Page 17 - Read Online
P. 17
osteocytes and osteoclasts) as well other factors that are 24. Nablo BJ, Prichard HL, Butler RD, Klitzman B, Schoenfisch MH. Inhibition of
yet to be revealed. To move to the next developmental implant‑associated infections via nitric oxide release. Biomaterials 2005;26:6984‑90.
phase of nanobiomaterials science, it is critical to 25. Chung CJ, Lin HI, Tsou HK, Shi ZY, He JL. An antimicrobial TiO2 coating
for reducing hospital‑acquired infection. J Biomed Mater Res B Appl Biomater
understand the cellular and molecular basis governing the 2008;85:220‑4.
interaction between nanostructure and cells. 26. Ainslie KM, Tao SL, Popat KC, Daniels H, Hardev V, Grimes CA, Desai TA.
In vitro inflammatory response of nanostructured titania, silicon oxide, and
It has become more apparent that nanomaterials hold polycaprolactone. J Biomed Mater Res A 2009;91:647‑55.
much promise for bone regeneration applications, and 27. Etienne O, Picart C, Taddei C, Haikel Y, Dimarcq JL, Schaaf P, Voegel JC,
this warrants further exploration. The endpoint is limited Ogier JA, Egles C. Multilayer polyelectrolyte films functionalized by
only by the extent of our imaginations. insertion of defensin: a new approach to protection of implants from
bacterial colonization. Antimicrob Agents Chemother 2004;48:3662‑9.
28. Schrand AM, Huang H, Carlson C, Schlager JJ, Omacr Sawa E, Hussain SM,
REFERENCES Dai L. Are diamond nanoparticles cytotoxic? J Phys Chem B 2007;111:2‑7.
29. Huang H, Pierstorff E, Osawa E, Ho D. Protein‑mediated assembly of
nanodiamond hydrogels into a biocompatible and biofunctional multilayer
1. Ferguson C, Alpern E, Miclau T, Helms JA. Does adult fracture repair nanofilm. ACS Nano 2008;2:203‑12.
recapitulate embryonic skeletal formation? Mech Dev 1999;87:57‑66. 30. Rauschmann MA, Wichelhaus TA, Stirnal V, Dingeldein E, Zichner L,
2. Aronson J, Harrison BH, Stewart CL, Harp JH Jr. The histology of Schnettler R, Alt V. Nanocrystalline hydroxyapatite and calcium sulphate as
distraction osteogenesis using different external fixators. Clin Orthop biodegradable composite carrier material for local delivery of antibiotics in
Relat Res 1989;(241):106‑16. bone infections. Biomaterials 2005;26:2677‑84.
3. Tsuchiya H, Tomita K. Distraction osteogenesis for treatment of bone loss 31. Adams CS, Antoci V Jr, Harrison G, Patal P, Freeman TA, Shapiro IM, Parvizi J,
in the lower extremity. J Orthop Sci 2003;8:116‑24. Hickok NJ, Radin S, Ducheyne P. Controlled release of vancomycin from thin
4. Tsuchiya H, Tomita K, Minematsu K, Mori Y, Asada N, Kitano S. Limb sol‑gel films on implant surfaces successfully controls osteomyelitis. J Orthop
salvage using distraction osteogenesis. A classification of the technique. Res 2009;27:701‑9.
J Bone Joint Surg Br 1997;79:403‑11. 32. Kim HW, Kim HE, Salih V. Stimulation of osteoblast responses to biomimetic
5. Tran N, Webster TJ. Nanotechnology for bone materials. Wiley Interdiscip Rev nanocomposites of gelatin‑hydroxyapatite for tissue engineering scaffolds.
Nanomed Nanobiotechnol 2009;1:336‑51. Biomaterials 2005;26:5221‑30.
6. Webster TJ, Siegel RW, Bizios R. Osteoblast adhesion on nanophase ceramics. 33. Dzenis Y. Material science. Spinning continuous fibers for nanotechnology.
Biomaterials 1999;20:1221‑7. Science 2004;304:1917‑9.
7. Webster TJ, Ergun C, Doremus RH, Siegel RW, Bizios R. Enhanced functions 34. Fu S, Yang L, Fan J, Wen Q, Lin S, Wang B, Chen L, Meng X, Chen Y,
of osteoblasts on nanophase ceramics. Biomaterials 2000;21:1803‑10. Wu J. In vitro mineralization of hydroxyapatite on electrospun
8. Sahoo NG, Pan YZ, Li L, He CB. Nanocomposites for bone tissue regeneration. poly(ε‑caprolactone)‑poly (ethylene glycol)‑poly(ε‑caprolactone) fibrous
Nanomedicine (Lond) 2013;8:639‑53. scaffolds for tissue engineering application. Colloids Surf B Biointerfaces
9. Laurencin CT, Kumbar SG, Nukavarapu SP. Nanotechnology and orthopedics: 2013;107:167‑73.
a personal perspective. Wiley Interdiscip Rev Nanomed Nanobiotechnol 35. Kikuchi M, Ikoma T, Matsumoto HN, Takakuda K, Shinomiya K, Tanaka J.
2009;1:6‑10. Biomimetic synthesis of bone‑like nanocomposites using the self‑organization
10. Christenson EM, Anseth KS, van den Beucken JJ, Chan CK, Ercan B, Jansen JA, mechanism of hydroxyapatite and collagen. Compos Sci Technol 2004;64:819‑25.
Laurencin CT, Li WJ, Murugan R, Nair LS, Ramakrishna S, Tuan RS, Webster TJ, 36. Woo KM, Chen VJ, Ma PX. Nano‑fibrous scaffolding architecture selectively
Mikos AG. Nanobiomaterial applications in orthopedics. J Orthop Res 2007;25:11‑22. enhances protein adsorption contributing to cell attachment. J Biomed Mater
11. Kim SJ, Mandar A, Song SH, Song HR. Pitfalls of lengthening over an intramedullary Res A 2003;67:531‑7.
nail in tibia: a consecutive case series. Arch Orthop Trauma Surg 2012;132:185‑91. 37. Langer R, Tirrell DA. Designing materials for biology and medicine. Nature
12. Paley D. Problems, obstacles, and complications of limb lengthening by the 2004;428:487‑92.
Ilizarov technique. Clin Orthop Relat Res 1990;(250):81‑104. 38. Williams JM, Adewunmi A, Schek RM, Flanagan CL, Krebsbach PH, Feinberg SE,
13. Karger C, Guille JT, Bowen JR. Lengthening of congenital lower limb Hollister SJ, Das S. Bone tissue engineering using polycaprolactone scaffolds
deficiencies. Clin Orthop Relat Res 1993;291:236‑45. fabricated via selective laser sintering. Biomaterials 2005;26:4817‑27.
14. Darouiche RO. Treatment of infections associated with surgical implants. 39. Jaiswal AK, Dhumal RV, Ghosh S, Chaudhari P, Nemani H, Soni VP, Vanage GR,
N Engl J Med 2004;350:1422‑9. Bellare JR. Bone healing evaluation of nanofibrous composite scaffolds in rat
15. Anderson JM. Biological responses to materials. Ann Rev Mater Res calvarial defects: a comparative study. J Biomed Nanotechnol 2013;9:2073‑85.
2001;31:81‑110. 40. Xing H, Komasa S, Taguchi Y, Sekino T, Okazaki J. Osteogenic activity of titanium
16. An YH, Friedman RJ. Prevention of sepsis in total joint arthroplasty. J Hosp surfaces with nanonetwork structures. Int J Nanomedicine 2014;9:1741‑55.
Infect 1996;33:93‑108. 41. Frandsen CJ, Brammer KS, Noh K, Johnston G, Jin S. Tantalum coating on TiO2
17. Calhoun JH, Manring MM. Adult osteomyelitis. Infect Dis Clin North Am nanotubes induces superior rate of matrix mineralization and osteofunctionality
2005;19:765‑86. in human osteoblasts. Mater Sci Eng C Mater Biol Appl 2014;37:332‑41.
18. Zilberman M, Elsner JJ. Antibiotic‑eluting medical devices for various 42. Brammer KS, Frandsen CJ, Jin S. TiO nanotubes for bone regeneration. Trends
2
applications. J Control Release 2008;130:202‑15. Biotechnol 2012;30:315‑22.
19. Trampuz A, Osmon DR, Hanssen AD, Steckelberg JM, Patel R. Molecular and 43. Li G, Bouxsein ML, Luppen C, Li XJ, Wood M, Seeherman HJ, Wozney JM,
antibiofilm approaches to prosthetic joint infection. Clin Orthop Relat Res Simpson H. Bone consolidation is enhanced by rhBMP‑2 in a rabbit model
2003;(414):69‑88. of distraction osteogenesis. J Orthop Res 2002;20:779‑88.
20. Duan K, Wang R. Surface modifications of bone implants through wet 44. al Ruhaimi KA. Comparison of different distraction rates in the mandible: an
chemistry. J Mater Chem 2006;16:2309‑21. experimental investigation. Int J Oral Maxillofac Surg 2001;30:220‑7.
21. Li H, Ogle H, Jiang B, Hagar M, Li B. Cefazolin embedded biodegradable 45. Zakhary K, Motakis D, Hamdy RH, Campisi P, Amar Y, Lessard ML. Effect of
polypeptide nanofilms promising for infection prevention: a preliminary study recombinant human bone morphogenetic protein 7 on bone density during
on cell responses. J Orthop Res 2010;28:992‑9. distraction osteogenesis of the rabbit mandible. J Otolaryngol 2005;34:407‑14.
22. Copello GJ, Teves S, Degrossi J, D’Aquino M, Desimone MF, Diaz LE. 46. Wang Y, Ni M, Tang PF, Li G. Novel application of HA‑TCP biomaterials in
Antimicrobial activity on glass materials subject to disinfectant xerogel coating. distraction osteogenesis shortened the lengthening time and promoted bone
J Ind Microbiol Biotechnol 2006;33:343‑8. consolidation. J Orthop Res 2009;27:477‑82.
23. Bosetti M, Massè A, Tobin E, Cannas M. Silver coated materials for external fixation 47. Li G, Simpson AH, Triffitt JT. The role of chondrocytes in intramembranous
devices: in vitro biocompatibility and genotoxicity. Biomaterials 2002;23:887‑92. and endochondral ossification during distraction osteogenesis in the rabbit.
Plast Aesthet Res || Vol 1 || Issue 1 || Jun 2014 11