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利用伯克霍尔德氏菌 BRM 32113 产生的生物制品诱导水稻植株产生抗性。

Induction of resistance in rice plants using bioproducts produced from Burkholderia pyrrocinia BRM 32113.

机构信息

Goiás Federal University, Rodovia Goiânia/Nova Veneza. Km 0, Goiânia, GO, 74001-970, Brazil.

Phytopathology Laboratory (Laboratório de Fitopatologia), Brazilian Enterprise for Agricultural Research-Rice and Beans (Embrapa Arroz e Feijão), Goiânia, GO, 75375-000, Brazil.

出版信息

Environ Sci Pollut Res Int. 2019 Jul;26(19):19705-19718. doi: 10.1007/s11356-019-05238-3. Epub 2019 May 14.

Abstract

Leaf blast is the main rice disease in the world causing significant losses in productivity. Blast integrate management (BIM) requires the use of genetic resistance, cultural practices, and chemical control, although for sustainable BIM, the insertion of biological agents may be the fourth component for. The objective of this work was to test three formulations of Burkholderia pyrrocinia (BRM32113) previously selected and to verify the effectiveness in resistance induction and blast control in rice. Two experiments were carried out, in a completely randomized design with three replications, in the greenhouse (E1 and E2). E1 aimed to select the best treatment for suppressing leaf blast severity and activating plant defense mechanisms. It was composed of 8 treatments: (1) formulated 11+ B. pyrrocina × Magnaporthe oryzae; (2) formulated 17+ B. pyrrocina × M. oryzae; (3) formulated 32+ B. pyrrocina × M. oryzae; (4) formulated 11 × M. oryzae; (5) B. pyrrocinia 17 × M. oryzae; (6) formulated 32 × M. oryzae; (7) B. pyrrocina × M. oryzae; (8) M. oryzae; (9) control (water). E2 aimed to investigate the effect of the best treatments, for the promotion of plant growth and suppression of leaf blast by calculating AUDPC. It was composed of 6 treatments: (1) formulated 11+ B. pyrrocina × M. oryzae; (2) formulated 32+ B. pyrrocina × M. oryzae; (3) formulated 11 × M. oryzae; (4) formulated 32 × M. oryzae; (5) B. pyrrocina × M. oryzae; (6) water. And after, we did two assays aimed to localize this biological agent after application at seed, soil, and rice plant. In E1, formulated 11+ B. pyrrocinia and 32+ formulated and B. pyrrocina were the best, suppressing leaf blast by up to 97% and providing the significant increase of the enzymes β-1,3-glucanase, chitinase, phenylalanine ammonia lyase, lipoxygenase, and salicylic acid at 24 h and 48 h after inoculation with M. oryzae. In E2, treatments formulated 11+ B. pyrrocinia, formulated 32+ B. pyrrocinia, and B. pyrrocina provided more significant increases in growth promotion and reduced area under disease progress curve. B. pyrrocinia was detected in the rice plant for 18 days, predominantly in the root system (internal and external). The use of B. pyrrocinia formulations based on sugarcane molasses and glycerol can be an essential strategy for sustainable management. Although all the benefits come from these sustainable formulations, the adoption by commercial biological segment depends on an established formulation process. It seems that all the results showed here by this research will be readily assimilated by startups of the organic segment.

摘要

稻叶瘟是世界上主要的水稻病害,导致生产力显著下降。稻瘟病综合管理(BIM)需要利用遗传抗性、文化实践和化学控制,尽管为了可持续的 BIM,插入生物制剂可能是第四个组成部分。本工作的目的是测试三种已选择的伯克霍尔德氏菌(BRM32113)制剂,并验证其在诱导水稻抗性和控制稻瘟病方面的有效性。进行了两项实验,在温室中进行完全随机设计,有三个重复,实验 1(E1)旨在选择最佳处理方法来抑制叶片严重度和激活植物防御机制。它由 8 种处理组成:(1)11+ 伯克霍尔德氏菌 × 稻瘟病菌制剂;(2)17+ 伯克霍尔德氏菌 × 稻瘟病菌制剂;(3)32+ 伯克霍尔德氏菌 × 稻瘟病菌制剂;(4)11× 稻瘟病菌制剂;(5)17× 伯克霍尔德氏菌 × 稻瘟病菌制剂;(6)32× 稻瘟病菌制剂;(7)伯克霍尔德氏菌 × 稻瘟病菌制剂;(8)稻瘟病菌制剂;(9)对照(水)。实验 2(E2)旨在通过计算 AUDPC 来调查最佳处理方法对促进植物生长和抑制叶片严重度的影响。它由 6 种处理组成:(1)11+ 伯克霍尔德氏菌 × 稻瘟病菌制剂;(2)32+ 伯克霍尔德氏菌 × 稻瘟病菌制剂;(3)11× 稻瘟病菌制剂;(4)32× 稻瘟病菌制剂;(5)伯克霍尔德氏菌 × 稻瘟病菌制剂;(6)水。然后,我们进行了两项试验,旨在定位生物制剂在种子、土壤和水稻植株上使用后的位置。在实验 1 中,11+ 制剂和 32+ 制剂的伯克霍尔德氏菌效果最好,可抑制叶片严重度达 97%,并在接种稻瘟病菌后 24 和 48 小时显著提高β-1,3-葡聚糖酶、几丁质酶、苯丙氨酸解氨酶、脂氧合酶和水杨酸的含量。在实验 2 中,11+ 制剂、32+ 制剂和伯克霍尔德氏菌处理对促进生长和减少病害进展曲线下面积有更显著的影响。在 18 天内,伯克霍尔德氏菌被检测到在水稻植株中,主要在根系(内部和外部)。使用基于甘蔗糖蜜和甘油的伯克霍尔德氏菌制剂可能是可持续管理的重要策略。尽管所有的好处都来自这些可持续制剂,但商业生物制剂部分的采用取决于已建立的制剂工艺。这里的所有结果似乎都将被有机部分的初创公司轻易吸收。

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