Simulated Drift of Dicamba and Glyphosate on Coffee Crop

被引:0
|
作者
Zampiroli, Renan [1 ]
da Cunha, Joao Paulo Arantes Rodrigues [1 ]
de Alvarenga, Cleyton Batista [1 ]
机构
[1] Univ Fed Uberlandia, Inst Agr Sci, BR-38408100 Uberlandia, Brazil
来源
PLANTS-BASEL | 2023年 / 12卷 / 20期
关键词
Coffea arabica L; reduced herbicide doses; phytotoxicity; auxin herbicides; 2,4-D; SPEED;
D O I
10.3390/plants12203525
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Weed management in areas adjacent to coffee plantations makes herbicide drift a constant concern, especially with the use of nonselective products such as dicamba. The objective of this study was to evaluate the phytotoxic effects of the herbicide dicamba alone and mixed with glyphosate as a result of simulated drift in a coffee-producing area. The study was conducted in duplicate at two different coffee cherry development stages. The study was performed with a randomized block design and a 2 x 5 + 1 factorial scheme with four replications using two herbicide spray solutions (dicamba and dicamba + glyphosate) and five low doses (0.25; 1; 5; 10; and 20%). Additionally, a control treatment without herbicide application was also employed. In this study, we evaluated the phytotoxic damage and biometric and productive parameters. Visual damages were observed with the use of dicamba and dicamba + glyphosate doses reduced by 0.25% to 5% in the first days after application. The main symptoms were new leaf epinasty, changes in the internodal distance, and plagiotropic branch curvature. Low doses led to reduced plant height and branch length. The treatments did not reduce productivity and performance but altered the physical classifications of grains.
引用
收藏
页数:15
相关论文
共 50 条
  • [31] Yield and physiological response of nontransgenic cotton to simulated glyphosate drift
    Thomas, WE
    Burke, IC
    Robinson, BL
    Pline-Srnic, WA
    Edmisten, KL
    Wells, R
    Wilcut, JW
    WEED TECHNOLOGY, 2005, 19 (01) : 35 - 42
  • [32] Effect of Simulated Glyphosate Drift to Four Potato Processing Cultivars
    Hatterman-Valenti, Harlene
    Crook, Amanda A.
    Auwarter, Collin P.
    HORTSCIENCE, 2014, 49 (09) : S368 - S369
  • [33] Carrier volume affects wheat response to simulated glyphosate drift
    Roider, Christopher A.
    Griffin, James L.
    Harrison, Stephen A.
    Jones, Curtis A.
    WEED TECHNOLOGY, 2008, 22 (03) : 453 - 458
  • [34] Influence of Dicamba and Dicamba plus Glyphosate Combinations on the Control of Glyphosate-Resistant Waterhemp (Amaranthus rudis)
    Spaunhorst, Douglas J.
    Bradley, Kevin W.
    WEED TECHNOLOGY, 2013, 27 (04) : 675 - 681
  • [35] Influence of glyphosate/dicamba application rate and timing on the control of glyphosate-resistant waterhemp in glyphosate/dicamba-resistant soybean
    Hedges, Brittany K.
    Soltani, Nader
    Robinson, Darren E.
    Hooker, David C.
    Sikkema, Peter H.
    CANADIAN JOURNAL OF PLANT SCIENCE, 2019, 99 (03) : 371 - 374
  • [36] Cotton Injury and Yield as Affected by Simulated Drift of 2,4-D and Dicamba
    Marple, Molly E.
    Al-Khatib, Kassim
    Peterson, Dallas E.
    WEED TECHNOLOGY, 2008, 22 (04) : 609 - 614
  • [37] Simulated Single Drift Events of 2,4-D and Dicamba on Pecan Trees
    Wells, M. Lenny
    Prostko, Eric P.
    Carter, O. Wendell
    HORTTECHNOLOGY, 2019, 29 (03) : 360 - 366
  • [38] Annual Flower Response to Simulated 2,4-D and Dicamba Spray Drift
    Hatterman-Valenti, Harlene
    HORTSCIENCE, 2004, 39 (04) : 844 - 844
  • [39] Tank contamination and simulated drift effects of dicamba-containing formulations on soybean cultivars
    Alves, Guilherme. S. S.
    Vieira, Bruno. C. C.
    Ynfante, Rosa. S. S.
    Santana, Thalyson. M. M.
    Moraes, Jesaelen. G. G.
    Golus, Jeffrey. A. A.
    Kruger, Greg. R. R.
    AGROSYSTEMS GEOSCIENCES & ENVIRONMENT, 2020, 3 (01)
  • [40] Cotton Growth and Yield Response to Simulated 2,4-D and Dicamba Drift
    Everitt, John D.
    Keeling, J. Wayne
    WEED TECHNOLOGY, 2009, 23 (04) : 503 - 506