Evaluation of Acetolactate Synthase-inhibiting Herbicides for Weed Control in Transplanted Bell Pepper

被引:2
|
作者
Armel, Gregory R. [1 ]
Richardson, Robert J. [1 ]
Wilson, Henry P. [1 ]
Trader, Brian W. [1 ]
Whaley, Cory M. [1 ]
Hines, Thomas E. [1 ]
机构
[1] Virginia Polytech Inst & State Univ, Eastern Shore Agr Res & Extens Ctr, Painter, VA 23420 USA
关键词
Capsicum annuum; chlorophyll content; phytotoxicity; sulfonylurea; triazolopyrimidine sulfonanilide; yield; CAPSICUM-ANNUUM; POSTEMERGENCE; HALOSULFURON; TOLERANCE; BENTAZON; WATERMELON; CLOMAZONE; CHINENSE;
D O I
10.21273/HORTSCI.19.2.400
中图分类号
S6 [园艺];
学科分类号
0902 ;
摘要
Field and greenhouse studies were conducted in 2001 and 2002 near Painter, VA, to determine the level of weed control and pepper ( Capsicum annuum) tolerance to postemergence applications of the acetolactate synthase (ALS) inhibitors trifloxysulfuron, halosulfuron, sulfosulfuron, cloransulam, and tribenuron. Based on measurements of visual injury, heights, dry weights, and chlorophyll content of pepper, the safest ALS inhibitor to pepper was trifloxysulfuron followed by halosulfuron, cloransulam, sulfosulfuron, and tribenuron. In addition, trifloxysulfuron was the only herbicide that provided greater than 86% control of pigweed species (Amaranthus spp.) and carpetweed (Mollugo verticillata) in both years of the field study. Trifloxysulfuron was also the only herbicide evaluated that did not reduce pepper yield compared with the control in both years of the field study.
引用
收藏
页码:400 / 404
页数:5
相关论文
共 50 条
  • [21] Weed control with selected herbicides in acetolactate synthase-resistant sorghum
    Hennigh, D. Shane
    Al-Khatib, Kassim
    Currie, Randall S.
    Tuinstra, Mitchell R.
    Geier, Patrick W.
    Stahlman, Phillip W.
    Claassen, Mark M.
    CROP PROTECTION, 2010, 29 (08) : 879 - 883
  • [22] Molecular basis for multiple resistance to acetolactate synthase-inhibiting herbicides and atrazine in Amaranthus blitoides (prostrate pigweed)
    Moshe Sibony
    Baruch Rubin
    Planta, 2003, 216 : 1022 - 1027
  • [23] Resistance of wild radish (Raphanus raphanistrum) to acetolactate synthase-inhibiting herbicides in the Western Australia wheat belt
    Hashem, A
    Bowran, D
    Piper, T
    Dhammu, H
    WEED TECHNOLOGY, 2001, 15 (01) : 68 - 74
  • [24] Molecular basis for multiple resistance to acetolactate synthase-inhibiting herbicides and atrazine in Amaranthus blitoides (prostrate pigweed)
    Sibony, M
    Rubin, B
    PLANTA, 2003, 216 (06) : 1022 - 1027
  • [25] Resistance of Inzen™ grain sorghum to multiple PRE- and POST-applied acetolactate synthase-inhibiting herbicides
    Bowman, Hunter D.
    Barber, Tom
    Norsworthy, Jason K.
    Roberts, Trenton L.
    Kelley, Jason
    Gbur, Edward E.
    WEED TECHNOLOGY, 2021, 35 (01) : 57 - 64
  • [26] Molecular basis of diverse responses to acetolactate synthase-inhibiting herbicides in sulfonylurea-resistant biotypes of Schoenoplectus juncoides
    Uchino, Akira
    Ogata, Shigeru
    Kohara, Hiroshi
    Yoshida, Shuichi
    Yoshioka, Toshihito
    Watanabe, Hiroaki
    WEED BIOLOGY AND MANAGEMENT, 2007, 7 (02) : 89 - 96
  • [27] RESISTANCE TO ACETOLACTATE SYNTHASE-INHIBITING HERBICIDES IN ANNUAL RYEGRASS (LOLIUM-RIGIDUM) INVOLVES AT LEAST 2 MECHANISMS
    CHRISTOPHER, JT
    POWLES, SB
    HOLTUM, JAM
    PLANT PHYSIOLOGY, 1992, 100 (04) : 1909 - 1913
  • [28] Target gene mutations endowed cross-resistance to acetolactate synthase-inhibiting herbicides in wild Brassica juncea
    Yu, Haiyan
    Guo, Xiaotong
    Peng, Licun
    Li, Xiangju
    Chen, Jingchao
    Cui, Hailan
    PESTICIDE BIOCHEMISTRY AND PHYSIOLOGY, 2023, 197
  • [29] Enhanced metabolism and target gene overexpression confer resistance against acetolactate synthase-inhibiting herbicides in Bromus sterilis
    Sen, Madhab Kumar
    Hamouzova, Katerina
    Mikulka, Jakub
    Bharati, Rohit
    Kosnarova, Pavlina
    Hamouz, Pavel
    Roy, Amit
    Soukup, Josef
    PEST MANAGEMENT SCIENCE, 2021, 77 (04) : 2122 - 2128
  • [30] Combined effects of acetolactate synthase-inhibiting herbicides with terbufos and piperonyl butoxide on corn (Zea mays) and soybean (Glycine max)
    Kwon, CS
    Kells, JJ
    Penner, D
    WEED TECHNOLOGY, 1995, 9 (04) : 696 - 702