
Development of a Molecular Marker for Anti-ALS Inhibitor-like Herbicides and Its Applications
#Co-first auhtor;
Received date: 2023-08-31
Online published: 2024-07-16
Weeds seriously restrict rice production, and cultivating new varieties of rice with broad-spectrum herbicide resistance and acetyllactate synthase (ALS) inhibitors is one of an effective ways to deal with the harm of weeds in rice fields. The difference sites between the anti-ALS inhibitor herbicide Jinjing 818 and the sensitive herbicide Nipponbare ALS gene were identified, and specific molecular markers were developed. Herbicide spraying and molecular marker-assisted selection (MAS) were carried out on the hybrid offspring of Jinjing 818 and Jindao 372 with ALS-resistant genotypes as parents. Two pairs of molecular markers, 818ALSF/R and HDALSF/R were developed, which could quickly distinguish three genotypes of homozygous dominant, heterozygous and homozygous genotypes, and were consistent with the herbicide spraying results. Two excellent rice germplasm resource materials, 22S9 and 22S4, with excellent herbicide resistance, were bred. Germplasm resource materials with ALS herbicide resistance gene can be quickly screened out by MAS of hybrid offspring, and the screening efficiency in rice germplasm of anti-ALS inhibitor herbicides can be improved.
Key words: ALS herbicide; acetolactate synthase; rice; herbicide resistance
SANG Shifei, SUN Xiaohan, YAO Guoqin, MA Tengyun, ZHANG Yijing, ZHENG Yangyang, FENG Liuchun, JI Shengdong . Development of a Molecular Marker for Anti-ALS Inhibitor-like Herbicides and Its Applications[J]. China Rice, 2024 , 30(4) : 17 -23 . DOI: 10.3969/j.issn.1006-8082.2024.04.004
| [1] | GREEN J M. Current state of herbicides in herbicide-resistant crops[J]. Pest Management Science, 2014, 70(9): 1 351-1 357. |
| [2] | OERKE E. Crop losses to pests[J]. The Journal of Agricultural Science, 2006, 144(1): 31-43. |
| [3] | 齐龙, 刘闯, 蒋郁. 水稻机械除草技术装备研究现状及智能化发展趋势[J]. 华南农业大学学报, 2020, 41(6):29-36. |
| [4] | SINGH S, SINGH V, SALAS-PEREZ R A, et al. Target-site mutation accumulation among ALS inhibitor-resistant Palmer amaranth[J]. Pest Management Science, 2019, 75(4): 1 131-1 139. |
| [5] | 黄雅洁. 解草啶对水稻和稗草选择性作用机理研究[D]. 长沙: 湖南农业大学, 2021. |
| [6] | LONHIENNE T, CHENG Y, GARCIA M D, et al. Structural basis of resistance to herbicides that target acetohydroxyacid synthase[J]. Nature Communications, 2022, 13: 3 368. |
| [7] | DE F M, GUARDIOLA J, ESPOSITO B, et al. Structural genes for a newly recognized acetolactate synthase in Escherichia coli K-12[J]. International Journal of Systematic Bacteriology, 1974, 120(3): 1 068-1 077. |
| [8] | MCCOURT J A, PANG S S, KING-SCOTT J, et al. Herbicide-binding sites revealed in the structure of plant acetohydroxyacid synthase[J]. Proceedings of the National Academy of Sciences of the United Sates of America, 2006, 103(3): 569-573. |
| [9] | 陈涛, 张善磊, 赵凌, 等. ALS抑制剂类除草剂抗性水稻功能标记的开发与验证[J]. 中国水稻科学, 2018, 32(2):137-145. |
| [10] | ALDO M J, MARIE J, MARIA D O, et al. Cross-resistance to herbicides of five ALS-inhibiting groups and sequencing of the ALS gene in Cyperus difformis L[J]. Journal of Agricultural and Food Chemistry, 2009, 57 (4): 1 389-1 398. |
| [11] | COMONT D, LOWE C, HULL R, et al. Evolution of generalist resistance to herbicide mixtures reveals a trade-off in resistance management[J]. Nature Communications, 2020, 11: 3 086. |
| [12] | CHEN L, GU G, WANG C, et al. Trp548Met mutation of acetolactate synthase in rice confers resistance to a broad spectrum of ALS-inhibiting herbicides[J]. The Crop Journal, 2021, 9(4): 750-758. |
| [13] | TAN Y, Li S. Generation of mutants by combined treatment of physical and chemical mutagens in rice[J]. Methods in Molecular Biology, 2022, 2484: 137-142. |
| [14] | KAWAI, KIYOSHI, KOICHIRO K, et al. Functional analysis of transgenic rice plants expressing a novel mutated ALS gene of rice[J]. Journal of Pesticide Science, 2007, 32(4): 385-392. |
| [15] | ZHANG R, CHEN S, MENG X, et al. Generating broad-spectrum tolerance to ALS-inhibiting herbicides in rice by base editing[J]. Science China-Life Sciences, 2021, 64(10): 1 624-1 633. |
| [16] | 邹拓, 杜琪, 耿雷跃, 等. 抗除草剂水稻耐药性及后代筛选方法的研究[J]. 江苏农业科学, 2022, 50(13):136-140. |
| [17] | EDWARDS K, JOHNSTONE C, THOMPSON C. A simple and rapid method for the preparation of plant genomic DNA for PCR analysis[J]. Nucleic Acids Research, 1991, 19(6): 1 349. |
| [18] | JENNIFER A M, PANG S S, JACK K S, et al. Herbicide-binding sites revealed in the structure of plant acetohy-droxyacid synthase[J]. Proceedings of the National Academy of Sciences of the United States of America, 2006, 103(3): 569-573. |
| [19] | SHOBA D, RAVEENDRAN M, MANONMANI S, et al. Development and genetic characterization of a novel herbicide (Imazethapyr) tolerant mutant in rice (Oryza sativa L.)[J]. Rice, 2017, 10: 10. |
| [20] | RAO A N, JOHNSON D E, SIVAPRASAD B, et al. Weed management in direct-seeded rice[J]. Advances in Agronomy, 2007, 93: 153-255. |
| [21] | 王付华, 李自超, 王亚, 等. 利用EMS诱变创制抗除草剂粳稻新种质[J]. 河南农业科学, 2021, 50(4): 8-16. |
| [22] | YU Q, POWLES S B. Resistance to AHAS inhibitor herbicides, current understanding[J]. Pest Management Science, 2014, 70(9): 1 340-1 350. |
| [23] | SATOSHI I, MASATO H, KEN-ICHI M, et al. Multiple-herbicide resistance in Echinochloa crusgalli var. formosensis, an allohexaploid weed species, in dry-seeded rice[J]. Pesticide Biochemistry and Physiology, 2015, 119: 1-8. |
| [24] | KAUNDUN S S. Resistance to acetyl-CoA carboxylase-inhibiting herbicides[J]. Pest Management Science, 2014, 70(9): 1 405-1 417. |
| [25] | JIAN L, YAN B L, FENG F, et al. A novel naturally Phe206Tyr mutation confers tolerance to ALS-inhibiting herbicides in Alopecurus myosuroides[J]. Pesticide Biochemistry and Physiology, 2022, 186: 105 156. |
| [26] | 王广达, 高鹏, 杨文艳, 等. 金粳818抗咪唑啉酮类除草剂基因的功能标记开发与应用[J]. 中国水稻科学, 2020, 34(4):316-324. |
/
| 〈 |
|
〉 |