Citation: | Shi Zhen-Zhen, Da Meng-Ting, Pang Hai-Long, Jia Ling-Yun, Sun Kun, Feng Han-Qing. Extracellular adenosine 5'-triphosphate mediates oxidative stress and cell death under cadmium stress by nitric oxide[J]. Plant Science Journal, 2020, 38(2): 269-277. DOI: 10.11913/PSJ.2095-0837.2020.20269 |
[1] |
丁竹红, 尹大强, 胡忻, 吴熙, 陈良燕. 矿区附近农田土壤中重金属和矿质元素浸提研究[J]. 农业环境科学学报, 2008, 27(5):1774-1778.
Ding ZH, Yin DQ, Hu X, Wu X, Chen LY. Extraction of heavy metals and mineral elements in agricultural soils around mine area using biodegradable and non-biodegradable chelators[J]. Journal of Agro-Environment Science, 2008, 27(5):1774-1778.
|
[2] |
常艳丽. 含镉废水处理技术研究进展[J]. 净水技术, 2013, 32(3):1-4.
Chang YL. Advances in research of technological processes of cadmium-containing wastewater treatment[J]. Water Purification Technology, 2013, 32(3):1-4.
|
[3] |
Kalinovic JV, Serbula SM, Radojevic AA, Milosavljevic JS, Kalinovic TS, Steharnik MM. Assessment of As, Cd, Cu, Fe, Pb, and Zn concentrations in soil and parts of Rosa spp. sampled in extremely polluted environment[J]. Environ Monit Assess, 2018, 191(1):15.
|
[4] |
刘海军, 陈源泉, 隋鹏, 高旺盛, 姜莉, 等. 马唐与玉米间作对镉的富集效果研究初探[J]. 中国农学通报, 2009, 25(15):206-210.
Liu HJ, Chen YQ, Sui P, Gao WS, Jiang L, et al. The uptake and accumulation effect of Cd in the intercropping system between with maize and crabgrass[J]. Chinese Agricultural Science Bulletin, 2009, 25(15):206-210.
|
[5] |
茹淑华, 苏德纯, 王激清. 土壤镉污染特征及污染土壤的植物修复技术机理[J]. 中国生态农业学报, 2006, 14(4):29-33.
Ru SH, Su DC, Wang JQ. Characteristics of Cd pollution in soil and the mechanisms of phytoremediation for soil contamination[J]. China Journal of Eco-Agriculture, 2006, 14(4):29-33.
|
[6] |
Joe L, Chendil D. A review of molecular events of cad-mium-induced carcinogenesis[J]. J Environ Pathol Toxicol Oncol, 2014, 33(3):183-194.
|
[7] |
尚忠林. eATP——植物细胞外的信使分子[J]. 植物生理学通讯, 2007, 43(4):623-629.
Shang ZL. eATP-an extracellular signal molecule in plants[J]. Plant Physiology Communications, 2007, 43(4):623-629.
|
[8] |
汪震东. eATP在拟南芥抗逆过程中的作用[D]. 石家庄:河北师范大学, 2009.
|
[9] |
Khakh BS, Burnstock G. The double life of ATP[J]. Sci Am, 2009, 301(6):84-92.
|
[10] |
Chivasa S, Ndimba BK, Simon WJ, Lindsey K, Slabas AR. Extracellular ATP functions as an endogenous external metabolite regulating plant cell viability[J]. Plant Cell, 2005, 17(11):3019-3034.
|
[11] |
Chivasa S, Murphy AM, Hamilton JM, Lindsey K, Carr JP, Slabas AR. Extracellular ATP is a regulator of pathogen defence in plants[J]. Plant J, 2009, 60(11):436-448.
|
[12] |
Foresi NP, Laxalt AM, Tonón CV, Casalongué CA, Lamattina L. Extracellular ATP induces nitric oxide production in tomato cell suspensions[J]. Plant Physiol, 2007, 145(3):589-592.
|
[13] |
Dichmann S, Idzko M, Zimpfer U, Hofmann C, Ferrari D, et al. Adenosine triphosphate-induced oxygen radical production and CD11b up-regulation:Ca2+ mobilization and actin reorganization in human eosinophils[J]. Blood, 2000, 95(3):973-978.
|
[14] |
Demidchik V, Shang Z, Shin R, Thompson E, Rubio L, et al. Plant extracellular ATP signalling by plasma membrane NADPH oxidase and Ca2+ channels[J]. Plant J, 2009, 58(6):903-913.
|
[15] |
Song CJ, Steinebrunner I, Wang X, Stout SC, Roux SJ. Extracellular ATP induces the accumulation of superoxide via NADPH oxidases in Arabidopsis[J]. Plant Physiol, 2006, 140(4):1222-1232.
|
[16] |
Choi J, Tanaka K, Cao Y, Qi Y, Qiu J, et al. Identification of a plant receptor for extracellular ATP[J]. Science, 2014, 343(6168):290-294.
|
[17] |
Bräuchler C, Ngoc LH. Aspidistra renatae (Ruscaceae), a new species from central Vietnam[J]. Blumea, 2005, 50(3):527-529.
|
[18] |
Palmer RMJ, Ferrige AG, Moncada SA. Nitric oxide release accounts for the biological activity of endothelium-derived relaxing factor[J]. Nature, 1987, 327(6122):524-526.
|
[19] |
Schmidt HHHW, Walter U. NO at work[J]. Cell, 1994, 78(6):919-925.
|
[20] |
Besson-Bard A, Pugin A, Wendehenne D. New insights into nitric oxide signaling in plants[J]. Annu Rev Plant Biol, 2008, 59(1):21-39.
|
[21] |
Fröhlich A, Durner J. The hunt for plant nitric oxide synthase (NOS):is one really needed?[J]. Plant Sci, 2011, 181(4):401-404.
|
[22] |
Corpas FJ, Barroso JB, Carreras A, Valderrama R, Palma JM, et al. Constitutive arginine-dependent nitric oxide synthase activity in different organs of pea seedlings during plant development[J]. Planta, 2006, 224(2):246-254.
|
[23] |
刘建新, 王金成, 王瑞娟, 贾海燕. 一氧化氮对裸燕麦耐盐性的增强效应[J]. 生态学杂志, 2015, 34(4):991-996.
Liu JX, Wang JC, Wang RJ, Jia HY. Enhanced effects of exogenous nitric oxide on salt tolerance of Avena nuda L. seedlings[J]. Chinese Journal of Ecology, 2015, 34(4):991-996.
|
[24] |
Francisco C, Juan B. Functions of nitric oxide (NO) in roots during development and under adverse stress conditions[J]. Plants, 2015, 4(2):240-252.
|
[25] |
Correa-Aragunde N, Graziano M, Lamattina L. Nitric oxide plays a central role in determining lateral root deve-lopment in tomato[J]. Planta, 2004, 218(6):900-905.
|
[26] |
Sanz L, Albertos P, Mateos I, Sánchez-Vicente I, Lechón T, et al. Nitric oxide (NO) and phytohormones crosstalk during early plant development[J]. J Exp Bot, 2015, 66(10):2857-2868.
|
[27] |
Ulker P, Özen N, Abdullayeva G, Köksoy S, Yara N, Basrali F. Extracellular ATP activates eNOS and increases intracellular NO generation in red blood cells[J]. Clin Hemorheol Microcirc, 2018, 68(1):89-101.
|
[28] |
Poliandri AH, Machiavelli LI, Quinteros AF, Cabilla JP, Duvilanski BH. Nitric oxide protects the mitochondria of anterior pituitary cells and prevents cadmium-induced cell death by reducing oxidative stress[J]. Free Radic Biol Med, 2006, 40(4):679-688.
|
[29] |
Singh HP, Batish DR, Kaur G, Arora K, Kohli RK. Nitric oxide (as sodium nitroprusside) supplementation ameliorates Cd toxicity in hydroponically grown wheat roots[J]. Environ Exp Bot, 2008, 63(1-3):158-167.
|
[30] |
Murashige T, Skoog F. A revised medium for rapid growth and bioassay with tobacco tissue culture[J]. Physiol Plantarum, 2010, 15(3):473-497.
|
[31] |
Nagata T, Okada K, Takebe I, Matsui C. Delivery of tobacco mosaic virus RNA into plant protoplasts mediated by reverse-phase evaporation vesicles (Liposomes)[J]. Mol Gen Genet, 1981, 184(2):161-165.
|
[32] |
Kawai M, Uchimiya H. Coleoptile senescence in rice (Oryza sativa L.)[J]. Ann Bot-London, 2000, 86(2):405-414.
|
[33] |
Yang SW, Kim SK, Kim WT. Perturbation of NgTRF1 expression induces apoptosis-like cell death in tobacco BY-2 cells and implicates NgTRF1 in the control of telomere length and stability[J]. Plant Cell, 2004, 16(12):3370-3385.
|
[34] |
Smeets K, Opdenakker K, Remans T, van Sanden S, van Belleghem F, et al. Oxidative stress-related responses at transcriptional and enzymatic levels after exposure to Cd or Cu in a multipollution context[J]. J Plant Physiol, 2009, 166(18):1982-1992.
|
[35] |
Luo H, Li H, Zhang X, Fu J. Antioxidant responses and gene expression in perennial ryegrass (Lolium perenne L.) under cadmium stress[J]. Ecotoxicology, 2011, 20(4):770-778.
|
[36] |
Dat J, Vandenabeele S, Vranová E, van Montagu M, Inzé D, van Breusegem F. Dual action of the active oxygen species during plant stress responses[J]. Cell Mol Life Sci, 2000, 57(5):779-795.
|
[37] |
Gechev TS, Hille J. Hydrogen peroxide as a signal controlling plant programmed cell death[J]. J Cell Biol, 2005, 168(1):17-20.
|
[38] |
Gechev TS, van Breusegem F, Stone JM, Denev I, Laloi C. Reactive oxygen species as signals that modulate plant stress responses and programmed cell death[J]. Bioessays, 2006, 28(11):1091-1101.
|
[39] |
Van Breusegem F, Dat JF. Reactive oxygen species in plant cell death[J]. Plant Physiol, 2006, 141(2):384-390.
|
[40] |
Marcec MJ, Gilroy S, Poovaiah BW, Tanaka K. Mutual interplay of Ca2+ and ROS signaling in plant immune response[J]. Plant Sci, 2019, 283:343-354.
|
[41] |
Chivasa S, Ndimba BK, Simon WJ, Lindsey K, Slabas AR. Extracellular ATP functions as an endogenous external metabolite regulating plant cell viability[J]. Plant Cell, 2005, 17(11):3019-3034.
|
[42] |
Chivasa S, Murphy AM, Hamilton JM, Lindsey K, Carr JP, Slabas AR. Extracellular ATP is a regulator of pathogen defence in plants[J]. Plant J, 2009, 60(11):436-448.
|
[43] |
Chivasa S, Simon W, Murphy AM, Lindsey K, Carr JP, Slabas AR. The effects of extracellular adenosine 5'-triphosphate on the tobacco proteome[J]. Proteomics, 2010, 10(2):235-244.
|
[44] |
Sun J, Zhang CL, Deng SR, Lu CF, Shen X, et al. An ATP signalling pathway in plant cells:extracellular ATP triggers programmed cell death in Populus euphratica[J]. Plant Cell Environ, 2012a, 35(5):893-916.
|
[45] |
Ramachandran SR, Kumar S, Tanaka K. Quantification of extracellular ATP in plant suspension cell cultures[J]. Methods Mol Biol, 2019, 1991:43-54.
|
[46] |
Sun J, Zhang C, Zhang X, Deng S, Zhao R, et al. Extracellular ATP signaling and homeostasis in plant cells[J]. Plant Signal Behav, 2012, 7(5):566-569.
|
[47] |
冯汉青, 白晶月, 管冬冬, 贾凌云, 孙坤. 细胞外ATP通过刺激NADPH氧化酶缓解水杨酸诱导的细胞死亡[J]. 植物生理学报, 2014, 50(11):1639-1644.
Feng HQ, Bai JY, Guan DD, Jia LY, Sun K. Extracellular ATP alleviates the salicylic acid-induced cell death by stimulating NADPH oxidase[J]. Plant Physiology Journal, 2014, 50(11):1639-1644.
|
[1] | Sun De-Zhi, Han Xiao-Ri, Peng Jing, Fan Fu, Song Gui-Yun, Yang Heng-Shan. Effects of exogenous nitric oxide and salicylic acid on membrane peroxidation and the ascorbate-glutathione cycle in leaves of Lycopersicon esculentum seedlings under NaCl stress[J]. Plant Science Journal, 2018, 36(4): 612-622. DOI: 10.11913/PSJ.2095-0837.2018.40612 |
[2] | Chen Yin-Ping, Ke Yun-Qi, Yang Zhi-Juan, Yang Bo, Yan Zhi-Qiang, Yu Pei-Dong. Generation of endogenous NO and its ameliorating effects on oxidative damage in Bidens pilosa L. seedlings under Pb stress[J]. Plant Science Journal, 2018, 36(2): 264-272. DOI: 10.11913/PSJ.2095-0837.2018.20264 |
[3] | Ba Qing-Song, Zhang Gen-Sheng, Ma Chang, Li Gui-Ping, Song Yun-Xian, Fu Zhao-Lin, Chen Chu. Physiological effects of nitric oxide on the growth and development of wheat roots under cadmium stress[J]. Plant Science Journal, 2017, 35(3): 398-405. DOI: 10.11913/PSJ.2095-0837.2017.30398 |
[4] | ZHANG Jing-Yi, CHEN Hong-Yan, ZHANG Hong-Pei, ZHU Nan, DONG Juan-E. Nitric Oxide Triggered by Salicylic Acid Mediates the Biosynthesis of Salvianolic Acid B in Salvia miltiorrhiza Suspension Cell Culture[J]. Plant Science Journal, 2015, 33(1): 81-89. DOI: 10.11913/PSJ.2095-0837.2015.10081 |
[5] | CHEN Yu, LIN Su-Ying, HUANG Zhi-Ming, CAI Bin-Bin, WU Guang-Quan, PAN Zhi-Ping, WU Jin-Cheng. Response of Endogenous Nitric Oxide and Jasmonate Acid to Low Temperature Stress in Young Loquat Fruits[J]. Plant Science Journal, 2012, 30(6): 611-617. DOI: 10.3724/SP.J.1142.2012.60611 |
[6] | HE Yu-Chi, TANG Xing-Chun, HE Yu-Qing, SUN Meng-Xiang. Roles of Cell Wall in Cell Polarity Establishment and Embryogenesis[J]. Plant Science Journal, 2006, 24(5): 464-468. |
[7] | ZHI Li-Feng, YU Tao, ZHU Ying-Guo, LI Yang-Sheng. Programmed Cell Death of Tobacco Suspension Cultures Induced by Cd[J]. Plant Science Journal, 2006, 24(5): 403-407. |
[8] | WAN Shu-Qing, YANG Shu-Juan, JIANG Zhi-Sheng, SHANG Zhi-Zhen, LIU Zhun. Response of Protective Enzyme in Callus of Barnyard Grass under Oxidizing Stress Induced by Polyacetylene Compound[J]. Plant Science Journal, 2004, 22(4): 334-338. |
[9] | HAN Yong-Hua, JIN Wei-Wei, WANG Xiao-Lan, SONG Yun-Chun. Chromosomal Localization of Programmed Cell Death Suppressor OsDad-1 Gene in Coix lacryma-jobi L.[J]. Plant Science Journal, 2003, 21(6): 471-474. |
[10] | Bi Liejue. A QUESTION ABOUT A BASAL CELL[J]. Plant Science Journal, 1994, 12(2): 185-188. |