PENG M J,LIU L L,et al. Screening,identification, and potential interaction of active compounds from Eucommia ulmodies leaves binding with bovine serum albumin[J]. Journal of Agricultural and Food Chemistry,2012,60(12):3119‑3125.
[15]张数,刘向哲. 杜仲防治神经退行性疾病的机制研究进展[J]. 中草药,2024,55(12):4268‑4275.
ZHANG S,LIU X Z. Research progress on mechanism of Eucommiae cortex in prevention and treatment of neurodegenerative diseases[J]. Chinese Traditional and Herbal Drugs,2024,55(12):4268‑4275.
[16]LI G,LI Z K,LI H,et al. Study on development strategy of Eucommia ulmodies chinese medicine industry[J].Modern Chinese Material Medica,2021,23 (4):567‑586.
[17]梁小玲,王秋红. 杜仲叶提取物对育肥猪生长性能、血清生化指标和肉品质的影响[J]. 中国饲料,2024(10):15‑18.
LIANG X L,WANG Q H. The effects of eucommia bark extract on growth performance,serum biochemical indexes,meat quality and economic benefits of fattening pigs[J].China Feed,2024(10):15‑18.
[18]王琦,杜庆鑫,孟益德,等. 不同良种杜仲叶主要营养成分的动态变化与综合评价[J]. 华南农业大学学报,2024,45(4):558‑568.
WANG Q,DU Q X,MENG Y D,et al. Dynamic change and comprehensive evaluation of main nutrients in leaves of different Eucommia ulmoides improved varieties [J]. Journal of South China Agricultural University,2024,45(4):558‑568.
[19]朱景乐,杜红岩,李芳东,等. 杜仲叶片光合色素含量测定方法筛选[J]. 河南农业大学学报,2013,47(5):557‑561.
ZHU J L,DU H Y,LI F D,et al. The photosynthetic pigment extraction method selection in Eucommia ulmoides leaves[J]. Journal of Henan Agricultural University,2013,47(5):557‑561.
[20]WANG W H,SONG X P,WANG D,et al. Simultaneous determination of five plant hormones in cotton leaves using QuEChERS combined with HPLC‑MS/MS[J].
Journal of Cotton Research,2024,7(1):18.
[21]唐茜,王佳丽,李文强. 胞外多糖对盐胁迫下荆芥种子萌发、幼苗生长及生理特性的影响[J].河南农业科学,2024,53(10):96‑105.
TANG Q,WANG J L,LI W Q. Effects of extracellular polysaccharides on seed germination,seedling growth and physiological characteristics of Schizonepeta tenuifolia under salt stress[J]. Journal of Henan Agricultural Sciences,2024,53(10):96‑105.
[22]ZHANG D,HE S C,FU Y,et al. Transcriptome analysis reveals key genes in response to salinity stress during seed germination in Setaria italica[J].Environmental and Experimental Botany,2021,191:104604.
[23]李颖,鱼小军,李珍,等. 环境胁迫下γ-氨基丁酸对植物生长调控的研究进展[J]. 草地学报,2022,30(4):835‑840.
LI Y,YU X J,LI Z,et al. The influences of γ‑aminobutyric acid(GABA)on plant growth under environmental stresses:A review[J].Acta Agrestia Sinica,2022,30(4):835‑840.
[24]JIN Y,ZHI L L,TANG X,et al. The function of GABA in plant cell growth,development and stress response[J]. Phyton,2023,92(8):2211‑2225.
[25]AKBARZADEH S,MORSHEDLOO M R,BEHTASH F,et al. Exogenous β‑aminobutyric acid(BABA)improves the growth,essential oil content,and composition of grapefruit mint(Mentha suaveolens × piperita)under water deficit stress conditions[J].Horticulturae,2023,9(3):354.
[26]BHUTTA M U M,ALI H,HUSSAIN S. Seed priming with β‑aminobutyric acid(BABA)improved production of chickpea genotypes by optimizing antioxidant activity under different moisture conditions[J].Applied Ecology and Environmental Research,2023,21 (4):2863‑2880.
[27]刘微,李佳薇,徐若瑄,等. NaCl胁迫对辣椒种子萌发及幼苗生长的影响[J]. 分子植物育种,2024,22(16):5403‑5414.
LIU W,LI J W,XU R X,et al. Effect of NaCl stress on seed germination and seedling growth of pepper[J].Molecular Plant Breeding,2024,22(16):5403‑5414.
[28]MOSTEK A,BÖRNER A,WEIDNER S. Comparative proteomic analysis of β‑aminobutyric acid‑mediated alleviation of salt stress in barley[J]. Plant Physiology and Biochemistry,2016,99:150‑161.
[29]周晓瑾,黄海霞,张君霞,等. 盐胁迫对裸果木幼苗光合特性的影响[J]. 草业学报,2023,32(2):75‑83.
ZHOU X J,HUANG H X,ZHANG J X,et al. Effects of salt stress on photosynthetic characteristics of Gymnocarpos przewalskii seedlings[J].Acta Prataculturae Sinica,2023,32(2):75‑83.
[30]渠天慧,张慧慧,牛懿麟,等. 不同浓度NaCl对矮牵牛幼苗生长及光合参数的影响[J]. 山东农业科学,2023,55(10):53‑58.
QU T H,ZHANG H H,NIU Y L,et al. Effects of different concentrations of NaCl on growth and photosynthetic parameters of Petunia hybrida seedlings[J]. Shandong Agricultural Sciences,2023,55(10):53‑58.
[31]陈威,童宇艳,冯瑜,等. 盐胁迫对红树植物红榄李幼苗叶绿体超微结构及光合荧光特性的影响[J].生态学杂志,2024,43(3):716‑723.
CHEN W,TONG Y Y,FENG Y,et al. Effects of salt stress on chloroplast ultrastructure and photosynthetic fluorescence characteristics of Lumnitzera littorea(Jack)voigt seedlings[J]. Chinese Journal of Ecology,2024,43(3):716‑723.
[32]张清莉,刘再强,钟玉德,等. BABA诱导烟草抵御高盐胁迫的初步研究[J]. 中国烟草学报,2015,21(3):72‑81.
ZHANG Q L,LIU Z Q,ZHONG Y D,et al. A preliminary study on BABA‑induced resistance to high salt stress in tobacco[J]. Acta Tabacaria Sinica,2015,21(3):72‑81.
[33]KUMAR S,LIU Y,WANG M Z,et al. Alleviating sweetpotato salt tolerance through exogenous glutathione and melatonin:A profound mechanism for active oxygen detoxification and preservation of photosynthetic organs[J].Chemosphere,2024,350:141120.
[34]WU C G,ZHANG M,LIANG Y F,et al. Salt stress responses in foxtail millet:Physiological and molecular regulation[J]. The Crop Journal,2023,11(4):1011‑1021.
[35]汪宽鸿,祝彪,朱祝军. GSH/GSSG在植物应对非生物胁迫中的作用综述[J]. 园艺学报,2021,48(4):647‑660.
WANG K H,ZHU B,ZHU Z J. Review of the role of GSH/GSSG in plant abiotic stress response[J].Acta Horticulturae Sinica,2021,48(4):647‑660.
[36]HUSSEIN R M,MOHAMMADI M,EGHLIMA G,et al.β‑aminobutyric acid enhances salt tolerance of African marigold by increasing accumulation rate of salicylic acid,γ‑aminobutyric acid and proline[J]. Scientia Horticulturae,2024,327:112828.
[37]MOHAMMADI M,EGHLIMA G,RANJBAR M E.Ascorbic acid reduces chilling injury in Anthurium cut flowers during cold storage by increasing salicylic acid biosynthesis[J]. Postharvest Biology and Technology,2023,201:112359.
[38]ZHANG Z K,HUBER D J,RAO J P. Antioxidant systems of ripening avocado(Persea americana Mill.)fruit following treatment at the preclimacteric stage with aqueous 1‑methylcyclopropene[J]. Postharvest Biology and Technology,2013,76:58‑64.
[39]MOHAMMADI M,AELAEI M,SAIDI M. Pre‑harvest and pulse treatments of spermine,γ‑ and β‑aminobutyric acid increased antioxidant activities and extended the vase life of Gerbera cut flowers ‘Stanza’[J]. Ornamental Horticulture,2020,26(2):306‑316.
[40]郭献平,吕珍珍,王东升,等. 基于转录组学分析榅桲响应NaHCO3碱胁迫分子机制[J]. 河南农业科学,2025,54(11):109‑122.
GUO X P,LÜ Z Z,WANG D S,et al. Molecular mechanism of Cydonia oblonga responding to NaHCO3 alkali stress based on transcriptomic analysis[J].Journal of Henan Agricultural Sciences,2025,54(11):109‑122.
[41]田野,杨培华,阳婷倩,等. 外源纳米硅对盐胁迫下辣椒种子萌发的影响[J]. 河南农业科学,2025,54(6):110‑120.
TIAN Y,YANG P H,YANG T Q,et al. Effect of exogenous nano‑silicon on seed germination of pepper under salt stress[J]. Journal of Henan Agricultural Sciences,2025,54(6):110‑120.
[42]龙威,王靓,金羽琨,等. 苗期油莎豆在盐胁迫下的生理特性及转录组学分析[J]. 河南农业科学,2025,54(6):11‑20.
LONG W,WANG L,JIN Y K,et al. Physiological characteristics and transcriptomic analysis of Cyperus esculentus L. at seedling stage under salt stress[J].Journal of Henan Agricultural Sciences,2025,54(6):11‑20.
[43]朱华利,陈玉霞,钱程,等. 文冠果HD-Zip基因家族成员鉴定及其对盐胁迫的响应[J]. 南方农业学报,2025,56(2):378‑391.
ZHU H L,CHEN Y X,QIAN C,et al. Identification of HD‑Zip gene family members in Xanthoceras sorbifolium Bunge and their response to salt stress[J].Journal of Southern Agriculture,2025,56(2):378‑391.
[44]徐园园,赵鹏,刘冬梅,等. 小麦ABA受体基因TaPYL9的克隆和表达分析[J]. 河南农业科学,2020,49(7):18‑24.
XU Y Y,ZHAO P,LIU D M,et al. Cloning and expression analysis of ABA receptor gene TaPYL9 in wheat[J]. Journal of Henan Agricultural Sciences,2020,49(7):18‑24.
[45]YU Z P,DUAN X B,LUO L,et al. How plant hormones mediate salt stress responses[J].Trends in Plant Science,2020,25(11):1117‑1130.
[46]CHEN L,LU B,LIU L T,et al. Melatonin promotes seed germination under salt stress by regulating ABA and GA3 in cotton(Gossypium hirsutum L.)[J]. Plant Physiology and Biochemistry,2021,162:506‑516.
[47]陈培磊. β-氨基丁酸通过ABA和SA信号通路调控气孔运动的研究[D]. 杭州:浙江大学,2015.
CHEN P L. Study on β‑aminobutyric acid regulating stomatal movement through ABA and SA signaling pathways[D].Hangzhou:Zhejiang University,2015.
|