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Review Article| Volume 28, ISSUE 2, P257-265, April 2017

Cranioplasty

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      References

        • Grant F.C.
        • Norcross N.C.
        Repair of cranial defects by cranioplasty.
        Ann Surg. 1939; 110: 488-512
        • Honeybul S.
        • Janzen C.
        • Kruger K.
        • et al.
        The impact of cranioplasty on neurological function.
        Br J Neurosurg. 2013; 27: 636-641
        • Song J.
        • Liu M.
        • Mo X.
        • et al.
        Beneficial impact of early cranioplasty in patients with decompressive craniectomy: evidence from transcranial Doppler ultrasonography.
        Acta Neurochir (Wien). 2014; 156: 193-198
        • Kshettry V.R.
        • Hardy S.
        • Weil R.J.
        • et al.
        Immediate titanium cranioplasty after debridement and craniectomy for postcraniotomy surgical site infection.
        Neurosurgery. 2012; 70 ([discussion: 14–5]): 8-14
        • Baumeister S.
        • Peek A.
        • Friedman A.
        • et al.
        Management of postneurosurgical bone flap loss caused by infection.
        Plast Reconstr Surg. 2008; 122: 195e-208e
        • Coulter I.C.
        • Pesic-Smith J.D.
        • Cato-Addison W.B.
        • et al.
        Routine but risky: a multi-centre analysis of the outcomes of cranioplasty in the northeast of England.
        Acta Neurochir (Wien). 2014; 156: 1361-1368
        • Piedra M.P.
        • Ragel B.T.
        • Dogan A.
        • et al.
        Timing of cranioplasty after decompressive craniectomy for ischemic or hemorrhagic stroke.
        J Neurosurg. 2013; 118: 109-114
        • Wachter D.
        • Reineke K.
        • Behm T.
        • et al.
        Cranioplasty after decompressive hemicraniectomy: underestimated surgery-associated complications?.
        Clin Neurol Neurosurg. 2013; 115: 1293-1297
        • Walcott B.P.
        • Kwon C.S.
        • Sheth S.A.
        • et al.
        Predictors of cranioplasty complications in stroke and trauma patients.
        J Neurosurg. 2013; 118: 757-762
        • Movassaghi K.
        • Ver Halen J.
        • Ganchi P.
        • et al.
        Cranioplasty with subcutaneously preserved autologous bone grafts.
        Plast Reconstr Surg. 2006; 117: 202-206
        • Zingale A.
        • Albanese V.
        Cryopreservation of autogeneous bone flap in cranial surgical practice: what is the future? A grade B and evidence level 4 meta-analytic study.
        J Neurosurg Sci. 2003; 47: 137-139
        • Prolo D.J.
        • Burres K.P.
        • McLaughlin W.T.
        • et al.
        Autogenous skull cranioplasty: fresh and preserved (frozen), with consideration of the cellular response.
        Neurosurgery. 1979; 4: 18-29
        • Iwama T.
        • Yamada J.
        • Imai S.
        • et al.
        The use of frozen autogenous bone flaps in delayed cranioplasty revisited.
        Neurosurgery. 2003; 52 ([discussion: 595–6]): 591-596
        • Grossman N.
        • Shemesh-Jan H.S.
        • Merkin V.
        • et al.
        Deep-freeze preservation of cranial bones for future cranioplasty: nine years of experience in Soroka University Medical Center.
        Cell Tissue Bank. 2007; 8: 243-246
        • Vignes J.R.
        • Jeelani N.
        • Dautheribes M.
        • et al.
        Cranioplasty for repair of a large bone defect in a growing skull fracture in children.
        J Craniomaxillofac Surg. 2007; 35: 185-188
        • Grant G.A.
        • Jolley M.
        • Ellenbogen R.G.
        • et al.
        Failure of autologous bone-assisted cranioplasty following decompressive craniectomy in children and adolescents.
        J Neurosurg. 2004; 100: 163-168
        • Jho D.H.
        • Neckrysh S.
        • Hardman J.
        • et al.
        Ethylene oxide gas sterilization: a simple technique for storing explanted skull bone. Technical note.
        J Neurosurg. 2007; 107: 440-445
        • Tamaki T.
        • Eguchi T.
        • Sakamoto M.
        • et al.
        Use of diffusion-weighted magnetic resonance imaging in empyema after cranioplasty.
        Br J Neurosurg. 2004; 18: 40-44
        • Chiang H.Y.
        • Steelman V.M.
        • Pottinger J.M.
        • et al.
        Clinical significance of positive cranial bone flap cultures and associated risk of surgical site infection after craniotomies or craniectomies.
        J Neurosurg. 2011; 114: 1746-1754
        • Lake P.A.
        • Morin M.A.
        • Pitts F.W.
        Radiolucent prosthesis of mesh-reinforced acrylic. Technical note.
        J Neurosurg. 1970; 32: 597-602
        • Blum K.S.
        • Schneider S.J.
        • Rosenthal A.D.
        Methyl methacrylate cranioplasty in children: long-term results.
        Pediatr Neurosurg. 1997; 26: 33-35
        • Marchac D.
        • Greensmith A.
        Long-term experience with methylmethacrylate cranioplasty in craniofacial surgery.
        J Plast Reconstr Aesthet Surg. 2008; 61 ([discussion: 753]): 744-752
        • Nisbet M.
        • Briggs S.
        • Ellis-Pegler R.
        • et al.
        Propionibacterium acnes: an under-appreciated cause of post-neurosurgical infection.
        J Antimicrob Chemother. 2007; 60: 1097-1103
        • Edwards S.A.
        • Gardiner J.
        Hypersensitivity to benzoyl peroxide in a cemented total knee arthroplasty: cement allergy.
        J Arthroplasty. 2007; 22: 1226-1228
        • Newens A.F.
        • Volz R.G.
        Severe hypotension during prosthetic hip surgery with acrylic bone cement.
        Anesthesiology. 1972; 36: 298-300
        • Kubo S.
        • Takimoto H.
        • Kato A.
        • et al.
        Endoscopic cranioplasty with calcium phosphate cement for pterional bone defect after frontotemporal craniotomy: technical note.
        Neurosurgery. 2002; 51 ([discussion: 1096]): 1094-1096
        • Miyake H.
        • Ohta T.
        • Tanaka H.
        A new technique for cranioplasty with L-shaped titanium plates and combination ceramic implants composed of hydroxyapatite and tricalcium phosphate (Ceratite).
        Neurosurgery. 2000; 46: 414-418
        • Miller L.
        • Guerra A.B.
        • Bidros R.S.
        • et al.
        A comparison of resistance to fracture among four commercially available forms of hydroxyapatite cement.
        Ann Plast Surg. 2005; 55 ([discussion: 93]): 87-92
        • Li G.
        • Wen L.
        • Zhan R.Y.
        • et al.
        Cranioplasty for patients developing large cranial defects combined with post-traumatic hydrocephalus after head trauma.
        Brain Inj. 2008; 22: 333-337
        • Marbacher S.
        • Andres R.H.
        • Fathi A.R.
        • et al.
        Primary reconstruction of open depressed skull fractures with titanium mesh.
        J Craniofac Surg. 2008; 19: 490-495
        • Chim H.
        • Schantz J.T.
        New frontiers in calvarial reconstruction: integrating computer-assisted design and tissue engineering in cranioplasty.
        Plast Reconstr Surg. 2005; 116: 1726-1741
        • Winder J.
        • Cooke R.S.
        • Gray J.
        • et al.
        Medical rapid prototyping and 3D CT in the manufacture of custom made cranial titanium plates.
        J Med Eng Technol. 1999; 23: 26-28
        • Eufinger H.
        • Wehmoller M.
        Individual prefabricated titanium implants in reconstructive craniofacial surgery: clinical and technical aspects of the first 22 cases.
        Plast Reconstr Surg. 1998; 102: 300-308
        • Liu J.K.
        • Gottfried O.N.
        • Cole C.D.
        • et al.
        Porous polyethylene implant for cranioplasty and skull base reconstruction.
        Neurosurg Focus. 2004; 16: ECP1
        • Pietrzak W.S.
        • Eppley B.L.
        Antibiotic elution from hydroxyapatite cement cranioplasty materials.
        J Craniofac Surg. 2005; 16: 228-233
        • Itokawa H.
        • Hiraide T.
        • Moriya M.
        • et al.
        A 12 month in vivo study on the response of bone to a hydroxyapatite-polymethylmethacrylate cranioplasty composite.
        Biomaterials. 2007; 28: 4922-4927
        • Klinger D.
        • Madden C.
        • Beshay J.
        • et al.
        Autologous and acrylic cranioplasty: a review of 10 years and 258 cases.
        World Neurosurg. 2014; 82: e525-e530
        • Yadla S.
        • Campbell P.G.
        • Chitale R.
        • et al.
        Effect of early surgery, material, and method of flap preservation on cranioplasty infections: a systematic review.
        Neurosurgery. 2011; 68 ([discussion: 1130]): 1124-1129
        • Lee L.
        • Ker J.
        • Quah B.L.
        • et al.
        A retrospective analysis and review of an institution's experience with the complications of cranioplasty.
        Br J Neurosurg. 2013; 27: 629-635
        • Schuss P.
        • Vatter H.
        • Oszvald A.
        • et al.
        Bone flap resorption: risk factors for the development of a long-term complication following cranioplasty after decompressive craniectomy.
        J Neurotrauma. 2013; 30: 91-95
        • Bowers C.A.
        • Riva-Cambrin J.
        • Hertzler 2nd, D.A.
        • et al.
        Risk factors and rates of bone flap resorption in pediatric patients after decompressive craniectomy for traumatic brain injury.
        J Neurosurg Pediatr. 2013; 11: 526-532
        • Martin K.D.
        • Franz B.
        • Kirsch M.
        • et al.
        Autologous bone flap cranioplasty following decompressive craniectomy is combined with a high complication rate in pediatric traumatic brain injury patients.
        Acta Neurochir (Wien). 2014; 156: 813-824
        • Piedra M.P.
        • Thompson E.M.
        • Selden N.R.
        • et al.
        Optimal timing of autologous cranioplasty after decompressive craniectomy in children.
        J Neurosurg Pediatr. 2012; 10: 268-272
        • Rengachary S.
        • Benzel E.
        Calvarial and dural reconstruction.
        AANS, Park Ridge (IL)1998
        • Le C.
        • Guppy K.H.
        • Axelrod Y.V.
        • et al.
        Lower complication rates for cranioplasty with peri-operative bundle.
        Clin Neurol Neurosurg. 2014; 120: 41-44
        • Hsu V.M.
        • Tahiri Y.
        • Wilson A.J.
        • et al.
        A preliminary report on the use of antibiotic-impregnated methyl methacrylate in salvage cranioplasty.
        J Craniofac Surg. 2014; 25: 393-396
        • Waziri A.
        • Fusco D.
        • Mayer S.A.
        • et al.
        Postoperative hydrocephalus in patients undergoing decompressive hemicraniectomy for ischemic or hemorrhagic stroke.
        Neurosurgery. 2007; 61 ([discussion: 493–4]): 489-493
        • Heo J.
        • Park S.Q.
        • Cho S.J.
        • et al.
        Evaluation of simultaneous cranioplasty and ventriculoperitoneal shunt procedures.
        J Neurosurg. 2014; 121: 313-318
        • Sundseth J.
        • Sundseth A.
        • Berg-Johnsen J.
        • et al.
        Cranioplasty with autologous cryopreserved bone after decompressive craniectomy. Complications and risk factors for developing surgical site infection.
        Acta Neurochir (Wien). 2014; 156 ([discussion: 811]): 805-811