EYE1118
EYE1118 is an orally active, photoactivatable VEGFR2 inhibitor without acute hepatotoxicity. EYE1118 mediates light-enhanced inhibition via azide-functionalized receptor binding, and can utilize light-guided targeting to regulate its biodistribution in vivo. EYE1118 effectively inhibits angiogenesis, endothelial cell migration, VEGF-induced retinal leakage, and the size of choroidal neovascular lesions. EYE1118 has been applied in studies related to age-related macular degeneration, diabetic retinopathy, and choroidal neovascularization.
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- CAS. Nr.: 3037217-73-2
- Formel: C23H25ClN8O3
- Molecular Weight:496.95
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Speicherung:
Please store the product under the recommended conditions in the Certificate of Analysis.
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Biologische Aktivität
Beschreibung
IC50 & Target
[1]|
VEGFR2 |
In Vitro
EYE1118 potently inhibits VEGFR2 in a cell-free kinase assay, with 2.7-fold increased potency (IC50=9 nM) upon illumination compared to dark conditions (IC50=24 nM)[1].
EYE1118 (0.1-100 μM; 24 h) exhibits reduced cytotoxicity relative to vorolanib (HY-109019) in NIH/3T3 fibroblasts, with significantly lower toxicity at 10 μM and only marginal toxicity at 100 μM[1].
EYE1118 (1 h inhibitor incubation; 4 h VEGF stimulation) robustly inhibits VEGFR2 signaling in VEGFR2/NFAT reporter HEK293 cells, with significant light-dependent potentiation of activity under cold white and green LED (11.85-fold increase with green light, IC50 = 4.86 nM), but no effect under red LED light[1].
EYE1118 (0.1 nM-10 μM; 10 min pre-incubation; 12 h total incubation) potently inhibits HRMEC tubulogenesis, with 3.84-fold increased potency (IC50 = 134 nM) upon cold white LED exposure compared to dark conditions (IC50 = 515 nM), and is significantly more potent than vorolanib in both light and dark conditions[1].
MedChemExpress (MCE) has not independently confirmed the accuracy of these methods. They are for reference only. Further protocols information, click here.
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Cell Line:NIH/3T3 fibroblasts
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Concentration:0.1-100 μM
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Incubation Time:24 h
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Result:Showed lower cytotoxicity against NIH/3T3 cells than its parental compound vorolanib, with this difference reaching statistical significance at 10 μM.
Exhibited only marginal toxicity at 100 μM relative to the vehicle control.
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Cell Line:VEGFR2/NFAT Reporter - HEK293
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Concentration:1-100 nM
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Incubation Time:1 h (inhibitor incubation); 10 min (VEGF stimulation)
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Result:Did not substantially inhibit VEGF-induced phosphorylation of VEGFR2 at Y951 or Y1175 in the dark, even at 100 nM.
Significantly suppressed VEGF-induced phosphorylation of VEGFR2 at Y951 and Y1175 upon cold white LED exposure, with phosphorylation reduced to baseline levels at 100 nM and statistically significantly reduced relative to VEGF alone at 50 nM.
Left total VEGFR2 and β-actin levels unchanged, confirming effects were due to inhibited phosphorylation, not receptor degradation or reduced loading.
In Vivo
EYE1118 (1 mg/kg; i.g.; daily; 3 days) starting 2 days before CNV induction significantly reduces CNV lesion area in C57BL/6JRj mice, with a very highly significant effect observed by day 5 post-induction[1].
EYE1118 (40 mg/kg; i.g.; single dose) does not induce acute hepatotoxicity in Balb/cJRj mice under standard or dim red light conditions[1].
MedChemExpress (MCE) has not independently confirmed the accuracy of these methods. They are for reference only.
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Animal Model:Long Evans (male, 200-250 g, intravitreal injection of 50 ng/eye human VEGF-165)[1]
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Dosage:1 mg/kg
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Administration:i.g.; daily; 3 days
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Result:Significantly reduced VEGF-induced retinal vascular permeability, with permeability values not significantly different from control eyes and significantly lower than VEGF-only eyes (p=0.0019).
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Animal Model:C57BL/6JRj (adult, 9 weeks old, laser-induced Bruch's membrane disruption)[1]
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Dosage:1 mg/kg
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Administration:i.g.; daily; 3 days
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Result:Reduced CNV lesion area very highly significantly relative to vehicle controls by day 5 post-induction (p<0.001).
Remained significantly reduced compared to vehicle controls on day 7 post-induction.
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Animal Model:Balb/cJRj (male and female, 6-10 weeks old)[1]
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Dosage:40 mg/kg
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Administration:i.g.; single dose
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Result:Showed no evidence of liver architecture damage, necrosis, cellular stress, abnormal glycogen storage, or fibrosis via histopathological analysis, regardless of light condition.
Chemical Information
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CAS. Nr. 3037217-73-2
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Molecular Weight 496.95
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Formel C23H25ClN8O3
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SMILES
CC1=C(C(N[C@H]2CCN(C(N(C)C)=O)C2)=O)C(C)=C(/C=C3C(NC4=CC(Cl)=C(N=[N+]=[N-])C=C4\3)=O)N1
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Versand
Room temperature in continental US; may vary elsewhere.
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Speicherung
Please store the product under the recommended conditions in the Certificate of Analysis.
Protokoll
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Scratch/Wound-Healing Migration Assay
The scratch/wound-healing migration assay measures collective migration of adherent cells into an experimentally created cell-free gap in a confluent monolayer. The readout is generated by imaging the gap immediately after scratching and at later time points, then quantifying reduction in wound area, wound width, or percentage closure as cells move into the denuded region. Gap closure reflects cell migration but may also include cell proliferation, so interpretation should distinguish migration-focused conditions from proliferation-driven closure when possible, such as by using short assay windows, serum-controlled conditions, cell counting, or proliferation controls reported in published protocols.
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Human pluripotent stem cell endothelial-cell differentiation
Human pluripotent stem cell endothelial differentiation is based on stepwise developmental patterning: early activation of WNT/GSK3β inhibition promotes mesodermal or vascular progenitor entry, followed by endothelial specification using VEGF-related signaling, BMP4, FGF2, Notch modulation, or cAMP depending on the published protocol. Endothelial differentiation is read out by acquisition of CD31, CD34, VE-cadherin/CD144, KDR/VEGFR2, vWF, Tie2, NOS3, acetylated LDL uptake, tube/network formation, barrier function, and in vivo vessel-forming capacity where tested.
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Vascular/Branching Fractal Analysis
Vascular/branching fractal analysis quantifies the geometric complexity of vessel trees or vascular networks from segmented 2D images, commonly by converting vessels into binary and/or skeletonized maps and estimating fractal dimension using box-counting or related approaches. Fractal dimension is interpreted as an image-derived readout of vascular branching complexity, space filling, or density, and has been applied to retinal photographs, fluorescein angiography, OCT angiography, capillary perfusion maps, and in vitro Matrigel angiogenesis networks. The assay readout is generated from vessel-positive pixels after image preprocessing, vessel segmentation, binarization, and optional skeletonization; reported outputs include fractal dimension, vessel density, branchpoint density, endpoint density, vessel length density, tortuosity, and generation-based branching metrics when VESGEN-style analysis is used. The biological interpretation is limited to quantitative vascular patterning and s
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Cell migration
Cell migration is a method that plays an important role in wound healing, cell differentiation, embryonic development, etc.
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Neural Crest/Neuronal Cell Migration Explant Assay
Neural crest (NC) and neuronal cell migration explant assays are in vitro systems in which neural tube-derived tissues are cultured to allow premigratory or newly emigrated neural crest cells to undergo epithelial-to-mesenchymal transition (EMT), migrate away from the explant, and form a measurable radial outgrowth that reflects migratory capacity and environmental responsiveness. These assays typically quantify migration by measuring the expansion of cell outgrowth from neural tube or neural plate border explants over time, often comparing early and later timepoints to derive a migration index such as a radius ratio, which reflects net cell dispersal from the explant core. Neural tube explant cultures preserve key aspects of neural crest behavior, including EMT, migration, and early differentiation, making them suitable for assessing intrinsic migratory ability and extrinsic cue dependence. However, studies emphasize that migratory outgrowth from neural tube explants may include non-n
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Chemotaxis Gradient Chamber Assay 1
The chemotaxis gradient chamber assay is based on the principle of observing directional cell migration in response to a stable, linear or quasi-linear concentration gradient of a chemoattractant formed between two fluid reservoirs separated by a narrow observation chamber. Cells placed within the chamber respond to the gradient by polarized movement toward higher chemoattractant concentrations, allowing quantification of chemotactic behavior in real time under microscopy. The classic Zigmond chamber design enables simultaneous visualization of gradient formation and individual cell trajectories, making it suitable for studying leukocyte chemotaxis and other motile cell types in vitro.
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Under-Agarose Cell Migration Assay
The under-agarose cell migration assay is a classical in vitro chemotaxis method designed to evaluate directed cell movement through a semi-solid agarose matrix toward soluble chemoattractant gradients, enabling visualization and quantification of leukocyte or motile cell migration in a confined 2D-like environment. In this system, cells and chemoattractants are placed in separate wells cut into an agarose gel, allowing diffusion-driven gradient formation that guides directional migration, which is typically assessed by measuring migration distance, cell morphology changes, and accumulation toward the chemoattractant source. This assay has been widely used to study neutrophil and leukocyte chemotaxis as a simple alternative to filter-based migration systems and allows direct microscopic observation of migrating cells under near-physiological confinement conditions.
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Transwell/Boyden Chamber Migration Assay
The Transwell/Boyden chamber migration assay measures cell movement through a porous membrane separating an upper and lower chamber, usually after a chemoattractant gradient is established by placing cells in the upper chamber and chemoattractant-containing medium in the lower chamber. The readout is generated by quantifying cells that traverse the membrane and appear on the lower membrane surface or in the lower chamber, depending on whether the cell type is adherent or non-adherent. This assay reflects chemotactic or haptotactic migration rather than matrix invasion unless an extracellular-matrix barrier is added to the membrane.
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Endothelial Tube Formation Assay
Endothelial tube formation assay evaluates the ability of endothelial cells to attach, migrate, align, and organize into capillary-like networks when cultured on gelled basement membrane extract or Matrigel; the readout is the morphology and quantity of tube-like networks, which reflects an in vitro endothelial morphogenesis step related to angiogenesis. Basement membrane extract/Matrigel provides laminin-rich extracellular matrix cues that support endothelial differentiation into capillary-like structures, but it can contain biologically active growth factors, so growth-factor-reduced matrix is preferred when testing defined angiogenic stimulators or inhibitors.
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3D Collagen/Hydrogel Matrix Migration Assay
The 3D collagen/hydrogel matrix migration assay is based on embedding cells within or on top of a fibrillar collagen type I-rich three-dimensional matrix to model in vivo-like extracellular matrix (ECM) architecture, enabling analysis of cell migration through a physically and biochemically relevant scaffold. In contrast to 2D migration systems, cells in 3D matrices interact with fibrillar collagen networks, requiring coordinated adhesion remodeling and proteolytic or non-proteolytic deformation mechanisms to move through confined spaces, thereby providing a more physiologically relevant readout of invasive and migratory behavior in tissue-like environments. Cell movement in 3D collagen matrices is typically quantified by tracking single-cell trajectories, invasion depth, or matrix penetration over time, reflecting combined effects of cytoskeletal dynamics, cell-ECM adhesion turnover, and ECM remodeling. These systems are widely used to study tumor cell invasion and stromal cell motili
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Hepatotoxicity Study
This protocol evaluates hepatotoxicity using complementary in vivo mouse APAP acute liver injury and in vitro hepatocyte-based cytotoxicity readouts. In vivo APAP injury is assessed by serum ALT/AST, liver histology, hepatic glutathione, protein adducts, necrosis, inflammation, and regeneration-related endpoints. In vitro hepatotoxicity is assessed by loss of viability, leakage of ALT/AST/LDH, oxidative-stress markers, mitochondrial function, nuclear morphology, intracellular calcium, and high-content imaging endpoints.
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Cell-Exclusion Zone Migration Assay
The Cell-Exclusion Zone (CEZ) migration assay is an in vitro 2D cell migration method in which a defined cell-free area is created using removable physical barriers such as silicone stoppers, allowing cells to be seeded around the barrier and subsequently migrate into the cleared zone after barrier removal. This approach enables quantification of collective cell migration by monitoring repopulation of the initially cell-free region over time using microscopy-based imaging. Compared with scratch-based wound healing assays, barrier-based exclusion methods are designed to avoid mechanical damage to the extracellular matrix and reduce injury-induced effects on boundary cells, thereby improving interpretability of migration behavior in vitro. The assay readout is typically the progressive reduction in the cell-free area or the number of cells invading the exclusion zone, reflecting coordinated cell motility relevant to physiological processes such as wound healing, epithelial repair, and ca
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Chemotaxis Gradient Chamber Assay 2
Chemotaxis gradient chamber assays measure directional cell migration in response to a soluble chemical gradient by imaging cells as they move across a defined observation region; the readout is generated from time-lapse cell trajectories, displacement toward the gradient, forward migration index, trajectory plots, rose/polar plots, and statistical tests of non-random directionality. The Dunn chamber is a direct-viewing glass chamber in which cells migrate across a bridge between control and chemoattractant wells, allowing observation of cells in a linear concentration gradient; related direct-viewing formats include the Insall chamber, which supports defined unidirectional gradients and high numerical-aperture microscopy, and the μ-Slide Chemotaxis chamber, which supports long-term live-cell imaging and gradient characterization with fluorescent dye.
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Endothelial Cell Migration/Angiogenic Sprouting Assay
Endothelial cell migration and angiogenic sprouting assays are in vitro (and partially ex vivo-adapted) functional models that quantify the ability of endothelial cells to undergo coordinated migration, extracellular matrix invasion, and multicellular organization into capillary-like sprouts in response to pro-angiogenic stimuli such as VEGF, bFGF, or conditioned microenvironments. These assays are used to model early angiogenic events including tip-cell formation, directional migration, and lumen-like sprout extension, which collectively reflect angiogenic activation and vascular morphogenesis processes observed in vivo.
Reinheit & Dokumentation
Verweise
Calculators
Konzentration (Stammlösung) × Volumen (Stammlösung) = Konzentration (Ziellösung) × Volumen (Ziellösung)