Stability and Resilience of Oral Microcosms Toward Acidification and Candida Outgrowth by Arginine Supplementation
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Mark J. Buijs | Wim Crielaard | Wilfred F. M. Röling | Bart J. F. Keijser | Egija Zaura | W. Crielaard | W. Röling | M. Buijs | C. Sissons | B. Keijser | E. Zaura | J. Koopman | J. M. Cate | Jessica E. Koopman | Christopher H. Sissons | Jacob M. ten Cate
[1] L. Samaranayake,et al. Artificial mouth model systems and their contribution to caries research: a review. , 2003, Journal of dentistry.
[2] L. C. Dutton,et al. Streptococcus gordonii Modulates Candida albicans Biofilm Formation through Intergeneric Communication , 2009, Infection and Immunity.
[3] Alejandro A. Schäffer,et al. Database indexing for production MegaBLAST searches , 2008, Bioinform..
[4] W. Wade,et al. The oral microbiome in health and disease. , 2013, Pharmacological research.
[5] M. Hoogenkamp,et al. Determination of arginine catabolism by salivary pellet☆ , 2014, MethodsX.
[6] Annette Moter,et al. Dental plaque biofilms: communities, conflict and control. , 2011, Periodontology 2000.
[7] L. Wong,et al. Erratum to “A comparison of human dental plaque microcosm biofilms grown in an undefined medium and a chemically defined artifical saliva”: [Archives of Oral Biology 46 (2001) 477–486] , 2001 .
[8] L. Wong,et al. A comparison of human dental plaque microcosm biofilms grown in an undefined medium and a chemically defined artificial saliva. , 2001, Archives of oral biology.
[9] Ø. Hammer,et al. PAST: PALEONTOLOGICAL STATISTICAL SOFTWARE PACKAGE FOR EDUCATION AND DATA ANALYSIS , 2001 .
[10] K. R. Clarke,et al. Non‐parametric multivariate analyses of changes in community structure , 1993 .
[11] W. Crielaard,et al. Different Response to Amine Fluoride by Streptococcus mutans and Polymicrobial Biofilms in a Novel High-Throughput Active Attachment Model , 2010, Caries Research.
[12] W. Crielaard,et al. Effects of probiotic Lactobacillus salivarius W24 on the compositional stability of oral microbial communities. , 2009, Archives of oral biology.
[13] D. Davis. How human pathogenic fungi sense and adapt to pH: the link to virulence. , 2009, Current opinion in microbiology.
[14] M. Jabra-Rizk,et al. Impaired Histatin-5 Levels and Salivary Antimicrobial Activity against C. albicans in HIV Infected Individuals. , 2013, Journal of AIDS & clinical research.
[15] M. Bonder,et al. The Relation between Oral Candida Load and Bacterial Microbiome Profiles in Dutch Older Adults , 2012, PloS one.
[16] M. Lorenz,et al. The Fungal Pathogen Candida albicans Autoinduces Hyphal Morphogenesis by Raising Extracellular pH , 2011, mBio.
[17] B. Peters,et al. Cross-kingdom interactions: Candida albicans and bacteria. , 2009, FEMS microbiology letters.
[18] Lukas Wagner,et al. A Greedy Algorithm for Aligning DNA Sequences , 2000, J. Comput. Biol..
[19] K. Ochiai,et al. Butyrate, a bacterial metabolite, induces apoptosis and autophagic cell death in gingival epithelial cells. , 2010, Journal of periodontal research.
[20] M. Buijs,et al. The Effect of a Single Application of 40% Chlorhexidine Varnish on the Numbers of Salivary Mutans Streptococci and Acidogenicity of Dental Plaque , 2003, Caries Research.
[21] J. M. ten Cate,et al. Factors Associated with Alkali Production from Arginine in Dental Biofilms , 2012, Journal of dental research.
[22] B. Prahl-Andersen,et al. Caries Prevalence Measured with QLF after Treatment with Fixed Orthodontic Appliances: Influencing Factors , 2004, Caries Research.
[23] J. Ebersole,et al. Short- and medium-chain fatty acids exhibit antimicrobial activity for oral microorganisms. , 2011, Archives of oral biology.
[24] A. Casiano-Colón,et al. Role of the arginine deiminase system in protecting oral bacteria and an enzymatic basis for acid tolerance , 1988, Applied and environmental microbiology.
[25] P. Kolenbrander,et al. The road to ruin: the formation of disease-associated oral biofilms. , 2010, Oral diseases.
[26] Jie Zhang,et al. Pyrosequencing Analysis of Oral Microbiota Shifting in Various Caries States in Childhood , 2014, Microbial Ecology.
[27] M. O. Sharif,et al. Effectiveness of arginine-containing toothpastes in treating dentine hypersensitivity: a systematic review. , 2013, Journal of dentistry.
[28] D. White,et al. Microbiota of Plaque Microcosm Biofilms: Effect of Three Times Daily Sucrose Pulses in Different Simulated Oral Environments , 2007, Caries Research.
[29] N. Suzuki,et al. Discrimination of the oral microbiota associated with high hydrogen sulfide and methyl mercaptan production , 2012, Scientific Reports.
[30] J. Jeng,et al. Butyrate induces reactive oxygen species production and affects cell cycle progression in human gingival fibroblasts. , 2013, Journal of periodontal research.
[31] B. Hube,et al. Candida albicans interactions with epithelial cells and mucosal immunity. , 2011, Microbes and infection.
[32] M. Nascimento,et al. Oral Arginine Metabolism May Decrease the Risk for Dental Caries in Children , 2013, Journal of dental research.
[33] W. Bowen,et al. Association of Free Arginine and Lysine Concentrations in Human Parotid Saliva with Caries Experience , 1995, Journal of dental research.
[34] A. Garzino-Demo,et al. Salivary histatin‐5 and oral fungal colonisation in HIV+ individuals , 2009, Mycoses.
[35] C. Sissons,et al. A Multi-station Dental Plaque Microcosm (Artificial Mouth) for the Study of Plaque Growth, Metabolism, pH, and Mineralization , 1991, Journal of dental research.
[36] C. Sissons,et al. pH changes during simultaneous metabolism of urea and carbohydrate by human salivary bacteria in vitro. , 1988, Archives of oral biology.
[37] Sung Woo Kim,et al. Arginine metabolism and nutrition in growth, health and disease , 2009, Amino Acids.
[38] W. Crielaard,et al. Molecular and Cellular Mechanisms That Lead to Candida Biofilm Formation , 2009, Journal of dental research.
[39] R. Marquis,et al. Arginine deiminase system and acid adaptation of oral streptococci , 1995, Applied and environmental microbiology.
[40] William A. Walters,et al. QIIME allows analysis of high-throughput community sequencing data , 2010, Nature Methods.
[41] M. M. Bradford. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. , 1976, Analytical biochemistry.
[42] H. Shah,et al. Prevotella, a new genus to include Bacteroides melaninogenicus and related species formerly classified in the genus Bacteroides. , 1990, International journal of systematic bacteriology.
[43] J. Lopez-Ribot,et al. Engineered Control of Cell Morphology In Vivo Reveals Distinct Roles for Yeast and Filamentous Forms of Candida albicans during Infection , 2003, Eukaryotic Cell.
[44] K. Nguyen,et al. Bacterial Profile of Dentine Caries and the Impact of pH on Bacterial Population Diversity , 2014, PloS one.
[45] C. Seneviratne,et al. Community lifestyle of Candida in mixed biofilms: a mini review , 2009, Mycoses.
[46] Shibu Yooseph,et al. An in vitro biofilm model system maintaining a highly reproducible species and metabolic diversity approaching that of the human oral microbiome , 2013, Microbiome.
[47] S. Yooseph,et al. Using DGGE profiling to develop a novel culture medium suitable for oral microbial communities. , 2010, Molecular oral microbiology.
[48] R. Janssen,et al. Role of Megasphaera elsdenii in the Fermentation of dl-[2-13C]lactate in the Rumen of Dairy Cattle , 1981, Applied and environmental microbiology.
[49] M. Moeschberger,et al. Identification of Candidate Periodontal Pathogens and Beneficial Species by Quantitative 16S Clonal Analysis , 2005, Journal of Clinical Microbiology.
[50] M. Guggenheim,et al. Application of the Zürich Biofilm Model to Problems of Cariology , 2004, Caries Research.
[51] Nicholas J Schork,et al. Dental caries pathogenicity: a genomic and metagenomic perspective. , 2011, International dental journal.
[52] P. Marsh. Microbial Ecology of Dental Plaque and its Significance in Health and Disease , 1994, Advances in dental research.
[53] K. Nickerson,et al. Arginine-Induced Germ Tube Formation in Candida albicans Is Essential for Escape from Murine Macrophage Line RAW 264.7 , 2009, Infection and Immunity.
[54] C. Garvan,et al. Correlations of oral bacterial arginine and urea catabolism with caries experience. , 2009, Oral microbiology and immunology.
[55] Michael D. George,et al. Evidence of an increased pathogenic footprint in the lingual microbiome of untreated HIV infected patients , 2012, BMC Microbiology.
[56] O Hammer-Muntz,et al. PAST: paleontological statistics software package for education and data analysis version 2.09 , 2001 .
[57] M. Stanhope,et al. Progress Dissecting the Oral Microbiome in Caries and Health , 2012, Advances in dental research.
[58] C. Braak. Canonical Correspondence Analysis: A New Eigenvector Technique for Multivariate Direct Gradient Analysis , 1986 .
[59] L. Wong,et al. pH responses to sucrose and the formation of pH gradients in thick 'artificial mouth' microcosm plaques. , 1992, Archives of oral biology.
[60] N. Marathe,et al. Comparative Genome Analysis of Megasphaera sp. Reveals Niche Specialization and Its Potential Role in the Human Gut , 2013, PloS one.
[61] I. Kleinberg. Effect of urea concentration on human plaque pH levels in situ. , 1967, Archives of oral biology.