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Front Microbiol. 2020 Jul 22;11:1416. doi: 10.3389/fmicb.2020.01416. eCollection 2020.
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Regulatory risks associated with bacteria as biostimulants and biofertilizers in the frame of the European Regulation (EU) 2019/1009.与欧洲法规 (EU) 2019/1009 框架内的细菌作为生物刺激素和生物肥料相关的监管风险。
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具有致病属性的生物肥料微生物:一种潜在威胁。

Biofertilizer microorganisms accompanying pathogenic attributes: a potential threat.

作者信息

Tariq Mohsin, Jameel Farwah, Ijaz Usman, Abdullah Muhammad, Rashid Kamran

机构信息

Department of Bioinformatics and Biotechnology, Government College University Faisalabad, Faisalabad, Pakistan.

National Institute for Biotechnology and Genetic Engineering, Faisalabad, Pakistan.

出版信息

Physiol Mol Biol Plants. 2022 Jan;28(1):77-90. doi: 10.1007/s12298-022-01138-y. Epub 2022 Feb 8.

DOI:10.1007/s12298-022-01138-y
PMID:35221573
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8847475/
Abstract

Application of biofertilizers containing living or dormant plant growth promoting bacterial cells is considered to be an ecofriendly alternative of chemical fertilizers for improved crop production. Biofertilizers opened myriad doors towards sustainable agriculture as they effectively reduce heavy use of chemical fertilizers and pesticides by keeping soils profuse in micro and macronutrients, regulating plant hormones and restraining infections caused by the pests present in soil without inflicting environmental damage. Generally, pathogenicity and biosafety testing of potential plant growth promoting bacteria (PGPB) are not performed, and the bacteria are reported to be beneficial solely on testing plant growth promoting characteristics. Unfortunately, some rhizosphere and endophytic PGPB are reported to be involved in various diseases. Such PGPB can also spread virulence and multidrug resistance genes carried by them through horizontal gene transfer to other bacteria in the environment. Therefore, deployment of such microbial populations in open fields could lead to disastrous side effects on human health and environment. Careless declaration of bacteria as PGPB is more pronounced in research publications. Here, we present a comprehensive report of declared PGPB which are reported to be pathogenic in other studies. This review also suggests the employment of some additional safety assessment protocols before reporting a bacteria as beneficial and product development.

摘要

含有活的或休眠的促进植物生长细菌细胞的生物肥料的应用被认为是一种生态友好的替代化学肥料的方法,以提高作物产量。生物肥料为可持续农业打开了无数扇门,因为它们通过保持土壤富含微量和大量营养素、调节植物激素以及抑制土壤中害虫引起的感染,有效地减少了化学肥料和农药的大量使用,而不会对环境造成破坏。一般来说,潜在的促进植物生长细菌(PGPB)的致病性和生物安全性测试并未进行,并且据报道这些细菌仅在测试促进植物生长特性时才有益。不幸的是,一些根际和内生PGPB被报道与各种疾病有关。这种PGPB还可以通过水平基因转移将它们携带的毒力和多药耐药基因传播给环境中的其他细菌。因此,在露天田地中部署此类微生物种群可能会对人类健康和环境产生灾难性的副作用。在研究出版物中,将细菌随意宣称是PGPB的情况更为明显。在此,我们给出一份已宣称的PGPB的综合报告,这些PGPB在其他研究中被报道具有致病性。本综述还建议在将一种细菌报告为有益菌并进行产品开发之前,采用一些额外的安全性评估方案。