Elucidating the eco-friendly herbicidal potential of microbial metabolites from Bacillus altitudinis.


Journal

World journal of microbiology & biotechnology
ISSN: 1573-0972
Titre abrégé: World J Microbiol Biotechnol
Pays: Germany
ID NLM: 9012472

Informations de publication

Date de publication:
19 Oct 2024
Historique:
received: 27 02 2024
accepted: 01 10 2024
medline: 19 10 2024
pubmed: 19 10 2024
entrez: 18 10 2024
Statut: epublish

Résumé

Microbial herbicides play a vital role in agricultural preservation, amid growing concerns over the ecological impact from extensive development and use of chemical herbicides. Utilizing beneficial microbial metabolites to combat weeds has become a significant focus of research. This study focused on isolating herbicidal active compounds from Bacillus altitudinis D30202 through activity-guided methods. First, the n-butanol extract (n-BE) of B. altitudinis D30202 underwent fractionation using macroporous adsorption resin D101 and Sephadex LH-20, identifying Fr. F as the most potent segment against wild oats (Avena fatua L.). Ultra-performance liquid chromatography - quadrupole time-of-flight mass spectrometry (UPLC - QTOF-MS) identified nine compounds in the active fraction Fr. F. Subsequently, three subfractions (Fr.F-1 to Fr.F-3) were derived from Fr.F via semi-preparative liquid chromatography, resulting in methyl indole-3-acetate (MeIAA) purification. MeIAA, functioning as an auxin analog, exhibited effects of indole-3-acetic acid (IAA) on wild oats' growth, with a root length median inhibitory concentration of 81.06 µg/ml. Furthermore, we assessed MeIAA's herbicidal impact on five weed species across diverse families and genera, providing a first-time analysis of MeIAA's mechanism on wild oats. Scanning electron microscopy (SEM) and transmission electron microscopy (TEM) revealed structural damage to leaves and roots post-MeIAA treatment. MeIAA treatment increased superoxide anion and hydrogen peroxide levels in wild oat roots, alongside with elevated peroxidase (POD) and superoxide dismutase (SOD) activity, chlorophyll-degrading enzymes (Chlase, MDACase), malondialdehyde (MDA) content, and relative conductivity in leaves. Conversely, it decreased catalase (CAT) activity and chlorophyll content. Therefore, this study provides a new material source and theoretical foundation for ecologically sustainable agricultural weed control.

Identifiants

pubmed: 39424739
doi: 10.1007/s11274-024-04154-0
pii: 10.1007/s11274-024-04154-0
doi:

Substances chimiques

Herbicides 0
Indoleacetic Acids 0
indoleacetic acid 6U1S09C61L

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

356

Informations de copyright

© 2024. The Author(s), under exclusive licence to Springer Nature B.V.

Références

Aebi HE (1974) Catalase, Methods of enzymatic analysis
Alché JD (2019) A concise appraisal of lipid oxidation and lipoxidation in higher plants. Redox Biol 23:101136
doi: 10.1016/j.redox.2019.101136 pubmed: 30772285 pmcid: 6859586
Anuj C, Antul K, Nirmaljit K (2019) ROS and oxidative burst: roots in plant development. Plant Divers 42(1):33–43
Arienzo M, Christen EW, Quayle W, Kumar A (2009) A review of the fate of potassium in the soil-plant system after land application of wastewaters. J Hazard Mater 164(2–3):415–422
doi: 10.1016/j.jhazmat.2008.08.095 pubmed: 18842339
Bastiaans L, Paolini R, Baumann DT (2010) Focus on ecological weed management: what is hindering adoption? Weed Res 48(6):481–491
doi: 10.1111/j.1365-3180.2008.00662.x
C R, J W, H FD et al (2021) Recent CO2 levels promote increased production of the toxin parthenin in an invasive Parthenium hysterophorus biotype. Nat Plants 7(6):725–729
doi: 10.1038/s41477-021-00938-6
Charles B, Irwin F (1971) Superoxide dismutase: improved assays and an assay applicable to acrylamide gels. Anal Biochem 44(1):276–287
doi: 10.1016/0003-2697(71)90370-8
Cheng-zhen H, Lei X, Jin-jing S et al (2020) Allelochemical p-hydroxybenzoic acid inhibits root growth via regulating ROS accumulation in cucumber(Cucumis sativus L). J Integr Agric 19(02):518–527
doi: 10.1016/S2095-3119(19)62781-4
Cuicui S (2016) Genome Sequencing of Aureobasidium pullulans PA-2 and isolation and identification of herbicidal active substances [dissertation]. Qinghai Univ
Feixiang X, Wei-yu Y, Pei-xing S (2019) Study on secondary metabolites of endophytic Fungus Fusarium oxysporum from Bamboo. J Anhui Agric Sci 47(05):174–175
Henyou Y, Jie L, Jian Z (2010) Research development and development prospect of microbial herbicides. Chn Plant Prot 30(07):14–17
Hong-Mei Y, Heng-Hao X, Wen-Cheng L et al (2013) Copper regulates primary root elongation through PIN1-mediated auxin redistribution. Plant Cell Physiol 54(5):766–778
doi: 10.1093/pcp/pct030
Huijuan Z, Menglin S, Zimeng L (2023) Metabolic pathways of ysnE involved in indole-3-acetic acid synthesis in Bacillus amyloliquefaciens HZ-12. Acta Microbiol Sin 63(02):845–854
Ishtiaq M, Mazhar MW, Maqbool M et al (2023) Seed priming with the Selenium Nanoparticles Maintains the Redox Status in the Water stressed Tomato plants by modulating the antioxidant defense enzymes. Plants 12(7):1556
doi: 10.3390/plants12071556 pubmed: 37050182 pmcid: 10096850
Jian L, Mei L, Xingxiang G et al (2016) Research progress and prospect of microbial herbicides. Shandong Agric Sci 48(10):149–151
Jiaqi X, Xudong L, Richard N et al (2022) Mode of Action of a Novel Synthetic Auxin Herbicide Halauxifen-Methyl. Agron 12(7):1659–1659
doi: 10.3390/agronomy12071659
Juan Y, Hong-zhe C, Wei W et al (2014) Isolation, identification, and Herbicidal Activity of metabolites produced by Pseudomonas aeruginosa CB-4. J Integr Agric 13(08):1719–1726
doi: 10.1016/S2095-3119(13)60695-4
Juan Y, Wei W, Peng Y et al (2015) Isolation and identification of Serratia marcescens Ha1 and herbicidal activity of Ha1 ‘pesta’ granular formulation. J Integr Agric 14(07):1348–1355
doi: 10.1016/S2095-3119(14)60967-9
Lutts S, Kinet JM, Bouharmont J (1996) NaCl-induced Senescence in leaves of Rice (Oryza sativa L.) cultivars Differing in Salinity Resistance. Ann Bot 78(3):389–398
doi: 10.1006/anbo.1996.0134
Marco M, Euro P, Ernesto S et al (2020) Stoechanones A and B, Phytotoxic Copaane Sesquiterpenoids isolated from Lavandula stoechas with potential herbicidal activity against Amaranthus retroflexus. J Nat Prod 83(5):1658–1665
doi: 10.1021/acs.jnatprod.0c00182
Mingyue Z, Ce L, Juan Y et al (2018) The biological activity of 4-hydroxy-3-methoxycinnamic acid ethyl ester and its herbicidal mechanism. J Plant Prot 45(03):543–551
Mohamad A, Jorge H-G, Stephan P et al (2018) Auxin methylation is required for differential growth in Arabidopsis. Proc Natl Acad Sci U S A 115(26):6864–6869
doi: 10.1073/pnas.1806565115
Muhammad A, Ali R, Tayyaba K et al (2023) Isolation of herbicidal compounds, quercetin and β-caryophyllene, from Digera muricata. Arab J Chem 16(5)
Nakano Y, Asada K (1980) Hydrogen peroxide is scavenged by ascorbate-specific peroxidase in spinach chloroplasts. Plant Cell Physiol 22(5):867–880
Radhakrishnan R, Alqarawi AA, Abd_Allah EF (2018) Bioherbicides: current knowledge on weed control mechanism. Ecotoxicol Environ Saf 158:131–138
Saeed Q, Xiukang W, Haider F, Mustafa A (2021) Rhizosphere Bacteria in Plant Growth Promotion, Biocontrol, and bioremediation of contaminated sites a Comprehensive Review of effects and mechanisms. Int J Mol Sci 22(19):10529–10529
doi: 10.3390/ijms221910529 pubmed: 34638870 pmcid: 8509026
Snežana Đ, Dragana S, Milka V et al (2017) The use of bacterial indol-3-acetic acid (IAA) for reduce of chemical fertilizers doses. Hem Ind 71(3):195–200
doi: 10.2298/HEMIND160317029D
Song J-S, Lim S-H, Lim Y et al (2016) Herbicide-based Weed Management in Miscanthus sacchariflorus. BioEnergy Res 9(1):326–334
doi: 10.1007/s12155-015-9693-z
Tanaka A, Ito H (2024) Chlorophyll degradation and its physiological function. Plant Cell Physiol pcae093
Wang Y, Zhao Y, Dong B et al (2023) The aqueous extract of Brassica oleracea L. exerts phytotoxicity by modulating H
doi: 10.3390/plants12173086 pubmed: 37687333 pmcid: 10490512
Wang R, Li J, Liang Y (2024) Role of ROS signaling in the plant defense against vascular pathogens. Curr Opin Plant Biol 81:102617
doi: 10.1016/j.pbi.2024.102617 pubmed: 39163783
Wei L, Shuo S, Qingyun G (2016) Identification and biological activity of three strains isolated from distiller’s grains of highland barley wine. Chin J Biol Control 32(04):544–552
Wei L, Shuo S, Qingyun G (2017) Study on inhibitory activity of crude extracts from distiller’s grains of hulless barley against weeds. Acta Agr Boreal Occid Sin 26(06):916–925
Wei Z, Li-Ying L, Li-Yan H et al (2018) Evidence for the involvement of Auxin, Ethylene and ROS Signaling during Primary Root inhibition of Arabidopsis by the Allelochemical Benzoic Acid. Plant Cell Physiol 59(9):1889–1904
doi: 10.1093/pcp/pcy107
Weijia L (2020) Screening of strains with inhibitory activity against weed and its preliminary inhibitory mechanisms [dissertation]. Qinghai Univ
Weijia L, Shuo S, Miaomiao C (2019) Screening and identification of herbicidal activity strains. Qinghai Univ 37(06):11–19
Xianhui H, Miaoyu D, Sainan L (2009) Isolation and positional cloning of Methyl-Indole-3-Acetic acid resistant mutants in Arabidopsis. Chin Bull Bot 44(01):52–58
Xiuyu Z, Weijia L, Shuo S (2022) Preliminary study on the herbicidal activity and mechanism of Bacillus altitudinis D30202. Plant Prot 48(5):197–203
Yamamoto Y, Kobayashi Y, Devi SR et al (2002) Aluminum toxicity is associated with mitochondrial dysfunction and the production of reactive oxygen species in plant cells. Plant Physiol 128(1):63–72
doi: 10.1104/pp.010417 pubmed: 11788753 pmcid: 148944
Yan Z-Q, Tan J, Guo K, Yao L-G (2020) Phytotoxic mechanism of allelochemical liquiritin on root growth of lettuce seedlings. Plant Signal Behav 15(10):1795581
doi: 10.1080/15592324.2020.1795581 pubmed: 32693669 pmcid: 8550531
Yuchen K, Jiaxin L, Li Y et al (2022) Foliar application of flavonoids (rutin) regulates phytoremediation efficiency of Amaranthus hypochondriacus L. by altering the permeability of cell membranes and immobilizing excess cd in the cell wall. J Hazard Mater 425:127875–127875
doi: 10.1016/j.jhazmat.2021.127875
Zafar S, Khan IM, Ashraf MA et al (2024) Insights into trehalose mediated physiological and biochemical mechanisms in Zea mays L. under chromium stress. BMC Plant Biol 24(1):783
doi: 10.1186/s12870-024-05514-6 pubmed: 39152388 pmcid: 11330127
Zeng J, Yang L, Tian M et al (2023) SDG26 is involved in Trichome Control in Arabidopsis thaliana: affecting Phytohormones and Adjusting Accumulation of H3K27me3 on genes related to Trichome Growth and Development. Plants 12(8):1651
doi: 10.3390/plants12081651 pubmed: 37111875 pmcid: 10143075
Zhang C, Li N, Hu Z et al (2022) Mutation of Leaf Senescence 1 encoding a C2H2 zinc finger protein induces ROS Accumulation and accelerates Leaf Senescence in Rice. Int J Mol Sci 23(22):14464
doi: 10.3390/ijms232214464 pubmed: 36430940 pmcid: 9696409

Auteurs

Xiu-Hua Ma (XH)

Academy of Agriculture and Forestry Sciences, Qinghai University, Xining, 810016, Qinghai, China.
Key Laboratory of Qinghai Tibet Plateau biotechnology, Ministry of Education, Xining, 810016, Qinghai, China.
State Key Laboratory of Plateau Ecology and Agriculture, Qinghai University, Xining, 810016, Qinghai, China.
Northwest Potato Engineering Research Center, Ministry of Education, Xining, 810016, Qinghai, China.

Shuo Shen (S)

Academy of Agriculture and Forestry Sciences, Qinghai University, Xining, 810016, Qinghai, China. fjfzss@126.com.
Key Laboratory of Qinghai Tibet Plateau biotechnology, Ministry of Education, Xining, 810016, Qinghai, China. fjfzss@126.com.
State Key Laboratory of Plateau Ecology and Agriculture, Qinghai University, Xining, 810016, Qinghai, China. fjfzss@126.com.
Northwest Potato Engineering Research Center, Ministry of Education, Xining, 810016, Qinghai, China. fjfzss@126.com.

Wei Li (W)

Academy of Agriculture and Forestry Sciences, Qinghai University, Xining, 810016, Qinghai, China.
Key Laboratory of Qinghai Tibet Plateau biotechnology, Ministry of Education, Xining, 810016, Qinghai, China.
State Key Laboratory of Plateau Ecology and Agriculture, Qinghai University, Xining, 810016, Qinghai, China.
Northwest Potato Engineering Research Center, Ministry of Education, Xining, 810016, Qinghai, China.

Jian Wang (J)

Academy of Agriculture and Forestry Sciences, Qinghai University, Xining, 810016, Qinghai, China.
Key Laboratory of Qinghai Tibet Plateau biotechnology, Ministry of Education, Xining, 810016, Qinghai, China.
State Key Laboratory of Plateau Ecology and Agriculture, Qinghai University, Xining, 810016, Qinghai, China.
Northwest Potato Engineering Research Center, Ministry of Education, Xining, 810016, Qinghai, China.

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