Hawkesbury Institute for the Environment, Western Sydney University, Richmond, NSW, Australia.
Global Centre for Land-Based Innovation, Western Sydney University, Richmond, NSW, Australia.
Microb Biotechnol. 2021 Jul;14(4):1258-1268. doi: 10.1111/1751-7915.13866. Epub 2021 Jun 22.
The use of microbial tools to sustainably increase agricultural production has received significant attention from researchers, industries and policymakers. Over the past decade, the market access and development of microbial products have been accelerated by (i) the recent advances in plant-associated microbiome science, (ii) the pressure from consumers and policymakers for increasing crop productivity and reducing the use of agrochemicals, (iii) the rising threats of biotic and abiotic stresses, (iv) the loss of efficacy of some agrochemicals and plant breeding programs and (v) the calls for agriculture to contribute towards mitigating climate change. Although the sector is still in its infancy, the path towards effective microbial products is taking shape and the global market of these products has increased faster than that of agrochemicals. Promising results from using microbes either as biofertilizers or biopesticides have been continually reported, fuelling optimism and high expectations for the sector. However, some limitations, often related to low efficacy and inconsistent performance in field conditions, urgently need to be addressed to promote a wider use of microbial tools. We propose that advances in in situ microbiome manipulation approaches, such as the use of products containing synthetic microbial communities and novel prebiotics, have great potential to overcome some of these current constraints. Much more progress is expected in the development of microbial inoculants as areas such as synthetic biology and nano-biotechnology advance. If key technical, translational and regulatory issues are addressed, microbial tools will not only play an important role in sustainably boosting agricultural production over the next few decades but also contribute towards other sustainable development goals, including job creation and mitigation of the impacts of climate change.
利用微生物工具来可持续地提高农业产量,已经引起了研究人员、行业和政策制定者的高度关注。在过去的十年中,由于以下几个方面的原因,微生物产品的市场准入和发展得到了加速:(i) 与植物相关的微生物组科学的最新进展,(ii) 消费者和政策制定者对提高作物产量和减少农用化学品使用的压力,(iii) 生物和非生物胁迫的威胁不断增加,(iv) 一些农用化学品和植物育种计划效力的丧失,以及 (v) 呼吁农业为缓解气候变化做出贡献。尽管该领域仍处于起步阶段,但有效的微生物产品的发展道路已经形成,这些产品的全球市场增长速度快于农用化学品。使用微生物作为生物肥料或生物农药的有希望的结果不断被报道,这激发了人们对该领域的乐观情绪和高度期望。然而,一些限制因素,通常与低效率和在田间条件下表现不一致有关,迫切需要解决,以促进更广泛地使用微生物工具。我们提出,原位微生物组操纵方法的进展,如使用含有合成微生物群落和新型益生元的产品,具有很大的潜力来克服当前的一些限制。随着合成生物学和纳米生物技术等领域的发展,微生物接种剂的开发预计将取得更多进展。如果解决了关键的技术、转化和监管问题,微生物工具不仅将在未来几十年可持续地提高农业产量方面发挥重要作用,还将为其他可持续发展目标做出贡献,包括创造就业机会和缓解气候变化的影响。