Hostname: page-component-78c5997874-lj6df Total loading time: 0 Render date: 2024-11-08T21:39:08.435Z Has data issue: false hasContentIssue false

Herbicide resistance in China: a quantitative review

Published online by Cambridge University Press:  23 August 2019

Xiangying Liu
Affiliation:
Associate Professor, College of Plant Protection, Hunan Agricultural University, Changsha, China Associate Professor, Department of Entomology, University of Kentucky, Lexington, KY, USA
Shihai Xiang
Affiliation:
Graduate Student, College of Plant Protection, Hunan Agricultural University, Changsha, China
Tao Zong
Affiliation:
Graduate Student, College of Plant Protection, Hunan Agricultural University, Changsha, China
Guolan Ma
Affiliation:
Associate Professor, Institute of Plant Protection, Hunan Academy of Agricultural Sciences, Changsha, China
Lamei Wu
Affiliation:
Associate Professor, Institute of Biotechnology Research, Hunan Academy of Agricultural Sciences, Changsha, China
Kailin Liu
Affiliation:
Associate Professor, College of Plant Protection, Hunan Agricultural University, Changsha, China
Xuguo Zhou*
Affiliation:
Associate Professor, Department of Entomology, University of Kentucky, Lexington, KY, USA
Lianyang Bai*
Affiliation:
Professor, Institute of Biotechnology Research, Hunan Academy of Agricultural Sciences, Changsha, China
*
Authors for correspondence: Xuguo “Joe” Zhou, Department of Entomology, University of Kentucky, S-225 Agricultural Science Center North, Lexington, KY 40546-0091. (Email: [email protected]); Lianyang Bai, Institute of Biotechnology Research, Hunan Academy of Agricultural Sciences, Changsha, China. (Email: [email protected])
Authors for correspondence: Xuguo “Joe” Zhou, Department of Entomology, University of Kentucky, S-225 Agricultural Science Center North, Lexington, KY 40546-0091. (Email: [email protected]); Lianyang Bai, Institute of Biotechnology Research, Hunan Academy of Agricultural Sciences, Changsha, China. (Email: [email protected])

Abstract

The widespread, rapid evolution of herbicide-resistant weeds is a serious and escalating agronomic problem worldwide. During China’s economic boom, the country became one of the most important herbicide producers and consumers in the world, and herbicide resistance has dramatically increased in the past decade and has become a serious threat to agriculture. Here, following an evidence-based PRISMA (preferred reporting items for systematic reviews and meta-analyses) approach, we carried out a systematic review to quantitatively assess herbicide resistance in China. Multiple weed species, including 26, 18, 11, 9, 5, 5, 4, and 3 species in rice (Oryza sativa L.), wheat (Triticum aestivum L.), soybean [Glycine max (L.) Merr.], corn (Zea mays L.), canola (Brassica napus L.), cotton (Gossypium hirsutum L.)., orchards, and peanut (Arachis hypogaea L.) fields, respectively, have developed herbicide resistance. Acetolactate synthase inhibitors, acetyl-CoA carboxylase inhibitors, and synthetic auxin herbicides are the most resistance-prone herbicides and are the most frequently used mechanisms of action, followed by 5-enolpyruvylshikimate-3-phosphate synthase inhibitors and protoporphyrinogen oxidase inhibitors. The lack of alternative herbicides to manage weeds that exhibit cross-resistance or multiple resistance (or both) is an emerging issue and poses one of the greatest threats challenging the crop production and food safety both in China and globally.

Type
Review
Copyright
© Weed Science Society of America, 2019 

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.)

References

Bi, Y, Liu, W, Guo, W, Li, L, Yuan, G, Du, L, Wang, J (2016) Molecular basis of multiple resistance to ACCase- and ALS-inhibiting herbicides in Alopecurus japonicus from China. Pestic Biochem Phys 126:2227 CrossRefGoogle ScholarPubMed
Cui, HL, Wang, CY, Han, YJ, Chen, L, Li, XJ (2015) Cross-resistance of Japanese foxtail (Alopecurus japonicus) to ACCase inhibitors in China. Weed Technol 29:444450 CrossRefGoogle Scholar
Cui, HL, Zhang, CX, Wei, SH, Zhang, HJ, Li, XJ, Zhang, YQ, Wang, GQ (2011) Acetolactate synthase gene proline (197) mutations confer tribenuron-methyl resistance in flixweed (Descurainia sophia) populations from China. Weed Sci 59:376379 CrossRefGoogle Scholar
Cui, HL, Zhang, CX, Zhang, HJ, Liu, X, Liu, Y, Wang, GQ, Huang, HJ, Wei, SH (2008) Confirmation of flixweed (Descurainia sophia) resistance to tribenuron in China. Weed Sci 56:775779 CrossRefGoogle Scholar
Deng, W, Cao, Y, Yang, Q, Liu, MJ, Mei, Y, Zheng, MQ (2014) Different cross-resistance patterns to AHAS herbicides of two tribenuron-methyl resistant flixweed (Descurainia sophia L.) biotypes in China. Pestic Biochem Phys 112:2632 CrossRefGoogle Scholar
Deng, W, Liu, MJ, Yang, Q, Mei, Y, Li, XF, Zheng, MQ (2015) Tribenuron-methyl resistance and mutation diversity of Pro197 in flixweed (Descurainia Sophia L.) accessions from China. Pestic Biochem Phys 117:6874 CrossRefGoogle ScholarPubMed
Du, L, Liu, W, Yuan, G, Guo, W, Li, Q, Wang, J (2016) Cross-resistance patterns to ACCase-inhibitors in American sloughgrass (Beckmannia syzigachne Steud.) homozygous for specific ACCase mutations. Pestic Biochem Phys 126:4248 CrossRefGoogle ScholarPubMed
Feng, YJ, Gao, Y, Zhang, Y, Dong, LY, Li, J (2016) Mechanisms of resistance to pyroxsulam and ACCase inhibitors in Japanese foxtail (Alopecurus japonicus). Weed Sci 64:695704 CrossRefGoogle Scholar
Fu, DN, Shafi, J, Zhao, BC, Li, XW, Zhu, H, Wei, SH, Ji, MS (2017) Bensulfuron-methyl resistant Sagittaria trifolia L.: multiple resistance, cross-resistance and molecular basis of resistance to acetolactate synthase-inhibiting herbicides. Arch Biol Sci 69:649658 CrossRefGoogle Scholar
[GACC] General Administration of Customs of China (2015) China Customs Statistics Yearbook. Beijing: China Customs Press. http://english.customs.gov.cn. Accessed: July 30, 2018Google Scholar
Gianessi, LP (2013) The increasing importance of herbicides in worldwide crop production. Pest Manag Sci 69:10991105 CrossRefGoogle ScholarPubMed
Guo, W, Yuan, G, Liu, W, Bi, Y, Du, L, Zhang, C, Li, Q, Wang, J (2015) Multiple resistance to ACCase and AHAS-inhibiting herbicides in shortawn foxtail (Alopecurus aequalis Sobol.) from China. Pestic Biochem Phys 124:6672 CrossRefGoogle ScholarPubMed
Guo, WL, Lv, LL, Zhang, LL, Li, Q, Wu, CX, Lu, XT, Liu, WT, Wang, JX (2016) Herbicides cross resistance of a multiple resistant short-awn foxtail (Alopecurus aequalis Sobol.) population in wheat field. Chil J Agric Res 76:163169 CrossRefGoogle Scholar
Haggblade, S, Minten, B, Pray, C, Reardon, T, Zilberman, D (2017) The herbicide revolution in developing countries: patterns, causes, and implications. Eur J Dev Res 29:533559 CrossRefGoogle Scholar
Han, XJ, Dong, Y, Sun, XN, Li, XF, Zheng, MQ (2012) Molecular basis of resistance to tribenuron-methyl in Descurainia sophia (L.) populations from China. Pestic Biochem Phys 104:7781 CrossRefGoogle Scholar
Heap, I (2019) The International Survey of Herbicide Resistant Weeds. www.weedscience.org. Accessed: January 30, 2019Google Scholar
Huang, J, Wang, S, Xiao, Z (2017) Rising herbicide use and its driving forces in China. Eur J Dev Res 29:614627 CrossRefGoogle Scholar
Li, W, Zhang, LL, Zhao, N, Guo, WL, Liu, WT, Li, LX, Wang, JX (2017) Multiple resistance to ACCase and ALS-inhibiting herbicides in Beckmannia syzigachne (Steud.) Fernald without mutations in the target enzymes. Chil J Agric Res 77:257265 CrossRefGoogle Scholar
Mohamed, IA, Li, RZ, You, ZG, Li, ZH (2012) Japanese foxtail (Alopecurus japonicus) resistance to fenoxaprop and pinoxaden in China. Weed Sci 60:167171 CrossRefGoogle Scholar
Moher, D, Shamseer, L, Clarke, M, Ghersi, D, Liberati, A, Petticrew, M, Shekelle, P, Stewart, LA, Group, PRISMA-P (2015) Preferred reporting items for systematic review and meta-analysis protocols (PRISMA-P) 2015 statement. Syst Rev 4:1 CrossRefGoogle ScholarPubMed
[NBSC] National Bureau of Statistics of China (2016). China Statistical Yearbook. Beijing: China Statistics Press. http://www.stats.gov.cn/tjsj/ndsj/2016/indexch.htm. Accessed: July 30, 2017Google Scholar
Oerke, EC (2006) Crop losses to pests. J Agric Sci 144:31 CrossRefGoogle Scholar
Peterson, MA, Collavo, A, Ovejero, R, Shivrain, V, Walsh, MJ (2018) The challenge of herbicide resistance around the world: a current summary. Pest Manag Sci 74:22462259 CrossRefGoogle ScholarPubMed
Ryan, G (1970) Resistance of common groundsel to simazine and atrazine. Weed Sci 18:614616 CrossRefGoogle Scholar
Yang, X, Zhang, ZC, Gu, T, Dong, MC, Peng, Q, Bai, LY, Li, YF (2017) Quantitative proteomics reveals ecological fitness cost of multi-herbicide resistant barnyardgrass (Echinochloa crus-galli L.). J Proteomics 150:160169 CrossRefGoogle Scholar
Zhang, LL, Li, W, Guo, WL, Wu, CX, Wang, HZ, Liu, WT, Wang, JX (2017) Herbicides cross resistance of a tribenuron-methyl resistant Capsella bursa-pastoris (L.) Medik. population in wheat field. Chil J Agric Res 77:6570 CrossRefGoogle Scholar
Zhang, Z (1997) Developing chemical weed control and attaching importance to integrated weed management. Plant Prot Technol Ext 19:4043 Google Scholar
Zhang, Z (2003) Development of chemical weed control and integrated weed management in China. Weed Biol Manag 3:197203 CrossRefGoogle Scholar
Supplementary material: File

Liu et al. supplementary material

Tables S1-S3

Download Liu et al. supplementary material(File)
File 106.3 KB