跳转至内容
Merck
CN
  • Plant-plant-microbe mechanisms involved in soil-borne disease suppression on a maize and pepper intercropping system.

Plant-plant-microbe mechanisms involved in soil-borne disease suppression on a maize and pepper intercropping system.

PloS one (2015-01-01)
Min Yang, Yu Zhang, Lei Qi, Xinyue Mei, Jingjing Liao, Xupo Ding, Weiping Deng, Limin Fan, Xiahong He, Jorge M Vivanco, Chengyun Li, Youyong Zhu, Shusheng Zhu
摘要

Intercropping systems could increase crop diversity and avoid vulnerability to biotic stresses. Most studies have shown that intercropping can provide relief to crops against wind-dispersed pathogens. However, there was limited data on how the practice of intercropping help crops against soil-borne Phytophthora disease. Compared to pepper monoculture, a large scale intercropping study of maize grown between pepper rows reduced disease levels of the soil-borne pepper Phytophthora blight. These reduced disease levels of Phytophthora in the intercropping system were correlated with the ability of maize plants to form a "root wall" that restricted the movement of Phytophthora capsici across rows. Experimentally, it was found that maize roots attracted the zoospores of P. capsici and then inhibited their growth. When maize plants were grown in close proximity to each other, the roots produced and secreted larger quantities of 2,4-dihydroxy-7-methoxy-2H-1,4-benzoxazin-3(4H)-one (DIMBOA) and 6-methoxy-2-benzoxazolinone (MBOA). Furthermore, MBOA, benzothiazole (BZO), and 2-(methylthio)-benzothiazole (MBZO) were identified in root exudates of maize and showed antimicrobial activity against P. capsici. Maize could form a "root wall" to restrict the spread of P. capsici across rows in maize and pepper intercropping systems. Antimicrobe compounds secreted by maize root were one of the factors that resulted in the inhibition of P. capsici. These results provide new insights into plant-plant-microbe mechanisms involved in intercropping systems.

材料
产品编号
品牌
产品描述

Sigma-Aldrich
甲醇, suitable for HPLC, ≥99.9%
Sigma-Aldrich
甲醇, ACS reagent, ≥99.8%
Sigma-Aldrich
二氯甲烷, suitable for HPLC, ≥99.8%, contains amylene as stabilizer
Sigma-Aldrich
乙酸, glacial, ACS reagent, ≥99.7%
Sigma-Aldrich
甲醇, suitable for HPLC, gradient grade, ≥99.9%
Sigma-Aldrich
二氯甲烷, contains 40-150 ppm amylene as stabilizer, ACS reagent, ≥99.5%
Sigma-Aldrich
乙酸, glacial, ReagentPlus®, ≥99%
Sigma-Aldrich
二氯甲烷, HPLC Plus, for HPLC, GC, and residue analysis, ≥99.9%, contains 50-150 ppm amylene as stabilizer
Sigma-Aldrich
甲醇, HPLC Plus, ≥99.9%
Sigma-Aldrich
二氯甲烷, anhydrous, ≥99.8%, contains 40-150 ppm amylene as stabilizer
Sigma-Aldrich
甲醇, anhydrous, 99.8%
Sigma-Aldrich
乙酸, glacial, ≥99.99% trace metals basis
Sigma-Aldrich
乙酸, glacial, puriss. p.a., ACS reagent, reag. ISO, reag. Ph. Eur., ≥99.8%
Sigma-Aldrich
乙酸 溶液, suitable for HPLC
Sigma-Aldrich
乙酸, glacial, puriss., meets analytical specification of Ph. Eur., BP, USP, 99.8-100.5%
Sigma-Aldrich
甲醇, Laboratory Reagent, ≥99.6%
Sigma-Aldrich
甲醇, suitable for HPLC, gradient grade, suitable as ACS-grade LC reagent, ≥99.9%
Sigma-Aldrich
甲醇, puriss. p.a., ACS reagent, reag. ISO, reag. Ph. Eur., ≥99.8% (GC)
Sigma-Aldrich
二氯甲烷, puriss. p.a., ACS reagent, reag. ISO, ≥99.9% (GC)
Sigma-Aldrich
二氯甲烷, ACS reagent, ≥99.5%, contains 40-150 ppm amylene as stabilizer
Sigma-Aldrich
甲醇, ACS spectrophotometric grade, ≥99.9%
Sigma-Aldrich
甲醇, ACS reagent, ≥99.8%
USP
木精, United States Pharmacopeia (USP) Reference Standard
Sigma-Aldrich
甲醇, BioReagent, ≥99.93%
Supelco
甲醇, analytical standard
Sigma-Aldrich
二氯甲烷, puriss., meets analytical specification of Ph. Eur., NF, ≥99% (GC)
Supelco
甲醇, Pharmaceutical Secondary Standard; Certified Reference Material
Supelco
二氯甲烷, Pharmaceutical Secondary Standard; Certified Reference Material
Sigma-Aldrich
乙酸, suitable for luminescence, BioUltra, ≥99.5% (GC)
USP
冰醋酸, United States Pharmacopeia (USP) Reference Standard