Effects of Gamma Radiation Sterilization on the Structural and Biological Properties of Decellularized Corneal Xenografts.
暂无分享,去创建一个
Dina B. Abusamra | J. Kong | P. Nilsson | D. Nahra | J. Chodosh | R. Islam | M. M. Islam | A. Cruzat | P. Argüeso | T. Mollnes | C. Dohlman | R. Sharifi | Pui-Chuen Hui | Eleftherios I. Paschalis | M. Gonzalez-Andrades | Y. Adibnia | Shamina Mamodaly | Mehdi Goulamaly | E. Paschalis
[1] J. Chodosh,et al. Finding an Optimal Corneal Xenograft Using Comparative Analysis of Corneal Matrix Proteins Across Species , 2019, Scientific Reports.
[2] F. Delori,et al. Improving the practicality and safety of artificial corneas: Pre-assembly and gamma-rays sterilization of the Boston Keratoprosthesis. , 2018, The ocular surface.
[3] P. Nilsson,et al. Acute heart failure following myocardial infarction: complement activation correlates with the severity of heart failure in patients developing cardiogenic shock , 2018, ESC heart failure.
[4] Brett E. Bouma,et al. Coronary Plaque Microstructure and Composition Modify Optical Polarization , 2017, JACC. Cardiovascular imaging.
[5] Yan Shi,et al. Comprehensive evaluation of decellularized porcine corneal after clinical transplantation , 2017, Xenotransplantation.
[6] Yongchun Meng,et al. Cross-linked decellularized porcine corneal graft for treating fungal keratitis , 2017, Scientific Reports.
[7] P. Seifert. Modified Hiraoka TEM grid staining apparatus and technique using 3D printed materials and gadolinium triacetate tetrahydrate, a nonradioactive uranyl acetate substitute , 2017, Journal of Histotechnology.
[8] M. Yeh,et al. Preparation of acellular scaffold for corneal tissue engineering by supercritical carbon dioxide extraction technology. , 2017, Acta biomaterialia.
[9] V. Lee,et al. Invisible Shield: Review of the Corneal Epithelium as a Barrier to UV Radiation, Pathogens, and Other Environmental Stimuli , 2017, Journal of ophthalmic & vision research.
[10] H. Sheardown,et al. Alternatives to eye bank native tissue for corneal stromal replacement , 2017, Progress in Retinal and Eye Research.
[11] J. Tolar,et al. A novel explanation of corneal clouding in a bone marrow transplant-treated patient with Hurler syndrome. , 2016, Experimental eye research.
[12] David R. Olsen,et al. Self-assembled collagen-like-peptide implants as alternatives to human donor corneal transplantation , 2016 .
[13] Rita Singh,et al. Radiation sterilization of tissue allografts: A review. , 2016, World journal of radiology.
[14] Gilles Thuret,et al. Global Survey of Corneal Transplantation and Eye Banking. , 2016, JAMA ophthalmology.
[15] Claes H. Dohlman,et al. Establishment of a novel in vitro model of stratified epithelial wound healing with barrier function , 2016, Scientific Reports.
[16] H. Hara,et al. Current status of corneal xenotransplantation. , 2015, International journal of surgery.
[17] P. Qi,et al. Characteristics of α-Gal epitope, anti-Gal antibody, α1,3 galactosyltransferase and its clinical exploitation (Review) , 2015, International journal of molecular medicine.
[18] Martin Villiger,et al. Longitudinal, 3D Imaging of Collagen Remodeling in Murine Hypertrophic Scars In Vivo Using Polarization-Sensitive Optical Frequency Domain Imaging. , 2015, The Journal of investigative dermatology.
[19] M. Mochizuki,et al. Corneal Regeneration by Deep Anterior Lamellar Keratoplasty (DALK) Using Decellularized Corneal Matrix , 2015, PloS one.
[20] Jiangxia Wang,et al. Gamma-Irradiated Sterile Cornea for Use in Corneal Transplants in a Rabbit Model , 2015, Middle East African journal of ophthalmology.
[21] Chang-Hung Huang,et al. The Effect of Graft Strength on Knee Laxity and Graft In-Situ Forces after Posterior Cruciate Ligament Reconstruction , 2015, PloS one.
[22] R. Tandon,et al. Strategies for faster detachment of corneal cell sheet using micropatterned thermoresponsive matrices. , 2015, Journal of materials chemistry. B.
[23] M-C Zhang,et al. Lamellar Keratoplasty Treatment of Fungal Corneal Ulcers With Acellular Porcine Corneal Stroma , 2015, American journal of transplantation : official journal of the American Society of Transplantation and the American Society of Transplant Surgeons.
[24] Jae Chan Kim,et al. Deep Anterior Lamellar Keratoplasty Using Irradiated Acellular Cornea with Amniotic Membrane Transplantation for Intractable Ocular Surface Diseases , 2015, Korean journal of ophthalmology : KJO.
[25] V. Carriel,et al. Effects of Detergent-Based Protocols on Decellularization of Corneas With Sclerocorneal Limbus. Evaluation of Regional Differences. , 2015, Translational vision science & technology.
[26] Chaoliang He,et al. Functional fabrication of recombinant human collagen-phosphorylcholine hydrogels for regenerative medicine applications. , 2015, Acta biomaterialia.
[27] I. Gipson,et al. Comparison of the Transmembrane Mucins MUC1 and MUC16 in Epithelial Barrier Function , 2014, PloS one.
[28] S. Saika,et al. Effects of the loss of conjunctival Muc16 on corneal epithelium and stroma in mice. , 2014, Investigative ophthalmology & visual science.
[29] A. Fadlallah,et al. Gamma-Irradiated Corneas as Carriers for the Boston Type 1 Keratoprosthesis: Advantages and Outcomes in a Surgical Mission Setting , 2014, Cornea.
[30] Bo Nilsson,et al. An international serum standard for application in assays to detect human complement activation products. , 2013, Molecular immunology.
[31] A. Shukla,et al. Low-Cost and Readily Available Tissue Carriers for the Boston Keratoprosthesis: A Review of Possibilities , 2013, Journal of ophthalmology.
[32] B. Liedberg,et al. Epoxy Cross-Linked Collagen and Collagen-Laminin Peptide Hydrogels as Corneal Substitutes , 2013, Journal of functional biomaterials.
[33] Martin Villiger,et al. Spectral binning for mitigation of polarization mode dispersion artifacts in catheter-based optical frequency domain imaging. , 2013, Optics express.
[34] Mark Ahearne,et al. Strategies for developing decellularized corneal scaffolds. , 2013, Experimental eye research.
[35] T. Nguyen,et al. Telomerase Immortalization of Human Corneal Endothelial Cells Yields Functional Hexagonal Monolayers , 2012, PloS one.
[36] R. Dana,et al. Gamma-irradiation reduces the allogenicity of donor corneas. , 2012, Investigative ophthalmology & visual science.
[37] Manoj Gulati,et al. Turning the tide of corneal blindness , 2012, Indian journal of ophthalmology.
[38] Xinyi Wu,et al. A human corneal endothelium equivalent constructed with acellular porcine corneal matrix , 2012, The Indian journal of medical research.
[39] K. Bartz-Schmidt,et al. Reconstruction of corneal stroma with decellularized porcine xenografts in a rabbit model , 2012, Acta ophthalmologica.
[40] R. Gemeinhart,et al. Decellularized human cornea for reconstructing the corneal epithelium and anterior stroma. , 2012, Tissue engineering. Part C, Methods.
[41] Peter Szurman,et al. Decellularization of porcine corneas and repopulation with human corneal cells for tissue‐engineered xenografts , 2012, Acta ophthalmologica.
[42] W. Stark,et al. The Intraoperative Impression and Postoperative Outcomes of Gamma-Irradiated Corneas in Corneal and Glaucoma Patch Surgery , 2011, Cornea.
[43] D. Pascolini,et al. Global estimates of visual impairment: 2010 , 2011, British Journal of Ophthalmology.
[44] H. Lee,et al. Efficacy of pig-to-rhesus lamellar corneal xenotransplantation. , 2011, Investigative ophthalmology & visual science.
[45] J. Chodosh,et al. Titanium back plate for a PMMA keratoprosthesis: clinical outcomes , 2011, Graefe's Archive for Clinical and Experimental Ophthalmology.
[46] G. Guinea,et al. Decellularization of pericardial tissue and its impact on tensile viscoelasticity and glycosaminoglycan content. , 2011, Acta biomaterialia.
[47] A. Ionescu,et al. Generation of bioengineered corneas with decellularized xenografts and human keratocytes. , 2011, Investigative ophthalmology & visual science.
[48] Yong-mei Yang,et al. Histological evaluation and biomechanical characterisation of an acellular porcine cornea scaffold , 2010, British Journal of Ophthalmology.
[49] Xinyi Wu,et al. A rabbit anterior cornea replacement derived from acellular porcine cornea matrix, epithelial cells and keratocytes. , 2010, Biomaterials.
[50] J. Hackett,et al. Optimal neural differentiation and extension of hybrid neuroblastoma cells (NDC) for nerve-target evaluations using a multifactorial approach. , 2010, Toxicology in vitro : an international journal published in association with BIBRA.
[51] Seiichi Funamoto,et al. In vivo evaluation of a novel scaffold for artificial corneas prepared by using ultrahigh hydrostatic pressure to decellularize porcine corneas , 2009, Molecular vision.
[52] Fengfu Li,et al. Synthetic neoglycopolymer-recombinant human collagen hybrids as biomimetic crosslinking agents in corneal tissue engineering. , 2009, Biomaterials.
[53] Fengfu Li,et al. PEG-stabilized carbodiimide crosslinked collagen-chitosan hydrogels for corneal tissue engineering. , 2008, Biomaterials.
[54] M. Stelzmüller,et al. IgG deposition and activation of the classical complement pathway involvement in the activation of human granulocytes by decellularized porcine heart valve tissue. , 2008, Biomaterials.
[55] S. Dravida,et al. Recombinant human collagen for tissue engineered corneal substitutes. , 2008, Biomaterials.
[56] H. Lee,et al. Galα(1‐3)Gal expression of the cornea in vitro, in vivo and in xenotransplantation , 2007 .
[57] A. Panda,et al. Corneal graft rejection. , 2007, Survey of ophthalmology.
[58] Hyun ju Lee,et al. The Characteristics of Porcine Cornea as a Xenograft , 2006 .
[59] D. Carlsson,et al. Bioactive Hydrogel-Filament Scaffolds for Nerve Repair and Regeneration , 2006 .
[60] W. Kao,et al. Expression of keratin 12 and maturation of corneal epithelium during development and postnatal growth. , 2006, Investigative ophthalmology & visual science.
[61] Philip Huie,et al. Glucose Permeability of Human, Bovine, and Porcine Corneas in vitro , 2005, Ophthalmic Research.
[62] Stephen F Badylak,et al. Xenogeneic extracellular matrix as a scaffold for tissue reconstruction. , 2004, Transplant immunology.
[63] I. Gipson,et al. Mucin gene expression in immortalized human corneal-limbal and conjunctival epithelial cell lines. , 2003, Investigative ophthalmology & visual science.
[64] R. Rohwer,et al. Inactivation of viral and prion pathogens by γ‐irradiation under conditions that maintain the integrity of human albumin , 2003, Vox sanguinis.
[65] A. Zhu,et al. Anti‐N‐glycolylneuraminic acid antibodies identified in healthy human serum , 2002, Xenotransplantation.
[66] John D Lambris,et al. Essential role of the C5a receptor in E coli-induced oxidative burst and phagocytosis revealed by a novel lepirudin-based human whole blood model of inflammation. , 2002, Blood.
[67] T. Folks,et al. Infectious Disease Issues in Xenotransplantation , 2001, Clinical Microbiology Reviews.
[68] Y. Kozutsumi,et al. The Molecular Basis for the Absence ofN-Glycolylneuraminic Acid in Humans* , 1998, The Journal of Biological Chemistry.
[69] B. Holden,et al. Nutritional requirements of the corneal epithelium and anterior stroma: clinical findings. , 1998, Investigative ophthalmology & visual science.
[70] H. Handa,et al. An SV40-immortalized human corneal epithelial cell line and its characterization. , 1995, Investigative ophthalmology & visual science.
[71] R. Oriol,et al. Identification of alpha-galactosyl and other carbohydrate epitopes that are bound by human anti-pig antibodies: relevance to discordant xenografting in man. , 1993, Transplant immunology.
[72] B. McCarey,et al. Modeling glucose distribution in the cornea. , 1990, Current eye research.
[73] S. Bevan,et al. Novel cell lines display properties of nociceptive sensory neurons , 1990, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[74] N. Perelman,et al. The effect of gamma-irradiation on collagen molecules, isolated alpha-chains, and crosslinked native fibers. , 1990, Journal of biomedical materials research.
[75] Hassan Mm,et al. Penetrating keratoplasty with purified bovine collagen: report of a coordinated trial on fifteen human cases. , 1974 .
[76] M. Haq. Fish cornea for grafting. , 1972, British medical journal.
[77] A. Bailey,et al. IRRADIATION-INDUCED CROSSLINKING OF COLLAGEN. , 1964, Radiation research.
[78] G. Deocampo,et al. The use of chicken and monkey cornea for human corneal grafting. , 1959 .
[79] L. J. Chen,et al. Corneal blindness and current major treatment concern-graft scarcity. , 2017, International journal of ophthalmology.
[80] C. A. Utine,et al. Lamellar keratoplasty using gamma-irradiated corneal lenticules. , 2011, American journal of ophthalmology.
[81] D. B. Meyer,et al. The periodic acid-Schiff reaction in the cornea of the developing chick , 2004, Zeitschrift für Anatomie und Entwicklungsgeschichte.
[82] Michael Pircher,et al. Measurement and imaging of birefringent properties of the human cornea with phase-resolved, polarization-sensitive optical coherence tomography. , 2004, Journal of biomedical optics.
[83] D. Sachs,et al. Will the pig solve the transplantation backlog? , 2002, Annual review of medicine.
[84] G. Renard. [Artificial cornea]. , 1996, Bulletin de l'Académie Nationale de Médecine.
[85] D. Larkin,et al. The host response in experimental corneal xenotransplantation , 1995, Eye.
[86] D. A. French,et al. The effect of gamma-ray and ethylene oxide sterilization on collagen-based wound-repair materials , 1993 .
[87] Demetrios P. Matthopoulos,et al. The effect of gamma irradiation on collagen fibril structure , 1993 .
[88] M. Tzaphlidou,et al. The effect of gamma irradiation on the organization of mouse skin collagen fibrils. The positive staining pattern , 1991 .
[89] K. Durrani,et al. Penetrating keratoplasty with purified bovine collagen: report of a coordinated trial on fifteen human cases. , 1974, Annals of ophthalmology.
[90] R. Sunga,et al. The use of chicken and monkey cornea for human corneal grafting. , 1959, Acta medica Philippina.