Yu, X. L., Ji, H., Wang, C. L. & Li, P. A survey of pharmacological effects of Fritillaria. Chin. Tradit. Herb. Drugs. 31, 313–315 (2000).
Wang, D. D. et al. Antitussive, expectorant and anti-inflammatory activities of four alkaloids isolated from bulbus of Fritillaria wabuensis. J. Ethnopharmacol. 139, 189 (2012).
Google Scholar
Tan, S. F. et al. Evaluation on the effect of analgesia and expectorant of aconiti radix cocta in coordination with Fritillaria cirrhosa and Fritillaria thunbergii based on the uniform design method. China J. Chin. Mater. Med. 38, 2706–2713 (2013).
Chen, T. Z. & Zhang, M. Suitable technology for production and processing of Fritillaria cirrhosa (ed. Chen, T. Z. & Zhang, M.) 8 (China Medical Science Press, 2018).
Chinese Pharmacopoeia Commission. Pharmacopoeia of the People’s Republic of China (ed. Zhao, Y. Y. et al.) (China Medical Science Press, 2015).
Duan, B. Z. et al. A survey of resource science of Fritillaria taipaiensis. Mod. Chin. Med. 12, 12–14 (2010).
Duan, B. Z. et al. Regionalization for growing Fritillaria taipaiensis P Y Li by TCMGIS-II. World Sci. Technol/Modern Tradit. Chin. Med. Mater Med. 12, 486–488 (2012).
Jiang, S. Y., Sun, H. B., Qin, J. H., Zhu, W. T. & Sun, H. Functional production regionalization for Fritillariae Cirrhosae Bulbus based on growth and quality suitability assessment. China J. Chin. Mater. Med. 17, 3194–3201 (2016).
Gu, W. C., Mu, M. J., Yang, M., Guo, D. Q. & Zhou, N. Correlation analysis between bulb quality and rhizosphere soil factors of Fritillaria taibaiensis. Chin. J. Exp. Tradit. Med. Formulae. 26, 165–177 (2020).
Mu, M. J. et al. Correlation between rhizospheric microorganisms distribution and alkaloid content of Fritillaria taipaiensis. China J. Chin. Mater. Med. 11, 2231–2235 (2019).
Peng, R., Ma, P., Mo, R. Y. & Sun, N. X. Analysis of the bioactive components from different growth stages of Fritillaria taipaiensis PY Li. Acta Pharm. Sin. B. 3, 167–173 (2013).
Google Scholar
Zhou, X. J., Yang, Y. X., Hu, P., Zhang, M. & Xia, Y. L. Investigation on the resources of Fritillaria taipaiensis. J. Anhui Agric. Sci. 17, 84–85 (2015).
Google Scholar
Wu, Z. Z. & Wu, C. S. Effects of different fertilization modes on the growth of Fritillaria taipaiensis. Agric. Eng. 6, 153–154 (2016).
Nannipieri, P., Kandeler, E., Ruggiero, P., Burns, R. G. & Dick, R. P. Enzymes in the environment: activity, ecology and applications (ed. Nannipieri, P.) (Marcel Dekker, 2002).
Sparling, G. P. Biological indicators of soil health (ed. Sparling, G. P.) (CAB International, 1997).
Alkorta, I. et al. Soil enzyme activities as biological indicators of soil health. Rev. Environ. Health. 18, 65–73 (2003).
Google Scholar
Lu, L. H. et al. Fungal networks in yield-invigorating and debilitating soils induced by prolonged potato monoculture. Soil. Biol. Biochem. 65, 186–194 (2013).
Google Scholar
Sun, J., Zhang, Q., Zhou, J. & Wei, Q. P. Illumina amplicon sequencing of 16S rRNA Tag reveals bacterial community development in the rhizosphere of apple nurseries at a replant disease site and a new planting site. PLoS ONE 9, e111744 (2014).
Google Scholar
Yao, H. Y., Jiao, X. D. & Wu, F. Z. Effects of continuous cucumber cropping and alternative rotations under protected cultivation on soil microbial community diversity. Plant. Soil. 284, 195–203 (2006).
Google Scholar
Lee, S. A. et al. Diferent types of agricultural land use drive distinct soil bacterial communities. Sci. Rep. 10, 1–12 (2020).
Google Scholar
Chen, M. et al. Soil eukaryotic microorganism succession as affected by continuous cropping of peanut-pathogenic and beneficial fungi were selected. PLoS ONE 7, e40659 (2012).
Google Scholar
Xiong, W. et al. The effect of long-term continuous cropping of black pepper on soil bacterial communities as determined by 454 pyrosequencing. PLoS ONE 10, e0136946 (2015).
Google Scholar
Zhang, Z. Y., Yang, W. X., Chen, Y. H. & Chen, X. J. Effects of consecutively monocultured Rehmannia glutinosa L. on diversity of fungal community in rhizospheric soil. J. Integr. Agric. 10, 1374–1384 (2011).
Zhou, X. & Wu, F. Dynamics of the diversity of fungal and Fusarium communities during continuous cropping of cucumber in the greenhouse. FEMS Microbiol. Ecol. 80, 469–478 (2012).
Google Scholar
Mu, M. J. et al. Effect of growth years to the soil enzyme activities and heavy metal residue of Fritillaria taipaiensis P.Y. Li. Environ. Chem. 38, 1966–1972 (2019).
Google Scholar
Zhou, N. et al. Rhizospheric Fungal diversities and soil biochemical factors of Fritillaria taipaiensis over five cultivation years. Horticulturae. 7(12), 560–574 (2021).
Google Scholar
Cai, L. T., Hu, Z. Y. & Luo, Z. Y. Extraction of total DNA of microbes from tobacco diseased-field soil by SDS-CTAB method. Acta Agric. Jiangxi. 23, 119–121 (2011).
Liang, Y. T. et al. Century long fertilization reduces stochasticity controlling grassland microbial community succession. Soil Biol. Biochem. 151, 128–142 (2020).
Google Scholar
Fudou, R. et al. Haliangicin, a novel antifungal metabolite produced by a marine myxobacterium. 2. Isolation and structural elucidation. J. Antibiot. 54(2), 153–156 (2001).
Google Scholar
Lewin, G. R. et al. Cellulose-enriched microbial communities from leaf-cutter ant (Atta colombica) refuse dumps vary in taxonomic composition and degradation ability. PLoS ONE. 11(3), e0151840 (2016).
Google Scholar
Brewer, T. E., Handley, K. M., Carini, P., Gilbert, J. A. & Fierer, N. Genome reduction in an abundant and ubiquitous soil bacterium Candidatus Udaeobacter copiosus. Nat. Microbiol. 2, 16198 (2016).
Google Scholar
Kalyuzhnaya, M. G., Hristova, K. R., Lidstrom, M. E. & Chistoserdova, L. Characterization of a novel methanol dehydrogenase in representatives of the Burkholderiales: Implication for environmental detection of methylotrophy and evidence for convergent evolution. J. Bacterial. 190, 3817–3823 (2008).
Google Scholar
Banerjee, S. et al. Network analysis reveals functional redundancy and keystone taxa amongst bacterial and fungal communities during organic matter decomposition in an arable soil. Soil. Biol. Biochem. 97, 188–198 (2016).
Google Scholar
Yi, X. et al. Microbial community structures and important associations between soil nutrients and the responses of specific taxa to rice-frog cultivation. Front. Microbiol. 6(10), 1752 (2019).
Google Scholar
Makk, J. et al. Arenimonas subflava sp nov., isolated from a drinking water network, and emended description of the genus Arenimonas. Int. J. Syst. Evol. Microbiol. 65, 1915–1921 (2015).
Google Scholar
Maki, K., Mitsuo, S., Masako, I., Shinji, S. & Yoshimi, B. Bacteroides plebeius sp. nov. and Bacteroides coprocola sp. nov., isolated from human faeces. Int. J. Syst. Evol. Microbiol. 55(5), 2143–2147 (2005).
Google Scholar
Zhao, Y. C. et al. Variation of rhizosphere microbial community in continuous mono-maize seed production. Sci. Rep. 11, 1544 (2021).
Google Scholar
Liu, J. J. et al. High throughput sequencing analysis of biogeographical distribution of bacterial communities in the black soils of northeast China. Soil. Biol. Biochem. 70, 113–122 (2014).
Google Scholar
Yin, C. T. et al. Rhizosphere community selection reveals bacteria associated with reduced root disease. Microbiome. 9, 86–103 (2021).
Google Scholar
Ren, H. Y. et al. Effect of two kinds of fertilizers on growth and rhizosphere soil properties of bayberry with decline disease. Plants. 10, 2386–2409 (2021).
Google Scholar
Fierer, N. & Jackson, R. B. The diversity and biogeography of soil bacterial communities. Proc. Natl. Acad. Sci. U. S. A. 103(3), 626–631 (2006).
Google Scholar
Lauber, C. L., Hamady, M., Knight, R. & Fierer, N. Pyrosequencing-based assessment of soil pH as a predictor of soil bacterial community structure at the continental scale. Appl. Environ. Microbiol. 75(15), 5111–5120 (2009).
Google Scholar
Zhang, B., Liang, C., He, H. B. & Zhang, X. D. Variations in soil microbial communities and residues along an altitude gradient on the northern slope of changbai mountain, China. PLoS ONE. 8(6), e66184 (2013).
Google Scholar
Liu, Z. X. et al. Effects of continuous cropping years of soybean on the bacterial community structure in black soil. Acta Ecol. Sin. 39(12), 4337–4345 (2019).
Google Scholar
Jekins, S. N. et al. Actinobacterial community dynamics in long term managed grasslands. Antonie Van Leeuwenhoek 95(4), 319–334 (2009).
Google Scholar
Lauber, C. L., Strickland, M. S., Bradford, M. & Fierer, N. The influence of soil properties on the structure of bacterial and fungal communities across land-use types. Soil Biol. Biochem. 40(9), 2407–2415 (2008).
Google Scholar
Lu, K. H., Hu, Z. Y., Liang, J. J. & Zhu, J. Y. Characteristics of rhizosphere microbial community structure of two aquatic plants in eutrophic waters. China Environ. Sci. 30, 1508–1515 (2010).
Google Scholar
Wang, J. J., Cao, B., Bai, C. C., Zhang, L. L. & Che, L. Potential distribution prediction and suitability evaluation of Fritillaria cirrhosa D. Don based on maxent modeling and GIS. Bull. Bot. Res. 34, 642–649 (2014).
Montazer, Z., Najafi, M. B. H. & Levin, B. D. Microbial degradation of low-density polyethylene and synthesis of polyhydroxyalkanoate polymers. Can. J. Microbiol. 65, 224–234 (2019).
Google Scholar
Fierer, N., Bradford, M. A. & Jackson, R. B. Toward an ecological classifification of soil bacteria. Ecology 88, 1354–1364 (2007).
Google Scholar
Lin, S., Zhuang, J. Q., Chen, T., Zhang, A. J. & Lin, W. X. Microbial diversity in rhizosphere soils of different planting year tea trees: An analysis with phospholipid fatty acid biomarkers. Chin. J. Ecol. 32, 64–71 (2013).
Google Scholar
Bardgett, R. D., Lovell, R. D., Hobbs, P. J. & Jarvis, C. C. Seasonal changes in soil microbial communities along a fertility gradient of temperate grasslands. Soil Biol. Biochem. 31, 1021–1030 (1999).
Google Scholar
Haynes, K. M., Preston, M. D., McLaughlin, J. W., Webster, K. & Basiliko, N. Dissimilar bacterial and fungal decomposer communities across rich to poor fen peatlands exhibit functional redundancy. Can. J. Soil Sci. 95, 219–230 (2015).
Google Scholar
Ye, W., Li, Y. C., Ye, M., Qian, Y. T. & Dai, W. S. Microbial biodiversity in rhizospheric soil of Torreya grandis ‘Merrillii’relative to cultivation history. Chin. J. Appl. Ecol. 29, 3783–3792 (2018).
Shen, Z. Z. et al. Induced soil microbial suppression of banana fusarium wilt disease using compost and biofertilizers to improve yield and quality. Eur. J. Soil Biol. 57, 1–8 (2013).
Google Scholar
Liu, C. et al. Soil bacterial communities of three types of plants from ecological restoration areas and plant-growth promotional benefits of Microbacterium invictum (strain X-18). Front. Microbiol. 13, 926037 (2022).
Google Scholar
Wang, L. X., Pang, X. Y., Li, N., Qi, K. & Yin, C. Effects of vegetation type, fine and coarse roots on soil microbial communities and enzyme activities in eastern tibetan plateau. Catena 194, 104694 (2020).
Google Scholar
Su, Y. Z., Li, Y. L., Cui, J. Y. & Zhao, W. Z. Influences of continuous grazing and livestock exclusion on soil properties in a degraded sandy grassland, Inner Mongolia, Northern China. Catena 59(3), 267–278 (2005).
Google Scholar
Wallenstein, M. D., Mcmahon, S. K. & Schimel, J. P. Seasonal variation in enzyme activities and temperature sensitivities in arctic tundra soils. Glob. Chang. Biol. 15(7), 1631–1639 (2009).
Google Scholar
Chang, W. H., Ma, W. W., Li, G., Xu, G. R. & Song, L. C. Temporal and spatial distribution characteristics of soil urease and protease activities in different degraded gradients of Gahai wetland. Soils. 54(3), 524–531 (2022).
Zhang, Y., Liu, C., Song, A., Jin, Z. J. & Li, Q. Relationship between soil physicochemical properties and soil enzyme activities in huixian karst wetland system based on canonica correspondence analysis. Carsol. Sin. 35(1), 11–18 (2016).
Zhang, Y., Ke, X., Zhang, G. C. & Guan, L. Z. Effects of acetochlor on soil urease kinetic characteristics. Plant Nutr. Fert. Sci. 18(4), 915–921 (2012).
Google Scholar
Wang, H. Y., Ma, P. & Peng, R. Quantitative determination of peimisin and total alkaloids in Fritillaria taipaiensis of different growing stage. J. Chin. Med. Mater. 34, 1034–1037 (2011).
Gershenzon, J. Metabolic costs of terpenoid accumulation in high plants. J. Chem. Ecol. 20, 1281–1328 (1994).
Google Scholar
Pramanik, M. H. R., Nagai, M., Asao, T. & Matsui, Y. Effect of temperature and hotoperiod on the phytotoxic root exudate of cucumber (Cucumis sativus) in hydroponic culture. J. Chem. Ecol. 28, 1953–1967 (2000).
Google Scholar
Bertin, C., Yang, X. & Weston, L. A. The role of root exudates and allelochemicals in rhizosphere. Plant Soil. 256, 67–83 (2003).
Google Scholar
Zhang, Z. Y. & Lin, W. X. Continuous cropping obstacle and allelopathic autotoxicity of medicinal plants. Chin. J. Eco-Agric. 17, 189–196 (2019).
Google Scholar
Huang, Y. Q. et al. Effects of vanillic acid on seed germination, seedling growth and rhizosphere microflora of peanut. Sci. Agric. Sin. 9, 1735–1745 (2018).
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