| [1] |
李开叶, 郑舒婷, 吕陈生. 砷镉复合污染稻田修复研究进展[J]. 中国无机分析化学, 2024, 14(7):911-922.
|
| [2] |
王鹏云, 晁代印. 重金属污染的植物修复及相关分子机制[J]. 生物工程学报, 2020, 36(3):426-435.
|
| [3] |
石航源, 王鹏, 郑家桐, 等. 中国省域土壤重金属空间分布特征及分区管控对策[J]. 环境科学, 2023, 44(8):4706-4 716.
|
| [4] |
ZHANG X, ZHANG P L, WEI X, et al. Migration, transformation of arsenic, and pollution controlling strategies in paddy soil-rice system: A comprehensive review[J]. Science of The Total Environment, 2024, 951: 175 500.
|
| [5] |
MESTROT A, UROIC M K, PLANTEVIN T, et al. Quantitative and qualitative trapping of arsines deployed to assess loss of volatile arsenic from paddy soil[J]. Environmental Science & Technology, 2009, 43(21): 8 270-8 275.
|
| [6] |
LI G, SUN G X, WILLIAMS P N, et al. Inorganic arsenic in Chinese food and its cancer risk[J]. Environment International, 2011, 37(7): 1 219-1 225.
|
| [7] |
MITRA A, CHATTERJEE S, MOOGOUEI R, et al. Arsenic accumulation in rice and probable mitigation approaches: A review[J]. Agronomy, 2017, 7(4): 67.
|
| [8] |
BALI A S, SIDHU G P S. Arsenic acquisition, toxicity and tolerance in plants-from physiology to remediation: A review[J]. Chemosphere, 2021, 283: 131 050.
|
| [9] |
MA J F, TAMAI K, YAMAJI N, et al. A silicon transporter in rice[J]. Nature, 2006, 440(7084): 688-691.
|
| [10] |
DIXIT G, SINGH A P, KUMAR A, et al. Reduced arsenic accumulation in rice (Oryza sativa L.) shoot involves sulfur mediated improved thiol metabolism, antioxidant system and altered arsenic transporters[J]. Plant Physiology and Biochemistry, 2016, 99: 86-96.
|
| [11] |
GAO Z X, TANG X J, YE M J, et al. Effects of silicon on the uptake and accumulation of arsenite and dimethylarsinic acid in rice (Oryza sativa L.)[J]. Journal of Hazardous Materials, 2021, 409: 124 442.
|
| [12] |
HUANG S, YAMAJI N, SAKURAI G, et al. A pericycle-localized silicon transporter for efficient xylem loading in rice[J]. The New phytologist, 2022, 234(1): 197-208.
|
| [13] |
JANEJOBKHET J, PONGPRAYOON W, OBSUWAN K, et al. Multifaceted response mechanisms of Oryza sativa L. ‘KDML105’ to high arsenite and arsenate stress levels[J]. Environmental Science and Pollution Research, 2024, 31(9): 13 816-13 832.
|
| [14] |
YAMAJI N, SAKURAI G, MITANI-UENO N, et al. Orchestration of three transporters and distinct vascular structures in node for intervascular transfer of silicon in rice[J]. Proceedings of the National Academy of Sciences of The United States of America, 2015, 112(36): 11 401-11 406.
|
| [15] |
PAN D D, YI J C, LI F B, et al. Dynamics of gene expression associated with arsenic uptake and transport in rice during the whole growth period[J]. BMC Plant Biology, 2020, 20(1): 133.
|
| [16] |
周连碧, 王琼, 杨越晴. 典型金属矿区污染土壤生态修复研究与实践进展[J]. 有色金属(冶炼部分), 2021(3):10-18.
|
| [17] |
LIU C P, LI F B, LUO C L, et al. Foliar application of two silica sols reduced cadmium accumulation in rice grains[J]. Journal of Hazardous Materials, 2009, 161(2/3): 1 466-1 472.
|
| [18] |
ZHEN S, SHUAI H, XU C, et al. Foliar application of Zn reduces Cd accumulation in grains of late rice by regulating the antioxidant system, enhancing Cd chelation onto cell wall of leaves, and inhibiting Cd translocation in rice[J]. Science of The Total Environment, 2021, 770: 145 302.
|
| [19] |
张昕, 王惠君, 薛卫杰, 等. 苹果酸-天冬氨酸代谢对水稻镉吸收转运特性的影响[J]. 农业环境科学学报, 2023, 42(10):2147-2 154.
|
| [20] |
NUMAGAMI Y, OHNISHI S T. S-allylcysteine inhibits free radical production, lipid peroxidation and neuronal damage in rat brain ischemia[J]. Journal of Nutrition, 2001, 131(3): 1100S-1105S.
|
| [21] |
GEDDO F, QUERIO G, ASTEGGIANO A, et al. Improving endothelial health with food-derived H2S donors: An in vitro study with S-allyl cysteine and with a black-garlic extract enriched in sulfur-containing compounds[J]. Food & Function, 2023, 14(9): 4 163-4 172.
|
| [22] |
SANA, AQEEL U, AFTAB T, et al. Hydrogen sulfide regulates germination dynamics, antioxidant defense, and anatomical response in arsenic-treated Trigonella foenum-graecum seedlings[J]. South African Journal of Botany, 2025, 185: 458-467.
|
| [23] |
SHEN X Y, LIU Y, ZENG Y, et al. Hydrogen sulfide alleviates the chilling-induced lignification in loquat fruit by regulating shikimate, phenylpropanoid and cell wall metabolisms[J]. Postharvest Biology and Technology, 2024, 214: 113 012.
|
| [24] |
SINGH V P, SINGH S, KUMAR J, et al. Hydrogen sulfide alleviates toxic effects of arsenate in pea seedlings through up-regulation of the ascorbate-glutathione cycle: Possible involvement of nitric oxide[J]. Journal of Plant Physiology, 2015, 181: 20-29.
|
| [25] |
ALI B, MWAMBA T M, GILL R A, et al. Improvement of element uptake and antioxidative defense in Brassica napus under lead stress by application of hydrogen sulfide[J]. Plant Growth Regulation, 2014, 74(3): 261-273.
|
| [26] |
郎耀臻, 刘斌, 王常荣, 等. 叶面喷施S-烯丙基-L-半胱氨酸对水稻砷转运影响机制[J]. 农业环境科学学报, 2023, 42(7):1436-1 443.
|
| [27] |
孔维勇, 王晓丽, 王常荣, 等. 叶面喷施蔗糖降低水稻幼苗镉含量机制[J]. 农业环境科学学报, 2024, 43(9):1951-1 959.
|
| [28] |
鲍士旦. 土壤农化分析[M]. 3版. 北京: 中国农业出版社, 2000.
|
| [29] |
YAMAJI N, MITATNI N, MA J F. A transporter regulating silicon distribution in rice shoots[J]. The Plant Cell, 2008, 20(5): 1 381-1 389.
|
| [30] |
LEE C H, HSIEH Y C, LIN T H, et al. Iron plaque formation and its effect on arsenic uptake by different genotypes of paddy rice[J]. Plant and Soil, 2013, 363(1): 231-241.
|
| [31] |
杨永强. 根表铁氧化物阻控水稻(Oryza sativa L.)吸收砷的影响因素及机制[D]. 武汉: 华中农业大学, 2021.
|
| [32] |
SONG W Y, YAMAKI T, YAMAJI N, et al. A rice ABC transporter, OsABCC1, reduces arsenic accumulation in the grain[J]. Proceedings of the National Academy of Sciences of The United States of America, 2014, 111(44): 15 699-15 704.
|
| [33] |
HAYASHI S, KURAMATA M, ABE T, et al. Phytochelatin synthase OsPCS1 plays a crucial role in reducing arsenic levels in rice grains[J]. The Plant Journal, 2017, 91(5): 840-848.
|
| [34] |
LV Q Y, HAN M L, GAO Y Q, et al. Sec24C mediates a Golgi-independent trafficking pathway that is required for tonoplast localisation of ABCC1 and ABCC2[J]. The New Phytologist, 2022, 235(4): 1 486-1 500.
|
| [35] |
ALSAHLI A A, BHAT J A, ALYEMENI M N, et al. Hydrogen sulfide (H2S) mitigates arsenic (As)-induced toxicity in pea (Pisum sativum L.) plants by regulating osmoregulation, antioxidant defense system, ascorbate glutathione cycle and glyoxalase system[J]. Journal of Plant Growth Regulation, 2021, 40(6): 2 515-2 531.
|
| [36] |
DA-SILVA C J, MOLLICA D C F, VICENTE M H, et al. NO, hydrogen sulfide does not come first during tomato response to high salinity[J]. Nitric Oxide, 2018, 76: 164-173.
|
| [37] |
火兴宇, 张宇, 王常荣, 等. 硫化氢信号分子介导S-烯丙基-L-半胱氨酸调控水稻镉胁迫[J]. 农业环境科学学报, 2025, 44(5):1160-1 168.
|
| [38] |
程六龙. S-烯丙基-L-半胱氨酸对水稻镉转运的影响[D]. 北京: 中国农业科学院, 2021.
|
| [39] |
LIU H, WANG J C, LIU J H, et al. Hydrogen sulfide (H2S) signaling in plant development and stress responses[J]. aBIOTECH, 2021, 2(1): 32-63.
|
| [40] |
阳树英, 王浩, 邹应斌, 等. 氮硫互作对五常香稻产量和氮肥利用率的影响[J]. 湖南农业大学学报(自然科学版), 2020, 46(2):125-129,183.
|
| [41] |
RIZWAN M, MOSTOFA M G, AHMAD M Z, et al. Hydrogen sulfide enhances rice tolerance to nickel through the prevention of chloroplast damage and the improvement of nitrogen metabolism under excessive nickel[J]. Plant Physiology and Biochemistry, 2019, 138: 100-111.
|
| [42] |
UMAR S, GAUBA N, ANJUM N A, et al. Arsenic toxicity in garden cress (Lepidium sativum Linn.): Significance of potassium nutrition[J]. Environmental Science and Pollution Research, 2013, 20(9): 6 039-6 049.
|
| [43] |
张福锁, 王激清, 张卫峰, 等. 中国主要粮食作物肥料利用率现状与提高途径[J]. 土壤学报, 2008, 45(5): 915-924.
|
| [44] |
纪冬丽, 孟凡生, 薛浩, 等. 国内外土壤砷污染及其修复技术现状与展望[J]. 环境工程技术学报, 2016, 6(1):90-99.
|
| [45] |
贺志远. 土壤重金属污染修复技术应用分析[J]. 中国资源综合利用, 2022, 40(4):109-111.
|