Research models of sulfur mustard- and nitrogen mustard-induced ocular injuries and potential therapeutics.
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[1] N. Tewari-Singh,et al. Effect of dexamethasone treatment at variable therapeutic windows in reversing nitrogen mustard-induced corneal injuries in rabbit ocular in vivo model. , 2022, Toxicology and applied pharmacology.
[2] R. Enzenauer,et al. Pathophysiology and inflammatory biomarkers of sulfur mustard-induced corneal injury in rabbits , 2021, PloS one.
[3] B. Abtahi-Naeini,et al. The mucocutaneous manifestations of sulfur mustard gas on 1024 Iraqi victims: ISIS chemical attack in the South of Kirkuk , 2021, Toxin Reviews.
[4] D. Laskin,et al. Characterization of the rabbit conjunctiva: Effects of sulfur mustard. , 2021, Experimental and molecular pathology.
[5] R. Mohan,et al. Ocular toxicity of mustard gas: a concise review. , 2021, Toxicology letters.
[6] K. Svoboda,et al. SM1997 downregulates mustard‐induced enzymes that disrupt corneal epithelial attachment , 2021, Anatomical record.
[7] Celinia A. Ondeck,et al. Dose-dependent emergence of acute and recurrent corneal lesions in sulfur mustard-exposed rabbit eyes. , 2021, Toxicology letters.
[8] S. Gupta,et al. A Novel Topical Ophthalmic Formulation to Mitigate Acute Mustard Gas Keratopathy In Vivo: A Pilot Study , 2020, Translational vision science & technology.
[9] D. Laskin,et al. DNA damage signaling in the cellular responses to mustard vesicants. , 2020, Toxicology letters.
[10] M. Mahmoudi,et al. Alteration in inflammatory mediators in seriously eye-injured war veterans, long-term after sulfur mustard exposure. , 2020, International immunopharmacology.
[11] Celinia A. Ondeck,et al. Corneal Endothelial Cell Toxicity Determines Long-Term Outcome After Ocular Exposure to Sulfur Mustard Vapor. , 2020, Cornea.
[12] L. Kenar,et al. Recent sulfur mustard attacks in Middle East and experience of health professionals. , 2019, Toxicology letters.
[13] S. Faghihzadeh,et al. Tear and serum MMP-9 and serum TIMPs levels in the severe sulfur mustard eye injured exposed patients. , 2019, International immunopharmacology.
[14] S. Faghihzadeh,et al. Alteration in serum levels of immunoglobulins in seriously eye-injured long-term following sulfur-mustard exposure. , 2019, International immunopharmacology.
[15] R. Enzenauer,et al. Acute corneal injury in rabbits following nitrogen mustard ocular exposure. , 2019, Experimental and molecular pathology.
[16] A. Zvi,et al. A comprehensive analysis of corneal mRNA levels during sulfur mustard induced ocular late pathology in the rabbit model using RNA sequencing. , 2019, Experimental eye research.
[17] T. Kadar,et al. Differential expression of corneal and limbal cytokines and chemokines throughout the clinical course of sulfur mustard induced ocular injury in the rabbit model , 2018, Experimental eye research.
[18] T. Kadar,et al. Successful single treatment with ziv‐aflibercept for existing corneal neovascularization following ocular chemical insult in the rabbit model , 2018, Experimental eye research.
[19] Y. Panahi,et al. A review on symptoms, treatments protocols, and proteomic profile in sulfur mustard‐exposed victims , 2018, Journal of cellular biochemistry.
[20] S. Schaal,et al. Common and Rare Ocular Side-effects of the Dexamethasone Implant , 2017, Ocular immunology and inflammation.
[21] R. Agarwal,et al. Efficacy of anti-inflammatory, antibiotic and pleiotropic agents in reversing nitrogen mustard-induced injury in ex vivo cultured rabbit cornea. , 2017, Toxicology letters.
[22] Y. Panahi,et al. Ocular Effects of Sulfur Mustard and Therapeutic Approaches , 2017, Journal of cellular biochemistry.
[23] Yu-Hsiang Hsu,et al. IL-20 in rheumatoid arthritis. , 2017, Drug discovery today.
[24] K. Jadidi,et al. Clinical Practice Guidelines for Prevention, Diagnosis and Management of Early and Delayed-onset Ocular Injuries Due to Mustard Gas Exposure , 2017, Journal of ophthalmic & vision research.
[25] M. Javadi. Mustard Gas Induced Ocular Injuries , 2017, Journal of ophthalmic & vision research.
[26] R. Enzenauer,et al. Nitrogen Mustard-Induced Corneal Injury Involves DNA Damage and Pathways Related to Inflammation, Epithelial-Stromal Separation, and Neovascularization , 2016, Cornea.
[27] M. Tavallaei,et al. Identification of Reliable Reference Genes for Quantification of MicroRNAs in Serum Samples of Sulfur Mustard-Exposed Veterans , 2015, Cell journal.
[28] R. Klose,et al. Understanding the relationship between DNA methylation and histone lysine methylation , 2014, Biochimica et biophysica acta.
[29] Y. Panahi,et al. Topical Cyclosporine A for Treatment of Dry Eye Due to Chronic Mustard Gas Injury , 2014, Journal of ophthalmic & vision research.
[30] T. Kadar,et al. The Beneficial Effects of Doxycycline, An Inhibitor of Matrix Metalloproteinases, on Sulfur Mustard-Induced Ocular Pathologies Depend on the Injury Stage , 2014, Current eye research.
[31] S. P. Srinivas,et al. Role of MMP-9 in the breakdown of barrier integrity of the corneal endothelium in response to TNF-α. , 2014, Experimental eye research.
[32] Sandeep Jain,et al. Corneal nerves in health and disease. , 2014, Survey of ophthalmology.
[33] T. Kadar,et al. Anti-VEGF Therapy (Bevacizumab) for Sulfur Mustard-Induced Corneal Neovascularization Associated with Delayed Limbal Stem Cell Deficiency in Rabbits , 2014, Current eye research.
[34] J. Graham,et al. Historical perspective on effects and treatment of sulfur mustard injuries. , 2013, Chemico-biological interactions.
[35] Michael E. Hall,et al. Matrix metalloproteinase-9: Many shades of function in cardiovascular disease. , 2013, Physiology.
[36] D. Laskin,et al. The generation of 4-hydroxynonenal, an electrophilic lipid peroxidation end product, in rabbit cornea organ cultures treated with UVB light and nitrogen mustard. , 2013, Toxicology and applied pharmacology.
[37] P. McNutt,et al. Structural, morphological, and functional correlates of corneal endothelial toxicity following corneal exposure to sulfur mustard vapor. , 2013, Investigative ophthalmology & visual science.
[38] David J Hilber,et al. Development of a mouse model for sulfur mustard-induced ocular injury and long-term clinical analysis of injury progression , 2013, Cutaneous and ocular toxicology.
[39] T. Kadar,et al. Prolonged Impairment of Corneal Innervation After Exposure to Sulfur Mustard and Its Relation to the Development of Delayed Limbal Stem Cell Deficiency , 2013, Cornea.
[40] I. Avni,et al. Use of amphoteric rinsing solution for treatment of ocular tissues exposed to nitrogen mustard , 2013, Acta ophthalmologica.
[41] Jurgen Müller,et al. ERK5: structure, regulation and function. , 2012, Cellular signalling.
[42] P. Salamati,et al. A review on delayed toxic effects of sulfur mustard in Iranian veterans , 2012, DARU Journal of Pharmaceutical Sciences.
[43] M. Lee,et al. Treatment of Corneal Neovascularization by Topical Application of Ascorbic Acid in the Rabbit Model , 2012, Cornea.
[44] R. Enzenauer,et al. Silibinin, dexamethasone, and doxycycline as potential therapeutic agents for treating vesicant-inflicted ocular injuries. , 2012, Toxicology and applied pharmacology.
[45] P. McNutt,et al. Architectural and Biochemical Expressions of Mustard Gas Keratopathy: Preclinical Indicators and Pathogenic Mechanisms , 2012, PloS one.
[46] P. McNutt,et al. Pathogenesis of Acute and Delayed Corneal Lesions After Ocular Exposure to Sulfur Mustard Vapor , 2012, Cornea.
[47] A. Bradshaw. Diverse biological functions of the SPARC family of proteins. , 2012, The international journal of biochemistry & cell biology.
[48] M. Jafarinasab,et al. Lamellar keratoplasty and keratolimbal allograft for mustard gas keratitis. , 2011, American journal of ophthalmology.
[49] S. Doan,et al. EMMPRIN modulates epithelial barrier function through a MMP-mediated occludin cleavage: implications in dry eye disease. , 2011, The American journal of pathology.
[50] S. Tseng,et al. Sulfur mustard-induced ocular surface disorders. , 2011, The ocular surface.
[51] M. Ghanei,et al. Sulfur mustard toxicity: History, chemistry, pharmacokinetics, and pharmacodynamics , 2011, Critical reviews in toxicology.
[52] M. Naderi,et al. The effect of sulfur mustard and nitrogen mustard on corneal collagen degradation induced by the enzyme collagenase , 2010, Cutaneous and ocular toxicology.
[53] M. Gallo,et al. Doxycycline hydrogels as a potential therapy for ocular vesicant injury. , 2010, Journal of ocular pharmacology and therapeutics : the official journal of the Association for Ocular Pharmacology and Therapeutics.
[54] P. Sinko,et al. Doxycycline loaded poly(ethylene glycol) hydrogels for healing vesicant-induced ocular wounds. , 2010, Biomaterials.
[55] M. Javadi,et al. Limbal stem cell deficiency in chronic and delayed-onset mustard gas keratopathy. , 2010, Ophthalmology.
[56] A. Solomon,et al. Ocular injuries following sulfur mustard exposure--pathological mechanism and potential therapy. , 2009, Toxicology.
[57] M. Naderi,et al. Prophylactic ophthalmic bethametazone for sulfur mustard-induced ocular injury , 2009, Journal of research in medical sciences : the official journal of Isfahan University of Medical Sciences.
[58] S. Faghihzadeh,et al. Long-term ocular consequences of sulfur mustard in seriously eye-injured war veterans , 2009, Cutaneous and ocular toxicology.
[59] M. Javadi,et al. Living-Related Conjunctival-Limbal Allograft for Chronic or Delayed-Onset Mustard Gas Keratopathy , 2009, Cornea.
[60] R. Reiter,et al. The use of melatonin to combat mustard toxicity. REVIEW. , 2008, Neuro endocrinology letters.
[61] V. Arlt,et al. Rat cytochromes P450 oxidize 3-aminobenzanthrone, a human metabolite of the carcinogenic environmental pollutant 3-nitrobenzanthrone , 2008, Interdisciplinary toxicology.
[62] H. Katinger,et al. Contributions of DNA interstrand cross-links to aging of cells and organisms , 2007, Nucleic acids research.
[63] M. Naderi,et al. Long-term Outcomes of Penetrating Keratoplasty in Chronic and Delayed Mustard Gas Keratitis , 2007, Cornea.
[64] A. Korkmaz,et al. Lung toxicity of nitrogen mustard may be mediated by nitric oxide and peroxynitrite in rats. , 2007, Research in veterinary science.
[65] M. Balali-Mood,et al. Comparison of early and late toxic effects of sulfur mustard in Iranian veterans. , 2006, Basic & clinical pharmacology & toxicology.
[66] M. Mahmoudi,et al. Delayed ocular complications of mustard gas poisoning and the relationship with respiratory and cutaneous complications , 2006, Clinical & experimental ophthalmology.
[67] W. Whetstone,et al. Traumatic injury to the immature brain: Inflammation, oxidative injury, and iron-mediated damage as potential therapeutic targets , 2006, NeuroRX.
[68] D. Broadway,et al. Corticosteroid-induced glaucoma: a review of the literature , 2006, Eye.
[69] M. Balali-Mood,et al. The pharmacology, toxicology, and medical treatment of sulphur mustard poisoning , 2005, Fundamental & clinical pharmacology.
[70] E. Berenshtein,et al. Treatment of ocular tissues exposed to nitrogen mustard: beneficial effect of zinc desferrioxamine combined with steroids. , 2005, Investigative ophthalmology & visual science.
[71] S. Yazdani,et al. Chronic and delayed-onset mustard gas keratitis: report of 48 patients and review of literature. , 2005, Ophthalmology.
[72] S. Cuzzocrea,et al. Potential therapeutic effect of antioxidant therapy in shock and inflammation. , 2004, Current medicinal chemistry.
[73] Y. Shimomura,et al. The Cytokine Regulation of SPARC Production by Rabbit Corneal Epithelial Cells and Fibroblasts In Vitro , 2004, Cornea.
[74] M. Ghassemi-Broumand,et al. The Delayed Ocular and Pulmonary Complications of Mustard Gas , 2004 .
[75] M. Ghanei,et al. Incidence of Lung, Eye, and Skin Lesions as Late Complications in 34,000 Iranians With Wartime Exposure to Mustard Agent , 2003, Journal of occupational and environmental medicine.
[76] E. Berenshtein,et al. Injury induced by chemical warfare agents: characterization and treatment of ocular tissues exposed to nitrogen mustard. , 2003, Investigative ophthalmology & visual science.
[77] M. Naghii. Sulfur mustard intoxication, oxidative stress, and antioxidants. , 2002, Military medicine.
[78] William J Smith,et al. Sulfur mustard medical countermeasures in a nuclear environment. , 2002, Military medicine.
[79] M. Reed,et al. SPARC-null Mice Exhibit Accelerated Cutaneous Wound Closure , 2002, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[80] H. Kleinman,et al. Thymosin beta 4 promotes corneal wound healing and modulates inflammatory mediators in vivo. , 2001, Experimental eye research.
[81] T. Kadar,et al. Characterization of acute and delayed ocular lesions induced by sulfur mustard in rabbits , 2001, Current eye research.
[82] D. Goldstein,et al. Ocular complications of topical, peri-ocular, and systemic corticosteroids , 2000, Current opinion in ophthalmology.
[83] E. Gilat,et al. Beneficial effects of topical anti‐inflammatory drugs against sulfur mustard‐induced ocular lesions in rabbits , 2000, Journal of applied toxicology : JAT.
[84] J. Petrali,et al. Acute ocular effects of mustard gas: ultrastructural pathology and immunohistopathology of exposed rabbit cornea † , 2000, Journal of applied toxicology : JAT.
[85] A P Watson,et al. The sources, fate, and toxicity of chemical warfare agent degradation products. , 1999, Environmental health perspectives.
[86] S. Tseng,et al. Amniotic membrane transplantation with or without limbal allografts for corneal surface reconstruction in patients with limbal stem cell deficiency. , 1998, Archives of ophthalmology.
[87] M. Belkin,et al. Ocular injury by mustard gas. , 1997, Survey of ophthalmology.
[88] J. Zieske,et al. Cell cycle protein expression and proliferative status in human corneal cells. , 1996, Investigative ophthalmology & visual science.
[89] C. Belmonte,et al. Influence of diltiazem on the ocular irritative response to nitrogen mustard. , 1995, Experimental eye research.
[90] C. G. Hurst,et al. Sulfur mustard: its continuing threat as a chemical warfare agent, the cutaneous lesions induced, progress in understanding its mechanism of action, its long-term health effects, and new developments for protection and therapy. , 1995, Journal of the American Academy of Dermatology.
[91] F. Sidell,et al. Agents of chemical warfare: sulfur mustard. , 1992, Annals of emergency medicine.
[92] William J Smith,et al. Inhibition of sulfur mustard-increased protease activity by niacinamide, N-acetyl-L-cysteine or dexamethasone , 1991, Cell Biology and Toxicology.
[93] W. T. Beaudry,et al. Kinetics and mechanism of the hydrolysis of 2-chloroethyl sulfides , 1988 .
[94] B. Nilsson,et al. Formation and removal of DNA cross-links induced by melphalan and nitrogen mustard in relation to drug-induced cytotoxicity in human melanoma cells. , 1987, Cancer research.
[95] P. Bhattacherjee,et al. Inhibition of the acute ocular responses to nitrogen mustard by colchicine. , 1984, Experimental Eye Research.
[96] E. Klein,et al. Species variations in the pathophysiologic responses of vertebrate eyes to a chemical irritant, nitrogen mustard. , 1983, Investigative ophthalmology & visual science.
[97] C. Camras,et al. The pathophysiological effects of nitrogen mustard on the rabbit eye. II. The inhibition of the initial hypertensive phase by capsaicin and the apparent role of substance P. , 1980, Investigative ophthalmology & visual science.
[98] L. Jampol,et al. Further studies of the ipsilateral and contralateral responses to topical nitrogen mustard. , 1979, Experimental eye research.
[99] I. Bonta,et al. Prostaglandins and ocular inflammation , 1977, Documenta Ophthalmologica.
[100] L. Jampol,et al. Pathways of the eye's response to topical nitrogen mustard. , 1976, Investigative Ophthalmology.
[101] L. Jampol,et al. Pathways for the response of the eye to injury. , 1975, Investigative ophthalmology.
[102] L. Jampol,et al. Aspirin Prevents the Disruption of the Blood–Aqueous Barrier in the Rabbit Eye , 1972, Nature.
[103] T. Brent,et al. Evidence for the inactivation and repair of the mammalian DNA template after alkylation by mustard gas and half mustard gas. , 1971, European journal of cancer.
[104] P. Livingston,et al. A STUDY OF THE EFFECTS OF LIQUID MUSTARD GAS UPON THE EYES OF RABBITS AND OF CERTAIN METHODS OF TREATMENT , 1940, The British journal of ophthalmology.
[105] D. Thompson,et al. Nitrogen mustard-induced corneal injury involves the sphingomyelin-ceramide pathway. , 2018, The ocular surface.
[106] Y. Panahi,et al. Topical Cyclosporine A for Mustard Gas Induced Ocular Surface Disorders , 2015, Journal of ophthalmic & vision research.
[107] K. Tsubota,et al. Donor source affects the outcome of ocular surface reconstruction in chemical or thermal burns of the cornea. , 2004, Ophthalmology.
[108] J. P. Quilliam. EFFECTS OF NITROGE$ MUSTARD ON THE PERMEABILITY OF THE BLOOD-AQUEOUS HUMOUR BARRIER TO EVANS BLUE THE EFFECTS OF NITROGEN MUSTARD ON THE PERMEABILITY OF THE BLOOD-AQUEOUS HUMOUR BARRIER TO EVANS BLUE , 2004 .
[109] M. Boroumand,et al. THE STUDY OF RELATIONSHIP BETWEEN PULMONARY SYSTEM DISABILITY AND LONG TERM EYE COMPLICATIONS IN IRANIAN VICTIMS EXPOSED TO SULFUR MUSTARD GAS , 2003 .
[110] M. Safarinejad,et al. Ocular injuries caused by mustard gas: diagnosis, treatment, and medical defense. , 2001, Military medicine.
[111] J. Petrali,et al. Sulfur Mustard Toxicity of the Rabbit Eye: An Ultrastructural Study , 1997 .
[112] L. Matrisian,et al. Mechanisms controlling the transcription of matrix metalloproteinase genes in normal and neoplastic cells. , 1996, Enzyme & protein.
[113] C. Camras,et al. The pathophysiological effects of nitrogen mustard on the rabbit eye. I. The biphasic intraocular pressure response and the role of prostaglandins. , 1980, Experimental eye research.
[114] K. Eakins,et al. Prostaglandin and non-prostaglandin mediated breeakdown of the blood-aqueous barrier. , 1977, Experimental eye research.