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goat polyclonal r d systems  (R&D Systems)


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    Structured Review

    R&D Systems goat polyclonal r d systems
    Goat Polyclonal R D Systems, supplied by R&D Systems, used in various techniques. Bioz Stars score: 95/100, based on 92 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/goat+antibody+to+podocalyxin/Human+Podocalyxin+Antibody/pm41916297-667-71-73
    Average 95 stars, based on 92 article reviews
    goat polyclonal r d systems - by Bioz Stars, 2026-10
    95/100 stars

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    Related Articles

    Incubation:

    Article Title: In vivo imaging of kidney glomeruli transplanted into the anterior chamber of the mouse eye
    Article Snippet: .. Briefly, Ultrathin sections were blocked with 1% ovalbumin in PBS for one hour, followed by incubation with affinity-purified goat antibody to podocalyxin (R&D, AF1556, 1:400) and an anti-goat 10 nm gold conjugate (1:50). ..

    Article Title: Focal segmental glomerulosclerosis is induced by microRNA-193a and its downregulation of WT1.
    Article Snippet: nature medicine advance online publication FSGS is a frequent cause of steroid-resistant, nephrotic-range proteinuria that commonly causes renal failure.. It is diagnosed by renal biopsy, in which characteristic features are complete flattening of podocyte foot processes and foci of glomerular sclerosis.. FSGS is a descriptive histopathological diagnosis with different pathogeneses that include mutations in crucial podocyte genes (WT1, NPHS1, ACTN4 and TRPC6), circulating podocyte-toxic factors (soluble urokinase-type plasminogen activator receptor (suPAR)), drugs such as heroin and interferon-α and viral infections1.

    Affinity Purification:

    Article Title: In vivo imaging of kidney glomeruli transplanted into the anterior chamber of the mouse eye
    Article Snippet: .. Briefly, Ultrathin sections were blocked with 1% ovalbumin in PBS for one hour, followed by incubation with affinity-purified goat antibody to podocalyxin (R&D, AF1556, 1:400) and an anti-goat 10 nm gold conjugate (1:50). ..



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    R&D Systems goat anti mouse podocalyxin
    a, Model-predicted integrin stability as a function of location from foot process periphery to center under varying shear stress conditions. Low stress (blue) shows minimal peripheral preference; increasing stress (orange to red) drives progressive peripheral accumulation with central depletion. b, Schematic of predicted integrin redistribution under mechanical stress. Integrins accumulate at foot process peripheries (green) as stress increases, with potential shape changes and edge detachment under excessive loading. c, Airyscan super-resolution imaging validates predicted pattern in healthy mouse glomerulus. Integrin α3 (red) accumulates in gaps between synaptopodin-marked foot processes (green), with nephrin marking slit diaphragms (blue). Scale bar: 1 μm. d, Relative fluorescence intensity (RFI) plot along indicated line in panel c shows integrin α3 peaks (red) localized between synaptopodin peaks (green), confirming peripheral accumulation pattern. e Expansion microscopy (4× expansion) enables single foot process resolution. <t>Podocalyxin</t> (membrane marker, magenta) encapsulates central synaptopodin (green), with integrin α3 (red) co-localizing at periphery. Scale bar: 1 μm. f, Quantitative analysis of straightened foot processes. Integrated RFI plot from all pixels surrounding foot processes shows central synaptopodin peak flanked by two peaks in both podocalyxin and integrin α3 channels, definitively confirming peripheral integrin localization matching model predictions.
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    (A) Composite tile scan of healthy ( Col4a5 WT) mouse kidney sections shows minimal LNP transfection in the kidney. Tile scans are composite images using a 20x objective. (B) <t>Podocalyxin</t> stained glomeruli shows rare LNP transfection. Taken with 40x water immersion objective. (C) Tile scan showing increased glomeruli transfection and GFP expression in Alport kidneys (yellow arrows). (D) Podocalyxin staining shows increased LNP transfection in the glomerulus in Alport kidneys. Taken with 40x water immersion objective.
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    (A) Composite tile scan of healthy ( Col4a5 WT) mouse kidney sections shows minimal LNP transfection in the kidney. Tile scans are composite images using a 20x objective. (B) <t>Podocalyxin</t> stained glomeruli shows rare LNP transfection. Taken with 40x water immersion objective. (C) Tile scan showing increased glomeruli transfection and GFP expression in Alport kidneys (yellow arrows). (D) Podocalyxin staining shows increased LNP transfection in the glomerulus in Alport kidneys. Taken with 40x water immersion objective.
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    R&D Systems mab1658 r d systems sox17 goat
    (A) Composite tile scan of healthy ( Col4a5 WT) mouse kidney sections shows minimal LNP transfection in the kidney. Tile scans are composite images using a 20x objective. (B) <t>Podocalyxin</t> stained glomeruli shows rare LNP transfection. Taken with 40x water immersion objective. (C) Tile scan showing increased glomeruli transfection and GFP expression in Alport kidneys (yellow arrows). (D) Podocalyxin staining shows increased LNP transfection in the glomerulus in Alport kidneys. Taken with 40x water immersion objective.
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    R&D Systems goat antimouse podocalyxin
    (A) Composite tile scan of healthy ( Col4a5 WT) mouse kidney sections shows minimal LNP transfection in the kidney. Tile scans are composite images using a 20x objective. (B) <t>Podocalyxin</t> stained glomeruli shows rare LNP transfection. Taken with 40x water immersion objective. (C) Tile scan showing increased glomeruli transfection and GFP expression in Alport kidneys (yellow arrows). (D) Podocalyxin staining shows increased LNP transfection in the glomerulus in Alport kidneys. Taken with 40x water immersion objective.
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    Image Search Results


    a, Model-predicted integrin stability as a function of location from foot process periphery to center under varying shear stress conditions. Low stress (blue) shows minimal peripheral preference; increasing stress (orange to red) drives progressive peripheral accumulation with central depletion. b, Schematic of predicted integrin redistribution under mechanical stress. Integrins accumulate at foot process peripheries (green) as stress increases, with potential shape changes and edge detachment under excessive loading. c, Airyscan super-resolution imaging validates predicted pattern in healthy mouse glomerulus. Integrin α3 (red) accumulates in gaps between synaptopodin-marked foot processes (green), with nephrin marking slit diaphragms (blue). Scale bar: 1 μm. d, Relative fluorescence intensity (RFI) plot along indicated line in panel c shows integrin α3 peaks (red) localized between synaptopodin peaks (green), confirming peripheral accumulation pattern. e Expansion microscopy (4× expansion) enables single foot process resolution. Podocalyxin (membrane marker, magenta) encapsulates central synaptopodin (green), with integrin α3 (red) co-localizing at periphery. Scale bar: 1 μm. f, Quantitative analysis of straightened foot processes. Integrated RFI plot from all pixels surrounding foot processes shows central synaptopodin peak flanked by two peaks in both podocalyxin and integrin α3 channels, definitively confirming peripheral integrin localization matching model predictions.

    Journal: bioRxiv

    Article Title: Orthogonal Force Balance Between Contractility and Shear Stress Governs Podocyte Dynamics

    doi: 10.64898/2026.01.22.701159

    Figure Lengend Snippet: a, Model-predicted integrin stability as a function of location from foot process periphery to center under varying shear stress conditions. Low stress (blue) shows minimal peripheral preference; increasing stress (orange to red) drives progressive peripheral accumulation with central depletion. b, Schematic of predicted integrin redistribution under mechanical stress. Integrins accumulate at foot process peripheries (green) as stress increases, with potential shape changes and edge detachment under excessive loading. c, Airyscan super-resolution imaging validates predicted pattern in healthy mouse glomerulus. Integrin α3 (red) accumulates in gaps between synaptopodin-marked foot processes (green), with nephrin marking slit diaphragms (blue). Scale bar: 1 μm. d, Relative fluorescence intensity (RFI) plot along indicated line in panel c shows integrin α3 peaks (red) localized between synaptopodin peaks (green), confirming peripheral accumulation pattern. e Expansion microscopy (4× expansion) enables single foot process resolution. Podocalyxin (membrane marker, magenta) encapsulates central synaptopodin (green), with integrin α3 (red) co-localizing at periphery. Scale bar: 1 μm. f, Quantitative analysis of straightened foot processes. Integrated RFI plot from all pixels surrounding foot processes shows central synaptopodin peak flanked by two peaks in both podocalyxin and integrin α3 channels, definitively confirming peripheral integrin localization matching model predictions.

    Article Snippet: The first and second antibodies used included: Guinea-pig anti-mouse synaptopodin (ARP, 03-GP94-N, Waltham, MA, USA); Rabbit anti-mouse integrin-α3 (BiCell, 10003, St. Louis, MO, USA); Goat anti-mouse nephrin (R&D System, AF3159, Minneapolis, MN, USA); Goat anti-mouse podocalyxin (R&D System, AF1556, Minneapolis, MN, USA); Alexa fluor-488 Donkey anti-guinea-pig secondary (Jackson ImmunoResearch, 706-545-148, West Grove, PA, USA); Alexa fluor-594 Donkey anti-rabbit secondary (Jackson ImmunoResearch, 711-585-152, West Grove, PA, USA); Dylight-405 Donkey anti-rabbit secondary(Jackson ImmunoResearch, 711-475-152, West Grove, PA, USA); and Alexa fluor-647 Donkey anti-goat secondary (Jackson ImmunoResearch, 705-605-003, West Grove, PA, USA).

    Techniques: Shear, Imaging, Fluorescence, Microscopy, Membrane, Marker

    a, Airyscan imaging reveals integrin α3 localization at foot process peripheries in both low BP and high BP mice 60 minutes post-blebbistatin. Synaptopodin marks central actin cables (green), integrin α3 shown in red. Scale bar: 1 μm. b, Relative fluorescence intensity plots along indicated lines in panel c demonstrate enhanced integrin accumulation in high BP mice. Greater peak-to-valley intensity differences in high BP samples indicate increased peripheral concentration under elevated shear stress. c, Expansion microscopy reveals foot process boundaries in both low and high BP mice. Podocalyxin staining (magenta) clearly identifies peripheries, with integrin α3 (red) accumulation partially lost in some low BP samples. Scale bar: 1 μm. d, Integrated RFI plots from straightened foot processes show differential integrin distribution. While podocalyxin maintains two peaks surrounding central synaptopodin in both groups, integrin α3 shows widened distribution in low GFR samples versus significant peripheral accumulation in high GFR group, confirming stress-dependent redistribution. e, Airyscan imaging of human kidney samples reveals conserved integrin localization patterns. In healthy human glomerulus (left), integrin α3 (red) localizes at foot process peripheries around synaptopodin-marked central actin (green). In minimal change disease (right), integrin α3 accumulates precisely between effaced foot processes, with sarcomere-like structures (SLSs) visible as discontinuous synaptopodin signals (arrows). Scale bar: 1 μm. f, Relative fluorescence intensity plots from human samples demonstrate peripheral integrin accumulation away from central synaptopodin signals in both healthy and diseased tissue, confirming conservation of the stress-responsive redistribution mechanism across species.

    Journal: bioRxiv

    Article Title: Orthogonal Force Balance Between Contractility and Shear Stress Governs Podocyte Dynamics

    doi: 10.64898/2026.01.22.701159

    Figure Lengend Snippet: a, Airyscan imaging reveals integrin α3 localization at foot process peripheries in both low BP and high BP mice 60 minutes post-blebbistatin. Synaptopodin marks central actin cables (green), integrin α3 shown in red. Scale bar: 1 μm. b, Relative fluorescence intensity plots along indicated lines in panel c demonstrate enhanced integrin accumulation in high BP mice. Greater peak-to-valley intensity differences in high BP samples indicate increased peripheral concentration under elevated shear stress. c, Expansion microscopy reveals foot process boundaries in both low and high BP mice. Podocalyxin staining (magenta) clearly identifies peripheries, with integrin α3 (red) accumulation partially lost in some low BP samples. Scale bar: 1 μm. d, Integrated RFI plots from straightened foot processes show differential integrin distribution. While podocalyxin maintains two peaks surrounding central synaptopodin in both groups, integrin α3 shows widened distribution in low GFR samples versus significant peripheral accumulation in high GFR group, confirming stress-dependent redistribution. e, Airyscan imaging of human kidney samples reveals conserved integrin localization patterns. In healthy human glomerulus (left), integrin α3 (red) localizes at foot process peripheries around synaptopodin-marked central actin (green). In minimal change disease (right), integrin α3 accumulates precisely between effaced foot processes, with sarcomere-like structures (SLSs) visible as discontinuous synaptopodin signals (arrows). Scale bar: 1 μm. f, Relative fluorescence intensity plots from human samples demonstrate peripheral integrin accumulation away from central synaptopodin signals in both healthy and diseased tissue, confirming conservation of the stress-responsive redistribution mechanism across species.

    Article Snippet: The first and second antibodies used included: Guinea-pig anti-mouse synaptopodin (ARP, 03-GP94-N, Waltham, MA, USA); Rabbit anti-mouse integrin-α3 (BiCell, 10003, St. Louis, MO, USA); Goat anti-mouse nephrin (R&D System, AF3159, Minneapolis, MN, USA); Goat anti-mouse podocalyxin (R&D System, AF1556, Minneapolis, MN, USA); Alexa fluor-488 Donkey anti-guinea-pig secondary (Jackson ImmunoResearch, 706-545-148, West Grove, PA, USA); Alexa fluor-594 Donkey anti-rabbit secondary (Jackson ImmunoResearch, 711-585-152, West Grove, PA, USA); Dylight-405 Donkey anti-rabbit secondary(Jackson ImmunoResearch, 711-475-152, West Grove, PA, USA); and Alexa fluor-647 Donkey anti-goat secondary (Jackson ImmunoResearch, 705-605-003, West Grove, PA, USA).

    Techniques: Imaging, Fluorescence, Concentration Assay, Shear, Microscopy, Staining

    (A) Composite tile scan of healthy ( Col4a5 WT) mouse kidney sections shows minimal LNP transfection in the kidney. Tile scans are composite images using a 20x objective. (B) Podocalyxin stained glomeruli shows rare LNP transfection. Taken with 40x water immersion objective. (C) Tile scan showing increased glomeruli transfection and GFP expression in Alport kidneys (yellow arrows). (D) Podocalyxin staining shows increased LNP transfection in the glomerulus in Alport kidneys. Taken with 40x water immersion objective.

    Journal: bioRxiv

    Article Title: mRNA Therapy for Alport Syndrome

    doi: 10.64898/2026.01.20.700554

    Figure Lengend Snippet: (A) Composite tile scan of healthy ( Col4a5 WT) mouse kidney sections shows minimal LNP transfection in the kidney. Tile scans are composite images using a 20x objective. (B) Podocalyxin stained glomeruli shows rare LNP transfection. Taken with 40x water immersion objective. (C) Tile scan showing increased glomeruli transfection and GFP expression in Alport kidneys (yellow arrows). (D) Podocalyxin staining shows increased LNP transfection in the glomerulus in Alport kidneys. Taken with 40x water immersion objective.

    Article Snippet: The blocking buffer was then removed and replaced with a polyclonal goat anti-mouse podocalyxin primary antibody diluted in blocking buffer at a 1:200 dilution (R&D Systems cat# AF1556) and incubated overnight in a humidified chamber, protected from light, at 4°C.

    Techniques: Transfection, Staining, Expressing