Eco-friendly rhamnolipid based fungicides for protection of soybeans from Phytophthora sojae

被引:13
作者
Sancheti, Ashwin [1 ]
Ju, Lu-Kwang [1 ]
机构
[1] Univ Akron, Dept Chem & Biomol Engn, Akron, OH 44325 USA
关键词
biobased; fungicide; Phytophthora sojae; rhamnolipid; seed coating; soybean; sustainable; zoospore; METALAXYL SENSITIVITY; PARTIAL RESISTANCE; SEED TREATMENTS; PATHOTYPES; BIOSURFACTANT; HEILONGJIANG; BIOSYNTHESIS; ROT;
D O I
10.1002/ps.5418
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
BACKGROUND Excessive use of chemical fungicides over the years for plant pathogen control has caused unwanted damage to non-target organisms and resistance buildup in the target organisms. These harmful effects have prompted the industry to look for more sustainable and eco-friendly solutions. Rhamnolipid is a naturally occurring surfactant that is biodegradable, relatively innocuous to non-target species and can effectively lyse zoospores, the life form responsible for the spread of Phytophthora. In this study, rhamnolipid based coatings were developed and evaluated for protection of soybeans from P. sojae zoospores. RESULTS Pure (acidic) rhamnolipid, when coated on the soybeans, affects the germination negatively. However, sodium and calcium complexed rhamnolipids do not interfere with germination. Seeds coated with 15-20 mg of developed formulation were planted in soil pots and then subjected to P. sojae infection by simulating flooding conditions and zoospore inoculation. Statistical analysis showed that sodium rhamnolipid based coating significantly improved the germination in presence of P. sojae from 42% to 73% (P = 0.017) while the germination of stress-free control was 85% (statistically similar to coated seeds, P = 1). CONCLUSION Neutralized rhamnolipid can protect soybeans from P. sojae without any negative effect on germination. This work illustrates the strategy to use rhamnolipid as effective fungicide. (c) 2019 Society of Chemical Industry
引用
收藏
页码:3031 / 3038
页数:8
相关论文
共 24 条
[21]   Pathogenic diversity of Phytophthora sojae and breeding strategies to develop Phytophthora-resistant soybeans [J].
Sugimoto, Takuma ;
Kato, Masayasu ;
Yoshida, Shinya ;
Matsumoto, Isao ;
Kobayashi, Tamotsu ;
Kaga, Akito ;
Hajika, Makita ;
Yamamoto, Ryo ;
Watanabe, Kazuhiko ;
Aino, Masataka ;
Matoh, Toru ;
Walker, David R. ;
Biggs, Alan R. ;
Ishimoto, Masao .
BREEDING SCIENCE, 2011, 61 (05) :511-522
[22]   Pathotypes and metalaxyl sensitivity of Phytophthora sojae and their distribution in Heilongjiang, China 2011-2015 [J].
Tian, Miao ;
Zhao, Liming ;
Li, Shuang ;
Huang, Jing ;
Sui, Zhe ;
Wen, Jingzhi ;
Li, Yonghao .
JOURNAL OF GENERAL PLANT PATHOLOGY, 2016, 82 (03) :132-141
[23]  
Walker Claire A., 2007, Fungal Biology Reviews, V21, P10, DOI 10.1016/j.fbr.2007.02.001
[24]   Soybean brown stem rot, Phytophthora sojae, and Heterodera glycines affected by soil texture and tillage relations [J].
Workneh, E ;
Yang, XB ;
Tylka, GL .
PHYTOPATHOLOGY, 1999, 89 (10) :844-850