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          • Primary Antibodies ›
          • LAP Antibodies

          Invitrogen

          LAP (Latency Associated peptide) Monoclonal Antibody (FNLAP), PerCP-eFluor™ 710, eBioscience™

          5 Published Figures
          6 References
          View all (11) LAP antibodies

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          Cite LAP (Latency Associated peptide) Monoclonal Antibody (FNLAP), PerCP-eFluor™ 710, eBioscience™

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          • Antibody Testing Data (1)
          • Published Figures (5)
          LAP (Latency Associated peptide) Antibody in Flow Cytometry (Flow)
          Group 53 Created with Sketch.
          LAP (Latency Associated peptide) Antibody in Flow Cytometry (Flow)
          Group 53 Created with Sketch.

          FIGURE: 1 / 6

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          LAP (Latency Associated peptide) Antibody (46-9829-42) in Flow

          Staining of 1-day stimulated normal human peripheral blood cells (Anti-Human CD3 and Anti Human CD28 and Human IL-2 Recombinant Protein) with Anti-Human GARP FITC (Product # 11-9882-42) and Mouse IgG1 K Isotype Control PerCP-eFluor® 710 (Product # 46-4714-82) (left) or Anti-Human LAP (Latency Associated Peptide) PerCP-eFluor® 710 (right). CD4+ cells in the lymphocyte gate were used for analysis. {{ $ctrl.currentElement.advancedVerification.fullName }} validation info. View more
          Published figure supplied by benchsci-logo
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          View Product

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          LAP (Latency Associated peptide) Antibody in Flow Cytometry (Flow)
          LAP (Latency Associated peptide) Antibody in Flow Cytometry (Flow)
          LAP (Latency Associated peptide) Antibody in Flow Cytometry (Flow)
          LAP (Latency Associated peptide) Antibody in Flow Cytometry (Flow)
          LAP (Latency Associated peptide) Antibody in Flow Cytometry (Flow)
          LAP (Latency Associated peptide) Antibody in Flow Cytometry (Flow)

          Please note: We are reviewing Western blot images included in the antibody testing data in our catalog, including those provided by third parties. Unless expressly labeled or annotated as “raw-unedited”, Western blot images included in the antibody testing data in our catalog may have been edited, optimized or otherwise adjusted for presentation.

          Product Details

          46-9829-42

          Applications
          Tested Dilution
          Publications

          Flow Cytometry (Flow)

          5 µL (0.125 µg)/test
          View 6 publications 6 publications
          Product Specifications

          Species Reactivity

          Human

          Published species

          Human

          Host/Isotype

          Mouse / IgG1, kappa

          Recommended Isotype Control

          Mouse IgG1 kappa Isotype Control (P3.6.2.8.1), PerCP-eFluor™ 710, eBioscience™

          Class

          Monoclonal

          Type

          Antibody

          Clone

          FNLAP

          Immunogen

          E. coli derived hLAP-TGFb, mixed with VB3A9

          Conjugate

          PerCP-eFluor™ 710 PerCP-eFluor™ 710 PerCP-eFluor™ 710
          • APC 
          • eFluor 450
          • PE 
          • PE-Cyanine7
          • Request custom conjugation

          Excitation/Emission Max

          482/708 nm View spectra spectra

          Form

          Liquid

          Concentration

          5 µL/Test

          Purification

          Affinity chromatography

          Storage buffer

          PBS, pH 7.2, with BSA

          Contains

          0.09% sodium azide

          Storage conditions

          4°C, store in dark, DO NOT FREEZE!

          Shipping conditions

          Ambient (domestic); Wet ice (international)

          RRID

          AB_2573900

          Product Specific Information

          Description: The FNLAP monoclonal antibody reacts with human latency associated peptide (LAP, pro-TGF beta 1, LAP/TGF beta 1). Many different cells produce TGF beta and it mediates effects on the proliferation, differentiation and function of many cell types. TGF beta is synthesized as a precursor that contains LAP at the N-terminus and mature TGF beta at the C-terminus. Processing and cleavage of the precursor protein between amino acids 278 and 279 results in the formation of LAP dimers and TGF beta dimers that then non-covalently associate with each other to form the small latent TGF beta complex. LAP is secreted and can be found in the extracellular matrix. In addition, LAP can also be expressed on platelets and activated regulatory T cells. It is believed that this surface-expressed LAP is due to the binding of LAP to GARP (LRRC32), which is a transmembrane protein that is also found at high levels on platelets and activated regulatory T cells.

          Applications Reported: This FNLAP antibody has been reported for use in flow cytometric analysis.

          Applications Tested: This FNLAP antibody has been pre-titrated and tested by flow cytometric analysis of stimulated normal human peripheral blood cells. This can be used at 5 µL (0.125 µg) per test. A test is defined as the amount (µg) of antibody that will stain a cell sample in a final volume of 100 µL. Cell number should be determined empirically but can range from 10^5 to 10^8 cells/test.

          PerCP-eFluor® 710 emits at 710 nm and is excited with the blue laser (488 nm); it can be used in place of PerCP-Cyanine5.5. We recommend using a 710/50 bandpass filter, however, the 695/40 bandpass filter is an acceptable alternative. Please make sure that your instrument is capable of detecting this fluorochrome.

          Fixation: Samples can be stored in IC Fixation Buffer (Product # 00-822-49) (100 µL cell sample + 100 µL IC Fixation Buffer) or 1-step Fix/Lyse Solution (Product # 00-5333-54) for up to 3 days in the dark at 4°C with minimal impact on brightness and FRET efficiency/compensation. Some generalizations regarding fluorophore performance after fixation can be made, but clone specific performance should be determined empirically.

          Excitation: 488 nm; Emission: 710 nm; Laser: Blue Laser.

          Filtration: 0.2 µm post-manufacturing filtered.

          Target Information

          TGF beta-1 is a polypeptide member of the transforming growth factor beta superfamily of cytokines, found almost ubiquitously in tissues. Transforming growth factor (TGF)-b is stored in the extracellular matrix as a latent complex with its prodomain. Activation of TGF-b1 requires the binding of aV integrin to an RGD sequence in the prodomain and exertion of force on this domain, which is held in the extracellular matrix by latent TGF-b binding proteins. Latent forms are complexes of TGF-beta, an aminoterminal portion of the TGF-beta precursor, designated TGF-LAP (TGF-latency associated peptide), and a specific binding protein, known as LTBP.

          For Research Use Only. Not for use in diagnostic procedures. Not for resale without express authorization.

          How to use the Panel Builder

          Watch the video to learn how to use the Invitrogen Flow Cytometry Panel Builder to build your next flow cytometry panel in 5 easy steps.

          Bioinformatics

          Protein Aliases: latency-associated peptide; prepro-transforming growth factor beta-1; TGF-beta-1; transforming growth factor beta1; unnamed protein product

          View more View less

          Gene Aliases: CAEND1; CED; DPD1; IBDIMDE; LAP; TGF-beta1; TGFB; TGFbeta

          View more View less

          UniProt ID: (Human) P01137

          View more View less

          Entrez Gene ID: (Human) 7040

          View more View less

          Function(s)
          type II transforming growth factor beta receptor binding cytokine activity transforming growth factor beta receptor binding protein binding growth factor activity enzyme binding type I transforming growth factor beta receptor binding type III transforming growth factor beta receptor binding identical protein binding protein serine/threonine kinase activator activity macromolecular complex binding
          Process(es)
          vasculogenesis ureteric bud development response to hypoxia morphogenesis of a branching structure epithelial to mesenchymal transition neural tube closure sprouting angiogenesis chondrocyte differentiation hematopoietic progenitor cell differentiation connective tissue replacement involved in inflammatory response wound healing adaptive immune response based on somatic recombination of immune receptors built from immunoglobulin superfamily domains negative regulation of natural killer cell mediated cytotoxicity directed against tumor cell target heart valve morphogenesis aortic valve morphogenesis protein export from nucleus ATP biosynthetic process phosphate-containing compound metabolic process apoptotic process transforming growth factor beta receptor signaling pathway I-kappaB kinase/NF-kappaB signaling negative regulation of neuroblast proliferation salivary gland morphogenesis heart development female pregnancy positive regulation of cell proliferation negative regulation of cell proliferation response to xenobiotic stimulus response to wounding response to glucose response to gamma radiation positive regulation of vascular endothelial growth factor production positive regulation of gene expression negative regulation of gene expression negative regulation of extracellular matrix disassembly positive regulation of epithelial to mesenchymal transition macrophage derived foam cell differentiation positive regulation of fibroblast migration negative regulation of macrophage cytokine production oligodendrocyte development positive regulation of microglia differentiation regulation of striated muscle tissue development neural tube development cell differentiation hyaluronan catabolic process negative regulation of cell growth regulation of cell migration positive regulation of cell migration organ regeneration membrane protein intracellular domain proteolysis positive regulation of protein complex assembly positive regulation of exit from mitosis response to estradiol response to progesterone regulation of interleukin-23 production negative regulation of interleukin-17 production positive regulation of interleukin-17 production positive regulation of interleukin-6 production positive regulation of tumor necrosis factor production receptor catabolic process positive regulation of superoxide anion generation positive regulation of collagen biosynthetic process response to vitamin D negative regulation of MyD88-dependent toll-like receptor signaling pathway response to laminar fluid shear stress response to immobilization stress cellular response to platelet-derived growth factor stimulus myofibroblast differentiation regulation of cell proliferation regulation of protein import into nucleus positive regulation of protein import into nucleus odontogenesis of dentin-containing tooth myelination positive regulation of apoptotic process positive regulation of vascular permeability positive regulation of I-kappaB kinase/NF-kappaB signaling positive regulation of MAPK cascade positive regulation of blood vessel endothelial cell migration negative regulation of blood vessel endothelial cell migration regulatory T cell differentiation cell-cell junction organization response to ethanol positive regulation of regulatory T cell differentiation negative regulation of cell differentiation positive regulation of cell differentiation negative regulation of fat cell differentiation negative regulation of myoblast differentiation positive regulation of epidermal growth factor receptor signaling pathway negative regulation of cell cycle negative regulation of transcription, DNA-templated positive regulation of transcription, DNA-templated positive regulation of transcription from RNA polymerase II promoter positive regulation of isotype switching to IgA isotypes lymph node development digestive tract development negative regulation of skeletal muscle tissue development positive regulation of smooth muscle cell proliferation inner ear development positive regulation of epithelial cell proliferation negative regulation of epithelial cell proliferation positive regulation of protein secretion positive regulation of inflammatory response negative regulation of phagocytosis defense response to fungus positive regulation of chemotaxis positive regulation of cellular component organization positive regulation of multicellular organismal process positive regulation of protein metabolic process negative regulation of release of sequestered calcium ion into cytosol positive regulation of protein kinase B signaling ventricular cardiac muscle tissue morphogenesis regulation of blood vessel remodeling face morphogenesis frontal suture morphogenesis positive regulation of SMAD protein import into nucleus negative regulation of biomineral tissue development positive regulation of ERK1 and ERK2 cascade response to cholesterol cellular response to mechanical stimulus cellular response to glucose stimulus cellular response to growth factor stimulus cellular response to low-density lipoprotein particle stimulus cellular response to hypoxia cellular response to ionizing radiation cellular response to dexamethasone stimulus cellular response to transforming growth factor beta stimulus positive regulation of mononuclear cell migration odontoblast differentiation extracellular matrix assembly positive regulation of branching involved in ureteric bud morphogenesis positive regulation of canonical Wnt signaling pathway extrinsic apoptotic signaling pathway liver regeneration cellular response to virus transforming growth factor beta receptor superfamily signaling pathway negative regulation of hyaluronan biosynthetic process positive regulation of protein localization to nucleus positive regulation of extracellular matrix assembly response to salt positive regulation of mesenchymal stem cell proliferation regulation of miRNA transcription negative regulation of pri-miRNA transcription from RNA polymerase II promoter positive regulation of pri-miRNA transcription from RNA polymerase II promoter negative regulation of protein localization to plasma membrane positive regulation of vasculature development positive regulation of STAT cascade regulation of epithelial to mesenchymal transition involved in endocardial cushion formation cellular response to acetaldehyde cellular response to insulin-like growth factor stimulus embryonic liver development negative regulation of cell-cell adhesion mediated by cadherin positive regulation of chemokine (C-X-C motif) ligand 2 production positive regulation of endothelial cell apoptotic process positive regulation of primary miRNA processing positive regulation of cardiac muscle cell differentiation
          It has to be done as per old AB suggested Products section.

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