Bolan Shiv, Hou Deyi, Wang Liuwei, Hale Lauren, Egamberdieva Dilfuza, Tammeorg Priit, Li Rui, Wang Bing, Xu Jiaping, Wang Ting, Sun Hongwen, Padhye Lokesh P, Wang Hailong, Siddique Kadambot H M, Rinklebe Jörg, Kirkham M B, Bolan Nanthi
UWA School of Agriculture and Environment, The University of Western Australia, Perth, WA 6009, Australia; The UWA Institute of Agriculture, The University of Western Australia, Perth, WA 6009, Australia; Healthy Environments and Lives (HEAL) National Research Network, Australia.
School of Environment, Tsinghua University, Beijing 100084, People's Republic of China.
Sci Total Environ. 2023 Aug 15;886:163968. doi: 10.1016/j.scitotenv.2023.163968. Epub 2023 May 8.
Biochar can be an effective carrier for microbial inoculants because of its favourable properties promoting microbial life. In this review, we assess the effectiveness of biochar as a microbial carrier for agricultural and environmental applications. Biochar is enriched with organic carbon, contains nitrogen, phosphorus, and potassium as nutrients, and has a high porosity and moisture-holding capacity. The large number of active hydroxyl, carboxyl, sulfonic acid group, amino, imino, and acylamino hydroxyl and carboxyl functional groups are effective for microbial cell adhesion and proliferation. The use of biochar as a carrier of microbial inoculum has been shown to enhance the persistence, survival and colonization of inoculated microbes in soil and plant roots, which play a crucial role in soil biochemical processes, nutrient and carbon cycling, and soil contamination remediation. Moreover, biochar-based microbial inoculants including probiotics effectively promote plant growth and remediate soil contaminated with organic pollutants. These findings suggest that biochar can serve as a promising substitute for non-renewable substrates, such as peat, to formulate and deliver microbial inoculants. The future research directions in relation to improving the carrier material performance and expanding the potential applications of this emerging biochar-based microbial immobilization technology have been proposed.
生物炭因其促进微生物生存的有利特性,可成为微生物接种剂的有效载体。在本综述中,我们评估了生物炭作为农业和环境应用中微生物载体的有效性。生物炭富含有机碳,含有氮、磷和钾等养分,具有高孔隙率和持水能力。大量的活性羟基、羧基、磺酸基、氨基、亚氨基以及酰氨基羟基和羧基官能团对微生物细胞的粘附和增殖有效。使用生物炭作为微生物接种剂的载体已被证明可增强接种微生物在土壤和植物根系中的持久性、存活率和定殖能力,这在土壤生化过程、养分和碳循环以及土壤污染修复中起着关键作用。此外,包括益生菌在内的基于生物炭的微生物接种剂可有效促进植物生长并修复受有机污染物污染的土壤。这些发现表明,生物炭可作为泥炭等不可再生基质的有前景的替代品,用于制备和输送微生物接种剂。本文还提出了未来关于改善载体材料性能和扩大这种新兴的基于生物炭的微生物固定技术潜在应用的研究方向。