Acta Agriculturae Zhejiangensis ›› 2026, Vol. 38 ›› Issue (7): 1507-1516.DOI: 10.3969/j.issn.1004-1524.20250397
• Review • Previous Articles
LI Wenbinga(
), LI Shihaob, LI Xinyia, CAO Yuea, LIU Bingqiana, WANG Menga, LI Xiaoyana,*(
)
Received:2025-05-23
Online:2026-07-25
Published:2026-08-20
CLC Number:
LI Wenbing, LI Shihao, LI Xinyi, CAO Yue, LIU Bingqian, WANG Meng, LI Xiaoyan. Dynamic regulation of quorum sensing signaling molecules in Bacillus spp. biofilm formation[J]. Acta Agriculturae Zhejiangensis, 2026, 38(7): 1507-1516.
Add to citation manager EndNote|Ris|BibTeX
URL: http://www.zjnyxb.cn/EN/10.3969/j.issn.1004-1524.20250397
| [1] | FAN B, WANG C, SONG X F, et al. Bacillus velezensis FZB42 in 2018: the Gram-positive model strain for plant growth promotion and biocontrol[J]. Frontiers in Microbiology, 2018, 9: 2491. |
| [2] | XU Z H, ZHANG H H, SUN X L, et al. Bacillus velezensis wall teichoic acids are required for biofilm formation and root colonization[J]. Applied and Environmental Microbiology, 2019, 85(5): e02116. |
| [3] | KALAMARA M, SPACAPAN M, MANDIC-MULEC I, et al. Social behaviours by Bacillus subtilis: quorum sensing, kin discrimination and beyond[J]. Molecular Microbiology, 2018, 110(6): 863-878. |
| [4] | SINGH A, CHAUHAN P S. N-acyl homoserine lactone mediated quorum sensing exhibiting plant growth-promoting and abiotic stress tolerant bacteria demonstrates drought stress amelioration[J]. Journal of Pure and Applied Microbiology, 2022, 16(1): 669-684. |
| [5] | WILLIAMS P. Quorum sensing, communication and cross-kingdom signalling in the bacterial world[J]. Microbiology, 2007, 153(12): 3923-3938. |
| [6] | HALL-STOODLEY L, COSTERTON J W, STOODLEY P. Bacterial biofilms: from the natural environment to infectious diseases[J]. Nature Reviews Microbiology, 2004, 2(2): 95-108. |
| [7] | SHAO L, SHEN Z Z, LI M J, et al. ccdC regulates biofilm dispersal in Bacillus velezensis FZB42[J]. International Journal of Molecular Sciences, 2024, 25(10): 5201. |
| [8] | ZHAO X, WANG Y, SHANG Q H, et al. Collagen-like proteins (ClpA, ClpB, ClpC, and ClpD) are required for biofilm formation and adhesion to plant roots by Bacillus amyloliquefaciens FZB42[J]. PLoS One, 2015, 10(2): e0117414. |
| [9] | FAN B, LI Y L, MARIAPPAN A, et al. New SigD-regulated genes identified in the rhizobacterium Bacillus amyloliquefaciens FZB42[J]. Biology Open, 2016, 5(12): 1776-1783. |
| [10] | LU X, LIU S F, YUE L, et al. Epsc involved in the encoding of exopolysaccharides produced by Bacillus amyloliquefaciens FZB42 act to boost the drought tolerance of Arabidopsis thaliana[J]. International Journal of Molecular Sciences, 2018, 19(12): 3795. |
| [11] | CÁMARA-ALMIRÓN J, DOMÍNGUEZ-GARCÍA L, EL MAMMERI N, et al. Molecular characterization of the N-terminal half of TasA during amyloid-like assembly and its contribution to Bacillus subtilis biofilm formation[J]. npj Biofilms and Microbiomes, 2023, 9: 68. |
| [12] | XIONG Q, LIU D, ZHANG H H, et al. Quorum sensing signal autoinducer-2 promotes root colonization of Bacillus velezensis SQR9 by affecting biofilm formation and motility[J]. Applied Microbiology and Biotechnology, 2020, 104(16): 7177-7185. |
| [13] | CHAVANT P, MARTINIE B, MEYLHEUC T, et al. Listeria monocytogenes LO28: surface physicochemical properties and ability to form biofilms at different temperatures and growth phases[J]. Applied and Environmental Microbiology, 2002, 68(2): 728-737. |
| [14] | BURMAN E, BENGTSSON-PALME J. Microbial community interactions are sensitive to small changes in temperature[J]. Frontiers in Microbiology, 2021, 12: 672910. |
| [15] | RAMLI N S K, ENG GUAN C, NATHAN S, et al. The effect of environmental conditions on biofilm formation of Burkholderia pseudomallei clinical isolates[J]. PLoS One, 2012, 7(9): e44104. |
| [16] | ZHU X J, XIANG Q Y, CHEN L, et al. Engineered Bacillus subtilis biofilm@biochar living materials for in-situ sensing and bioremediation of heavy metal ions pollution[J]. Journal of Hazardous Materials, 2024, 465: 133119. |
| [17] | PAN X, LIU J, ZHANG D, et al. A comparison of five extraction methods for extracellular polymeric substances (EPS) from biofilm by using three-dimensional excitation-emission matrix (3DEEM) fluorescence spectroscopy[J]. Water SA, 2010, 36(1): 111-116. |
| [18] | FAN B, CHEN X H, BUDIHARJO A, et al. Efficient colonization of plant roots by the plant growth promoting bacterium Bacillus amyloliquefaciens FZB42, engineered to express green fluorescent protein[J]. Journal of Biotechnology, 2011, 151(4): 303-311. |
| [19] | WATERS C M, BASSLER B L. Quorum sensing: cell-to-cell communication in bacteria[J]. Annual Review of Cell and Developmental Biology, 2005, 21: 319-346. |
| [20] | SAHREEN S, MUKHTAR H, IMRE K, et al. Exploring the function of quorum sensing regulated biofilms in biological wastewater treatment: a review[J]. International Journal of Molecular Sciences, 2022, 23(17): 9751. |
| [21] | LIU Y P, XU Z H, CHEN L, et al. Root colonization by beneficial rhizobacteria[J]. FEMS Microbiology Reviews, 2024, 48(1): fuad066. |
| [22] | XU Z H, LIU Y P, ZHANG N, et al. Chemical communication in plant-microbe beneficial interactions: a toolbox for precise management of beneficial microbes[J]. Current Opinion in Microbiology, 2023, 72: 102269. |
| [23] | WATSON W T, MINOGUE T D, VAL D L, et al. Structural basis and specificity of acyl-homoserine lactone signal production in bacterial quorum sensing[J]. Molecular Cell, 2002, 9(3): 685-694. |
| [24] | WILLIAMS P, WINZER K, CHAN W C, et al. Look who’s talking: communication and quorum sensing in the bacterial world[J]. Philosophical Transactions of the Royal Society of London Series B, Biological Sciences, 2007, 362(1483): 1119-1134. |
| [25] | WANG J F, LIU Q J, WU B, et al. Quorum sensing signaling distribution during the development of full-scale municipal wastewater treatment biofilms[J]. Science of the Total Environment, 2019, 685: 28-36. |
| [26] | BLUS-KADOSH I, ZILKA A, YERUSHALMI G, et al. The effect of pstS and phoB on quorum sensing and swarming motility in Pseudomonas aeruginosa[J]. PLoS One, 2013, 8(9): e74444. |
| [27] | NOVICK R P. Autoinduction and signal transduction in the regulation of staphylococcal virulence[J]. Molecular Microbiology, 2003, 48(6): 1429-1449. |
| [28] | BOLES B R, HORSWILL A R. agr-mediated dispersal of Staphylococcus aureus biofilms[J]. PLoS Pathogens, 2008, 4(4): e1000052. |
| [29] | WILLIAMS P, HILL P, BONEV B, et al. Quorum-sensing, intra- and inter-species competition in the staphylococci[J]. Microbiology, 2023, 169(8): 001381. |
| [30] | BARRAZA I, PAJON C, DIAZ-TANG G, et al. Disturbing the spatial organization of biofilm communities affects expression of agr-regulated virulence factors in Staphylococcus aureus[J]. Applied and Environmental Microbiology, 2023, 89(2): e01932. |
| [31] | TUON F F, SUSS P H, TELLES J P, et al. Antimicrobial treatment of Staphylococcus aureus biofilms[J]. Antibiotics, 2023, 12(1): 87. |
| [32] | LISTER J L, HORSWILL A R. Staphylococcus aureus biofilms: recent developments in biofilm dispersal[J]. Frontiers in Cellular and Infection Microbiology, 2014, 4: 178. |
| [33] | HAN H, ZHANG K J, LI G X, et al. Autoinducer-2: its role in biofilm formation and L-threonine production in Escherichia coli[J]. Fermentation, 2023, 9(10): 916. |
| [34] | GU Y, TIAN J J, ZHANG Y, et al. Dissecting signal molecule AI-2 mediated biofilm formation and environmental tolerance in Lactobacillus plantarum[J]. Journal of Bioscience and Bioengineering, 2021, 131(2): 153-160. |
| [35] | XUE T, NI J T, SHANG F, et al. Autoinducer-2 increases biofilm formation via an Ica- and bhp-dependent manner in Staphylococcus epidermidis RP62A[J]. Microbes and Infection, 2015, 17(5): 345-352. |
| [36] | LI H D, LI X Y, WANG Z L, et al. Autoinducer-2 regulates Pseudomonas aeruginosa PAO1 biofilm formation and virulence production in a dose-dependent manner[J]. BMC Microbiology, 2015, 15(1): 192. |
| [37] | AUGER S, KRIN E, AYMERICH S, et al. Autoinducer 2 affects biofilm formation by Bacillus cereus[J]. Applied and Environmental Microbiology, 2006, 72(1): 937-941. |
| [38] | TSOTETSI T, NEPHALI L, MALEBE M, et al. Bacillus for plant growth promotion and stress resilience: what have we learned[J]. Plants, 2022, 11(19): 2482. |
| [39] | JUNG B K, IBAL J C, PHAM H Q, et al. Quorum sensing system affects the plant growth promotion traits of Serratia fonticola GS2[J]. Frontiers in Microbiology, 2020, 11: 536865. |
| [40] | ZÚÑIGA A, DE LA FUENTE F, FEDERICI F, et al. An engineered device for indoleacetic acid production under quorum sensing signals enables Cupriavidus pinatubonensis JMP134 to stimulate plant growth[J]. ACS Synthetic Biology, 2018, 7(6): 1519-1527. |
| [41] | KALIA V C, GONG C J, PATEL S K S, et al. Regulation of plant mineral nutrition by signal molecules[J]. Microorganisms, 2021, 9(4): 774. |
| [42] | WEN J H, ZHAO X Y, SI F M, et al. Surfactin, a quorum sensing signal molecule, globally affects the carbon metabolism in Bacillus amyloliquefaciens[J]. Metabolic Engineering Communications, 2021, 12: e00174. |
| [43] | HARTMANN A, KLINK S, ROTHBALLER M. Plant growth promotion and induction of systemic tolerance to drought and salt stress of plants by quorum sensing auto-inducers of the N-acyl-homoserine lactone type: recent developments[J]. Frontiers in Plant Science, 2021, 12: 683546. |
| [44] | NAWAZ M S, ARSHAD A, RAJPUT L, et al. Growth-stimulatory effect of quorum sensing signal molecule N-acyl-homoserine lactone-producing multi-trait Aeromonas spp. on wheat genotypes under salt stress[J]. Frontiers in Microbiology, 2020, 11: 553621. |
| [45] | RABBEE M F, ALI M S, CHOI J, et al. Bacillus velezensis: a valuable member of bioactive molecules within plant microbiomes[J]. Molecules, 2019, 24(6): 1046. |
| [46] | CHOWDHURY S P, UHL J, GROSCH R, et al. Cyclic lipopeptides of Bacillus amyloliquefaciens subsp. plantarum colonizing the lettuce rhizosphere enhance plant defense responses toward the bottom rot pathogen Rhizoctonia solani[J]. Molecular Plant-Microbe Interactions, 2015, 28(9): 984-995. |
| [47] | CHEN Y, YAN F, CHAI Y R, et al. Biocontrol of tomato wilt disease by Bacillus subtilis isolates from natural environments depends on conserved genes mediating biofilm formation[J]. Environmental Microbiology, 2013, 15(3): 848-864. |
| [48] | ZERIOUH H, DE VICENTE A, PÉREZ-GARCÍA A, et al. Surfactin triggers biofilm formation of Bacillus subtilis in melon phylloplane and contributes to the biocontrol activity[J]. Environmental Microbiology, 2014, 16(7): 2196-2211. |
| [49] | JIN P F, CHU L L, XUAN Z, et al. Bacillus velezensis, a new valuable source of bioactive molecules within plant microbiomes and natural weapons for the biocontrol of plant pathogens[J]. Tropical Plants, 2025, 4(1): e001. |
| [50] | ORTIZ A, VACA J, SANSINENEA E, et al. Bacillus subtilis species complex: secondary metabolites, genomic insights, and metabolite-driven strategies for sustainable agriculture[J]. Journal of Environmental Chemical Engineering, 2026, 14(1): 120631. |
| [51] | VASQUES N C, NOGUEIRA M A, HUNGRIA M. Increasing application of multifunctional Bacillus for biocontrol of pests and diseases and plant growth promotion: lessons from Brazil[J]. Agronomy, 2024, 14(8): 1654. |
| [52] | KESHMIRSHEKAN A, DE SOUZA MESQUITA L M, VENTURA S P M. Biocontrol manufacturing and agricultural applications of Bacillus velezensis[J]. Trends in Biotechnology, 2024, 42(8): 986-1001. |
| [53] | CAO X, WANG X, CHEN R, et al. Improving Bacillus subtilis as biological chassis performance by the CRISPR genetic toolkit[J]. ACS Synthetic Biology, 2025, 14(3): 677-688. |
| [54] | CHEN Y, LI M, YAN M, et al. Bacillus subtilis: current and future modification strategies as a protein secreting factory[J]. World Journal of Microbiology and Biotechnology, 2024, 40(6). |
| [55] | LIU Z Y, YU X Z. Engineering Bacillus subtilis for high-value bioproduction: recent advances and applications[J]. Microbial Cell Factories, 2025, 24(1). |
| [56] | ZHAO N, HUANG X, LIU Z, et al. Probiotic characterization of Bacillus smithii: research advances, concerns, and prospective trends[J]. Comprehensive Reviews in Food Science and Food Safety, 2024, 23(2). |
| [57] | CHELLIAH R, KIM N H, RUBAB M, et al. Robust and safe: unveiling Bacillus clausii OHRC1’s potential as a versatile probiotic for enhanced food quality and safety[J]. LWT-Food Science and Technology, 2024, 203(1): 116291. |
| [58] | ARSOV A, ARMENOVA N, GERGOV E, et al. Cloning systems in Bacillus: bioengineering of metabolic pathways for valuable recombinant products[J]. Fermentation, 2024, 10(1): 50. |
| [59] | HU Y, CHEN Y, XIE Z X, et al. Research and development progress and application challenges of bacterial biocontrol agents[J]. Frontiers in Agriculture, 2025, 2(1): 1-8. |
| [60] | WANG J W, PENG Y L, XIE S S, et al. Biocontrol and molecular characterization of Bacillus velezensis D against tobacco bacterial wilt[J]. Phytopathology Research, 2023, 5(1): 50. |
| [1] | JIANG Guiwu, ZHANG Lin, XU Weihui, WANG Zhigang. Construction of a synthetic community from the pepper rhizosphere and evaluation of its growth-promoting effects [J]. Acta Agriculturae Zhejiangensis, 2026, 38(7): 1366-1377. |
| [2] | HUANG Xianke, HUANG Xiaolin, ZHANG Xiang, LI Min, CAI Yilong, CHEN Ran. Effects of oyster shells on the growth performance of Penaeus vannamei and water quality, and microbial community characteristics on shell surfaces [J]. Acta Agriculturae Zhejiangensis, 2025, 37(7): 1441-1450. |
| [3] | ZHOU Hang, JIA Tao, FANG Jiangping, YANG Yongfeng, YU Yangyang, QIU Yao, CHEN Siyuan, FENG Wei, ZHANG Jingyuan, CHEN Hongli. Study on screening, identification, culture optimization, and biocontrol effects of antagonistic bacteria against tobacco leaf mildew [J]. Acta Agriculturae Zhejiangensis, 2025, 37(7): 1481-1491. |
| [4] | WU Jiaqi, ZHU Xueming, BAO Jiandong, WANG Caoyi, ZHOU Xiaoyu, LI Lin, LIN Fucheng. Research progress on biological control of rice blast [J]. Acta Agriculturae Zhejiangensis, 2025, 37(3): 736-744. |
| [5] | WU Xiaomeng, XU Yue, CHENG Honghao, CHEN Shiyan, ZHOU Xiazhi, ZOU Yunding, BI Shoudong. Spatial and quantitative relationships between Ectropis obliqua hypulina and their natural enemy of spiders in 6 tea gardens [J]. Acta Agriculturae Zhejiangensis, 2023, 35(6): 1349-1359. |
| [6] | YANG Kai, CHEN Kai, LI Hongmei, ZHAO Zhongjuan, HU Jindong, LI Jishun, YANG Hetong. Biocontrol efficacy and action mechanism of Trichoderma harzianum LTR-2 and Arthrobacter ureafaciens DnL1-1 against crown rot of wheat [J]. Acta Agriculturae Zhejiangensis, 2023, 35(6): 1385-1395. |
| [7] | HUANG Wanyuan, LI Caibin, PENG Yu, LI Zhanghai, HUANG Yanzhang, DING Ting. Studies on isolation and identification of antagonistic bacteria against tobacco root black rot pathogen, Thielaviopsis basicola and their biocontrol characteristics [J]. Acta Agriculturae Zhejiangensis, 2023, 35(4): 873-883. |
| [8] | WANG Xiaonan, FENG Xiaoxiao, SHI Bin, CHEN Enlei, CHEN Mengli, ZHENG Yongli, WU Huiming. Identification of Bacillus velezensis ZN-S10 and its antification effect on tomato bacterial wilt [J]. Acta Agriculturae Zhejiangensis, 2023, 35(11): 2636-2644. |
| [9] | HUANG Donghui, ZHONG Peng, WANG Jianli, HU Yunlong, WANG Zhigang. Effects of environmental conditions on biofilm formation of Bacillus altitudinis LZP02 [J]. Acta Agriculturae Zhejiangensis, 2022, 34(7): 1466-1473. |
| [10] | HUANG Jun, QIAN Cheng, LYU Yaobin. An efficient utilization method of oviposition substrate for Orius strigicollis [J]. , 2020, 32(3): 455-459. |
| [11] | ZHAO Yanyan, TIAN Junce, ZHENG Xusong, XU Hongxing, LU Yanhui, YANG Yajun, ZANG Liansheng, LYU Zhongxian. Feasibility of Trifolium repens and Oxalis corniculata as the nectar resource plant to Trichogramma chilonis [J]. , 2017, 29(1): 106-112. |
| [12] | ZHANG Jian\|ping,DUAN Gui\|fang, YANG Shuang, ZHOU Yong\|jun, LU Yong\|liang*, YU Liu\|qing. Screening of adjuvants for bioherbicidal fungus Helminthosporium gramineum [J]. , 2016, 28(1): 90-. |
| [13] | HU Bao;LOU Hongxing;*. Patent strategy and management of crop diseases and pests control in China [J]. , 2014, 26(2): 0-495502. |
| [14] | HAN Chao;WU Gui-yuan;LIU Ai-xin*;WANG Yu-jun*. Screening and identification of an antagonistic Burkholderia pyrrocinia strain A12 and its growth\|promoting effects on tobacco seedling [J]. , 2012, 24(5): 0-885. |
| [15] | HUANG Yonghong;LI Chunyu;WEI Yuerong;ZUO Cunwu;YI Ganjun;*. Antagonism of Chinese leek against Fusarium oxysporum f.sp. Cubense and its inhibitory effect on Fusarium wilt incidence of potted banana [J]. , 2011, 23(6): 0-1166. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||