FeMn and FeMnAg biodegradable alloys: An in vitro and in vivo investigation

Heliyon - Tập 9 - Trang e15671 - 2023
Luke Saliba1,2, Keith Sammut1,2, Christabelle Tonna3, Foteini Pavli4, Vasilis Valdramidis4, Ray Gatt1, Ryan Giordmaina1, Liberato Camilleri5, William Atanasio6, Joseph Buhagiar3, Pierre Schembri Wismayer2
1Department of Trauma, Orthopaedics and Sports Medicine, Mater Dei Hospital, Msida, MSD 2090, Malta
2Department of Anatomy, University of Malta, Msida, MSD 2080, Malta
3Department of Metallurgy and Materials Engineering, University of Malta, Msida MSD 2080, Malta
4Department of Food Sciences and Nutrition, University of Malta, Msida, MSD 2080, Malta
5Department of Statistics and Operations Research, University of Malta, Msida, MSD 2080, Malta
6Mortuary and Anatomic Pathology Department, Mater Dei Hospital, Msida, MSD 2090, Malta

Tài liệu tham khảo

Finkemeier, 2002, Bone-grafting and bone-graft substitutes, J. Bone Joint Surg., 84, 454, 10.2106/00004623-200203000-00020 Laurencin, 2006, Bone graft substitutes, Expet Rev. Med. Dev., 3, 49, 10.1586/17434440.3.1.49 Gillman, 2021, FDA-approved bone grafts and bone graft substitute devices in bone regeneration, Mater. biol. Appl., 130 Heiden, 2015, Magnesium, iron and zinc alloys, the trifecta of bioresorbable orthopaedic and vascular implantation - a review, J. Biotechnol. Biomater., 5, 178 Li, 2017, Corrosion and biocompatibility improvement of magnesium-based alloys as bone implant materials: a review, Regen. Biomater., 4, 129, 10.1093/rb/rbx004 Liu, 2018, Biodegradable magnesium alloys developed as bone repair materials: a review, Scanning, 10.1155/2018/9216314 Peuster, 2006, Long-term biocompatibility of a corrodible peripheral iron stent in the porcine descending aorta, Biomaterials, 27, 4955, 10.1016/j.biomaterials.2006.05.029 Waksman, 2008, Short-term effects of biocorrodible iron stents in porcine coronary arteries, J. Intervent. Cardiol., 21 1, 15, 10.1111/j.1540-8183.2007.00319.x Wegener, 2020, Development of a novel biodegradable porous iron-based implant for bone replacement, Sci. Rep., 10, 9141, 10.1038/s41598-020-66289-y Paim, 2020, Evaluation of in vitro and in vivo biocompatibility of iron produced by powder metallurgy, Mater. Sci. Eng. C, 115, 10.1016/j.msec.2020.111129 Peuster, 2001, A novel approach to temporary stenting: degradable cardiovascular stents produced from corrodible metal-results 6-18 months after implantation into New Zealand white rabbits, Heart (British Cardiac Society), 86, 563, 10.1136/heart.86.5.563 Hermawan, 2010, Degradable metallic biomaterials: design and development of Fe–Mn alloys for stents, J. Biomed. Mater. Res., 93A, 1, 10.1002/jbm.a.32224 Čapek, 2016, Microstructural, mechanical, corrosion and cytotoxicity characterization of the hot forged FeMn30(wt.%) alloy, Mater. Sci. Eng. C, 58, 900, 10.1016/j.msec.2015.09.049 Tonna, 2022, Biodegradation behaviour of Fe-based alloys in Hanks' Balanced Salt Solutions: Part I. material characterisation and corrosion testing, Bioact. Mater., 7, 426 Wiesener, 2017, Corrosion properties of bioresorbable FeMn-Ag alloys prepared by selective laser melting, Mater. Corros., 68, 1028, 10.1002/maco.201709478 Sotoudeh Bagha, 2018, Design and characterization of nano and bimodal structured biodegradable Fe-Mn-Ag alloy with accelerated corrosion rate, J. Alloys Compd., 767, 955, 10.1016/j.jallcom.2018.07.206 Hermawan, 2008, Iron–manganese: new class of metallic degradable biomaterials prepared by powder metallurgy, Powder Metall., 51, 38, 10.1179/174329008X284868 Dargusch, 2019, Exploring the role of manganese on the microstructure, mechanical properties, biodegradability, and biocompatibility of porous iron-based scaffolds, ACS Biomater. Sci. Eng., 5, 1686, 10.1021/acsbiomaterials.8b01497 Dehestani, 2017, Effects of microstructure and heat treatment on mechanical properties and corrosion behavior of powder metallurgy derived Fe–30Mn alloy, Mater. Sci. Eng., A, 703, 214, 10.1016/j.msea.2017.07.054 Shuai, 2020, Selective laser melted Fe-Mn bone scaffold: microstructure, corrosion behavior and cell response, Mater. Res. Express, 7, 10.1088/2053-1591/ab62f5 Horning, 2015, Manganese is essential for neuronal health, Annu. Rev. Nutr., 35, 71, 10.1146/annurev-nutr-071714-034419 Crossgrove, 2004, Manganese toxicity upon overexposure, NMR Biomed., 17, 544, 10.1002/nbm.931 Liu, 2011, Effects of alloying elements (Mn, Co, Al, W, Sn, B, C and S) on biodegradability and in vitro biocompatibility of pure iron, Acta Biomater., 7, 1407, 10.1016/j.actbio.2010.11.001 Mandal, 2021, In vitro and in vivo degradability, biocompatibility and antimicrobial characteristics of Cu added iron-manganese alloy, J. Mater. Sci. Technol., 84, 159, 10.1016/j.jmst.2020.12.029 Hermawan, 2010, Fe-Mn alloys for metallic biodegradable stents: degradation and cell viability studies, Acta Biomater., 6, 1852, 10.1016/j.actbio.2009.11.025 Nie, 2021, In vitro and 48 weeks in vivo performances of 3D printed porous Fe-30Mn biodegradable scaffolds, Acta Biomater., 121, 724, 10.1016/j.actbio.2020.12.028 Paul, 2022, Cell–material interactions in direct contact culture of endothelial cells on biodegradable iron-based stents fabricated by laser powder bed fusion and impact of ion release, ACS Appl. Mater. Interfaces, 14, 439, 10.1021/acsami.1c21901 Schinhammer, 2010, Design strategy for biodegradable Fe-based alloys for medical applications, Acta Biomater., 6, 1705, 10.1016/j.actbio.2009.07.039 Wang, 2022, Biodegradation behaviour of Fe-based alloys in Hanks' Balanced Salt Solutions: Part II. The evolution of local pH and dissolved oxygen concentration at metal interface, Bioact. Mater., 7, 412 Caligari Conti, 2019, The effect of alloying elements on the properties of pressed and non-pressed biodegradable Fe–Mn–Ag powder metallurgy alloys, Heliyon, 5, 10.1016/j.heliyon.2019.e02522 Dargusch, 2021, In vivo evaluation of bioabsorbable Fe-35Mn-1Ag: first reports on in vivo hydrogen gas evolution in Fe-based implants, Advanced Healthcare Materials, 10, 10.1002/adhm.202000667 Kraus, 2014, Biodegradable Fe-based alloys for use in osteosynthesis: outcome of an in vivo study after 52 weeks, Acta Biomater, 10, 3346, 10.1016/j.actbio.2014.04.007 Kostakioti, 2013, Bacterial biofilms: development, dispersal, and therapeutic strategies in the dawn of the postantibiotic era, Cold Spring Harbor perspectives in medicine, 3, a010306, 10.1101/cshperspect.a010306 Nadell, 2015, Extracellular matrix structure governs invasion resistance in bacterial biofilms, ISME J., 9, 1700, 10.1038/ismej.2014.246 Darouiche, 2004, Treatment of infections associated with surgical implants, N. Engl. J. Med., 350, 1422, 10.1056/NEJMra035415 Alp, 2016, Incidence and economic burden of prosthetic joint infections in a university hospital: a report from a middle-income country, Journal of infection and public health, 9, 494, 10.1016/j.jiph.2015.12.014 Boddapati, 2018, Revision total knee arthroplasty for periprosthetic joint infection is associated with increased postoperative morbidity and mortality relative to noninfectious revisions, J. Arthroplasty, 33, 521, 10.1016/j.arth.2017.09.021 Kubista, 2012, Reinfection after two-stage revision for periprosthetic infection of total knee arthroplasty, Int. Orthop., 36, 65, 10.1007/s00264-011-1267-x Bongers, 2020, Reinfection and re-revision rates of 113 two-stage revisions in infected TKA, Journal of Bone and Joint Infection, 5, 137, 10.7150/jbji.43705 Cochran, 2016, Risk of reinfection after treatment of infected total knee arthroplasty, J. Arthroplasty, 31, 156, 10.1016/j.arth.2016.03.028 Mortazavi, 2010, Revision total knee arthroplasty infection: incidence and predictors, Clin. Orthop. Relat. Res., 468, 2052, 10.1007/s11999-010-1308-6 Tokmaji, 2015, Silver‐coated endotracheal tubes for prevention of ventilator‐associated pneumonia in critically ill patients, Cochrane Database Syst. Rev., 8, CD009201 Liu, 2018, Design of Fe–Mn–Ag alloys as potential candidates for biodegradable metals, Acta Metall. Sin., 31, 584, 10.1007/s40195-018-0702-z Sotoudehbagha, 2018, Novel antibacterial biodegradable Fe-Mn-Ag alloys produced by mechanical alloying, Mater. Sci. Eng. C, 88, 88, 10.1016/j.msec.2018.03.005 Tande, 2014, Prosthetic joint infection, Clin. Microbiol. Rev., 27, 302, 10.1128/CMR.00111-13 Depypere, 2020, Pathogenesis and management of fracture-related infection, Clin. Microbiol. Infection, 26, 572, 10.1016/j.cmi.2019.08.006 Drake, 2005, Exposure-related health effects of silver and silver compounds: a review, Ann. Occup. Hyg., 49, 575 Hadrup, 2018, Toxicity of silver ions, metallic silver, and silver nanoparticle materials after in vivo dermal and mucosal surface exposure: a review, Regul. Toxicol. Pharmacol., 98, 257, 10.1016/j.yrtph.2018.08.007 Recordati, 2015, Tissue distribution and acute toxicity of silver after single intravenous administration in mice: nano-specific and size-dependent effects, Part. Fibre Toxicol., 13 2021 Loffredo, 2021, Six-month long in vitro degradation tests of biodegradable twinning-induced plasticity steels alloyed with Ag for stent applications, ACS Biomater. Sci. Eng., 7, 3669, 10.1021/acsbiomaterials.1c00365 Putra, 2021, Extrusion-based 3D printing of ex situ-alloyed highly biodegradable MRI-friendly porous iron-manganese scaffolds, Acta Biomater., 134, 774, 10.1016/j.actbio.2021.07.042 2009 Drynda, 2015, In vitro and in vivo corrosion properties of new iron–manganese alloys designed for cardiovascular applications, J. Biomed. Mater. Res. B Appl. Biomater., 103, 649, 10.1002/jbm.b.33234 Scarcello, 2020, Hydroxyl radicals and oxidative stress: the dark side of Fe corrosion, Colloids Surf. B Biointerfaces, 185, 10.1016/j.colsurfb.2019.110542 Scarcello, 2020, Are Fe-based stenting materials biocompatible? A critical review of in vitro and in vivo studies, J. Funct. Biomater., 11, 10.3390/jfb11010002 Chang, 2000, Osteoconduction at porous hydroxyapatite with various pore configurations, Biomaterials, 21, 1291, 10.1016/S0142-9612(00)00030-2 Cheng, 2013, Comparative in vitro study on pure metals (Fe, Mn, Mg, Zn and W) as biodegradable metals, J. Mater. Sci. Technol., 29, 619, 10.1016/j.jmst.2013.03.019 Traverson, 2018, In vivo evaluation of biodegradability and biocompatibility of Fe30Mn alloy, Vet. Comp. Orthop. Traumatol., 31, 10, 10.3415/VCOT-17-06-0080 Babacan, 2021, Effect of silver additions on the microstructure, mechanical properties and corrosion behavior of biodegradable Fe-30Mn-6Si, Mater. Today Commun., 28 Stathopoulou, 2013, Black fish bones in waterlogged deposits: the case of the Neolithic lake settlement of Dispilio, Greece, Archaeofauna, 51, 10.15366/archaeofauna2013.22.004 Marín Arroyo, 2008, Archaeological implications of human-derived manganese coatings: a study of blackened bones in El Mirón Cave, Cantabrian Spain, J. Archaeol. Sci., 35, 801, 10.1016/j.jas.2007.06.007 O'Neal, 2014, Manganese accumulation in bone following chronic exposure in rats: steady-state concentration and half-life in bone, Toxicol. Lett., 229, 93, 10.1016/j.toxlet.2014.06.019 Carluccio, 2020, Additively manufactured iron-manganese for biodegradable porous load-bearing bone scaffold applications, Acta Biomater., 103, 346, 10.1016/j.actbio.2019.12.018 Wegener, 2021, Local and systemic inflammation after implantation of a novel iron based porous degradable bone replacement material in sheep model, Sci. Rep., 11, 10.1038/s41598-021-91296-y Alexander, 2009, History of the medical use of silver, Surg. Infect., 10, 289, 10.1089/sur.2008.9941 Rekha, 2010, Structural, optical, photocatalytic and antibacterial activity of zinc oxide and manganese doped zinc oxide nanoparticles, Phys. B Condens. Matter, 405, 3180, 10.1016/j.physb.2010.04.042 Sharma, 2016, Synthesis, characterisation and antimicrobial activity of manganese-and iron-doped zinc oxide nanoparticles, J. Exp. Nanosci., 11, 54, 10.1080/17458080.2015.1025302 Schell, 2017, The haematoma and its role in bone healing, Journal of experimental orthopaedics, 4, 1, 10.1186/s40634-017-0079-3 Gibon, 2016, Aging, inflammation, stem cells, and bone healing, Stem Cell Res. Ther., 7, 44, 10.1186/s13287-016-0300-9