[1]LI M,LIU Q,GUO L J,et al.Cu (II) removal from aqueous solution by Spartina alterniflora derived biochar[J].Bioresource Technology,2013,141(12):83-88.[2]于冬雪,韩广轩,王晓杰,等.互花米草入侵对黄河口潮沟形态特征和植物群落分布的影响[J].生态学杂志,2022,41(1):42-49.
[3]徐伟伟,王国祥,刘金娥,等.苏北海滨湿地互花米草种群繁殖方式[J].生态学报, 2014,34(14):3839-3847.
[4]朱怡,吴永波,薛建辉.互花米草入侵与治理对滨海盐沼湿地鸟类栖息地影响的研究进展[J].南京林业大学学报(自然科学版),2025,49(6):281-290.
[5]谢宝华,闫振宁,张树岩,等.不同潮滩生境互花米草的植被性状与治理技术[J].环境工程, 2023,41(6):1-8.
[6]闫振宁,梅宝玲,张桂萍,等.高程对盐沼湿地互花米草生长与扩散的影响[J].生态环境学报, 2021,30(6):1183-1191.
[7]郑浩,刘明月,杨晓芜,等.中国大陆沿海地区互花米草生长特征及其对环境因子的响应[J].草地学报,2022,30(11):3026-3034.
[8]陈健辉,缪绅裕,秦玉环,等.不同盐度下互花米草根结构的比较研究[J].植物科学学报, 2015,33(4):482-488.
[9]刘远瞻,徐晓,刘浩,等.中国滨海盐沼互花米草和芦苇叶片功能性状的纬度梯度变异[J].复旦学报(自然科学版),2020,59(4):381-389.
[10]王鹏娜,何英英,李文君,等.转录组学分析互花米草Spartina alterniflora的高盐度抗性分子机制[J].海洋科学进展,2023,41(4):721-736.
[11]HESSINI K,JEDDI K,SIDDIQUE K H M,et al.Drought and salinity:A comparison of their effects on the ammonium-preferring species Spartina alterniflora[J].Physiologia Plantarum. 2021,172(2):431-440.
[12]GAO S,CHEN S K,YANG M G,et al. Mining salt stress-related genes in Spartina alterniflora via analyzing co-evolution signal across 365 plant species using phylogenetic profiling[J].aBIOTECH, 2023,4(4):291-302.
[13]LIU X T,ZHENG X W,WANG Z Y,et al.Monitoring wetland changes and analyzing the Spartina alterniflora invasion in the Yellow River delta over the past 30 years based on google earth engine[J].IEEE Geoscience and Remote Sensing Letters,2024,21:1-5.
[14]陈中义,李博,陈家宽.长江口崇明东滩土壤盐度和潮间带高程对外来种互花米草生长的影响[J].长江大学学报(自然科学版),2005,2(2):6-9.
[15]YAN D D,LUAN Z Q,WANG Y,et al.Modeling the spatial distribution of Spartina alterniflora ecological response to the interaction of flooding and soil salinity base on UAV data in coastal wetland[J].International Journal of Digital Earth,2024,17(1):1-15.
[16]陈绿青.不同盐度梯度下互花米草的分布及其无性扩散[J].青海农林科技, 2013(3):19-21.
[17]王倩,史欢欢,于振林,等.盐度及种间相互作用对海三棱藨草、互花米草萌发及生长的影响[J].生态学报,2022, 42(20):8300-8310.
[18]XIE B H,HAN G X,QIAO P Y,et al.Effects of mechanical and chemical control on invasive Spartina alterniflora in the Yellow River Delta, China[J].PeerJ,2019,7(8),e7655.
[19]任丽娟,仇乐,王国祥,等.盐胁迫对淡水浇灌互花米草种子的萌发及胚生长的效应[J].植物研究,2010,30(3):305-310.
[20]成海,陈浩,刘月,等.滩涂互花米草生长盐分区间及其化感作用[J].安徽农业科学,2022,50(14):67-69.
[21]肖燕,汤俊兵,清华,等.培养基质、储藏方式和盐度对三种海滨植物种子萌发的影响[J]. 生态学报,2010,30(7):1675-1683.
[22]张艺霖,温畅,康祥垠,等.滨海湿地入侵植物互花米草种子萌发时间对生活史对策的影响[J].生态学报, 2025, 45(20):10190-10198.
[23]康浩,石贵玉,李佳枚.NaCl胁迫对互花米草光合作用及其参数的影响[J].广西科学, 2009,16(4):451-454.
[24]陈伟霖,梁梓娇,缪绅裕,等.不同盐度下互花米草生长状况的比较研究[J].广东农业科学, 2017, 44(4):67-72.
[25]ANDERSON L.Potential for sediment-applied acetic acid for control for invasive Spartina alterniflora[J].Journal of Aquatic Plant Management,2007,45:100-105.
[26]薛媛媛,闫丹丹,戚丽萍,等.江苏大丰麋鹿国家级自然保护区互花米草对水盐梯度的生态响应[J].环境科学学报, 2022,42(1):28-35.
[27]肖燕,汤俊兵,安树青.芦苇、互花米草的生长和繁殖对盐分胁迫的响应[J].生态学杂志, 2011,30(2):267-272.
[28]TRILLA G G,KANDUS P,NEGRIN V,et al.Tiller dynamic and production on a SW Atlantic Spartina alterniflora marsh[J].Estuarine Coastal and Shelf Science,2009,85(1):126-133.
[29]WU H B, ZHANG Z S, ZHAO W W, et al. Spartina alterniflora invasion decouples multiple elements in coastal wetland soils[J].Science of the Total Environmen,2024,924:171502.
[30]康浩.互花米草生理生化特性对盐胁迫的响应[D].桂林:广西师范大学,2010.
[31]MAO L S,MISHRA D R,HAWMAN P A,et al.Photosynthetic performance of tidally flooded Spartina alterniflora salt marshes[J].Journal of Geophysical Research: Biogeosciences,2023,128(3):1-17.
[32]黄冠闽.不同盐度梯度下互花米草与秋茄的生理特性比较研究[J].福建林业,2019(1):37-41.
[33]张鑫,袁俊吉,彭思利,等.大气CO2浓度升高对黄河三角洲湿地盐地碱蓬和互花米草光合特性的影响[J].湿地科学,2025,23(1):160-168.
[34]阮俊潮,戴文红,李文兵,等.滨海湿地优势植物芦苇和互花米草的生态响应与效应研究进展[J].杭州师范大学学报(自然科学版),2019,18(5):490-498,509.
[35]左雪燕.不同生境条件下互花米草叶片功能性状的高光谱反演及土壤环境因素分析[D].北京:中国林业科学研究院,2021.
[36]辛悦,邹彩瑜,时宇,等.互花米草叶绿素荧光参数对盐胁迫的响应[J].环境生态学报, 2020,2(7):8-12.
[37]肖强,郑海雷,陈瑶.盐度对互花米草生长及脯氨酸、可溶性糖和蛋白质含量的影响[J].生态学杂志,2005,24 (4):373-376.
[38]LIU Y N,LI Z M,LI L X,et al.Physiological and transcriptomic analysis of Spartina alterniflora in response to imazapyr acid stress[J].BMC Plant Biology,2025,25(1):1-14.
[39]COURTNEY A J,XU J C,XU Y. Responses of growth, antioxidants and gene expression in smooth cordgrass (Spartina alterniflora) to various levels of salinity[J].Plant Physiology and Biochemistry,2016,99:162-170.
[40]刘振.互花米草耐盐基因MDH和BADH的克隆及功能分析[D].烟台:烟台大学,2019.
[41]CHEN S K,DU T T,HUANG Z P,et al.The Spartina alterniflora genome sequence provides insights into the salt-tolerance mechanisms of exo-recretohalophytes[J].Plant Biotechnology Journal,2024,22(9):2558-2574.
[42]YE W B,WANG T T,WEI W,et al.The full-length transcriptome of Spartina alterniflora reveals the complexity of high salt tolerance in monocotyledonous halophyte[J].Plant and Cell Physiology,2020,61(5):882-896.
[43]张莹.互花米草SOS1基因和HKT1基因的克隆及耐盐转基因水稻研究[D].烟台:烟台大学,2012.
[44]WANG T T, YE W B,MA L Y. Alternative 3’-untranslated regions regulate high-salt tolerance of Spartina alterniflora[J].Plant Physiology,2023,191(4):2570-2587.
[45]李琴珍.互花米草耐盐相关转录因子的挖掘与分析[D].福州:福建农林大学, 2022.
[46]LIU C Y, JIANG M T, YUAN M M, et al. Root microbiota confers rice resistance to aluminium toxicity and phosphorus deficiency in acidic soils[J].Nature Food,2023,4(10):912-924.
[47]GIANLUIGI G, SILVIA P, GIOVANNA V. The contribution of PGPR in salt stress tolerance in crops: Unravelling the molecular mechanisms of cross-talk between plant and bacteria[J].Plants,2023,12(11):2197.
[48]沈佳峰,梁腾飞,胡泓,等.互花米草生态特征及环境效应研究进展[J].海洋湖沼通报, 2025,47(4):274-282.