Hostname: page-component-76fb5796d-r6qrq Total loading time: 0 Render date: 2024-04-29T23:37:40.667Z Has data issue: false hasContentIssue false

Characterization of Multiple Herbicide-Resistant Italian Ryegrass (Lolium perenne ssp. multiflorum) Populations from Winter Wheat Fields in Oregon

Published online by Cambridge University Press:  20 January 2017

Mingyang Liu*
Affiliation:
Department of Crop and Soil Sciences, Oregon State University, Corvallis, OR 97331
Andrew G. Hulting
Affiliation:
Department of Crop and Soil Sciences, Oregon State University, Corvallis, OR 97331
Carol Mallory-Smith
Affiliation:
Department of Crop and Soil Sciences, Oregon State University, Corvallis, OR 97331
*
Corresponding author's E-mail: mingyang.liu@oregonstate.edu

Abstract

Many Italian ryegrass populations in Oregon are resistant to more than one herbicide; therefore, the resistance patterns of these populations must be determined to identify alternative herbicides for management. Two suspected resistant Italian ryegrass populations (R2 and R4) survived flufenacet plus metribuzin applications under typical winter wheat production conditions. Populations R2 and R4 were resistant to clethodim, pinoxaden, quizalofop, mesosulfuron-methyl, flufenacet, but not to acetochlor, dimethenamid-p, metolachlor, pyroxasulfone, imazapyr, sulfometuron, or glyphosate. R4 was resistant to diuron, but R2 was not. The estimated flufenacet doses required for 50% growth reduction (GR50) were 438 g ai ha−1 (R2) and 308 g ai ha−1 (R4). Both populations were controlled by pyroxasulfone at rates greater than 15 g ai ha−1. An Asp-2078-Gly substitution in the ACCase gene was found in both populations, while an Ile-2041-Asn was found only in the R4 population. A Ser-264-Gly substitution in psbA gene was found in the R4 population. These mutations previously have been reported to provide resistance to ACCase and photosynthetic inhibitors, respectively. No resistance mutations were identified in the acetolactate synthase (ALS) gene of either population. The addition of the P450 inhibitor, chlorpyrifos, increased the injury resulting from mesosulfuron-methyl on both resistant populations providing indirect evidence that the ALS resistance may be metabolic. Multiple herbicide-resistant Italian ryegrass populations were identified in this study with both target site and nontarget site based mechanisms likely involved. However, several herbicides were identified including pyroxasulfone, a herbicide in the same group as flufenacet, which could be used to control these two populations.

Type
Weed Management
Copyright
Copyright © Weed Science Society of America 

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

Footnotes

Associate Editor for this paper: Franck E. Dayan, USDA-ARS.

References

Literature Cited

Anonymous (2011) Global technical bulletin: pyroxasulfone. Tokyo, Japan Kumiai Chemical Industry Co., Ltd Google Scholar
Anonymous (2014a) Define DFTM herbicide supplemental label. Research Triangle Park, NC Bayer Crop Science. http://www.cdms.net/LDat/ld4EU019.pdf. Accessed November 10, 2014Google Scholar
Anonymous (2014b) Zidua Herbicide Supplemental Label. Research Triangle Park, NC BASF Corporation. http://www.agproducts.basf.us/products/label-and-msds/zidua-herbicide-label.pdf. Accessed November 1, 2014Google Scholar
Appleby, AP, Brewster, BD (1992) Seeding arrangement on winter wheat (Triticum aestivum) grain yield and interaction with Italian ryegrass (Lolium multiflorum ). Weed Technol 6:820823 Google Scholar
Appleby, AP, Olson, PD, Colbert, DR (1976) Winter wheat yield reduction from interference by Italian ryegrass. Agron J 68:463466 Google Scholar
Avila-Garcia, WV, Mallory-Smith, C (2011) Glyphosate-resistant Italian ryegrass (Lolium perenne) populations also exhibit resistance to glufosinate. Weed Sci 59:305309 Google Scholar
Beckie, HJ, Tardif, FJ (2012) Herbicide cross-resistance in weeds. Crop Prot 35:1528 Google Scholar
Busi, R (2014) Resistance to herbicides inhibiting the biosynthesis of very-long-chain fatty acids. Pest Manag Sci 70:13781384 Google Scholar
Busi, R, Gaines, TA, Walsh, MJ, Powles, SB (2012) Understanding the potential for resistance evolution to the new herbicide pyroxasulfone: field selection at high doses versus recurrent selection at low doses. Weed Res 52:489499 Google Scholar
Busi, R, Powles, SB (2013) Cross-resistance to prosulfocarb and triallate in pyroxasulfone-resistant Lolium rigidum . Pest Manag Sci 69:13791384 Google Scholar
Chandi, A, York, AC, Jordan, DL, Beam, JB (2011) Resistance to acetolactate synthase and acetyl Co-A carboxylase inhibitors in North Carolina Italian ryegrass (Lolium perenne ). Weed Technol 25:659666 Google Scholar
Délye, C, Zhang, XQ, Chalopin, C, Michel, S, Powles, SB (2003) An isoleucine residue within the carboxyl-transferase domain of multidomain acetyl-coenzyme A carboxylase is a major determinant of sensitivity to aryloxyphenoxypropionate but not to cyclohexanedione inhibitors. Plant Physiol 132:17161723 Google Scholar
DRC package for R, version 2.5-12. https://cran.r-project.org/web/packages/drc/drc.pdf. Accessed June 25, 2015Google Scholar
[EPA] Environmental Protection Agency (2014) Pest fact sheet: flufenacet. http://www.epa.gov/opp00001/chem_search/reg_actions/registration/fs_PC-121903_01-Apr-98.pdf. Accessed November 27, 2014Google Scholar
Grey, TL, Bridges, DC (2003) Alternatives to diclofop for the control of Italian ryegrass (Lolium multiflorum) in winter wheat (Triticum aestivum ). Weed Technol 17:219223.Google Scholar
Hulting, AG, Dauer, JT, Hinds-Cook, B, Curtis, D, Koepke-Hill, RM, Mallory-Smith, C (2012) Management of Italian ryegrass (Lolium perenne ssp. multiflorum) in western Oregon with preemergence applications of pyroxasulfone in winter wheat. Weed Technol 26:230235 Google Scholar
Justice, GG, Peeper, TF, Solie, JB, Epplin, FM (1994) Net returns from Italian ryegrass (Lolium multiflorum) control in winter wheat (Triticum aestivum ). Weed Technol 8:317323 Google Scholar
King, SR, Garcia, JO (2008) Annual broadleaf control with KIH-485 in glyphosate-resistant furrow-irrigated corn. Weed Technol 22:420424 Google Scholar
Knezevic, SZ, Datta, A, Scott, J, Porpiglia, PJ (2009) Dose–response curves of KIH-485 for preemergence weed control in corn. Weed Technol 23:3439 Google Scholar
Koepke-Hill, RM, Armel, GR, Bradley, KW, Bailey, WA, Wilson, HP, Hines, TE (2011) Evaluation of flufenacet plus metribuzin mixtures for control of Italian ryegrass in winter wheat. Weed Technol 25:563567 Google Scholar
Liebl, R, Worsham, AD (1987) Interference of Italian ryegrass (Lolium multiflorum) in wheat (Triticum aestivum ). Weed Sci 35:819823 Google Scholar
Liu, M, Hulting, AG, Mallory-Smith, CA (2014) Characterization of multiple-herbicide-resistant Italian ryegrass (Lolium perenne spp. multiflorum ). Pest Manag Sci 70:11451150 Google Scholar
Martins, BAB, Sánchez-Olguín, E, Perez-Jones, A, Hulting, AG, Mallory-Smith, C (2014) Alleles contributing to ACCase-resistance in an Italian ryegrass (Lolium perenne ssp. multiflorum) population from Oregon. Weed Sci 62:468473 Google Scholar
Peachey, E, Ball, D, Hulting, A, Miller, T, Morishita, D, Hutchinson, P (2015) Pacific Northwest Weed Management Handbook. http://pnwhandbooks.org/weed/agrichemicals/flufenacet. Accessed March 1, 2015Google Scholar
Perez-Jones, A, Intanon, S, Mallory-Smith, C (2009) Molecular analysis of hexazinone-resistant shepherd's-purse (Capsella bursa-pastoris) reveals a novel psbA mutation. Weed Sci 57:574578 Google Scholar
Rauch, TA, Thill, DC, Gersdorf, SA, Price, WJ (2010) Widespread occurrence of herbicide-resistant Italian ryegrass (Lolium multiflorum) in Northern Idaho and Eastern Washington. Weed Technol 24:281288 Google Scholar
Ritz, C, Streibig, JC (2005) Bioassay analysis using R. J Stat Software 12:122 Google Scholar
Sikkema, PH, Robison, DE, Nurse, RE, Soltani, N (2008) Pre-emergence herbicides for potential use in pinto and small red Mexican bean (Phaseolus vulgaris) production. Crop Prot 27:124129 Google Scholar
Siminszky, B (2006) Plant cytochrome P450-mediated herbicide metabolism. Phytochem Rev 5:445458 Google Scholar
Soltania, N, Deenb, B, Bowleyb, S, Sikkema, PH (2005) Effects of pre-emergence applications of flufenacet plus metribuzin on weeds and soybean (Glycine max ). Crop Prot 24:507511 Google Scholar
Tanetani, Y, Ikeda, M, Kaku, K, Shimizu, T, Matsumoto, H (2013) Role of metabolism in the selectivity of a herbicide, pyroxasulfone, between wheat and rigid ryegrass seedlings. J Pestic Sci 38:152156 Google Scholar
Tanetani, Y, Kaku, K, Kawai, K, Fujioka, T, Shimizu, T (2009) Action mechanism of a novel herbicide, pyroxasulfone. Pestic Biochem Physiol 95:4755 Google Scholar
Walsh, MJ, Fowler, TM, Crowe, B, Ambe, T, Powles, SB (2011) The potential for pyroxasulfone to selectively control resistant and susceptible rigid ryegrass (Lolium rigidum) biotypes in Australian grain crop production systems. Weed Technol 25:3037 Google Scholar
Whitson, TD, ed. (2006) Weeds of the West. 9th edn. Jackson WO Grand Teton Lithography. Pp 460461 Google Scholar
Yu, Q, Abdallah, I, Han, H, Owen, M, Powles, S (2009) Distinct non-target site mechanisms endow resistance to glyphosate, ACCase and ALS-inhibiting herbicides in multiple herbicide-resistant Lolium rigidum . Planta 4:713723 Google Scholar
Yu, Q, Collavo, A, Zheng, MQ, Owen, M, Sattin, M, Powles, SB (2007) Diversity of acetyl-coenzyme A carboxylase mutations in resistant Lolium populations: evaluation using clethodim. Plant Physiol 145:547558 Google Scholar
Yu, Q, Han, H, Powles, SB (2008) Mutations of the ALS gene endowing resistance to ALS-inhibiting herbicides in Lolium rigidum populations. Pest Manag Sci 64:12291236 Google Scholar
Yu, Q, Powles, S (2014) Metabolism-based herbicide resistance and cross-resistance in crop weeds: a threat to herbicide sustainability and global crop production. Plant Physiol 166:11061118 Google Scholar