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Tim U Krohne

Publications and source records attributed to Tim U Krohne.

6 recordsLinked to original sources

Geldanamycin treatment reduces neovascularization in a mouse model of retinopathy of prematurity.

BACKGROUND: The benzoquinoid antibiotic 17-allylaminogeldanamycin (17-AAG) inhibits the Ras/Raf/MEK and PI3-Kinase signaling pathways and down-regulates vascular endothelial factor expression. Here we use a mouse model of oxygen-induced retinopathy to investigate the effect of 17-AAG on retinal neovascularization and vascular recovery. MATERIAL AND METHODS: C57BL/6 mice were exposed to 75% oxygen from postnatal day 7 (P7) to P12 and recovered in room air thereafter. Beginning with P12 mice were treated for 5 days by daily IP injection of 17-AAG (12.5 mg/kg body weight) micro dispersed in an emulsion of 4% Lipoid EPC, 5% sucrose, and 0.9% NaCl or Wortmannin (100 microg/kg body weight). On P17, the retinal vascular and avascular area, neovascular blood vessel tufts, and main vessel tortuosity were quantified after perfusion of the mice with FITC-Concanavalin A. The mRNA levels of VEGF, angiopoietin 1 and 2 were quantified by real-time RT-PCR. RESULTS: After 17-AAG treatment, a reduction of the vascular area was measured from 37.8 +/- 5.2% to 30.8 +/- 5.7% (P = 0.005), and an increase of the avascular area from 10.8 +/- 5.6% to 20.3 +/- 6.6% (P = 0.001). No alteration of the vascular pattern, the number of blood vessel tufts and the main vessel tortuosity was achieved by treatment with the PI-3 kinase inhibitor Wortmannin. After treatment with 17-AAG, the numbers of tufts (127.9 33.2) were different from the controls (173.7 +/- 55.2, P = 0.035), but not the main vessel tortuosity. No significant change in VEGF and angiopoietin 1 mRNA expression could be achieved with either of the treatments. Wortmannin treatment also did not change the angiopoietin 2 mRNA level, whereas the level was reduced in 17-AAG treated mice retina from 436-fold (+/- 64) to 200-fold (+/-55) (P = 0.035). CONCLUSION: An IP injection of 17-AAG is able to reduce angioproliferative retinopathy in a mouse model for oxygen-induced retinopathy. Our data indicate that the mechanism does not involve a direct or indirect reduction of the VEGF mRNA level, but acts downstream of the VEGF pathway. Thus, 17-AAG probably does not work by PI-3 kinase inhibition but via the Ras/Raf/MEK pathway. These data underline the potential utility of tyrosine kinase inhibitors in hypoxia induced neovascularization.

Angiopoietin-1↗

Pathological but not physiological retinal neovascularization is altered in TNF-Rp55-receptor-deficient mice.

PURPOSE: Tumor necrosis factor (TNF)-alpha is one of the major cytokines in inflammation and apoptosis. It has been demonstrated that inhibition of TNFalpha can reduce leukocyte adhesion, vascular leakage, and apoptotic endothelial cell death in diabetes. This study was conducted to investigate the effect of TNF-Rp55 and TNF-Rp75 on retinal development in oxygen-induced retinopathy. METHODS: TNF-Rp55- and TNF-Rp75-deficient mice, as well as their respective wild-type controls, were exposed to 75% oxygen from postnatal day P7 to P12. Retinal vascularization was investigated in flatmount preparations after concanavalin A labeling of endothelial cells on days P6, P14, P17, and P20. Retinal mRNA expression of VEGF, angiopoietin-1 and -2, and PDGF was examined at days P14 and P20. RESULTS: TNF-Rp55- and TNF-Rp75-deficient mice demonstrated similar retinal development and vascularization under normoxic conditions. In comparison to wild-type mice, the vascularized area remained stable during the observation time, although the gene expression of VEGF, angiopoietin (ang)-1 and -2, and PDGFb changed. Compared with that in the wild type mice, the relative expression of VEGF, ang-1, ang-2, and PDGFb changed 5.14-, 1.7-, 0.39-, and 0.36-fold in Rp55(-/-) mice and 4.1-, 9.5 x 10(-5)-, 0.12-, and 2975-fold in Rp75(-/-) mice, respectively. Treatment with oxygen resulted in a significantly reduced vascularization in Rp55(-/-) but not Rp75(-/-) mice on postnatal day (P)20. CONCLUSIONS: Inhibition of TNFalpha via TNF-Rp55 can alter retinal development and angiogenesis in a model of oxygen-induced retinopathy. The data underscore the potential effectiveness of TNF-inhibitory treatments as modulators in oxygen-induced retinopathy.

Angiopoietin-1↗

New pharmacologic approaches to therapy for age-related macular degeneration.

As a result of a better understanding of molecular mechanisms, a variety of new pharmacologic treatments have recently been developed for patients with age-related macular degeneration (AMD). Efficacy and tolerability have been demonstrated for drugs targeting vascular endothelial growth factor (VEGF), a key player in the pathogenesis of choroidal neovascularization. Both pegaptanib (anti-VEGF aptamer) and ranibizumab (anti-VEGF antibody fragment), applied at 4- to 6-week intervals into the vitreous, modified the natural course of the disease in phase III clinical studies. Corticosteroids with anti-angiogenic properties also represent a treatment option for wet AMD. Both intravitreal triamcinolone and anecortave acetate, administered juxtasclerally, are currently being pursued. The combination of different treatment strategies and potential synergistic effects offers new perspectives. While photodynamic therapy (PDT) combined with intravitreal triamcinolone is already frequently applied, other combinations (e.g. anti-VEGF drugs with PDT or antifibrotic agents) appear to be attractive alternatives. Pigment epithelium-derived factor represents another potential target, as well as inhibitors of matrix-metallo-proteinases. With the advent of gene therapy, the use of small interfering RNA (siRNA) is also on the horizon. Prophylactic measures are still limited. The combination of vitamins C and E, beta-carotene, and zinc as used in the AREDS (Age-Related Eye Disease Study) reduces risk for conversion from early- to late-stage disease in patients with high-risk features, at least to some extent. Lutein and zeaxanthin dietary supplements for improvement of macular pigment density need to be investigated in future longitudinal trials.

Choroidal Neovascularization↗

Pharmacokinetics and safety of intravitreally delivered etanercept.

BACKGROUND: The anti-inflammatory drug etanercept may be an effective therapeutic agent in diabetic retinopathy. In order to further evaluate its potential, the pharmacokinetics and safety of this drug after intravitreal delivery were investigated. METHODS: After intravitreal administration of etanercept in rabbits, clinical examination, electroretinography (ERG), visually evoked potentials (VEP) and histology were evaluated. The pharmacokinetics and distribution of etanercept were analyzed using fluorescence-coupled protein at 0, 2, 4, and 8 weeks after injection in vitreous, retina, and choroid. RESULTS: No adverse effects and signs of toxicity were found. Etanercept showed peak concentrations after 4 weeks in the retina and choroid. CONCLUSIONS: Intravitreally delivered etanercept is safe and results in high concentrations in the retina and choroid over a long period of time.

Animals↗

[Diabetic maculopathy - classification and therapy].

The current clinical classification into focal, diffuse, and ischaemic maculopathy is useful with respect to pathomechanism and therapy. This review discusses the value of standard therapeutical options as well as the recent surgical and pharmacological approaches.

Clinical Trials as Topic↗

[Pathogenesis of diabetic macular oedema].

Hyperglycaemia causes breakdown of the blood retina barrier leading to formation of macular oedema and consecutive visual loss. Three major mechanisms are involved in barrier breakdown: increased paracellular permeability of vascular endothelium due to disruption of cell junctions, loss of endothelial cell layer integrity due to cell destruction, and increased transcellular transport through the endothelium. This review focuses on the molecular basis of these mechanisms and discusses the role of cytokines and cellular interactions in blood retina barrier breakdown.

Animals↗