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Hormonal Effects of an Enzymatically Hydrolyzed Animal Protein-Based Biostimulant (Pepton) in Water-Stressed Tomato Plants.一种基于酶解动物蛋白的生物刺激素(蛋白胨)对水分胁迫番茄植株的激素效应
Front Plant Sci. 2019 Jun 12;10:758. doi: 10.3389/fpls.2019.00758. eCollection 2019.
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Alginate as a feature of osmotolerance differentiation among soil bacteria isolated from wild legumes growing in Portugal.从葡萄牙野生豆科植物根部分离的土壤细菌的耐渗性分化特征——海藻酸盐。
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Intensification in biological properties of chitosan after γ-irradiation.γ-射线辐照后壳聚糖生物性能的增强。
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Mycofumigation with Muscodor albus and Muscodor roseus for Control of Seedling Diseases of Sugar Beet and Verticillium Wilt of Eggplant.使用白麝香菌和粉红麝香菌进行熏蒸防治甜菜苗期病害和茄子黄萎病
Plant Dis. 2003 Nov;87(11):1349-1354. doi: 10.1094/PDIS.2003.87.11.1349.
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Gamma radiation degradation of chitosan for application in growth promotion and induction of stress tolerance in potato (Solanum tuberosum L.).γ 射线辐照降解壳聚糖在促进马铃薯(Solanum tuberosum L.)生长和诱导抗逆性中的应用。
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Perspectives of Microbial Inoculation for Sustainable Development and Environmental Management.微生物接种促进可持续发展与环境管理的展望
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Oligosaccharides as co-encapsulating agents: effect on oral Lactobacillus fermentum survival in a simulated gastrointestinal tract.低聚糖作为共包封剂:对发酵乳杆菌在模拟胃肠道中存活情况的影响
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Encapsulation of Bacillus salmalaya 139SI using double coating biopolymer technique.采用双层包衣生物聚合物技术对芽孢杆菌salmalaya 139SI进行包封。
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A novel, green, low-cost chitosan-starch hydrogel as potential delivery system for plant growth-promoting bacteria.一种新型、绿色、低成本的壳聚糖-淀粉水凝胶,作为植物促生菌的潜在输送系统。
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10
Alginate-perlite encapsulated Pseudomonas putida A (ATCC 12633) cells: Preparation, characterization and potential use as plant inoculants.藻酸盐-珍珠岩包被铜绿假单胞菌 A(ATCC 12633)细胞的制备、表征及其作为植物接种剂的应用潜力。
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通过天然多糖包封制备微生物菌剂:聚焦载体添加剂及其衍生物的有益特性

Formulation of Microbial Inoculants by Encapsulation in Natural Polysaccharides: Focus on Beneficial Properties of Carrier Additives and Derivatives.

作者信息

Vassilev Nikolay, Vassileva Maria, Martos Vanessa, Garcia Del Moral Luis F, Kowalska Jolanta, Tylkowski Bartosz, Malusá Eligio

机构信息

Department of Chemical Engineering, Institute of Biotechnology, University of Granada, Granada, Spain.

Department of Plant Physiology, University of Granada, Granada, Spain.

出版信息

Front Plant Sci. 2020 Mar 10;11:270. doi: 10.3389/fpls.2020.00270. eCollection 2020.

DOI:10.3389/fpls.2020.00270
PMID:32211014
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7077505/
Abstract

In the last 10-15 years, the wide application of bioformulated plant beneficial microorganisms is accepted as an effective alternative of chemical agro-products. Two main problems can be distinguished in their production and application: (a) economical competiveness based on the overall up-stream and down-stream operational costs, and (b) development of commercial products with a high soil-plant colonization potential in controlled conditions but not able to effectively mobilize soil nutrients and/or combat plant pathogens in the field. To solve the above problems, microbe-based formulations produced by immobilization methods are gaining attention as they demonstrate a large number of advantages compared to other solid and liquid formulations. This mini-review summarizes the knowledge of additional compounds that form part of the bioformulations. The additives can exert economical, price-decreasing effects as bulking agents or direct effects improving microbial survival during storage and after introduction into soil with simultaneous beneficial effects on soil and plants. In some studies, combinations of additives are used with a complex impact, which improves the overall characteristics of the final products. Special attention is paid to polysaccharide carriers and their derivates, which play stimulatory role on plants but are less studied. The mini-review also focuses on the potential difficulty in evaluating the effects of complex bio-formulations.

摘要

在过去10至15年中,生物配方的植物有益微生物的广泛应用被视为化学农产品的一种有效替代品。在其生产和应用中可区分出两个主要问题:(a)基于整个上游和下游运营成本的经济竞争力,以及(b)在受控条件下开发具有高土壤-植物定殖潜力但在田间无法有效调动土壤养分和/或对抗植物病原体的商业产品。为了解决上述问题,通过固定化方法生产的基于微生物的制剂正受到关注,因为与其他固体和液体制剂相比,它们具有大量优势。本综述总结了构成生物制剂一部分的其他化合物的相关知识。这些添加剂可作为填充剂发挥经济、降低成本的作用,或直接改善微生物在储存期间以及引入土壤后的存活情况,同时对土壤和植物产生有益影响。在一些研究中,添加剂组合的使用具有复杂影响,可改善最终产品的整体特性。特别关注多糖载体及其衍生物,它们对植物具有刺激作用,但研究较少。本综述还关注了评估复杂生物制剂效果方面的潜在困难。