Evaluation of the biofilm-forming ability and molecular characterization of dairy Bacillus spp. isolates
暂无分享,去创建一个
[1] Anastasia A. Semenova,et al. Microbial Biofilms at Meat-Processing Plant as Possible Places of Bacteria Survival , 2022, Microorganisms.
[2] A. Dalmasso,et al. Characterization of Vegetative Bacillus cereus and Bacillus subtilis Strains Isolated from Processed Cheese Products in an Italian Dairy Plant , 2021, Foods.
[3] T. Civera,et al. Effect of Gaseous Ozone on Listeria monocytogenes Planktonic Cells and Biofilm: An In Vitro Study , 2021, Foods.
[4] F. Ramos,et al. Microbial Biofilms in the Food Industry—A Comprehensive Review , 2021, International journal of environmental research and public health.
[5] J. Postupolski,et al. Biofilm-forming ability of pathogenic strains isolated from retail food in Poland. , 2020, Journal of food protection.
[6] E. Ghelardi,et al. Identification and Pathogenic Potential of Bacillus cereus Strains Isolated from a Dairy Processing Plant Producing PDO Taleggio Cheese , 2020, Microorganisms.
[7] E. Buys,et al. Molecular characterization and biofilm formation potential of Bacillus subtilis and Bacillus velezensis in extended shelf-life milk processing line. , 2020, Journal of dairy science.
[8] P. Fei,et al. Prevalence, molecular characterization, and antibiotic susceptibility of Bacillus cereus isolated from dairy products in China. , 2020, Journal of dairy science.
[9] M. Shemesh,et al. Role of Bacillus species in biofilm persistence and emerging antibiofilm strategies in the dairy industry. , 2020, Journal of the science of food and agriculture.
[10] A. Nicolau,et al. Biofilms Formed by Pathogens in Food and Food Processing Environments , 2019, Bacterial Biofilms.
[11] M. Shemesh,et al. Adaptation of Bacillus species to dairy associated environment facilitates their biofilm forming ability. , 2019, Food microbiology.
[12] M. Wagner,et al. Characterization of Biofilms Formed by Foodborne Methicillin-Resistant Staphylococcus aureus , 2018, Front. Microbiol..
[13] G. Gopinath,et al. Analysis of enterotoxigenic Bacillus cereus strains from dried foods using whole genome sequencing, multi-locus sequence analysis and toxin gene prevalence and distribution using endpoint PCR analysis. , 2018, International journal of food microbiology.
[14] M. Burmølle,et al. Insights into Bacterial Milk Spoilage with Particular Emphasis on the Roles of Heat-Stable Enzymes, Biofilms, and Quorum Sensing. , 2018, Journal of food protection.
[15] O. B. Karaca,et al. Effects of Proteolytic and Lipolytic Enzyme Supplementations on Lipolysis and Proteolysis Characteristics of White Cheeses , 2018, Foods.
[16] F. Lombó,et al. Biofilms in the Food Industry: Health Aspects and Control Methods , 2018, Front. Microbiol..
[17] P. Di Martino,et al. Extracellular polymeric substances, a key element in understanding biofilm phenotype , 2018, AIMS microbiology.
[18] D. Oh,et al. Biofilm formation of Bacillus cereus under food-processing-related conditions , 2017, Food Science and Biotechnology.
[19] Anália Lourenço,et al. Critical review on biofilm methods , 2017, Critical reviews in microbiology.
[20] P. Pevzner,et al. metaSPAdes: a new versatile metagenomic assembler. , 2017, Genome research.
[21] L. Jespersen,et al. Prevalence, virulence factor genes and antibiotic resistance of Bacillus cereus sensu lato isolated from dairy farms and traditional dairy products , 2017, BMC Microbiology.
[22] Q. Huang,et al. Bacillus subtilis biofilm development in the presence of soil clay minerals and iron oxides , 2017, npj Biofilms and Microbiomes.
[23] Jian-hua Guo,et al. The comER Gene Plays an Important Role in Biofilm Formation and Sporulation in both Bacillus subtilis and Bacillus cereus , 2016, Front. Microbiol..
[24] Philipp Stiefel,et al. Is biofilm removal properly assessed? Comparison of different quantification methods in a 96-well plate system , 2016, Applied Microbiology and Biotechnology.
[25] C. Hill,et al. The Prevalence and Control of Bacillus and Related Spore-Forming Bacteria in the Dairy Industry , 2015, Front. Microbiol..
[26] V. Barão,et al. Effect of tyrosol on adhesion of Candida albicans and Candida glabrata to acrylic surfaces. , 2015, Medical mycology.
[27] A. Bhadania,et al. Stainless Steel for Dairy and Food Industry: A Review , 2015 .
[28] S. Ha,et al. Microbial biofilms in seafood: a food-hygiene challenge. , 2015, Food microbiology.
[29] M. Ehling-Schulz,et al. Food–bacteria interplay: pathometabolism of emetic Bacillus cereus , 2015, Front. Microbiol..
[30] Andrew J. Page,et al. Roary: rapid large-scale prokaryote pan genome analysis , 2015, bioRxiv.
[31] T. Abee,et al. Comparative analysis of biofilm formation by Bacillus cereus reference strains and undomesticated food isolates and the effect of free iron. , 2015, International journal of food microbiology.
[32] E. Zanardi,et al. Biofilm formation by Staphylococcus aureus on food contact surfaces: Relationship with temperature and cell surface hydrophobicity , 2015 .
[33] R. Losick,et al. Alternative modes of biofilm formation by plant-associated Bacillus cereus , 2015, MicrobiologyOpen.
[34] P. Setlow,et al. The Effects of Heat Activation on Bacillus Spore Germination, with Nutrients or under High Pressure, with or without Various Germination Proteins , 2015, Applied and Environmental Microbiology.
[35] A. de Vicente,et al. A genomic region involved in the formation of adhesin fibers in Bacillus cereus biofilms , 2015, Front. Microbiol..
[36] K. Sigler,et al. How microorganisms use hydrophobicity and what does this mean for human needs? , 2014, Front. Cell. Infect. Microbiol..
[37] Torsten Seemann,et al. Prokka: rapid prokaryotic genome annotation , 2014, Bioinform..
[38] A. Kolstø,et al. SinR Controls Enterotoxin Expression in Bacillus thuringiensis Biofilms , 2014, PloS one.
[39] T. Begley,et al. Updated evaluation of the migration of styrene monomer and oligomers from polystyrene food contact materials to foods and food simulants , 2014, Food additives & contaminants. Part A, Chemistry, analysis, control, exposure & risk assessment.
[40] S. Anand,et al. Development and Control of Bacterial Biofilms on Dairy Processing Membranes. , 2014, Comprehensive reviews in food science and food safety.
[41] M. V. van Hoek. Biofilms , 2013, Virulence.
[42] Sang-Do Ha,et al. Biofilm formation in food industries: A food safety concern , 2013 .
[43] Alexey A. Gurevich,et al. QUAST: quality assessment tool for genome assemblies , 2013, Bioinform..
[44] P. E. Granum,et al. CodY, a pleiotropic regulator, influences multicellular behaviour and efficient production of virulence factors in Bacillus cereus. , 2012, Environmental microbiology.
[45] F. Hamadi,et al. Scanning Electron Microscopy (SEM) and Environmental SEM: Suitable Tools for Study of Adhesion Stage and Biofilm Formation , 2012 .
[46] R. Losick,et al. Just-in-Time Control of Spo0A Synthesis in Bacillus subtilis by Multiple Regulatory Mechanisms , 2011, Journal of bacteriology.
[47] Jitender Singh,et al. Surface hydrophobicity, nutritional contents affect Staphylococcus aureus biofilms and temperature influences its survival in preformed biofilms , 2010, Journal of basic microbiology.
[48] Patrick J. Biggs,et al. SolexaQA: At-a-glance quality assessment of Illumina second-generation sequencing data , 2010, BMC Bioinformatics.
[49] C. Nguyen-the,et al. Ability of Bacillus cereus Group Strains To Cause Food Poisoning Varies According to Phylogenetic Affiliation (Groups I to VII) Rather than Species Affiliation , 2010, Journal of Clinical Microbiology.
[50] M. Vieira,et al. A review of current and emergent biofilm control strategies , 2010 .
[51] F. Poncin‐Epaillard,et al. Surface Engineering and Cell Adhesion , 2010 .
[52] R. Bennett,et al. Understanding antimicrobial activities of phytochemicals against multidrug resistant bacteria and biofilms. , 2009, Natural product reports.
[53] P. E. Granum,et al. From soil to gut: Bacillus cereus and its food poisoning toxins. , 2008, FEMS microbiology reviews.
[54] G. Di Bonaventura,et al. Influence of temperature on biofilm formation by Listeria monocytogenes on various food‐contact surfaces: relationship with motility and cell surface hydrophobicity , 2008, Journal of applied microbiology.
[55] C. Pulsrikarn,et al. Broad distribution of enterotoxin genes (hblCDA, nheABC, cytK, and entFM) among Bacillus thuringiensis and Bacillus cereus as shown by novel primers. , 2008, International journal of food microbiology.
[56] E. Somers,et al. Characterization of the codY gene and its influence on biofilm formation in Bacillus cereus , 2008, Archives of Microbiology.
[57] Hans-Curt Flemming,et al. The EPS Matrix: The “House of Biofilm Cells” , 2007, Journal of bacteriology.
[58] S. Stepanović,et al. Quantification of biofilm in microtiter plates: overview of testing conditions and practical recommendations for assessment of biofilm production by staphylococci , 2007, APMIS : acta pathologica, microbiologica, et immunologica Scandinavica.
[59] R. Moezelaar,et al. Air-Liquid Interface Biofilms of Bacillus cereus: Formation, Sporulation, and Dispersion , 2007, Applied and Environmental Microbiology.
[60] M. Salkinoja-Salonen,et al. Occurrence of emetic toxin producing Bacillus cereus in the dairy production chain , 2006 .
[61] D. Lereclus,et al. Biofilm Formation by Bacillus cereus Is Influenced by PlcR, a Pleiotropic Regulator , 2006, Applied and Environmental Microbiology.
[62] M. Ehling-Schulz,et al. Toxin gene profiling of enterotoxic and emetic Bacillus cereus. , 2006, FEMS microbiology letters.
[63] G. Saunders. Methicillin resistant Staphylococcus aureus. , 2006, The West Indian medical journal.
[64] R. Losick,et al. A major protein component of the Bacillus subtilis biofilm matrix , 2006, Molecular microbiology.
[65] W. Wendorff,et al. Effect of heat treatment of milk on activation of Bacillus spores. , 2005, Journal of food protection.
[66] G. Pier,et al. Quantitative analysis of adhesion and biofilm formation on hydrophilic and hydrophobic surfaces of clinical isolates of Staphylococcus epidermidis. , 2005, Research in microbiology.
[67] K. Jefferson,et al. What drives bacteria to produce a biofilm? , 2004, FEMS microbiology letters.
[68] Paul Stoodley,et al. Bacterial biofilms: from the Natural environment to infectious diseases , 2004, Nature Reviews Microbiology.
[69] João G. Crespo,et al. Optical and spectroscopic methods for biofilm examination and monitoring , 2002 .
[70] Christophe Nguyen-The,et al. Enterotoxigenic Profiles of Food-Poisoning and Food-Borne Bacillus cereus Strains , 2002, Journal of Clinical Microbiology.
[71] R. Losick,et al. Fruiting body formation by Bacillus subtilis , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[72] R. M. Donlan,et al. Biofilms and device-associated infections. , 2001, Emerging infectious diseases.
[73] S. Stepanović,et al. A modified microtiter-plate test for quantification of staphylococcal biofilm formation. , 2000, Journal of microbiological methods.
[74] J. Costerton,et al. Bacterial biofilms: a common cause of persistent infections. , 1999, Science.
[75] Eugene Rosenberg,et al. Adherence of bacteria to hydrocarbons: A simple method for measuring cell‐surface hydrophobicity , 1980 .
[76] J. Wyatt,et al. Study , 2022, Evaluation Methods in Biomedical and Health Informatics.
[77] J. Lawrence,et al. Investigation of microbial biofilm structure by laser scanning microscopy. , 2014, Advances in biochemical engineering/biotechnology.
[78] Roberto Kolter,et al. Biofilms: the matrix revisited. , 2005, Trends in microbiology.
[79] R. Kolter,et al. Biofilm formation as microbial development. , 2000, Annual review of microbiology.