地球科学进展 ›› 2026, Vol. 41 ›› Issue (1): 1 -10. doi: 10.11867/j.issn.1001-8166.2026.001

院士论坛    下一篇

微生物地球工程
谢树成(), 刘邓, 戴兆毅, 陈婷, 赵璐璐, 黄柳琴, 黄咸雨, 孙启良, 吴耿   
  1. 中国地质大学(武汉) 地质微生物与环境全国重点实验室,流域环境与长江文化 湖北省重点实验室,湖北 武汉 430074
  • 收稿日期:2025-11-03 修回日期:2025-12-12 出版日期:2026-01-10
  • 基金资助:
    国家自然科学基金重大项目(42293290)

Microbial Geoengineering

Shucheng Xie(), Deng Liu, Zhaoyi Dai, Ting Chen, Lulu Zhao, Liuqin Huang, Xianyu Huang, Qiliang Sun, Geng Wu   

  1. State Key Laboratory of Geomicrobiology and Environmental Changes, Hubei Key Laboratory of Environment and Culture in Yangtze Regions, China University of Geosciences, Wuhan 430074, China
  • Received:2025-11-03 Revised:2025-12-12 Online:2026-01-10 Published:2026-03-10
  • About author:Xie Shucheng, Academician of the Chinese Academy of Sciences, research area includes geobiology. E-mail: xiecug@163.com
  • Supported by:
    the National Natural Science Foundation of China(42293290)

微生物时空分布广、地质作用大,不仅对地球重大环境转型产生了重要影响,而且在减污降碳、减灾降毒等方面也具有重大的工程实践价值,由此实现从微生物地球到微生物地球工程的发展。微生物是驱动生源要素和金属元素地球化学循环的引擎,在碳汇工程、生态工程和农业工程等领域发挥着不可或缺的关键支撑作用。微生物与矿物存在广泛而紧密的相互作用,在岩土工程、深地工程和矿业工程等领域应用微生物不仅可以节省成本、提高效率,还具有重要的环保价值。特别重要的是,微生物对地质环境变化具有广泛而灵敏的响应能力,不仅可以应用于许多重大工程的治理和防控,还可以应用于诸如生态灾害、气候环境灾害和地质灾害等领域的预警,布局微生物预警工程的建设尤其重要和紧迫。

Microbes are known to show a great spatiotemporal distribution, and exert extensive and intensive geological agents in both modern days and Earth history. These features make the microbes play important roles on great changes of Earth environments, enabling important and wide applications in geoengineering including the pollutant remediation, decrease of atmospheric CO2, geohazards prevention, as well as toxicity decrease. This necessitates the cross-disciplinary construction from microbial Earth to microbial geoengineering.It is well known that microbes, the engineer of elemental geochemical cycles, have played the key roles in the geoengineering fields including carbon sink, ecological remediation and the agriculture practice. The carbon pump and the microbial carbon pump, the important mechanisms to transport the atmospheric CO2 into the sediments or seawater, are documented to mainly regulate by the microbial communities either in the sea or on the land. Microbes are widely involved into, and known as the engineer of, the geochemical cycles of greenhouse gases including CH4, CO2 and N2O. These microbial processes could be exploited in the geoengineering to promote the carbon sink or decrease the carbon release. Microbial transformation of a series of metal ions as well as the degradation on organics has been widely used in the ecological remediation of polluted environments. Microbial release of elements including carbon, nitrogen, phosphor etc., from a variety of minerals is applied in agriculture practice. The artificial microbial mixtures on the basis of natural communities could be used as the nature-based fertilizers in the farming practice. Microbial roles, played on the precipitation and erosion of minerals, could also be applied into rocks and soils engineering, deep Earth engineering and mining industry. The microbial application to these geoengineerings will greatly save the costs, remarkably promote efficiency and noticeably protect the natural environments. Microbial transformation of the expansive clay minerals into no-expansive ones could be applied into the oil recovery by water flooding as well as the rocks and soils geotechnical engineering. Carbonate factory is known to be primarily induced by microbial communities via the precipitation of calcium carbonate from the fluids which could be introduced into the building of artificial islands in the sea, the filling and repairing of rock cracks, cementation of coarse grains in a variety of geoengineering. Microbial erosion of minerals could be exploited into the mining industry via the release of metals of economic significance from ores. The presence of the so-called deep biosphere, featured by the dominance of extreme environment microbes, will exert positive and negative effects on the underground storage of dangerous materials including the nuclear wastes, CO2 and hydrogen gas. The investigations on the microbial roles on these materials as well as the storage containers are of in particular importance.Whilst most microbial geoengineering has been conducted to prevent and control the geohazards that have come into being in natural environments, microbes could further provide the early warning of some geohazards including the biotic or ecological crisis, climatic and environmental disasters, as well as landslides due to their sensitive response to minor environmental changes. To construct the early warning geoengineering via the on-site filed observatory network is of importance so that we could take some measures to prevent the occurrence of the geohazards, or make the positive use of the microbial roles but suppress the negative roles.

中图分类号: 

表1 微生物构建从科学认识到学科发展再到地球工程的系统创新链
Table 1 Microbes-induced innovation chains from theoretical knowledge to disciplinary development and to geoengineering construction
创新阶段核心内涵科学原理关键技术工程应用

科学

认识

揭示微生物的地质作用过程及其影响因素微生物与地球环境的相互作用与协同演化微生物学—基因组学—分子生态学技术,以及同位素—微生物标志物分析等与传统地质分析技术相结合为工程应用提供原理性指导与可行性评估

学科

发展

形成一系列交叉学科微生物沉积学、微生物矿物学、微生物成矿学、微生物古气候学和极端环境微生物学等学科交叉融合方法、模拟实验和大数据分析为地球工程应用提供理论、方法和技术储备

应用

实践

碳汇工程微生物泵驱动碳固定与转化,影响CO2和CH4等温室气体的生物地球化学过程微生物碳泵技术、土壤微生物碳封存技术、湿地微生物调控技术海洋碳负排放、湿地生态修复和土壤水文调节
生态工程微生物与生态环境的相互作用与协同演化规律微生物菌剂投放技术、微生物群落动态监测与调控技术水体富营养化治理、污染土壤生物修复和生态系统重建
农业工程微生物—矿物—植物互作机理微生物肥料制备技术(固氮、解磷和解钾)和土壤微生物群落定向调控技术绿色农业、土壤改良和土质健康管理
岩土工程微生物诱导成矿及生物矿化作用机理微生物诱导碳酸盐沉淀技术、微生物防垢技术以及微生物加固技术工程系统结垢防治和工程体加固
深地工程深部生物圈的微生物代谢途径与适应性深地微生物监测技术和微生物行为调控技术核废地质处置安全评估和CO₂地质封存
矿业工程微生物浸矿及微生物—矿物相互作用机理微生物湿法冶金技术、微生物采油技术和微生物渗漏监测技术低品位贵金属回收、油气采收率提升和管道安全监测
预警工程微生物对环境扰动的灵敏响应机制微生物传感器技术和原位实时监测网络生态灾害预警和地质灾害超前预报
图1 以地质微生物为基础的重要学科领域(树枝)及其代表性的地球工程(果实)
Fig. 1 The tree constructed by microbes-based disciplinesbranchesand the resultant geoengineeringfruits
图2 当今正在进行的主要微生物地球工程
Fig. 2 The main microbial geoengineering conducted in nowadays
图3 微生物功能群应用于各类工程的具体机制
Fig. 3 Illustration of microbial mechanisms applied in geoengineering
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