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anti vegf a  (Cell Signaling Technology Inc)


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    Structured Review

    Cell Signaling Technology Inc anti vegf a
    Anti Vegf A, supplied by Cell Signaling Technology Inc, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/anti+vegf/pmc12972984-281-32-33
    Average 86 stars, based on 1 article reviews
    anti vegf a - by Bioz Stars, 2026-10
    86/100 stars

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    Related Articles

    other:

    Article Title: Optical Coherence Tomography Biomarkers Predict the Long-Term Restorative Effect of Early Anti-VEGF Treatment on Diabetic Macular Edema.
    Article Snippet: Baseline (n = 71) Median (1st–3rd Quartiles) After 3 Doses of Anti-VEGF (n = 71) Median (1st–3rd Quartiles) p Value 6th Month (n = 71) Median (1st–3rd Quartiles) p Value 12th Month (n = 71) Median (1st–3rd Quartiles) p Value BCVA (logMAR) 0.52 (0.22–0.82) 0.40 (0.15–0.80) 0.001 0.30 (0.15–0.70) <0.001 0.40 (0.22–0.82) 0.001 CST (μ) 406.00(324.00–478.00) 317.00 (275.00–398.00) <0.001 308.00 (259.00–372.00) <0.001 307.00 (269.00–384.00) <0.001 The evaluation of OCT biomarkers during the follow-up period showed that the number of eyes with severe intraretinal cysts decreased significantly after three doses of treatment and at the sixth and 12th months compared to baseline, while the number of eyes with mild cysts increased (p < 0.001).

    Article Title: Silymarin plus Doxorubicin exerts the anti-hepatocellular carcinoma effects via Wnt, apoptosis, autophagy and angiogenesis pathways.
    Article Snippet: Materials and Methods Jo urn al Pr e-p roo f 2.1.Chemicals and antibodies Sigma-Aldrich provided Silymarin to Merck KGaA (cat. no. S0292), whereas Welgene, Inc. supplied FBS, RPMI-1640, and penicillin-streptomycin.

    Article Title: Usnic acid alleviates pulmonary fibrosis in vitro and in vivo by inhibiting the ZNF70-mediated Wnt/β-catenin signaling pathway.
    Article Snippet: Idiopathic pulmonary fibrosis (IPF) is a severe interstitial lung disease with limited therapeutic options.. The pathogenesis of IPF has been reported to be closely associated with the aberrant activation of the Wnt/β-catenin signaling pathway.. Zinc finger protein 70 (ZNF70), a member of the zinc finger protein family, serves as a significant target for the treatment of inflammation-related diseases.

    Article Title: Post-transarterial chemoembolization hypoxia-induced HIF-1α/WNT/β-catenin signaling promotes hepatocellular carcinoma progression via programmed death ligand 1 upregulation.
    Article Snippet: 6 Introduction: Post-transarterial chemoembolization (TACE) hypoxia plays a crucial role in 7 hepatocellular carcinoma (HCC) progression.. However, the effects of post-TACE hypoxia on 8 HCC progression are not fully understood yet.. This study aims to elucidate the effects of post9 TACE hypoxia-induced hypoxia-inducible factor-1α (HIF-1α)/WNT/β-catenin signaling on HCC 10 progression.

    Cell-Signaling:

    Article Title: Zn-Quer Nanozymes Reprogram the Malignant Phenotypic Transformation of Gastric Cancer Cells via Cascade Reactive Oxygen Species Coordination
    Article Snippet: MKN-45 gastric carcinoma cells (Procell, Wuhan, China; cat. CL-0292) and GES-1 gastric epithelial cells (Procell; cat. CL-0563) were obtained from Procell Life Science & Technology Co., Ltd. All cell lines were authenticated by STR profiling and routinely tested negative for mycoplasma contamination. .. Primary antibodies included anti-NOX4 (Cell Signaling Technology, #14347), anti-VEGF (CST, #2463), anti-HIF-1α (CST, #14179), anti-E-cadherin (CST, #14472), anti-N-cadherin (CST, #13116), anti-Vimentin (CST, #5741), anti-BCL-2 (CST, #4223), anti-BAX (CST, #2772), anticleaved Caspase3 (CST, #9664), and β-actin (CST, #4970). .. Secondary antibodies included Alexa Fluor 488 goat antirabbit IgG (H+L) (Thermo Fisher Scientific, cat. A-11008) and Alexa Fluor 488 goat antimouse IgG (H+L) (Thermo Fisher Scientific, cat. A-11001).

    Article Title: Zn-Quer Nanozymes Reprogram the Malignant Phenotypic Transformation of Gastric Cancer Cells via Cascade Reactive Oxygen Species Coordination.
    Article Snippet: MKN-45 gastric carcinoma cells (Procell, Wuhan, China; cat. CL-0292) and GES-1 gastric epithelial cells (Procell; cat. CL-0563) were obtained from Procell Life Science &Technology Co., Ltd. All cell lines were authenticated by STR profiling and routinely tested negative for mycoplasma contamination. .. Primary antibodies included anti-NOX4 (Cell Signaling Technology, #14347), anti-VEGF (CST, #2463), anti-HIF-1α (CST, #14179), anti-E-cadherin (CST, #14472), anti-N-cadherin (CST, #13116), antiVimentin (CST, #5741), anti-BCL-2 (CST, #4223), anti-BAX (CST, #2772), anticleaved Caspase3 (CST, #9664), and β-actin (CST, #4970). .. Secondary antibodies included Alexa Fluor 488 goat antirabbit IgG (H+L) (Thermo Fisher Scientific, cat. A-11008) and Alexa Fluor 488 goat antimouse IgG (H+L) (Thermo Fisher Scientific, cat. A11001).

    Imaging:

    Article Title: Expanded Field OCT Angiography Biomarkers for Predicting Clinically Significant Outcomes in Non-Proliferative Diabetic Retinopathy.
    Article Snippet: Please cite this article as: Xinyi Ding , Francesco Romano , Itika Garg , Jenny Gan , Filippos Vingopoulos , Mauricio D. Garcia , Katherine M. Overbey , Ying Cui , Ying Zhu , Cade F. Bennett , Isabella Stettler , Mridula Shan , Matthew J. Finn , Demetrios G. Vavvas , Deeba Husain , Nimesh A. Patel , Leo A. Kim , John B. Miller , Expanded Field OCT Angiography Biomarkers for Predicting Clinically Significant Outcomes in Non-Proliferative Diabetic Retinopathy, American Journal of Ophthalmology (2024), doi: https://doi.org/10.1016/j.ajo.2024.10.016

    Incubation:

    Article Title: Panaxadiol inhibits the proliferation and immune evasion of esophageal squamous cell carcinoma cells by suppressing HIF-1α/STAT3/PD-L1 pathway.
    Article Snippet: Background: Several malignancies, including esophageal squamous cell carcinoma (ESCC), depend on immune evasion for growth and proliferation.. This study aimed to determine whether panaxadiol can inhibit immune evasion and, hence, have anti-cancer effects in ESCC.. Methods: Human ESCC cell lines (EC109 and EC9706) were exposed to 3 or 10 μM panaxadiol dissolved in dimethyl sulfoxide.



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    Continuous intraosseous administration of SCS prevents glucocorticoid-induced bone degeneration. ( A ) Schematic illustration of the glucocorticoid (GC; MPS)-induced bone deterioration and intraosseous SCS treatment. ( B-D ) Representative H&E staining images of the femur at 6 weeks (B). Magnified views of the cortical bone and trabecular bone in the marrow cavity are shown on the right. Solid arrows indicate normal osteocytes, while hollow arrows indicate empty osteocyte lacunae. Quantification of empty lacunae ratios in cortical bone (C) and trabecular bone (D). n = 6 biological replicates. (Scale bars, 500 μm and 25 μm) ( E-H ) Representative immunofluorescence staining of OPN + mature osteoblasts, osteolectin + osteoprogenitors, and VE-cadherin + endothelial cells (ECs) in femur at 6 weeks (E), and corresponding quantifications (F–H). n = 6 biological replicates. (Scale bars, 100 μm and 20 μm) ( I and J ) Representative flow cytometry plots of capillary subtypes in the femur (I), with quantification of CD45 − Ter119 − CD31 hi Emcn hi ECs (J). n = 6 biological replicates. ( K and L ) Flow cytometry plots showing Sca-1 hi CD31 hi arteriolar ECs (K), and corresponding quantification (L). n = 6 biological replicates. ( M and N ) Representative micro-CT 3D images of the femur (M). Quantitative analysis of percent bone volume (BV/TV) (N). n = 6 biological replicates. (Scale bars, 1.5 mm, 600 μm and 545 μm) ( O and P ) ELISA analysis of <t>VEGF</t> (O) and PDGF-BB (P) levels in bone marrow supernatant and peripheral serum from PBS- and SCS-treated groups at week 6. n = 6 biological replicates. ( Q ) ELISA quantification of the osteogenic factor osteocalcin in peripheral serum at week 6. n = 6 biological replicates. Data are presented as mean ± SD. ∗ p < 0.05, ∗∗ p < 0.01, ∗∗∗ p < 0.001, ∗∗∗∗ p < 0.0001; ns, not significant. Statistical significance was determined using one-way ANOVA with Tukey's post hoc test ( C, D, F, G, H, J, L, N, O, P and Q ).
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    The therapeutic effect of SFB@(HB㊏EUD) on DR. (A) Results of the HET-CAM assay. (B) Body weight and blood glucose levels in different treatment mice groups. (C) The images of mice ocular tissues of FP, FFA and H&E histological evaluation of mice retina at 400×; GCL, (IPL) Inner plexiform layer, (INL) Inner nuclear layer, (OPL), Outer plexiform layer, ONL, (PRL) Photoreceptor layer. (D) Relative <t>VEGF</t> protein expression levels in retinal tissues of mice, as determined by Western blotting and normalized <t>to</t> <t>β-actin.</t> All data were presented as mean ± SD ( n = 6), p values were determined using an unpaired, two-tailed Student's t -test, ** p < 0.01.
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    Image Search Results


    Continuous intraosseous administration of SCS prevents glucocorticoid-induced bone degeneration. ( A ) Schematic illustration of the glucocorticoid (GC; MPS)-induced bone deterioration and intraosseous SCS treatment. ( B-D ) Representative H&E staining images of the femur at 6 weeks (B). Magnified views of the cortical bone and trabecular bone in the marrow cavity are shown on the right. Solid arrows indicate normal osteocytes, while hollow arrows indicate empty osteocyte lacunae. Quantification of empty lacunae ratios in cortical bone (C) and trabecular bone (D). n = 6 biological replicates. (Scale bars, 500 μm and 25 μm) ( E-H ) Representative immunofluorescence staining of OPN + mature osteoblasts, osteolectin + osteoprogenitors, and VE-cadherin + endothelial cells (ECs) in femur at 6 weeks (E), and corresponding quantifications (F–H). n = 6 biological replicates. (Scale bars, 100 μm and 20 μm) ( I and J ) Representative flow cytometry plots of capillary subtypes in the femur (I), with quantification of CD45 − Ter119 − CD31 hi Emcn hi ECs (J). n = 6 biological replicates. ( K and L ) Flow cytometry plots showing Sca-1 hi CD31 hi arteriolar ECs (K), and corresponding quantification (L). n = 6 biological replicates. ( M and N ) Representative micro-CT 3D images of the femur (M). Quantitative analysis of percent bone volume (BV/TV) (N). n = 6 biological replicates. (Scale bars, 1.5 mm, 600 μm and 545 μm) ( O and P ) ELISA analysis of VEGF (O) and PDGF-BB (P) levels in bone marrow supernatant and peripheral serum from PBS- and SCS-treated groups at week 6. n = 6 biological replicates. ( Q ) ELISA quantification of the osteogenic factor osteocalcin in peripheral serum at week 6. n = 6 biological replicates. Data are presented as mean ± SD. ∗ p < 0.05, ∗∗ p < 0.01, ∗∗∗ p < 0.001, ∗∗∗∗ p < 0.0001; ns, not significant. Statistical significance was determined using one-way ANOVA with Tukey's post hoc test ( C, D, F, G, H, J, L, N, O, P and Q ).

    Journal: Bioactive Materials

    Article Title: Sulfated polysaccharide prevents senescent adipocyte-driven osteonecrosis by stem cell fate reprogramming

    doi: 10.1016/j.bioactmat.2025.11.039

    Figure Lengend Snippet: Continuous intraosseous administration of SCS prevents glucocorticoid-induced bone degeneration. ( A ) Schematic illustration of the glucocorticoid (GC; MPS)-induced bone deterioration and intraosseous SCS treatment. ( B-D ) Representative H&E staining images of the femur at 6 weeks (B). Magnified views of the cortical bone and trabecular bone in the marrow cavity are shown on the right. Solid arrows indicate normal osteocytes, while hollow arrows indicate empty osteocyte lacunae. Quantification of empty lacunae ratios in cortical bone (C) and trabecular bone (D). n = 6 biological replicates. (Scale bars, 500 μm and 25 μm) ( E-H ) Representative immunofluorescence staining of OPN + mature osteoblasts, osteolectin + osteoprogenitors, and VE-cadherin + endothelial cells (ECs) in femur at 6 weeks (E), and corresponding quantifications (F–H). n = 6 biological replicates. (Scale bars, 100 μm and 20 μm) ( I and J ) Representative flow cytometry plots of capillary subtypes in the femur (I), with quantification of CD45 − Ter119 − CD31 hi Emcn hi ECs (J). n = 6 biological replicates. ( K and L ) Flow cytometry plots showing Sca-1 hi CD31 hi arteriolar ECs (K), and corresponding quantification (L). n = 6 biological replicates. ( M and N ) Representative micro-CT 3D images of the femur (M). Quantitative analysis of percent bone volume (BV/TV) (N). n = 6 biological replicates. (Scale bars, 1.5 mm, 600 μm and 545 μm) ( O and P ) ELISA analysis of VEGF (O) and PDGF-BB (P) levels in bone marrow supernatant and peripheral serum from PBS- and SCS-treated groups at week 6. n = 6 biological replicates. ( Q ) ELISA quantification of the osteogenic factor osteocalcin in peripheral serum at week 6. n = 6 biological replicates. Data are presented as mean ± SD. ∗ p < 0.05, ∗∗ p < 0.01, ∗∗∗ p < 0.001, ∗∗∗∗ p < 0.0001; ns, not significant. Statistical significance was determined using one-way ANOVA with Tukey's post hoc test ( C, D, F, G, H, J, L, N, O, P and Q ).

    Article Snippet: Other drugs and compounds used in this study included: GW9662 (MCE, HY-16578; intraperitoneal injection, 1 mg/kg body weight/day, administered continuously for 4 weeks), T0070907 (Selleck, S2871; intraperitoneal injection, 2 mg/kg body weight/day, administered continuously for 4 weeks), rapamycin (MCE, HY-10219; subcutaneous injection, 3 mg/kg body weight/day, administered continuously for 4 weeks), Rosiglitazone (MCE, HY-17386; oral gavage, 3 mg/kg body weight/day, administered continuously for 2 weeks), LY294002 (Selleck, S1105; intraosseous injection, 10 μM, 5 μL per dose per week, administered for 1 or 4 weeks), DMH1 (Selleck, S7146; intraperitoneal injection, 5 mg/kg body weight/day, administered continuously for 4 weeks), Noggin (PeproTech, 250-38; intraosseous injection, 50 ng per dose, twice per week, administered for 2 or 4 weeks), LDN-193189 (Selleck, S2618; intraperitoneal injection, 3 mg/kg body weight/day, administered for 1 or 4 weeks), IGF-1 (PeproTech, 250-19; intraosseous injection, 4 μg per dose per week, administered for 2 weeks), IGF-1 neutralizing antibody (R&D Systems, AF-791; intraosseous injection, 2 μg per dose, twice per week, administered for 2 or 4 weeks), VEGF neutralizing antibody (R&D Systems, AF-493-NA; intraosseous injection, 2 μg per dose, twice per week, administered for 4 weeks), PDGF-AA neutralizing antibody (R&D Systems, AF-221-NA; intraosseous injection, 2 μg per dose, twice per week, administered for 4 weeks), PDGF-BB neutralizing antibody (R&D Systems, AF-220-NA; intraosseous injection, 2 μg per dose, twice per week, administered for 4 weeks), TGF-β1 neutralizing antibody (R&D Systems, MAB2401; intraosseous injection, 2 μg per dose, twice per week, administered for 4 weeks), TGF-β2 neutralizing antibody (R&D Systems, AB-112-NA; intraosseous injection, 2 μg per dose, twice per week, administered for 4 weeks).

    Techniques: Staining, Immunofluorescence, Flow Cytometry, Micro-CT, Enzyme-linked Immunosorbent Assay

    SCS targets downstream senescent lineage commitment of bone marrow MSCs to mitigate GC-induced bone deterioration. ( A ) Schematic diagram illustrating the experimental design: CD45 − Ter119 − CD31 − LepR + MSCs isolated from mice co-treated with SCS and MPS for 7 days were subjected to in vitro lineage-competitive differentiation, followed by DEX-induced senescence in lineage-mixed cells. These cells were then adoptively transplanted into healthy bone marrow cavity to assess bone deterioration development. ( B ) Representative H&E-stained images of the femur 12 weeks after adoptive transfer. PBS-DEX group: LepR + MSCs from PBS and MPS co-treated mice subjected to in vitro lineage differentiation and DEX-induced senescence, followed by transplantation. SCS-DEX group: LepR + MSCs from SCS and MPS co-treated mice processed similarly. PBS group: solvent control without cell transplantation. Solid arrows indicate intact osteocytes; hollow arrows indicate empty lacunae. (Scale bars, 250 μm and 25 μm) ( C – E ) Quantitative analysis of marrow hypertrophic adipocyte diameter (C), proportion of empty osteocyte lacunae in trabecular bone (D), and adipocyte number (E) in the metaphysis 12 weeks post-transplantation. n = 19 biological replicates (C), n = 6 biological replicates (D), n = 8 biological replicates (E). ( F ) Quantification of empty lacunae in epiphysis at 12 weeks post-transplantation. n = 6 biological replicates. ( G – I ) Representative flow cytometry plots of capillary ECs subtypes in the femur at 12 weeks (G), with quantification of CD45 − Ter119 − CD31 hi Emcn hi ECs (H) and CD45 − Ter119 − CD31 lo Emcn lo ECs (I). n = 6 biological replicates. ( J and K ) Representative flow cytometry plots (J) and corresponding quantification (K) of CD45 − Ter119 − Sca-1 hi CD31 hi arteriolar ECs in the femur at 12 weeks post-transplantation. n = 6 biological replicates. ( L ) Representative micro-CT images of the femur at 12 weeks post-transplantation across different treatment groups. (Scale bars, 1.5 mm and 500 μm) ( M – P ) Quantitative analysis of bone parameters in the metaphysis: bone mineral density (BMD) (M), percent bone volume (BV/TV) (N), trabecular separation (Tb.Sp) (O), and trabecular number (Tb.N) (P). n = 6 biological replicates. ( Q ) Serum ELISA analysis of the osteogenic marker osteocalcin at 12 weeks post-transplantation. n = 6 biological replicates. ( R and S ) ELISA analysis of PDGF-BB (R) and VEGF (S) in both bone marrow supernatant and peripheral serum at 12 weeks post-transplantation. n = 6 biological replicates. Data are presented as mean ± SD. ∗ p < 0.05, ∗∗ p < 0.01, ∗∗∗ p < 0.001, ∗∗∗∗ p < 0.0001; ns, not significant. Statistical significance was determined using one-way ANOVA with Tukey's post hoc test ( C, D, E, F, H, I, K, M, N, O, P, Q, R and S ).

    Journal: Bioactive Materials

    Article Title: Sulfated polysaccharide prevents senescent adipocyte-driven osteonecrosis by stem cell fate reprogramming

    doi: 10.1016/j.bioactmat.2025.11.039

    Figure Lengend Snippet: SCS targets downstream senescent lineage commitment of bone marrow MSCs to mitigate GC-induced bone deterioration. ( A ) Schematic diagram illustrating the experimental design: CD45 − Ter119 − CD31 − LepR + MSCs isolated from mice co-treated with SCS and MPS for 7 days were subjected to in vitro lineage-competitive differentiation, followed by DEX-induced senescence in lineage-mixed cells. These cells were then adoptively transplanted into healthy bone marrow cavity to assess bone deterioration development. ( B ) Representative H&E-stained images of the femur 12 weeks after adoptive transfer. PBS-DEX group: LepR + MSCs from PBS and MPS co-treated mice subjected to in vitro lineage differentiation and DEX-induced senescence, followed by transplantation. SCS-DEX group: LepR + MSCs from SCS and MPS co-treated mice processed similarly. PBS group: solvent control without cell transplantation. Solid arrows indicate intact osteocytes; hollow arrows indicate empty lacunae. (Scale bars, 250 μm and 25 μm) ( C – E ) Quantitative analysis of marrow hypertrophic adipocyte diameter (C), proportion of empty osteocyte lacunae in trabecular bone (D), and adipocyte number (E) in the metaphysis 12 weeks post-transplantation. n = 19 biological replicates (C), n = 6 biological replicates (D), n = 8 biological replicates (E). ( F ) Quantification of empty lacunae in epiphysis at 12 weeks post-transplantation. n = 6 biological replicates. ( G – I ) Representative flow cytometry plots of capillary ECs subtypes in the femur at 12 weeks (G), with quantification of CD45 − Ter119 − CD31 hi Emcn hi ECs (H) and CD45 − Ter119 − CD31 lo Emcn lo ECs (I). n = 6 biological replicates. ( J and K ) Representative flow cytometry plots (J) and corresponding quantification (K) of CD45 − Ter119 − Sca-1 hi CD31 hi arteriolar ECs in the femur at 12 weeks post-transplantation. n = 6 biological replicates. ( L ) Representative micro-CT images of the femur at 12 weeks post-transplantation across different treatment groups. (Scale bars, 1.5 mm and 500 μm) ( M – P ) Quantitative analysis of bone parameters in the metaphysis: bone mineral density (BMD) (M), percent bone volume (BV/TV) (N), trabecular separation (Tb.Sp) (O), and trabecular number (Tb.N) (P). n = 6 biological replicates. ( Q ) Serum ELISA analysis of the osteogenic marker osteocalcin at 12 weeks post-transplantation. n = 6 biological replicates. ( R and S ) ELISA analysis of PDGF-BB (R) and VEGF (S) in both bone marrow supernatant and peripheral serum at 12 weeks post-transplantation. n = 6 biological replicates. Data are presented as mean ± SD. ∗ p < 0.05, ∗∗ p < 0.01, ∗∗∗ p < 0.001, ∗∗∗∗ p < 0.0001; ns, not significant. Statistical significance was determined using one-way ANOVA with Tukey's post hoc test ( C, D, E, F, H, I, K, M, N, O, P, Q, R and S ).

    Article Snippet: Other drugs and compounds used in this study included: GW9662 (MCE, HY-16578; intraperitoneal injection, 1 mg/kg body weight/day, administered continuously for 4 weeks), T0070907 (Selleck, S2871; intraperitoneal injection, 2 mg/kg body weight/day, administered continuously for 4 weeks), rapamycin (MCE, HY-10219; subcutaneous injection, 3 mg/kg body weight/day, administered continuously for 4 weeks), Rosiglitazone (MCE, HY-17386; oral gavage, 3 mg/kg body weight/day, administered continuously for 2 weeks), LY294002 (Selleck, S1105; intraosseous injection, 10 μM, 5 μL per dose per week, administered for 1 or 4 weeks), DMH1 (Selleck, S7146; intraperitoneal injection, 5 mg/kg body weight/day, administered continuously for 4 weeks), Noggin (PeproTech, 250-38; intraosseous injection, 50 ng per dose, twice per week, administered for 2 or 4 weeks), LDN-193189 (Selleck, S2618; intraperitoneal injection, 3 mg/kg body weight/day, administered for 1 or 4 weeks), IGF-1 (PeproTech, 250-19; intraosseous injection, 4 μg per dose per week, administered for 2 weeks), IGF-1 neutralizing antibody (R&D Systems, AF-791; intraosseous injection, 2 μg per dose, twice per week, administered for 2 or 4 weeks), VEGF neutralizing antibody (R&D Systems, AF-493-NA; intraosseous injection, 2 μg per dose, twice per week, administered for 4 weeks), PDGF-AA neutralizing antibody (R&D Systems, AF-221-NA; intraosseous injection, 2 μg per dose, twice per week, administered for 4 weeks), PDGF-BB neutralizing antibody (R&D Systems, AF-220-NA; intraosseous injection, 2 μg per dose, twice per week, administered for 4 weeks), TGF-β1 neutralizing antibody (R&D Systems, MAB2401; intraosseous injection, 2 μg per dose, twice per week, administered for 4 weeks), TGF-β2 neutralizing antibody (R&D Systems, AB-112-NA; intraosseous injection, 2 μg per dose, twice per week, administered for 4 weeks).

    Techniques: Isolation, In Vitro, Staining, Adoptive Transfer Assay, Transplantation Assay, Solvent, Control, Flow Cytometry, Micro-CT, Enzyme-linked Immunosorbent Assay, Marker

    The therapeutic effect of SFB@(HB㊏EUD) on DR. (A) Results of the HET-CAM assay. (B) Body weight and blood glucose levels in different treatment mice groups. (C) The images of mice ocular tissues of FP, FFA and H&E histological evaluation of mice retina at 400×; GCL, (IPL) Inner plexiform layer, (INL) Inner nuclear layer, (OPL), Outer plexiform layer, ONL, (PRL) Photoreceptor layer. (D) Relative VEGF protein expression levels in retinal tissues of mice, as determined by Western blotting and normalized to β-actin. All data were presented as mean ± SD ( n = 6), p values were determined using an unpaired, two-tailed Student's t -test, ** p < 0.01.

    Journal: International Journal of Pharmaceutics: X

    Article Title: Sorafenib nanoparticles coated with Eudragit RL for ocular drug delivery: a potential treatment for diabetic retinopathy

    doi: 10.1016/j.ijpx.2026.100523

    Figure Lengend Snippet: The therapeutic effect of SFB@(HB㊏EUD) on DR. (A) Results of the HET-CAM assay. (B) Body weight and blood glucose levels in different treatment mice groups. (C) The images of mice ocular tissues of FP, FFA and H&E histological evaluation of mice retina at 400×; GCL, (IPL) Inner plexiform layer, (INL) Inner nuclear layer, (OPL), Outer plexiform layer, ONL, (PRL) Photoreceptor layer. (D) Relative VEGF protein expression levels in retinal tissues of mice, as determined by Western blotting and normalized to β-actin. All data were presented as mean ± SD ( n = 6), p values were determined using an unpaired, two-tailed Student's t -test, ** p < 0.01.

    Article Snippet: Proteins were resolved by SDS-PAGE, transferred to a PVDF membrane, and probed with primary antibodies against VEGF (1:1000, ABclonal, A12303) and β-actin (1:1000, ABclonal, AC026).

    Techniques: Chick Chorioallantoic Membrane Assay, Expressing, Western Blot, Two Tailed Test