Biochar-induced microbial and metabolic reprogramming enhances bioactive compound accumulation in Panax quinquefolius L.

IF 4.3 2区 生物学 Q1 PLANT SCIENCES
Xiaoli Chen, Xinying Mao, Yu Ding, Tian Chen, Yue Wang, Jie Bao, Lanping Guo, Lei Fang, Jie Zhou
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Abstract

Panax quinquefolius L., with a history of over 300 years in traditional Chinese medicine, is notably rich in ginsenosides-its primary bioactive components. Although our previous study found that biochar application could enhance the content of ginsenoside Re, Rg and other contents in P. quinquefolius, its effect on the overall secondary metabolism of P. quinquefolius and its mechanism are still unclear. In this paper, the correlation between plant microbiome and secondary metabolites was studied from the perspective of plant rhizosphere microorganisms and endophytes, and the mechanism of biochar-induced metabolic reprogramming of P. quinquefolius was revealed. The results showed that biochar treatment significantly increased the accumulation of various substances in P. quinquefolius, including nucleosides, glycerophosphocholines, fatty acyls, steroidal glycosides, triterpenoids, and other bioactive compounds. Additionally, biochar treatment significantly enriched beneficial rhizosphere microorganisms such as Bacillus, Flavobacterium, and Devosia, while reducing the relative abundance of harmful fungi like Fusarium. Furthermore, it promoted endophytic Flavobacterium, Acaulospora, and Glomus, and suppressed pathogenic genera such as Plectosphaerella, Cladosporium, and Phaeosphaeria. These shifts in rhizosphere microbial community and endophytes structure and function were closely linked to the accumulation of secondary metabolites (e.g. ginsenosides Rg3, F2) in P. quinquefolius. Overall, our findings suggest that biochar may influence key endophytes and rhizosphere microorganisms to regulate the accumulation of secondary metabolites in P. quinquefolius. Therefore, this study provides valuable insights into the potential application of biochar in Chinese medicine agriculture.

生物炭诱导的微生物和代谢重编程促进西洋参生物活性化合物的积累。
西洋参(Panax ququefolius L.)是一种具有300多年历史的传统中药,其主要活性成分人参皂苷含量丰富。虽然我们前期的研究发现生物炭可以提高西洋参中人参皂苷Re、Rg等含量,但其对西洋参整体次生代谢的影响及其作用机制尚不清楚。本文从植物根际微生物和内生菌的角度研究了植物微生物组与次生代谢物的相关性,揭示了生物炭诱导西葫芦代谢重编程的机制。结果表明,生物炭处理显著增加了西葫芦中核苷类、甘油酸胆碱类、脂肪酰基类、甾体苷类、三萜类等多种生物活性物质的积累。此外,生物炭处理显著增加了有益的根际微生物,如芽孢杆菌、黄杆菌和Devosia,同时降低了镰刀菌等有害真菌的相对丰度。促进内生黄杆菌、Acaulospora和Glomus,抑制Plectosphaerella、Cladosporium和Phaeosphaeria等致病属。这些根际微生物群落和内生菌结构和功能的变化与西洋参次生代谢产物(如人参皂苷Rg3、F2)的积累密切相关。总之,我们的研究结果表明,生物炭可能会影响关键的内生菌和根际微生物,从而调节西杨树次生代谢物的积累。因此,本研究为生物炭在中药农业中的潜在应用提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
BMC Plant Biology
BMC Plant Biology 生物-植物科学
CiteScore
8.40
自引率
3.80%
发文量
539
审稿时长
3.8 months
期刊介绍: BMC Plant Biology is an open access, peer-reviewed journal that considers articles on all aspects of plant biology, including molecular, cellular, tissue, organ and whole organism research.
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