Chinese Journal of Agrometeorology ›› 2019, Vol. 40 ›› Issue (08): 512-522.doi: 10.3969/j.issn.1000-6362.2019.08.004
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LI Yu-shan, LI Ping, YANG Zai-qiang, WANG Fu
Online:
2019-08-20
Published:
2019-08-01
LI Yu-shan, LI Ping, YANG Zai-qiang, WANG Fu. Low Temperature and Low Irradiation Affected the Metabolism of Low-Molecular- Weight Organic Acids and Nutrients Uptake in Tomato Seedling Root[J]. Chinese Journal of Agrometeorology, 2019, 40(08): 512-522.
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[1] 高援献.番茄茄子栽培技术[M].北京:中国盲文出版社,1999: 10-11. Gao Y X.The cultivation techniques of tomato and eggplant [M].Beijing:China Braille Press,1999:10-11.(in Chinese) [2] 邹雨伽,高冠,杨再强,等.低温寡照对番茄花期植株生长及干物质分配的影响[J].江苏农业科学,2016,44(12):178-184. Zou Y J,Gao G,Yang Z Q,et al.Effect of low temperature and weak light at flowering stage on plant growth and dry weight distribution[J].Jiangsu Agricultural Science,2016,44(12): 178-184.(in Chinese) [3] 江梦圆,杨再强,王明田,等.花期低温寡照对番茄植株生长及果实发育的影响[J].江苏农业科学,2018,46(7):125-131. Jiang M Y,Yang Z Q,Wang M T,et al.Effect of low temperature and weak light at flowering stage on plant growth and fruit development[J].Jiangsu Agricultural Science,2018, 46(7):125-131.(in Chinese) [4] 朱丽云,杨再强,李军,等.花期低温寡照对番茄开花坐果特性及果实品质的影响[J].中国农业气象,2017,38(7):456-465. Zhu L Y,Yang Z Q,Li J,et al.Effect of low temperature and weak light at flowering stage on flower-fruit characteristics of tomato[J].Chinese Journal of Agrometeorology, 2017,38(7): 456-465.(in Chinese) [5] 魏瑞江.日光温室低温寡照灾害指标[J].气象科技,2003, 31(1):50-53. Wei R J.The disaster grades of low temperature and spare sunlight in greenhouse[J].Mereological Science and Technology, 2003,31(1):50-53.(in Chinese) [6] 于红,黎贞发,罗新兰,等.低温寡照对日光温室番茄幼苗生长的影响[J].北方园艺,2011,(24):56-60. Yu H,Li Z F,Luo X L,et al.Effect of low temperature and less sunlight on the growth of tomato seedling in solar greenhouse [J].Northern Horticulture,2011,(24):56-60.(in Chinese) [7] Nieuwhof M,Garretsen F,van Oeveren J C.Growth analysis of tomato genotypes grown under low energy conditions[J]. Netherlands Journal of Agricultural Science,1991,39(3): 191-196. [8] 高冠,邹雨伽,杨再强,等.低温寡照胁迫对设施番茄花期叶片衰老特性的影响[J].北方园艺,2016,(5):49-55. Gao G,Zou Y J,Yang Z Q,et al.Effect of low temperature and low irradiation stress on senescence of greenhouse tomato during flowering period[J].Netherlands Journal of Agricultural Science,2016,(5):49-55.(in Chinese) [9] 张淑杰,杨再强,陈艳秋,等.低温?弱光?高湿胁迫对日光温室番茄花期生理生化指标的影响[J].生态学杂志,2014,33(11): 2995-3001. Zhang S J,Yang Z Q,Chen Y Q,et al. Effects of low temperature,weak light and high humidity stresses on the physiological and biochemical indicators of greenhouse tomato during flowering period[J].Chinese Journal of Ecology, 2014,33(11):2995-3001.(in Chinese) [10] Asada K.The water-water cycle in chloroplasts:scavenging of active oxygens and dissipation of excess photons [J].Annual Review of Plant Biology,1999,50(50):601-639. [11] Zhang Y J,Yang J S,Guo S J,et al.Over-expression of the Arabidopsis CBF1 gene improves resistance of tomato leaves to low temperature under low irradiance[J].Plant Biology,2010,13(2011):362-367. [12] Dresb?ll D B,Thorup-Kristensen K.Spatial variation in root system activity of tomato (Solanum lycopersicum L.) in response to short and long-term waterlogging as determined by 15 N uptake[J].Plant & Soil,2012,357(1-2):161-172. [13] Adil M,Abbasi B H,Khan T.Interactive effects of melatonin and light on growth parameters and biochemical markers in adventitious roots of Withania somnifera L[J].Plant Cell Tissue & Organ Culture,2015,123(2):405-412. [14] Yang Z Q,Li Y S,Li P,et al.Effect of difference between day and night temperature on tomato(Lycopersicon esculentum Mill.)root activity and low molecular weight organic acid secretion[J].Soil Science & Plant Nutrition,2016,62(5-6): 423-431. [15] Wu Y Y,Xing D K.Effect of bicarbonate treatment on photosynthetic assimilation of inorganic carbon in two plant species of Moraceae[J].Photosynthetica,2012,50(4):587-594. [16] 黄建凤,吴昊.植物根系分泌的有机酸及其作用[J].现代农业科技,2008,(20):323-324. Huang J F,Wu H.Organic acids secreted by plant roots and their functions[J].Modern Agricultural Technology,2008,(20): 323-324.(in Chinese) [17] Huang Q Y,Zhao Z H,Chen W L.Effects of several low-molecular weight organic acids and phosphate on the adsorption of acid phosphatase by soil colloids and minerals[J].Chemosphere,2003,52(3):571-579. [18] 王文波.凋落物源有机酸对暗棕壤磷的活化及对水曲柳生理和生长的影响[D].哈尔滨:东北林业大学,2010:79-81. Wang W B.Organic acids from forest litters and the effects on P release from dark brown forest soil and physiological characteristics and growth of F.mandshurica seedings [D].Haerbin:Northeast Forestry University,2010:79-81.(in Chinese) [19] Yan Q Y,Duan Z Q,Mao J D,et al.Effects of root-zone temperature and N,P,and K supplies on nutrient uptake of cucumber(Cucumis sativus L.) seedlings in hydroponics [J].Soil Science and Plant Nutrition,2012,58:707-717. [20] Chen M C,Wang M K,Chiu C Y,et al.Determination of low molecular weight dicarboxylic acids and organic functional groups in rhizosphere and bulk soils of Tsuga and Yushania in a temperate rain forest[J].Plant and Soil,2001,231(1): 37-44. [21] 鲁如坤.土壤农业化学分析方法[M].北京:中国农业科技出版社,2000:12-14,308-315. Lu R K.Analytical methods of agricultural chemistry in soil[M].Beijing:China Agricultural Science and Technology Press,Beijing,2000:12-14,308-315.(in Chinese) [22] 李煜姗,杨再强,李平,等.高效液相色谱法测定设施番茄土壤低分子量有机酸的色谱条件研究[J].土壤通报,2016, 47(1):73-78. Li Y S,Yang Z Q,Li P,et al.Study on chromatographic condition in determination of low molecular weight organic acids in tomato-planted soil under greenhouse with HPLC[J].Chinese Journal of Soil Science,2016,47(1):73-78. (in Chinese) [23] Knievel D P.Procedure for estimating ratio of live to dead root dry-matter in root core samples[J].Crop Science,1973, 13(1):124-126. [24] Dongsansuk A,Lütz C,Neuner G.Effects of temperature and irradiance on quantum yield of PSII photochemistry and xanthophyll cycle in a tropical and a temperate species [J].Photosynthetica,2013,51(1):13-21. [25] Fujimoto M,Nishihara G N,Terada R.The effect of irradiance and temperature on the photosynthesis of two agarophytes Gelidium elegans and Pterocladiella tenuis(Gelidiales) from Kagoshima,Japan[J].Fisheries Science,2014,80(4):695-703. [26] 朱雨晴,薛晓萍.遮阴及复光对花果期番茄叶片光合特性的影响[J].中国农业气象,2019,40(2):126-134. Zhu Y Q,Xue X P.Effect of shading and light restoration on photosynthetic characteristics of tomato leaves during flowering and fruit period[J].Chinese Journal of Agrometeorology, 2019,40(2):126-134.(in Chinese) [27] Ruf M,Brunner I.Vitality of tree fine roots:reevaluation of the tetrazolium test[J].Tree Physiology,2003,23(4):257-263. [28] Ellingson K A,Rajapakse N C,Riley M B.Phytochemical profile changes of tomatoes in response to altered light environments[J].Hortscience,2004,39(4):759. [29] Ou L J,Wei G,Zhang Z Q,et al.Effects of low temperature and low irradiance on the physiological characteristics and related gene expression of different pepper species[J]. Photosynthetica,2015,53(1):85-94. [30] Khuankaew T,Tanabata S,Yamamoto M,et al.Temperature affects N and C assimilation and translocation in Curcuma alismatifolia Gagnep[J].Journal of Horticultural Science & Biotechnology,2014,89(3):287-292. [31] Ylivainio K,Peltovuori T.Phosphorus acquisition by barley (Hordeum vulgare L.) at suboptimal soil temperature [J].Agricultural Food Science,2012,21(4): 453-461. [32] Bingham I J,Cumbus I P.Influence of root temperature on the potassium requirements of young tomato plants[J].Plant & Soil,1991,133(2):227-237. [33] 吴立群,蔡志欢,张桂莲,等.低温对不同耐冷性水稻品种秧苗生理特性及根尖解剖结构的影响[J].中国农业气象, 2018,39(12):805-813. Wu L Q,Cai Z H,Zhang G L,et al.Effects of low temperature on physiological characteristics of rice seedlings with different cold tolerance an anatomical structure of root tip[J].Chinese Journal of Agrometeorology,2018,39(12): 805-813.(in Chinese) [34] Vítková M,Komárek M,Tejnecky V,et al.Interactions of nano-oxides with low-molecular-weight organic acids in a contaminated soil[J].Journal Hazardous Materials,2015, 293:7-14. [35] Bahn M,Schmitt M,Siegwolf R,et al.Does photosynthesis affect grassland soil-respired CO2 and its carbon isotope composition on a diurnal timescale[J].New Phytologist,2008, 182(2):451-460. [36] Mencuccini M,H?ltt? T.The significance of phloem transport for the speed with which canopy photosynthesis and belowground respiration are linked[J].New Phytologist,2010, 185(1):189-203. [37] Gunina A,Dippold M A,Glaser B,et al.Fate of low molecular weight organic substances in an arable soil:from microbial uptake to utilisation and stabilization[J].Soil Biology & Biochemistry,2014,77:304-313. [38] Str?m L,Olsson T,Tyler G.Differences between calcifuge and acidifuge plants in root exudation of low-molecular organic acids[J].Plant and Soil,1994,167(2):239-245. [39] López-Bucio J,Nieto-Jacobo M F,Ram??Rez-Rodr??Guez V,et al.Organic acid metabolism in plants: from adaptive physiology to transgenic varieties for cultivation in extreme soils[J].Plant Science,2000,160(1):1-13. [40] Mangiapia M,Scott K.From CO2 to cell:energetic expense of creating biomass using the Calvin-Benson-Bassham and reductive citric acid cycles based on genome data[J].Fems Microbiology Letters,2016,363(7):fnw054. [41] 张星,刘杏认,林国林,等.生物炭和秸秆对华北农田表层土壤矿质氮和pH值的影响[J].中国农业气象,2016,37(2): 131-142. Zhang X,Liu X R,Lin G L,et al. Effects of biochar and straw return on mineral nitrogen and pH of the surface soil in farmland of the north China plain[J].Chinese Journal of Agrometeorology,2016,37(2):131-142.(in Chinese) [42] 张皓禹,黄志华,王娟,等.不同酸化剂对石灰性土壤pH值?磷有效性的影响[J].中国土壤与肥料,2019,(1):145-150. Zhang H Y,Huang Z H,Wang J,et al. Effects of different acidifiers on pH and phosphorus availability in calcareous soil[J].Chinese Journal of Soil and Fertilizer,2019,(1): 145-150.(in Chinese) [43] Pan F J,Liang Y M,Zhang W,et al.Enhanced nitrogen availability in karst ecosystems by oxalic acid release in the rhizosphere[J].Frontiers in Plant Science,2016,7:687. [44] Wang Y Z,Whalen J K,Chen X,et al.Mechanisms for altering phosphorus sorption characteristics induced by low- molecular-weight organic acids[J].Canadian Journal of Soil Science,2016,96(3):289-298. [45] Wani M A.Oxalic acid effect on potassium release from typical rice soils of Kashmir[J].Communications in Soil Science & Plant Analysis,2012,43(8):1136-1148. [46] 徐慧敏.低分子有机物质对辣椒生长发育过程的效应研究[D].杨凌:西北农林科技大学,2009:20-29. Xu H M.Studies on the effects of low molecular organic matter on the growth and development process of pepper[D].Yangling:Northwest A&F University,2009:20-29. (in Chinese) |
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