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A Fog-Irrigated Soil Substrate System Unifies and Optimizes Cyanobacterial Biocrust Inoculum Production

机译:雾灌水土壤衬底系统统一和优化蓝藻肉白菌种植体

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Biological soil crusts (biocrusts) are globally important microbial communities inhabiting the top layer of soils. They provide multiple services to dryland ecosystems but are particularly vulnerable to anthropogenic disturbance from which they naturally recover only slowly. Assisted inoculation with cyanobacteria is held as a promising approach to promote biocrust regeneration. Two different methodologies have been developed for this purpose: mass cultivation of biocrust pioneer species (such as the cyanobacteria Microcoleus spp.) on cellulose supports, and polymicrobial cultivation of biocrusts in soils within greenhouse settings. Here, we aimed to test a novel method to grow cyanobacterial biocrust inoculum based on fog irrigation of soil substrates (FISS) that can be used with either culture-based or mixed-community approaches. We found that the FISS system presents clear advantages over previous inoculum production methodologies; overall, FISS eliminates the need for specialized facilities and decreases user effort. Specifically, there were increased microbial yields and simplification of design compared to those of the culture-based and mixed-community approaches, respectively. Its testing also allows us to make recommendations on underexplored aspects of biocrust restoration: (i) field inoculation levels should be equal to or greater than the biomass found in the substrate and (ii) practices regarding evaluation of cyanobacterial biomass should, under certain circumstances, include proxies additional to chlorophyll a .IMPORTANCE Biocrust inoculum production for use in dryland rehabilitation is a powerful tool in combating the degradation of dryland ecosystems. However, the facilities and effort required to produce high-quality inoculum are often a barrier to effective large-scale implementation by land managers. By unifying and optimizing the two foremost methods for cyanobacterial biocrust inoculum production, our work improves on the ease and cost with which biocrust restoration technology can be translated to practical widespread implementation.
机译:生物土壳(Biocrusts)是全球重要的微生物社区,居住在土壤上的顶层。它们为Dryland生态系统提供了多种服务,但特别容易受到人为干扰,它们自然恢复缓慢。辅助接种用蓝藻接种作为促进促进生物元素再生的有希望的方法。为此目的开发了两种不同的方法:对纤维素载体的纤维素载体(如紫杉杆菌Microcoleus SPP)的培养。在这里,我们旨在测试一种基于土壤基材(FIS)的雾灌溉的基于雾化或混合群落方法使用的雾化灌溉的蓝细菌生物诱导的新方法。我们发现Fiss系统对先前的接种生产方法提供了明显的优势;总的来说,FISS消除了专业设施的需求并降低了用户努力。具体地,与基于培养基和混合群落方法的相比,增加了微生物产量和简化的设计。其测试还允许我们提出关于偏远恢复的未光滑方面的建议:(i)场接种水平应等于或大于基材中发现的生物量,并在某些情况下,有关分析的基因杆菌生物量的评价的实践应该是应等于或大的生物量。包括含有叶绿素A的代理.Importance孤园生产用于Dryland康复的生物康复是一种强大的工具,可以打击旱地生态系统的退化。然而,生产高质量接种物所需的设施和努力通常是土地管理人员有效大规模实施的障碍。通过统一和优化三种用于蓝藻精体造物的生产方法,我们的工作提高了精力恢复技术可以转化为实际广泛实现的便利和成本。

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