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1.
Int J Biol Macromol ; 273(Pt 1): 132740, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38825267

ABSTRACT

The cornea serves as an essential shield that protects the underlying eye from external conditions, yet it remains highly vulnerable to injuries that could lead to blindness and scarring if not promptly and effectively treated. Excessive inflammatory response constitute the primary cause of pathological corneal injury. This study aimed to develop effective approaches for enabling the functional repair of corneal injuries by combining nanoparticles loaded with anti-inflammatory agents and an injectable oxidized dextran/gelatin/borax hydrogel. The injectability and self-healing properties of developed hydrogels based on borate ester bonds and dynamic Schiff base bonds were excellent, improving the retention of administered drugs on the ocular surface. In vitro cellular assays and in vivo animal studies collectively substantiated the proficiency of probucol nanoparticle-loaded hydrogels to readily suppress proinflammatory marker expression and to induce the upregulation of anti-inflammatory mediators, thereby supporting rapid repair of rat corneal tissue following alkali burn-induced injury. As such, probucol nanoparticle-loaded hydrogels represent a prospective avenue to developing long-acting and efficacious therapies for ophthalmic diseases.


Subject(s)
Burns, Chemical , Corneal Injuries , Dextrans , Gelatin , Hydrogels , Wound Healing , Animals , Dextrans/chemistry , Hydrogels/chemistry , Hydrogels/pharmacology , Gelatin/chemistry , Rats , Wound Healing/drug effects , Corneal Injuries/drug therapy , Burns, Chemical/drug therapy , Burns, Chemical/pathology , Alkalies/chemistry , Oxidation-Reduction , Nanoparticles/chemistry , Cornea/drug effects , Cornea/metabolism , Cornea/pathology , Male , Eye Burns/drug therapy , Eye Burns/chemically induced , Eye Burns/pathology , Anti-Inflammatory Agents/pharmacology , Anti-Inflammatory Agents/chemistry , Injections
2.
Biomed Khim ; 70(3): 168-175, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38940206

ABSTRACT

The free radical and cytokine statuses of the cornea during its thermal burn and the possibility of its correction by lactoferrin have been studied in Soviet Chinchilla rabbits. The development of a corneal thermal burn was accompanied by the development of oxidative stress (increased levels of TBA-reactive substances and carbonyl derivatives of proteins, decreased activity of SOD and GPx enzymes) and a pronounced inflammatory reaction with increased levels of TNF-1α, IL-10, TGF-1ß. The use of lactoferrin had a pronounced therapeutic effect, which was manifested by accelerated healing, prevention of the development of complications (corneal perforations), a decrease in the severity of oxidative stress, an increase in the concentrations of TNF-1α (in the early stages), IL-10 (in the later stages), TGF-1ß (throughout the experiment). At the same time, by the end of regeneration more severe corneal opacification was recognized compared to the control group. This may be associated with an increased level of anti-inflammatory cytokines, especially TGF-1ß.


Subject(s)
Cornea , Lactoferrin , Oxidative Stress , Animals , Lactoferrin/pharmacology , Rabbits , Cornea/metabolism , Cornea/drug effects , Oxidative Stress/drug effects , Cytokines/metabolism , Eye Burns/metabolism , Eye Burns/drug therapy , Eye Burns/chemically induced , Eye Burns/pathology , Male , Free Radicals/metabolism , Corneal Injuries/metabolism , Corneal Injuries/drug therapy , Corneal Injuries/pathology , Disease Models, Animal
3.
Exp Eye Res ; 244: 109928, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38750781

ABSTRACT

The corneal epithelium, located as the outermost layer of the cornea, is inherently susceptible to injuries that may lead to corneal opacities and compromise visual acuity. Rapid restoration of corneal epithelial injury is crucial for maintaining the transparency and integrity of the cornea. Cell spray treatment emerges as an innovative and effective approach in the field of regenerative medicine. In our study, a cell spray printing platform was established, and the optimal printing parameters were determined to be a printing air pressure of 5 PSI (34.47 kPa) and a liquid flow rate of 30 ml/h. Under these conditions, the viability and phenotype of spray-printed corneal epithelial cells were preserved. Moreover, Lycium barbarum glycopeptide (LBGP), a glycoprotein purified from wolfberry, enhanced proliferation while simultaneously inhibiting apoptosis of the spray-printed corneal epithelial cells. We found that the combination of cell spray printing and LBGP facilitated the rapid construction of multilayered cell sheets on flat and curved collagen membranes in vitro. Furthermore, the combined cell spray printing and LBGP accelerated the recovery of the rat corneal epithelium in the mechanical injury model. Our findings offer a therapeutic avenue for addressing corneal epithelial injuries and regeneration.


Subject(s)
Epithelium, Corneal , Epithelium, Corneal/drug effects , Epithelium, Corneal/injuries , Animals , Rats , Corneal Injuries/drug therapy , Corneal Injuries/pathology , Disease Models, Animal , Wound Healing/drug effects , Wound Healing/physiology , Apoptosis/drug effects , Rats, Sprague-Dawley , Cell Proliferation/drug effects , Cell Survival/drug effects , Cells, Cultured , Lycium/chemistry , Bioprinting/methods , Printing, Three-Dimensional , Tissue Engineering/methods , Glycoproteins/pharmacology , Male , Drugs, Chinese Herbal/pharmacology
4.
Int J Pharm ; 659: 124265, 2024 Jun 25.
Article in English | MEDLINE | ID: mdl-38795935

ABSTRACT

Metformin (MET) can be an alternative therapeutic strategy for managing ocular burn primarily because of its pleiotropic mechanism. Longer retention on the ocular surface and sustained release are necessary to ensure the efficacy of MET for ocular application. Although the high aqueous solubility of MET is good for formulation and biocompatibility, it makes MET prone to high nasolacrimal drainage. This limits ocular residence and may be a challenge in its application. To address this, polymers approved for ophthalmic application with natural origin were analyzed through in silico methods to determine their ability to bind to mucin and interact with MET. An ocular insert of MET (3 mg/6 mm) was developed using a scalable solvent casting method without using preservatives. The relative composition of the insert was 58 ± 2.06 %w/w MET with approximately 14 %w/w tamarind seed polysaccharide (TSP), and 28 %w/w propylene glycol (PG). Its stability was demonstrated as per the ICH Q1A (R2) guidelines. Compatibility, ocular retention, drug release, and other functional parameters were evaluated. In rabbits, efficacy was demonstrated in the 'corneal alkali burn preclinical model'. TSP showed potential for mucoadhesion and interaction with MET. With adequate stability and sterility, the insert contributed to adequate retention of MET (10-12 h) in vivo and slow release (30 h) in vitro. This resulted in significant efficacy in vivo.


Subject(s)
Delayed-Action Preparations , Drug Liberation , Eye Burns , Metformin , Polysaccharides , Seeds , Tamarindus , Animals , Metformin/chemistry , Metformin/administration & dosage , Rabbits , Tamarindus/chemistry , Polysaccharides/chemistry , Seeds/chemistry , Eye Burns/drug therapy , Eye Burns/chemically induced , Administration, Ophthalmic , Drug Implants , Male , Burns, Chemical/drug therapy , Drug Stability , Corneal Injuries/drug therapy , Cornea/metabolism , Cornea/drug effects , Propylene Glycol/chemistry , Solubility
5.
Int J Biol Macromol ; 270(Pt 1): 132365, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38750850

ABSTRACT

This study strategically incorporates epidermal growth factor (EGF) and keratinocyte growth factor (KGF) within a hyaluronic acid (HA) hydrogel to enhance corneal wound healing. The controlled release of EGF and KGF from the HA hydrogel is engineered to promote the regeneration of both the epithelial and stromal layers. Specifically, EGF plays a pivotal role in the regeneration of the epithelial layer, while KGF exhibits efficacy in the regeneration of the stromal layer. The combination of these growth factors facilitates efficient regeneration of each layer and demonstrates the capability to modulate each other's regenerative effects. The interplay between EGF and KGF provides an understanding of their cooperative influence on the dynamics of corneal wound healing. The results of this study contribute to the development of advanced strategies for corneal wound management and offer insights into the complex process of corneal regeneration.


Subject(s)
Epidermal Growth Factor , Fibroblast Growth Factor 7 , Hyaluronic Acid , Hydrogels , Wound Healing , Hyaluronic Acid/chemistry , Hyaluronic Acid/pharmacology , Epidermal Growth Factor/pharmacology , Wound Healing/drug effects , Hydrogels/chemistry , Hydrogels/pharmacology , Animals , Humans , Cornea/drug effects , Cornea/metabolism , Corneal Injuries/drug therapy , Corneal Injuries/metabolism , Rabbits
6.
Sci Rep ; 14(1): 12111, 2024 05 27.
Article in English | MEDLINE | ID: mdl-38802470

ABSTRACT

Alkaline burns to the cornea lead to loss of corneal transparency, which is essential for normal vision. We used a rat corneal alkaline burn model to investigate the effect of ophthalmic trimebutine solution on healing wounds caused by alkaline burns. Trimebutine, an inhibitor of the high-mobility group box 1-receptor for advanced glycation end products, when topically applied to the burned cornea, suppressed macrophage infiltration in the early phase and neutrophil infiltration in the late phase at the wound site. It also inhibited neovascularization and myofibroblast development in the late phase. Furthermore, trimebutine effectively inhibited interleukin-1ß expression in the injured cornea. It reduced scar formation by decreasing the expression of type III collagen. These findings suggest that trimebutine may represent a novel therapeutic strategy for corneal wounds, not only through its anti-inflammatory effects but also by preventing neovascularization.


Subject(s)
Alkalies , Burns, Chemical , Cornea , Disease Models, Animal , Eye Burns , Wound Healing , Animals , Burns, Chemical/drug therapy , Burns, Chemical/pathology , Burns, Chemical/metabolism , Rats , Eye Burns/chemically induced , Eye Burns/drug therapy , Eye Burns/pathology , Alkalies/adverse effects , Cornea/metabolism , Cornea/pathology , Cornea/drug effects , Wound Healing/drug effects , Interleukin-1beta/metabolism , Male , Macrophages/drug effects , Macrophages/metabolism , Corneal Injuries/drug therapy , Corneal Injuries/metabolism , Corneal Injuries/pathology , Corneal Injuries/chemically induced , Inflammation/drug therapy , Inflammation/pathology , Inflammation/metabolism , Rats, Sprague-Dawley , Collagen Type III/metabolism , Receptor for Advanced Glycation End Products/metabolism , Anti-Inflammatory Agents/pharmacology , Ophthalmic Solutions , Myofibroblasts/metabolism , Myofibroblasts/drug effects
7.
BMC Ophthalmol ; 24(1): 155, 2024 Apr 09.
Article in English | MEDLINE | ID: mdl-38594682

ABSTRACT

INTRODUCTION: In recent years, insulin eye drops have attracted increasing attention from researchers and ophthalmologists. The aim of this study was to investigate the efficacy and possible mechanism of action of insulin eye drops in diabetic mice with corneal wounds. METHODS: A type 1 diabetes model was induced, and a corneal epithelial injury model of 2.5 mm was established. We used corneal fluorescein staining, hematoxylin-eosin (H-E) staining and the Cochet-Bonnet esthesiometer to examine the process of wound healing. Subsequently, the expression levels of Ki-67, IL-1ß, ß3-tubulin and neuropeptides, including substance P (SP) and calcitonin gene-related peptide (CGRP), were examined at 72 h after corneal injury. RESULTS: Fluorescein staining demonstrated an acceleration of the recovery of corneal epithelial injury in diabetic mice compared with the saline treatment, which was further evidenced by the overexpression of Ki-67. Moreover, 72 h of insulin application attenuated the expression of inflammatory cytokines and neutrophil infiltration. Remarkably, the results demonstrated that topical insulin treatment enhanced the density of corneal epithelial nerves, as well as neuropeptide SP and CGRP release, in the healing cornea via immunofluorescence staining. CONCLUSIONS: Our results indicated that insulin eye drops may accelerate corneal wound healing and decrease inflammatory responses in diabetic mice by promoting nerve regeneration and increasing levels of neuropeptides SP and CGRP.


Subject(s)
Corneal Injuries , Diabetes Mellitus, Experimental , Epithelium, Corneal , Keratitis , Mice , Animals , Epithelium, Corneal/metabolism , Insulin , Diabetes Mellitus, Experimental/complications , Diabetes Mellitus, Experimental/drug therapy , Diabetes Mellitus, Experimental/metabolism , Calcitonin Gene-Related Peptide/metabolism , Ophthalmic Solutions , Ki-67 Antigen/metabolism , Cornea/physiology , Corneal Injuries/drug therapy , Wound Healing , Keratitis/metabolism , Fluorescein/metabolism , Inflammation/metabolism
8.
Exp Eye Res ; 243: 109902, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38641196

ABSTRACT

Nitrogen mustard (NM) is a potent vesicating chemical warfare agent that is primarily absorbed through skin, inhalation, or ocular surface. Ocular exposure of NM can cause acute to chronic keratopathy which can eventually lead to blindness. There is a current lack of effective countermeasures against ocular exposure of NM despite their imperative need. Herein, we aim to explore the sustained effect of Dexamethasone sodium phosphate (DSP)-loaded polymeric nanoparticles (PLGA-DSP-NP) following a single subconjunctival injection in the management and prevention of corneal injury progression upon exposure to NM. DSP is an FDA approved corticosteroid with proven anti-inflammatory properties. We formulated PLGA-DSP-NP with zinc chelation ion bridging method using PLGA polymer, with particles of approximately 250 nm and a drug loading of 6.5 wt%. Under in vitro sink conditions, PLGA-DSP-NP exhibited a sustained drug release for two weeks. Notably, in NM injured cornea, a single subconjunctival (SCT) injection of PLGA-DSP-NP outperformed DSP eyedrops (0.1%), DSP solution, placebo NP, and saline, significantly mitigating corneal neovascularization, ulceration, and opacity for the two weeks study period. Through PLGA-DSP-NP injection, sustained DSP release hindered inflammatory cytokine recruitment, angiogenic factors, and endothelial cell proliferation in the cornea. This strategy presents a promising localized corticosteroid delivery system to effectively combat NM-induced corneal injury, offering insights into managing vesicant exposure.


Subject(s)
Dexamethasone , Mechlorethamine , Nanoparticles , Dexamethasone/analogs & derivatives , Animals , Mechlorethamine/toxicity , Disease Models, Animal , Corneal Injuries/prevention & control , Corneal Injuries/chemically induced , Corneal Injuries/pathology , Corneal Injuries/drug therapy , Glucocorticoids , Chemical Warfare Agents/toxicity , Mice , Burns, Chemical/prevention & control , Burns, Chemical/drug therapy , Eye Burns/chemically induced , Eye Burns/prevention & control , Rabbits , Cornea/drug effects , Cornea/pathology , Cornea/metabolism
9.
Commun Biol ; 7(1): 264, 2024 Mar 04.
Article in English | MEDLINE | ID: mdl-38438549

ABSTRACT

Calcitonin gene-related peptide (CGRP) is a multifunctional neuropeptide abundantly expressed by corneal nerves. Using a murine model of corneal mechanical injury, we found CGRP levels in the cornea significantly reduced after injury. Topical application of CGRP as an eye drop accelerates corneal epithelial wound closure, reduces corneal opacification, and prevents corneal edema after injury in vivo. CGRP promotes corneal epithelial cell migration, proliferation, and the secretion of laminin. It reduces TGF-ß1 signaling and prevents TGF-ß1-mediated stromal fibroblast activation and tissue fibrosis. CGRP preserves corneal endothelial cell density, morphology, and pump function, thus reducing corneal edema. Lastly, CGRP reduces neutrophil infiltration, macrophage maturation, and the production of inflammatory cytokines in the cornea. Taken together, our results show that corneal nerve-derived CGRP plays a cytoprotective, pro-regenerative, anti-fibrotic, and anti-inflammatory role in corneal wound healing. In addition, our results highlight the critical role of sensory nerves in ocular surface homeostasis and injury repair.


Subject(s)
Corneal Edema , Corneal Injuries , Animals , Mice , Calcitonin Gene-Related Peptide , Transforming Growth Factor beta1 , Corneal Injuries/drug therapy , Cornea , Immunomodulation
10.
Ann Emerg Med ; 83(5): 477-489, 2024 May.
Article in English | MEDLINE | ID: mdl-38323950

ABSTRACT

The management of corneal abrasions has largely excluded dispensing topical local anesthetics for home use due to concern for corneal toxicity. We have reviewed and critically appraised the available literature evidence regarding the use of topical anesthetics in patients with simple corneal abrasions. Using sequential Delphi review, we have developed these clinical guidelines. Herein are evidentiary summaries and consensus recommendations for 8 specific relevant questions. Our key observation is that for only simple corneal abrasions, as diagnosed and treated in accordance with the full protocol described herein, it appears safe to prescribe or otherwise provide a commercial topical anesthetic (ie, proparacaine, tetracaine, oxybuprocaine) for use up to every 30 minutes as needed during the first 24 hours after presentation, as long as no more than 1.5 to 2 mL total (an expected 24-hour supply) is dispensed and any remainder is discarded after 24 hours. Importantly, although published findings suggest absent harm for short courses, more rigorous studies with a greater cumulative sample size and ophthalmologic follow-up are needed.


Subject(s)
Corneal Injuries , Physicians , Humans , Anesthetics, Local , Corneal Injuries/drug therapy , Tetracaine , Cornea
11.
Toxicol Appl Pharmacol ; 483: 116834, 2024 02.
Article in English | MEDLINE | ID: mdl-38266871

ABSTRACT

PURPOSE: Sulfur mustard (SM), a bi-functional alkylating agent, was used during World War I and the Iran-Iraq war. SM toxicity is ten times higher in eyes than in other tissues. Cornea is exceptionally susceptible to SM-injuries due to its anterior positioning and mucous-aqueous interphase. Ocular SM exposure induces blepharitis, photosensitivity, dry eye, epithelial defects, limbal ischemia and stem cell deficiency, and mustard gas keratopathy leading to temporary or permanent vision impairments. We demonstrated that dexamethasone (Dex) is a potent therapeutic intervention against SM-induced corneal injuries; however, its mechanism of action is not well known. Investigations employing proteomic profiling (LC-MS/MS) to understand molecular mechanisms behind SM-induced corneal injury and Dex efficacy were performed in the rabbit cornea exposed to SM and then received Dex treatment. PEAKS studio was used to extract, search, and summarize peptide identity. Ingenuity Pathway Analysis was used for pathway identification. Validation was performed using immunofluorescence. One-Way ANOVA (FDR < 0.05; p < 0.005) and Student's t-test (p < 0.05) were utilized for analyzing proteomics and IF data, respectively. Proteomic analysis revealed that SM-exposure upregulated tissue repair pathways, particularly actin cytoskeleton signaling and inflammation. Prominently dysregulated proteins included lipocalin2, coronin1A, actin-related protein2, actin-related protein2/3 complex subunit2, actin-related protein2/3 complex subunit4, cell division cycle42, ezrin, bradykinin/kininogen1, moesin, and profilin. Upregulated actin cytoskeleton signaling increases F-actin formation, dysregulating cell shape and motility. Dex reversed SM-induced increases in the aforementioned proteins levels to near control expression profiles. Dex aids corneal wound healing and improves corneal integrity via actin cytoskeletal signaling and anti-inflammatory effects following SM-induced injuries.


Subject(s)
Chemical Warfare Agents , Corneal Injuries , Mustard Gas , Animals , Rabbits , Mustard Gas/toxicity , Chemical Warfare Agents/toxicity , Inflammation Mediators/metabolism , Actins/metabolism , Chromatography, Liquid , Proteomics , Tandem Mass Spectrometry , Cornea/metabolism , Corneal Injuries/chemically induced , Corneal Injuries/drug therapy , Actin Cytoskeleton/metabolism , Dexamethasone/adverse effects
12.
Invest Ophthalmol Vis Sci ; 65(1): 49, 2024 Jan 02.
Article in English | MEDLINE | ID: mdl-38294802

ABSTRACT

Purpose: To elucidate the influence of dopamine receptor 1 (DRD1) on the proliferation of mouse corneal epithelial cells (MCECs) under inflammatory conditions. Methods: In vitro, immortalized MCECs (iMCECs) were treated with IL-1ß, with and without pcDNA3.1_DRD1. Primary MCECs (pMCECs) were exposed to IL-1ß, with and without DRD1 agonist (A68930). Cell proliferation was quantified using the Cell Counting Kit-8 (CCK-8) assay and immunofluorescence staining for Ki-67 and p63. Expression levels of NOD-like receptor protein 3 (NLRP3), IL-1ß, and IL-6 were assessed. To establish a corneal injury model in mice, a 2-mm superficial keratectomy was performed. Either 0.1% A68930 or PBS was topically administered three times daily to the injured eyes for up to 5 days post-injury. Immunofluorescence analysis was employed to evaluate the expression of Ki-67, p63, and CD45 in mouse corneas. Western blotting and real-time quantitative PCR were utilized for quantitative analysis of DRD1, NLRP3, IL-1ß, and IL-6 in mouse corneas. Corneal epithelial regeneration was monitored through fluorescein sodium staining for a duration of up to 5 days following the injury. Results: Overexpression of DRD1 and A68930 promoted MCEC proliferation and suppressed the expression of NLRP3, IL-1ß, and IL-6 in vitro. Topical application of the 0.1% A68930 following mechanical corneal injury in mice led to increased Ki-67 and p63 expression compared to PBS treatment. Furthermore, topical administration of the 0.1% A68930 reduced the expression of CD45, NLRP3, IL-1ß, and IL-6. Analysis with fluorescein sodium indicated accelerated corneal epithelial regeneration in the 0.1% A68930 treatment group. Conclusions: DRD1 treatment counteracts NLRP3-associated inflammation and facilitates epithelial repair of corneal injury.


Subject(s)
Corneal Injuries , Interleukin-6 , Animals , Mice , Fluorescein , Ki-67 Antigen , NLR Family, Pyrin Domain-Containing 3 Protein , Corneal Injuries/drug therapy , Cornea , Inflammation , Interleukin-1beta , NLR Proteins
13.
J Pharmacol Exp Ther ; 388(2): 526-535, 2024 01 17.
Article in English | MEDLINE | ID: mdl-37977813

ABSTRACT

Sulfur mustard (SM) is a highly reactive organic chemical has been used as a chemical warfare agent and terrorist threat since World War I. The cornea is highly sensitive to SM toxicity and exposure to low vapor doses can cause incapacitating acute injuries. Exposure to higher doses can elicit persistent secondary keratopathies that cause reduced quality of life and impaired or lost vision. Despite a century of research, there are no specific treatments for acute or persistent ocular SM injuries. SM cytotoxicity emerges, in part, through DNA alkylation and double-strand breaks (DSBs). Because DSBs can naturally be repaired by DNA damage response pathways with low efficiency, we hypothesized that enhancing the homologous recombination pathway could pose a novel approach to mitigate SM injury. Here, we demonstrate that a dilithium salt of adenosine diphosphoribose (INV-102) increases protein levels of p53 and Sirtuin 6, upregulates transcription of BRCA1/2, enhances γH2AX focus formation, and promotes assembly of repair complexes at DSBs. Based on in vitro evidence showing INV-102 enhancement of DNA damage response through both p53-dependent and p53-independent pathways, we next tested INV-102 in a rabbit preclinical model of corneal injury. In vivo studies demonstrate a marked reduction in the incidence and severity of secondary keratopathies in INV-102-treated eyes compared with vehicle-treated eyes when treatment was started 24 hours after SM vapor exposure. These results suggest DNA repair mechanisms are a viable therapeutic target for SM injury and suggest topical treatment with INV-102 is a promising approach for SM as well as other conditions associated with DSBs. SIGNIFICANCE STATEMENT: Sulfur mustard gas corneal injury currently has no therapeutic treatment. This study aims to show the therapeutic potential of activating the body's natural DNA damage response to activate tissue repair.


Subject(s)
Chemical Warfare Agents , Corneal Injuries , Mustard Gas , Animals , Rabbits , Mustard Gas/toxicity , BRCA1 Protein , Tumor Suppressor Protein p53 , Quality of Life , BRCA2 Protein , Corneal Injuries/chemically induced , Corneal Injuries/drug therapy , Chemical Warfare Agents/toxicity , DNA Repair , DNA Damage
14.
J Pharmacol Exp Ther ; 388(2): 484-494, 2024 01 17.
Article in English | MEDLINE | ID: mdl-37474260

ABSTRACT

Sulfur mustard (SM), a vesicating agent first used during World War I, remains a potent threat as a chemical weapon to cause intentional/accidental chemical emergencies. Eyes are extremely susceptible to SM toxicity. Nitrogen mustard (NM), a bifunctional alkylating agent and potent analog of SM, is used in laboratories to study mustard vesicant-induced ocular toxicity. Previously, we showed that SM-/NM-induced injuries (in vivo and ex vivo rabbit corneas) are reversed upon treatment with dexamethasone (DEX), a US Food and Drug Administration-approved, steroidal anti-inflammatory drug. Here, we optimized NM injuries in ex vivo human corneas and assessed DEX efficacy. For injury optimization, one cornea (randomly selected from paired eyes) was exposed to NM: 100 nmoles for 2 hours or 4 hours, and 200 nmoles for 2 hours, and the other cornea served as a control. Injuries were assessed 24 hours post NM-exposure. NM 100 nmoles exposure for 2 hours was found to cause optimal corneal injury (epithelial thinning [∼69%]; epithelial-stromal separation [6-fold increase]). In protein arrays studies, 24 proteins displayed ≥40% change in their expression in NM exposed corneas compared with controls. DEX administration initiated 2 hours post NM exposure and every 8 hours thereafter until 24 hours post-exposure reversed NM-induced corneal epithelial-stromal separation [2-fold decrease]). Of the 24 proteins dysregulated upon NM exposure, six proteins (delta-like canonical Notch ligand 1, FGFbasic, CD54, CCL7, endostatin, receptor tyrosine-protein kinase erbB-4) associated with angiogenesis, immune/inflammatory responses, and cell differentiation/proliferation, showed significant reversal upon DEX treatment (Student's t test; P ≤ 0.05). Complementing our animal model studies, DEX was shown to mitigate vesicant-induced toxicities in ex vivo human corneas. SIGNIFICANCE STATEMENT: Nitrogen mustard (NM) exposure-induced injuries were optimized in an ex vivo human cornea culture model and studies were carried out at 24 h post 100 nmoles NM exposure. Dexamethasone (DEX) administration (started 2 h post NM exposure and every 8 h thereafter) reversed NM-induced corneal injuries. Molecular mediators of DEX action were associated with angiogenesis, immune/inflammatory responses, and cell differentiation/proliferation, indicating DEX aids wound healing via reversing vesicant-induced neovascularization (delta-like canonical Notch ligand 1 and FGF basic) and leukocyte infiltration (CD54 and CCL7).


Subject(s)
Chemical Warfare Agents , Corneal Injuries , Mustard Gas , Animals , Humans , Rabbits , Mechlorethamine/toxicity , Irritants/adverse effects , Chemical Warfare Agents/toxicity , Ligands , Cornea , Corneal Injuries/chemically induced , Corneal Injuries/drug therapy , Corneal Injuries/metabolism , Mustard Gas/toxicity , Dexamethasone/pharmacology , Dexamethasone/therapeutic use
15.
Exp Eye Res ; 238: 109739, 2024 01.
Article in English | MEDLINE | ID: mdl-38042515

ABSTRACT

Corneal alkali burns often occur in industrial production and daily life, combined with infection, and may cause severe eye disease. Oxidative stress and neovascularization (NV) are important factors leading to a poor prognosis. URP20 is an antimicrobial peptide that has been proven to treat bacterial keratitis in rats through antibacterial and anti-NV effects. Therefore, in this study, the protective effect and influence mechanism of URP20 were explored in a rat model of alkali burn together with pathogenic bacteria (Staphylococcus aureus and Escherichia coli) infection. In addition, human umbilical vein endothelial cells (HUVECs) and human corneal epithelial cells (HCECs) were selected to verify the effects of URP20 on vascularization and oxidative stress. The results showed that URP20 treatment could protect corneal tissue, reduce corneal turbidity, and reduce the NV pathological score. Furthermore, URP20 significantly inhibited the expression of the vascularization marker proteins VEGFR2 and CD31. URP20 also reduced the migration ability of HUVECs. In terms of oxidative stress, URP20 significantly upregulated SOD and GSH contents in corneal tissue and HCECs (treated with 200 µM H2O2) and promoted the expression of the antioxidant protein Nrf2/HO-1. At the same time, MDA and ROS levels were also inhibited. In conclusion, URP20 could improve corneal injury combined with bacterial infection in rats caused by alkali burns through antibacterial, anti-NV, and antioxidant activities.


Subject(s)
Bacterial Infections , Burns, Chemical , Corneal Injuries , Corneal Neovascularization , Eye Burns , Rats , Humans , Animals , Burns, Chemical/complications , Burns, Chemical/drug therapy , Burns, Chemical/metabolism , Corneal Neovascularization/metabolism , Antioxidants/pharmacology , Antioxidants/therapeutic use , Hydrogen Peroxide/pharmacology , Neovascularization, Pathologic/metabolism , Corneal Injuries/drug therapy , Human Umbilical Vein Endothelial Cells , Anti-Bacterial Agents/therapeutic use , Anti-Bacterial Agents/pharmacology , Eye Burns/chemically induced , Eye Burns/drug therapy , Eye Burns/pathology , Disease Models, Animal , Alkalies/toxicity
16.
O.F.I.L ; 34(1): 73-77, 2024. tab, graf
Article in Spanish | IBECS | ID: ibc-232626

ABSTRACT

Objetivo: Los pacientes con defectos epiteliales corneales persistentes son, a menudo, refractarios a los tratamientos convencionales. La insulina tópica surge como una posible alternativa, habiendo demostrado su efectividad y seguridad. Sin embargo, en la bibliografía actual disponible, hay una falta de estudios de estabilidad. El objetivo del presente trabajo fue evaluar la estabilidad fisicoquímica y microbiológica de un colirio de insulina 10 UI/ml durante 28 días. Método: Estudio de estabilidad fisicoquímica y microbiológica. Se elaboraron 2 lotes (A y B) de colirios de insulina 10 UI/ml, manteniendo el lote B cerrado hasta el día 15. Las variables fisicoquímicas analizadas fueron la concentración de insulina mediante inmunoanálisis quimioluminiscente, pH y osmolaridad. El estudio microbiológico se realizó mediante pruebas de esterilidad mientras que el estudio descriptivo se analizó mediante visualización directa. Resultados: No se observaron cambios significativos de concentración (±10%) en los colirios a excepción de 2 valores en una de las muestras del lote B. El pH y la osmolaridad se mantuvieron dentro de los rangos fisiológicos del ojo. No se observó crecimiento microbiano ni cambios en las características organolépticas. Conclusiones: Se puede considerar al colirio de insulina 10 UI/ml estable durante 28 días en refrigeración manteniendo el frasco abierto desde el día de su elaboración.(AU)


Objective: Patients with persistent corneal epithelial defects are often refractory to conventional treatments. Topical insulin emerges as a possible alternative of proven effectiveness and safety. However, in the current available literature, there is a lack of stability studies. The main objective of this study was to evaluate the physicochemical and microbiological stability of a 10 IU/ml insulin eye drop for 28 days. Methods: Physicochemical and microbiological stability study. Two batches (A and B) of 10 IU/ml insulin eye drops were prepared, keeping batch B closed until day 15. The physicochemical variables analysed were insulin concentration by chemiluminescent immunoassay, pH and osmolarity. The microbiological study was performed by sterility tests while the descriptive study was assessed by direct visualization. Results: No significant concentration changes (±10%) were observed in the eye drops except for 2 values in one of the samples from batch B. The pH and osmolarity remained within the physiological ranges of the eye. No microbiological growth or changes in organoleptic characteristics were observed. Conclusions: Insulin 10 UI/ml eye drops can be considered stable for 28 days under refrigeration if the bottle is kept open from the day of its preparation.(AU)


Subject(s)
Humans , Male , Female , Ophthalmic Solutions , Chemistry, Physical , Insulin/administration & dosage , Administration, Ophthalmic , Corneal Injuries/drug therapy , Lubricant Eye Drops
17.
Invest Ophthalmol Vis Sci ; 64(14): 1, 2023 11 01.
Article in English | MEDLINE | ID: mdl-37910094

ABSTRACT

Purpose: Regulation of inflammation is critical for achieving favorable outcomes in wound healing. In this study, we determine the functional role and mechanism of action of IL-11, an immunomodulatory cytokine, in regulating inflammatory response at the ocular surface. Methods: Corneal injury was induced by mechanical removal of the epithelium and anterior stroma using an AlgerBrush II. Transcript and protein levels of IL-11 in injured cornea were quantified using real-time PCR and ELISA analysis. Corneal inflammation was assessed by measuring frequencies of total CD45+ inflammatory cells, CD11b+Ly6G+ polymorphonuclear cells (neutrophils), and CD11b+Ly6G- mononuclear cells (macrophages, monocytes) at the ocular surface using flow cytometry. To assess the effect of IL-11 on innate immune cell function, cell activation marker and inflammatory cytokines including major histocompatibility complex (MHC) class II, myeloperoxidase (MPO), TNFα, and inducible nitric oxide synthase (iNOS) were measured following recombinant IL-11 treatment (1 µg/mL). Injured corneas were topically treated with IL-11 (1 µg/mL), and wound healing was evaluated using corneal fluorescein staining. Results: Corneal injury resulted in increased levels of IL-11 in the cornea, particularly in the stroma. Neutrophils and CD11b+ mononuclear cells (macrophages, monocytes) substantially expressed IL-11 receptor. Interestingly, IL-11 significantly downregulated the activation of immune cells, as evidenced by the lower expression of MHC II and TNFα by CD11b+ mononuclear cells and lower levels of MPO by neutrophils. Topical administration of IL-11 to injured corneas led to faster wound healing and better retention of tissue architecture. Conclusions: Our findings demonstrate IL-11 is a key modulator of ocular surface inflammation and provide novel evidence of IL-11 as a potential therapeutic to control inflammatory damage and accelerate wound repair following injury.


Subject(s)
Corneal Injuries , Interleukin-11 , Cornea , Corneal Injuries/drug therapy , Cytokines , Inflammation , Tumor Necrosis Factor-alpha , Animals , Mice
18.
Biomolecules ; 13(11)2023 10 24.
Article in English | MEDLINE | ID: mdl-38002252

ABSTRACT

Corneal scarring is a leading cause of blindness. Currently, there is no treatment to prevent and/or reduce corneal scar formation under pathological conditions. Our previous data showed that the NBL1 protein, also termed the DAN Family BMP (Bone morphogenetic protein) Antagonist, was highly expressed in corneal stromal cells upon wounding. Here, we examined the function of NBL1 in corneal wound healing. Mouse corneas were mechanically wounded, followed by a 2-week treatment using NBL1. Wounded corneas treated with vehicle or an Fc tag served as controls. Compared with the controls, NBL1 treatment facilitated wound re-epithelialization, partially restored the stromal thickness, and significantly reduced corneal scar formation. NBL1 treatment did not decrease immune cell infiltration, indicating that the anti-scarring effect was not dependent on immune suppression. We further examined the anti-fibrotic effect of NBL1 on human corneas. Pairs of human corneas were induced to form myofibroblasts (a key player in fibrosis and scarring) upon wounding and incubation in a medium containing TGF-ß1. The OS corneas were treated with Fc as a control, and the OD corneas were treated with NBL1. Compared with the control, human corneas treated with NBL1 had significantly fewer myofibroblasts, which was consistent with these mouse data. A further study revealed that NBL1 treatment inhibited BMP canonical (phospho-Smad1/5) and no-canonical (phospho-p38) pathways in human corneas. Data show that NBL1 reduced corneal fibrosis and scar formation in mice and cultured human corneas. The underlying molecular mechanism is not certain because both anti-fibrotic Smad1/5 and pro-fibrotic p38 pathways were inhibited upon NBL1 treatment. Whether the p38 pathway dominates the Smad1/5 pathway during corneal fibrosis, leading to the anti-fibrotic effect of NBL1, needs further investigation.


Subject(s)
Corneal Diseases , Corneal Injuries , Humans , Animals , Mice , Cicatrix/pathology , Corneal Diseases/metabolism , Cornea/pathology , Corneal Injuries/drug therapy , Corneal Injuries/metabolism , Corneal Injuries/pathology , Fibrosis
19.
Mol Pharm ; 20(11): 5937-5946, 2023 11 06.
Article in English | MEDLINE | ID: mdl-37871179

ABSTRACT

Rapid corneal re-epithelialization is important for corneal wound healing. Corneal epithelial cell motility and oxidative stress are important targets for therapeutic intervention. In this study, we covalently conjugated the antioxidant caffeic acid (CA) with a bioactive peptide sequence (PHSRN) to generate a CA-PHSRN amphiphile, which was formulated into nanoparticular eye drops with an average size of 43.21 ± 16 nm. CA-PHSRN caused minimal cytotoxicity against human corneal epithelial cells (HCECs) and RAW264.7 cells, exhibited an excellent free radical scavenging ability, and remarkably attenuated reactive oxygen species (ROS) levels in H2O2-stimulated HCECs. The antioxidant and anti-inflammatory activities of CA-PHSRN were assessed in lipopolysaccharide (LPS)-stimulated RAW264.7 cells. The results show that CA-PHSRN treatment effectively prevented LPS-induced DNA damage and significantly reduced the levels of LPS-induced pro-inflammatory cytochemokines (i.e., iNOS, NO, TNF-α, IL-6, and COX-2) in a dose-dependent manner. Moreover, using a rabbit corneal epithelial ex vivo migration assay, we demonstrated that the proposed CA-PHSRN accelerated corneal epithelial cell migration and exhibited high ocular tolerance and ocular bioavailability after topical instillation. Taken together, the proposed CA-PHSRN nanoparticular eye drops are a promising therapeutic formulation for the treatment of corneal epithelial injury.


Subject(s)
Corneal Injuries , Epithelium, Corneal , Animals , Humans , Rabbits , Antioxidants/pharmacology , Fibronectins , Hydrogen Peroxide/pharmacology , Lipopolysaccharides/pharmacology , Peptide Fragments , Corneal Injuries/drug therapy , Peptides/pharmacology , Ophthalmic Solutions/pharmacology
20.
Ocul Surf ; 30: 92-103, 2023 Oct.
Article in English | MEDLINE | ID: mdl-37690516

ABSTRACT

PURPOSE: To test long-term ocular toxicity and analgesic/anti-inflammatory efficacy of two novel ocular formulations of neurokinin 1 receptor (NK1R) antagonist Aprepitant. METHODS: for toxicity studies, two Aprepitant formulations (X and Y) were tested on C57BL/6 N mice. Gold standards were 0.4% Oxybuprocaine, 0.1% Diclofenac, or saline. For efficacy studies, C57BL/6 N mice underwent corneal alkali burn, and then received Aprepitant formulation X, Dexamethasone or saline. Eye-drops were applied 3 times/day for 90 days (toxicity) and 14 days (efficacy). Stromal opacity, corneal epithelial damage, nociception and sensitivity were assessed in vivo. The eye-wiping test and corneal sensitivity were assessed to evaluate analgesic efficacy and nerve function. At the end of the experiments mice were euthanized, and corneas were dissected for immunohistochemistry and RT-PCR analyses. RESULTS: In normal mice, formulation X was not toxic when topically administered for 90 days. Formulation Y was associated with increased leukocyte infiltration in the cornea (p < 0.001). X1 and X2 formulations significantly reduced corneal pain, as Diclofenac and Oxybuprocaine, but did not reduce corneal sensitivity. Formulation Y, instead, was not analgesic at any time point. In the alkali burn model, X1 and X2 formulation enhanced epithelial damage recovery, and reduced inflammation both at day 7 and 14. Moreover, formulation X showed a stronger analgesic effect when compared to the saline and Dexamethasone groups (p < 0.01). Finally, formulation X1 and X2 restored corneal sensitivity by promoting corneal nerve regeneration. CONCLUSIONS: Aprepitant X formulation is a promising candidate for the treatment of pain associated with inflammation of the ocular surface.


Subject(s)
Burns, Chemical , Corneal Injuries , Mice , Animals , Aprepitant , Burns, Chemical/drug therapy , Diclofenac , Disease Models, Animal , Mice, Inbred C57BL , Inflammation , Cornea , Pain , Corneal Injuries/drug therapy , Corneal Injuries/complications , Dexamethasone , Analgesics
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