RESPONSE OF IMIDAZOLINONE-RESISTANT SUNFLOWER TO VARIOUS DRIFT RATES OF GLYPHOSATE, GLUFOSINATE AND INDAZIFLAM

被引:0
作者
Serim, Ahmet Tansel [1 ]
机构
[1] Bilecik Seyh Edebali Univ, Fac Agr & Nat Sci, Dept Plant Protect, Bilecik, Turkey
来源
ROMANIAN AGRICULTURAL RESEARCH | 2022年 / 39卷
关键词
sunflower yield; off-target movement; phytotoxicity; total herbicide; SIMULATED DRIFT; SPRAY DRIFT; RECOVERY; EFFICACY; PEANUT; COTTON;
D O I
暂无
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Imidazolinone (IMI) herbicides are used in sunflower due to the need for sunflower broomrape control, and IMI - resistant sunflower has become common in Turkey. Cereal fields and orchards are often in close vicinity to sunflower fields, and herbicide drift from these areas can adversely affect sunflower. Fields experiments were conducted at Edirne and Ankara, Turkey, in 2018 and 2019 to quantify the sunflower (IMI - resistant) response to various simulated drift rates of glyphosate, glufosinate, and indaziflam. Herbicides were applied to sunflower at 12.5, 6.25, 3.125, and 1% of recommended rates. Crop injury was visually evaluated at 7, 14, and 28 d after treatment (DAT), and plant responses to herbicides were assessed at harvest. Sunflower was injured by all rates of glyphosate applied, with 15 to 100% (in Edirne) and 9 to 84% (Ankara) injury at 28 DAT. Glufosinate - related injury was 5 to 58% in Edirne and 7 to 43% in Ankara at 7 DAT, and decreased with time. In contrast, indaziflam caused no significant crop injury or yield losses. The recommended rates of 6.25% and 12.5 of glyphosate killed all sunflower plants in 2019, while in 2018 the yield loss was 100% only at recommended rate of 12.5% glyphosate. Lower rates of glyphosate reduced yield by 2 to 87% in 2018 and 18 to 62% in 2019. On the other hand, the two highest rates of glufosinate resulted in a yield reduction of 9 and 6% in 2018, respectively, but not in 2019. Injury at early stages after exposure is a good indicator of the impact of glyphosate drift on sunflower yield.
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页数:10
相关论文
共 33 条
[21]   Cotton, Peanut, and Soybean Response to Sublethal Rates of Dicamba, Glufosinate, and 2,4-D [J].
Johnson, Virginia A. ;
Fisher, Loren R. ;
Jordan, David L. ;
Edmisten, Keith E. ;
Stewart, Alexander M. ;
York, Alan C. .
WEED TECHNOLOGY, 2012, 26 (02) :195-206
[22]  
Konyali S., 2017, Social Sciences Research Journal, V6, P11
[23]  
Lanini W.T., 1998, 2000 P CAL WEED SCI, V52, P107
[24]   Yield and physiological response of peanut to glyphosate drift [J].
Lassiter, Bridget R. ;
Burke, Ian C. ;
Thomas, Walter E. ;
Pline-Srnic, Wendy A. ;
Jordan, David L. ;
Wilcut, John W. ;
Wilkerson, Gall G. .
WEED TECHNOLOGY, 2007, 21 (04) :954-960
[25]  
MGM, 2020, TURK STAT MET SERV
[26]  
PPPD, 2020, PLANT PROT PROD DAT
[27]   Effects of herbicides on non-target plant species diversity and the community composition of fallow fields in northern China [J].
Qi, Yue ;
Li, Junsheng ;
Guan, Xiao ;
Yan, Bing ;
Fu, Gang ;
He, Jing ;
Du, Leshan ;
Zhao, Caiyun ;
Zhang, Dun .
SCIENTIFIC REPORTS, 2020, 10 (01)
[28]   Glufosinate Effects on Nitrogen Nutrition, Growth, Yield, and Seed Composition in Glufosinate-Resistant and Glufosinate-Sensitive Soybean [J].
Reddy, Krishna N. ;
Zablotowicz, Robert M. ;
Bellaloui, Nacer ;
Ding, Wei .
INTERNATIONAL JOURNAL OF AGRONOMY, 2011, 2011
[29]   Wheat response to simulated glyphosate drift [J].
Rolder, Christopher A. ;
Griffin, James L. ;
Harrison, Stephen A. ;
Jones, Curtis A. .
WEED TECHNOLOGY, 2007, 21 (04) :1010-1015
[30]   Influence of selected environmental factors on glyphosate efficacy when applied to awnless barnyard grass (Echinochloa colona (L) Link) [J].
Tanpipat, S ;
Adkins, SW ;
Swarbrick, JT ;
Boersma, M .
AUSTRALIAN JOURNAL OF AGRICULTURAL RESEARCH, 1997, 48 (05) :695-702