Iron-Doped Biochar Boosting Salt Marsh Blue Carbon via Regulation of Microbial Metabolism and Intensified Mineral-Associated Organic Carbon

IF 9.7 1区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL
Guojiang Su, Yuzhou Huang, Dongyang Fan, Yaran Pan, Yingjie Zhu, Yang Liu, Haomin Huang, Xi Xiao
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引用次数: 0

Abstract

Salt marsh ecosystems, with substantial carbon sequestration capacity and ecological value, are experiencing a persistent decline globally. Biochar, especially that derived from Spartina alterniflora, is a promising material for restoration, but conventional biochar has shown limited effectiveness. This study introduces iron-doped biochar (FSBC) as an innovative material that boosts salt marsh blue carbon via regulation of microbial metabolism and intensified mineral-associated organic carbon (MAOC) formation. In experimental cultivation of Sesuvium portulacastrum, the addition of FSBC increased biomass density by 332.4%, carbon stock by 14.0%, and MAOC by 38.3% compared to biochar without iron amendment. These results suggest that FSBC can significantly improve both plant growth and carbon storage in salt marshes. Through microbiome and metabolome analyses, we elucidated the regulatory mechanisms of Fe in plants and its protective role in soil carbon components. FSBC affected bacteria associated with Fe like Pseudomonadales and Croceicoccus, thereby influencing metabolic pathways related to energy transporters and nutrient uptake in plants, including ABC transporters and phenylalanine metabolism. These changes in metabolic pathways promote the accumulation of soil organic acids, enhancing plant iron nutrition. Additionally, FSBC regulates soil Fe components and key microbial communities, promoting Fe-carbon complexation and reducing carbon-related extracellular enzyme activity, thereby enhancing stable carbon accumulation. In conclusion, regulating microbial metabolism and intensifying mineral-associated organic carbon by addition of iron-Doped Biochar significantly enhance blue carbon sequestration in salt marshes. This provides a promising approach for salt marsh restoration.

Abstract Image

铁掺杂生物炭通过调控微生物代谢和强化矿物伴生有机碳来促进盐沼蓝碳
具有大量固碳能力和生态价值的盐沼生态系统正在全球范围内持续衰退。生物炭,特别是从互花米草中提取的生物炭,是一种很有前途的修复材料,但常规生物炭的效果有限。本研究介绍了铁掺杂生物炭(FSBC)作为一种创新材料,通过调节微生物代谢和强化矿物相关有机碳(MAOC)的形成来促进盐沼蓝碳。与未加铁剂的生物炭相比,添加FSBC可使草浆Sesuvium portulacastrum生物量密度提高332.4%,碳储量提高14.0%,MAOC提高38.3%。综上所述,盐沼沼液对盐沼植物生长和碳储量均有显著的促进作用。通过微生物组学和代谢组学分析,阐明了铁在植物体内的调控机制及其对土壤碳组分的保护作用。FSBC影响与铁相关的细菌如Pseudomonadales和Croceicoccus,从而影响植物体内与能量转运体和养分摄取相关的代谢途径,包括ABC转运体和苯丙氨酸代谢。这些代谢途径的变化促进了土壤有机酸的积累,提高了植物的铁营养。此外,FSBC调节土壤铁组分和关键微生物群落,促进铁碳络合,降低碳相关的胞外酶活性,从而促进稳定的碳积累。综上所述,通过添加铁掺杂生物炭调节微生物代谢,增强矿物相关有机碳,可显著提高盐沼蓝碳固存能力。这为盐沼恢复提供了一条很有前途的途径。
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来源期刊
Journal of Cleaner Production
Journal of Cleaner Production 环境科学-工程:环境
CiteScore
20.40
自引率
9.00%
发文量
4720
审稿时长
111 days
期刊介绍: The Journal of Cleaner Production is an international, transdisciplinary journal that addresses and discusses theoretical and practical Cleaner Production, Environmental, and Sustainability issues. It aims to help societies become more sustainable by focusing on the concept of 'Cleaner Production', which aims at preventing waste production and increasing efficiencies in energy, water, resources, and human capital use. The journal serves as a platform for corporations, governments, education institutions, regions, and societies to engage in discussions and research related to Cleaner Production, environmental, and sustainability practices.
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