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Bacterial Biofilm Formation on Resorbing Magnesium Implants

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ABSTRACT
Background: Implant-associated infections are a result of bacterial adhesion to an implant surface and subsequent biofilm formation at the implantation site. This study compares different magnesium materials based on their ability to resist bacterial adhesion as well as further biofilm formation. Material and Methods: The surfaces of four magnesium-based materials (Mg2Ag, Mg10Gd, WE43 and 99.99% pure Mg) were characterized using atomic force microscope. In addition, the samples were tested for their ability to resist biofilm formation. Planktonic bacteria of either S. epidermidis or E. faecalis were allowed to adhere to the magnesium surfaces for two hour followed by rinsing and, for S. epidermidis, further incubation of 24, 72 and 168 h was carried out. Results: E. faecalis had a significantly stronger adhesion to all magnesium surfaces compared to S. epidermidis (p = 0.001). Biofilm growth of S. epidermidis was different on various magnesium materials: the amount of bacteria increased up to 72 h but interestingly a significant decrease was seen at 168 h on Mg2Ag and WE43 surfaces. For pure Mg and Mg10Gd the biofilm formation reached plateau at 72 h. Surface characteristics of resorbable magnesium materials were changing over time, and the surface was generally less rough at 168 h compared to earlier time points. No correlation was found between the surface topology and the amount of adherent bacteria. Conclusion: In early stages of biofilm adhesion, no differences between magnesium materials were observed. However, after 72 h Mg2Ag and WE43 had the best ability to suppress S. epidermidis’ biofilm formation. Also, bacterial adhesion to magnesium materials was not dependent on samples’ surface topology.
 
Cite this paper
Charyeva, O. , Neilands, J. , Svensäter, G. and Wennerberg, A. (2015) Bacterial Biofilm Formation on Resorbing Magnesium Implants. Open Journal of Medical Microbiology, 5, 1-11. doi: 10.4236/ojmm.2015.51001.
 
References
[1]Smyth, E.T. and Emmerson, A.M. (2000) Surgical Site Infection Surveillance. Journal of Hospital Infection, 45, 173-184.
http://dx.doi.org/10.1053/jhin.2000.0736
 
[2]Smyth, E.T., McIlvenny, G., Enstone, J.E., Emmerson, A.M., Humphreys, H., Fitzpatrick, F., Davies, E., Newcombe, R.G. and Spencer, R.C. (2008) Four Country Healthcare Associated Infection Prevalence Survey 2006: Overview of the Results. Journal of Hospital Infection, 69, 230-248.
http://dx.doi.org/10.1053/jhin.2000.0736
 
[3]Ribeiro, M., Monteiro, F.J. and Ferraz, M.P. (2012) Infection of Orthopedic Implants with Emphasis on Bacterial Adhesion Process and Techniques Used in Studying Bacterial-Material Interactions. Biomatter, 2, 176-194.
http://dx.doi.org/10.4161/biom.22905
 
[4]Dorkhan, M., Chávez de Paz, L.E., Skepö, M., Svensäter, G. and Davies, J.R. (2012) Effects of Saliva or Serum Coating on Adherence of Streptococcus oralis Strains to Titanium. Microbiology, 158, 390-397.
http://dx.doi.org/10.1099/mic.0.054536-0
 
[5]Frank, K.L., Guiton, P.S., Barnes, A.M., Manias, D.A., Chuang-Smith, O.N., Kohler, P.L., Spaulding, A.R., Hultgren, S.J., Schlievert, P.M. and Dunny, G.M. (2013) AhrC and Eep Are Biofilm Infection-Associated Virulence Factors in Enterococcus faecalis. Infection and Immunity, 81, 1696-1708.
http://dx.doi.org/10.1128/IAI.01210-12
 
[6]Xin, Y., Hu, T. and Chu, P.K. (2011) In Vitro Studies of Biomedical Magnesium Alloys in a Simulated Physiological Environment: A Review. Acta Biomater, 7, 1452-1459.
http://dx.doi.org/10.1016/j.actbio.2010.12.004
 
[7]Gu, X., Zheng, Y., Cheng, Y., Zhong, S. and Xi, T. (2009) In Vitro Corrosion and Biocompatibility of Binary Magnesium Alloys. Biomaterials, 30, 484-498.
http://dx.doi.org/10.1016/j.biomaterials.2008.10.021
 
[8]Xu, L., Yu, G., Zhang, E., Pan, F. and Yang, K. (2007) In Vivo Corrosion Behavior of Mg-Mn-Zn Alloy for Bone Implant Application. Journal of Biomedical Materials Research Part A, 83, 703-711.
http://dx.doi.org/10.1002/jbm.a.31273
 
[9]Witte, F., Kaese, V., Haferkamp, H., Switzer, E., Meyer-Lindenberg, A., Wirth, C.J. and Windhagen, H. (2005) In Vivo Corrosion of Four Magnesium Alloys and the Associated Bone Response. Biomaterials, 26, 3557-3563.
http://dx.doi.org/10.1016/j.biomaterials.2004.09.049
 
[10]Tie, D., Feyerabend, F., Müller, W.D., Schade, R., Liefeith, K., Kainer, K.U. and Willumeit, R. (2013) Antibacterial Biodegradable Mg-Ag alloys. European Cells and Materials Journal, 25, 284-298.
 
[11]Bürgers, R., Gerlach, T., Hahnel, S., Schwarz, F., Handel, G. and Gosau, M. (2010) In Vivo and in Vitro Biofilm Formation on Two Different Titanium Implant Surfaces. Clinical Oral Implants Research, 21, 156-164.
http://dx.doi.org/10.1111/j.1600-0501.2009.01815.x
 
[12]Witte, F., Kaese, V., Haferkamp, H., Switzer, E., Meyer-Lindenberg, A., Wirth, C.J. and Windhagen, H. (2005) In Vivo Corrosion of Four Magnesium Alloys and the Associated Bone Response. Biomaterials, 26, 3557-3563.
http://dx.doi.org/10.1016/j.biomaterials.2004.09.049
 
[13]Stout, K.J., Sullivan, P.J., Dong, W.P., Mainsah, E., Luo, N., Mathia, T. and Zahouani, H. (1993) Development of Methods for Characterisation of Roughness in Three Dimensions. European Community Contract No 3374/1/0/170/90/2, University of Birmingham, Birmingham.
 
[14]Paganelli, F.L., Willems, R.J., Jansen, P., Hendrickx, A., Zhang, X., Bonten, M.J. and Leavis, H.L. (2013) Enterococcus faecium Biofilm Formation: Identification of Major Autolysin AtlAEfm, Associated Acm Surface Localization, and AtlAEfm-Independent Extracellular DNA Release. mBio, 4, e00154-13.
http://dx.doi.org/10.1128/mBio.00154-13
 
[15]Frank, K.L., Guiton, P.S., Barnes, A.M., Manias, D.A., Chuang-Smith, O.N., Kohler, P.L., Spaulding, A.R., Hultgren, S.J., Schlievert, P.M. and Dunny, G.M. (2013) AhrC and Eep Are Biofilm Infection-Associated Virulence Factors in Enterococcus faecalis. Infection and Immunity, 81, 1696-1708.
http://dx.doi.org/10.1128/IAI.01210-12
 
[16]Kang, J., Sickbert-Bennett, E.E., Brown, V.M., Weber, D.J. and Rutala, W.A. (2012) Relative Frequency of Health Care-Associated Pathogens by Infection Site at a University Hospital from 1980 to 2008. American Journal of Infection Control, 40, 416-420.
http://dx.doi.org/10.1016/j.ajic.2011.06.013
 
[17]Hidron, A.I., Edwards, J.R., Patel, J., Horan, T.C., Sievert, D.M., Pollock, D.A. and Fridkin, S.K., for the National Healthcare Safety Network Team and Participating National Healthcare Safety Network Facilities (2008) NHSN Annual Update: Antimicrobial-Resistant Pathogens Associated with Healthcare-Associated Infections: Annual Summary of Data Reported to the National Healthcare Safety Network at the Centers for Disease Control and Prevention, 2006-2007. Infection Control and Hospital Epidemiology, 29, 996-1011.
http://dx.doi.org/10.1086/591861
 
[18]McDonald, J.R., Olaison, L., Anderson, D.J., Hoen, B., Miro, J.M., Eykyn, S., Abrutyn, E., Fowler Jr., V.G., Habib, G., Selton-Suty, C., Pappas, P.A., Cabell, C.H., Corey, G.R., Marco, F. and Sexton, D.J. (2005) Enterococcal Endocarditis: 107 Cases from the International Collaboration on Endocarditis Merged Database. American Journal of Medicine, 118, 759-766.
http://dx.doi.org/10.1016/j.amjmed.2005.02.020
 
[19]Fernández Guerrero, M.L., Goyenechea, A., Verdejo, C., Roblas, R.F. and de Górgolas, M. (2007) Enterococcal Endocarditis on Native and Prosthetic Valves: A Review of Clinical and Prognostic Factors with Emphasis on Hospital-Acquired Infections as a Major Determinant of Outcome. Medicine, 86, 363-377.
http://dx.doi.org/10.1097/MD.0b013e31815d5386
 
[20]Tennert, C., Fuhrmann, M., Wittmer, A., Karygianni, L., Altenburger, M.J., Pelz, K., Hellwig, E. and Al-Ahmad, A. (2014) New Bacterial Composition in Primary and Persistent/Secondary Endodontic Infections with Respect to Clinical and Radiographic Findings. Journal of Endodontics, 40, 670-677.
http://dx.doi.org/10.1016/j.joen.2013.10.005
 
[21]Campoccia, D., Montanaro, L. and Arciola, C.R. (2006) The Significance of Infection Related to Orthopedic Devices and Issues of Antibiotic Resistance. Biomaterials, 27, 2331-2339.
http://dx.doi.org/10.1016/j.biomaterials.2005.11.044
 
[22]Pihl, M., Chávez de Paz, L.E., Schmidtchen, A., Svensäter, G. and Davies, J.R. (2010) Effects of Clinical Isolates of Pseudomonas aeruginosa on Staphylococcus epidermidis Biofilm Formation. FEMS Immunology and Medical Microbiology, 59, 504-512.
 
[23]Guo, L., He, X. and Shi, W. (2014) Intercellular Communications in Multispecies Oral Microbial Communities. Frontiers in Microbiology, 5, 328.
 
[24]Witte, F., Hort, N., Vogt, C., Cohen, S., Kainer, K.U., Willumeit, R. and Feyerabend, F. (2008) Degradable Biomaterials Based on Magnesium Corrosion. Current Opinion in Solid State and Materials Science, 12, 63-72.
http://dx.doi.org/10.1016/j.cossms.2009.04.001
 
[25]Willumeit, R., Fischer, J., Feyerabend, F., Hort, N., Bismayer, U., Heidrich, S. and Mihailova, B. (2011) Chemical Surface Alteration of Biodegradable Magnesium Exposed to Corrosion Media. Acta Biomaterialia, 7, 2704-2715.
http://dx.doi.org/10.1016/j.actbio.2011.03.004
 
[26]Feyerabend, F., Drücker, H., Laipple, D., Vogt, C., Stekker, M., Hort, N. and Willumeit, R. (2012) Ion Release from Magnesium Materials in Physiological Solutions under Different Oxygen Tensions. Journal of Materials Science: Materials in Medicine, 23, 9-24.
http://dx.doi.org/10.1007/s10856-011-4490-5
 
[27]Staiger, M.P., Pietak, A.M., Huadmai, J. and Dias, G. (2006) Magnesium and Its Alloys as Orthopedic Biomaterials: A Review. Biomaterials, 27, 1728-1734.
http://dx.doi.org/10.1016/j.biomaterials.2005.10.003
 
[28]Hornberger, H., Virtanen, S. and Boccaccini, A.R. (2012) Biomedical Coatings on Magnesium Alloys: A Review. Acta Biomaterialia, 8, 2442-2455.
http://dx.doi.org/10.1016/j.actbio.2012.04.012
 
[29]Prabhakar, A.R., Savita Hadakar, G. and Raju, O.S. (2012) Comparative Evaluation of pH and Antibacterial Effect of Various Calcium Hydroxide Combinations on E. faecalis and Its Effect on Root Strength: An in Vitro Study. Contemporary Clinical Dentistry, 3, 42-47.
http://dx.doi.org/10.4103/0976-237X.94545
 
[30]McDonald, W.A., Watts, J. and Bowmer, M.I. (1986) Factors Affecting Staphylococcus epidermidis Growth in Peritoneal Dialysis Solutions. Journal of Clinical Microbiology, 24, 104-107.
 
[31]Korting, H.C., Lukacs, A., Vogt, N., Urban, J., Ehret, W., Ruckdeschel, G., Korting, H.C., Lukacs, A., Vogt, N., Urban, J., Ehret, W. and Ruckdeschel, G. (1992) Influence of the pH-Value on the Growth of Staphylococcus epidermidis, Staphylococcus aureus and Propionibacterium acnes in Continuous Culture. Zentralblatt für Hygiene und Umweltmedizin, 193, 78-90.
 
[32]Gu, X.N., Zhou, W.R., Zheng, Y.F., Cheng, Y., Wei, S.C., Zhong, S.P., Xi, T.F. and Chen, L.J. (2010) Corrosion Fatigue Behaviors of Two Biomedical Mg alloys—AZ91D and WE43—In Simulated Body Fluid. Acta Biomaterialia, 6, 4605-4613.
http://dx.doi.org/10.1016/j.actbio.2010.07.026
 
[33]Weckwerth, P.H., Zapata, R.O., Vivan, R.R., Tanomaru Filho, M., Maliza, A.G. and Duarte, M.A. (2013) In Vitro Alkaline pH Resistance of Enterococcus faecalis. Brazilian Dental Journal, 24, 474-476.
http://dx.doi.org/10.1590/0103-6440201301731
 
[34]Yan, P.F., Liang, J.P. and Jiang, Y.T. (2012) The Influence of Different Alkaline pH Conditions on Enterococcus faecalis in Planktonic and Biofilm Mode. Shanghai Journal of Stomatology, 21, 6-8.      eww150209lx

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