[1]陈亚辉,周鹏,张敏,等.基于层次分析法的柽柳属4种植物耐盐性评价[J].江苏林业科技,2024,51(06):28-32.[doi:10.3969/j.issn.1001-7380.2024.06.005]
点击复制

基于层次分析法的柽柳属4种植物耐盐性评价()
分享到:

《江苏林业科技》[ISSN:1001-7380/CN:32-1236/S]

卷:
第51卷
期数:
2024年06期
页码:
28-32
栏目:
试验研究
出版日期:
2024-12-31

文章信息/Info

文章编号:
1001-7380(2024)06-0028-05
作者:
陈亚辉周鹏张敏隋德宗王磊*
江苏省林业科学研究院,江苏 南京 211153
关键词:
柽柳NaCl胁迫耐盐性层次分析法
分类号:
Q945.78;S727.23;S793.5
DOI:
10.3969/j.issn.1001-7380.2024.06.005
文献标志码:
A
摘要:
利用层次分析法对柽柳属4种植物在200 mmol/L NaCl胁迫15 d的总叶绿素含量、SOD活性、POD活性、CAT活性、脯氨酸含量、可溶性糖含量、H2O2含量、MDA含量、根系活力和地上部分相对含水量等10个指标数值构建综合评价模型,对4种植物耐盐能力进行比较。结果显示,柽柳属4种植物的综合得分排名为甘蒙柽柳>中国柽柳>刚毛柽柳>多枝柽柳。该研究结果可为盐碱地树种筛选和耐盐性树种的选育提供参考。

参考文献/References:

[1]QADIR M, QUILLROU E, NANGIA V, et al. Economics of salt-induced land degradation and restoration[J]. Natural Resources Forum,2014, 38(4): 282-295.

[2]MORTON M J L, AWLIA M, AL-TAMIMI N, et al. Salt stress under the scalpel-dissecting the genetics of salt tolerance[J]. The Plant Journal: for Cell and Molecular Biology,2019, 97(1): 148-163.
[3]PARK H J, KIM W Y, YUN D J. A new insight of salt stress signaling in plant[J]. Molecules and Cells, 2016, 39(6): 447-459.
[4]ZISKA L H, BUNCE J A, SHIMONO H, et al. Food security and climate change: on the potential to adapt global crop production by active selection to rising atmospheric carbon dioxide[J]. Proceedings of Biological Sciences, 2012, 279(1745): 4097-4105.
[5]DUAN Q X, ZHU Z H, WANG B S, et al. Recent progress on the salt tolerance mechanisms and application of tamarisk[J]. International Journal of Molecular Sciences,2022, 23(6):3325.
[6]TANIGUCHI T, IMADA S, ACHARYA K, et al. Effect of soil salinity and nutrient levels on the community structure of the root-associated bacteria of the facultative halophyte, Tamarix ramosissima, in southwestern United States[J]. The Journal of General and Applied Microbiology,2015, 61(5): 193-202.
[7]HAN Z, YIN W, ZHANG J, et al. Active anti-erosion protection strategy in tamarisk (Tamarix aphylla)[J]. Scientific Reports,2013, 3(1): 3429.
[8]MAMAT Z, HALIK U, AISHAN T, et al. Ecological effect of the riparian ecosystem in the lower reaches of the Tarim River in northwest China[J]. PloS One,2019,14(1): e208462.
[9]ZENG Y, ZHAO C Y, KUNDZEWICZ Z W, et al. Distribution pattern of Tugai forests species diversity and their relationship to environmental factors in an arid area of China[J]. PloS One, 2020, 15(5): e232907.
[10]孟晓松.中国柽柳品系耐盐性试验研究[D].秦皇岛:河北科技师范学院,2020.
[11]慕铭.中国柽柳品种‘鲁柽1号’对盐胁迫的生理响应[D].泰安:山东农业大学,2021.
[12]王红宝,郑伶杰,丁丁,等.7种柽柳属植物对NaCl胁迫的生长生理响应与耐盐性差异[J].山东农业科学,2022,54(11):31-38.
[13]杨晴,代波,刘振林,等.四个柽柳新品系的耐盐性评价[J].河北科技师范学院学报,2016, 30(4): 23-28.
[14]张孝仁,徐先英.柽柳属种间耐盐性比较试验[J].中国沙漠,1993(1):38-43.
[15]陈刚,吕东,赵明,等.基于层次分析法的干旱半干旱区15种引进观赏植物适应性[J]. 干旱区资源与环境,2022,36(1):186-191.
[16]刘振虎,卢欣石,葛军.利用层次分析法综合评价9个草坪品种的耐盐性[J].草地学报, 2002(3): 207-211.
[17]刘咏梅,程聪,姜黎,等.NaCl胁迫下3种柽柳属植物生长、盐离子分布和SOS1基因相对表达量的比较[J].植物资源与环境学报,2019,28(1):1-9.
[18]张治安,张善美,蔚荣海.植物生理学实验指导[M].北京:中国农业科学技术出版社,2004.
[19]SERGIEV I,ALEXIEVA,KARANOV E.Effect of spermine, atrazine and combination between them on some endogenous protective systems and stress markers in plants[J].Comptes Rendus de I‘Acadmie Bulgare Sciences,1997, 51: 121-124.
[20]KOSUGI H,KIKUGAWA K.Thiobarbituric acid reaction of aldehydes and oxidized lipids in glacial acetic acid[J]. Lipids,1985,20(12):915-921.
[21]李合生.植物生理生化实验原理和技术[M].北京:高等教育出版社,2003.
[22]王学奎.植物生理生化实验原理和技术[M].北京:高等教育出版社,2006.
[23]朱秀云,梁梦,马玉.根系活力的测定(TTC法)实验综述报告[J].广东化工,2020,47(6): 211-212.
[24]邓雪,李家铭,曾浩健,等.层次分析法权重计算方法分析及其应用研究[J].数学的实践与认识,2012, 42(7):93-100.
[25]郭佳惠,教忠意,何旭东,等.基于层次分析法对柳树观赏性及适应性的综合评价[J].南京林业大学学报(自然科学版),2021,45(6):169-176.
[26]WAND D J, GAO Y, SUN S M, et al. Effects of salt stress on the antioxidant activity and malondialdehyde, solution protein, proline, and chlorophyll contents of three Malus species[J]. Life (Base 1), 2022, 12(11): 1929-1946.
[27]LIANG W, MA X, WAN P, et al. Plant salt-tolerance mechanism: A review[J]. Biochemical and Biophysical Research Communications,2018, 495(1): 286-291.
[28]AKTER S, HUANG J J, WASZCZAK C, et al. Cysteines under ROS attack in plants: a proteomics view[J]. Journal of experimental botany, 2015, 66(10): 2935-2944.
[29]SHARP R E,HSIAO T C,SILK W K.Growth of the maize primary root at low water potentials[J]. Plant Physiology,1990, 93(4):1337-1346.
[30]ERASLAN F,INAL A,PILBEAM D J,et al.Interactive effects of salicylic acid and silicon on oxidative damage and antioxidant activity in spinach (Spinacia oleracea L. cv Matador) grown under boron toxicity and salinity[J]. Plant Growth Regulation,2008, 55(3): 207-219.
[31]ASHRAF M.FOOLAD M R.Roles of glycine betaine and proline in improving plant abiotic stress resistance[J]. Environmental and Experimental Botany,2007,59(2):206-216.
[32]RAHNAMA H,EBRAHIMZADEH H.The effect of NaCl on proline accumulation in potato seedlings and calli[J].Acta Physiologiae Plantarum,2004, 26(3): 263-270.
[33]IBRAHIMOVA U,SULEYMANOVA Z,BRESTIC M, et al. Assessing the adaptive Mechanisms of two bread wheat (Triticum aestivum L.) Genotypes to Salinity Stress[J]. Agronomy (Base 1),2021, 11(10): 1979.
[34]黄正金,卫云丽,张春红,等.基于层次分析法的5个黑莓杂交品系综合评价[J].南京林业大学学报(自然科学版),2019, 43(1): 135-140.
[35]张彩红,薛伟,辛颖,等.基于层次分析法的贵州玉舍国家森林公园休养地适宜度评价[J]. 南京林业大学学报(自然科学版),2020,44(2): 215-219.
[36]乔来秋,王玉祥,荀守华,等.柽柳引种试验研究[J].山东林业科技,2004(6):18-20.

备注/Memo

备注/Memo:
收稿日期:2023-11-12;修回日期:2024-04-20
基金项目:江苏耐盐乡土林木树种培育长期科研基地(LYKJ[2021]08)
作者简介:陈亚辉(1990- ),男,江苏姜堰人,助理研究员,博士。主要从事植物生理和分子生物学研究。
*通信作者:王磊(1980- ),男,江苏宜兴人,研究员,博士。主要从事森林生态学研究。
更新日期/Last Update: 2025-01-23