Vasopressin Antibody (Rabbit mAb) [P14E10]

CatNo: F4001

    Application: Reactivity:
    • Immunohistochemical analysis of formalin fixed paraffin embedded mouse hypothalamus tissue with F4001 at 1:2000 dilution.
    1/

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    代表番号: 045-509-1970|電子メール:sales@selleck.co.jp

    キーポイント

    WB
    転写条件(ウェット): 200 mA, 60 min, 0.22 μm PVDF 膜の使用をお勧めします。

    使用情報

    Dilution
    1:2000
    1:30
    1:2000
    1:500
    Application
    WB, IP, IHC, FCM
    Source
    Rabbit Monoclonal Antibody
    Reactivity
    Mouse, Rat, Human
    Storage Buffer
    PBS, pH 7.2+50% Glycerol+0.05% BSA+0.01% NaN3
    Storage (from the date of receipt)
    -20°C (avoid freeze-thaw cycles), 2 years
    Predicted MW
    17 kDa
    ポジティブコントロール Mouse brain tissue; Rat brain tissue; Rat hypothalamus tissue; Mouse hypothalamus tissue; HEK-293T cells
    ネガティブコントロール

    プロトコール

    WB
    Experimental Protocol:
     
    Sample preparation
    1. Tissue: Lyse the tissue sample by adding an appropriate volume of ice-cold RIPA/NP-40 Lysis Buffer (containing Protease Inhibitor Cocktail),and homogenize the tissue at a low temperature or lyse it by sonication on ice, then incubate on ice for 30 minutes.
    2. Adherent cell: Aspirate the culture medium and wash the cells with ice-cold PBS twice. Lyse the cells by adding an appropriate volume of RIPA/NP-40 Lysis Buffer (containing Protease Inhibitor Cocktail) , sonicate to lyse the cells, and incubate on ice for 30 minutes.
    3. Suspension cell: Transfer the culture medium to a pre-cooled centrifuge tube. Centrifuge and aspirate the supernatant. Wash the cells with ice-cold PBS twice. Lyse the cells by adding an appropriate volume of RIPA/NP-40 Lysis Buffer (containing Protease Inhibitor Cocktail) , sonicate to lyse the cells, and incubate on ice for 30 minutes.
    4. Place the lysate into a pre-cooled microcentrifuge tube. Centrifuge at 4°C for 15 min. Collect the supernatant;
    5. Remove a small volume of lysate to determine the protein concentration;
    6. Combine the lysate with protein loading buffer. Boil 20 µL sample under 95-100°C for 5 min. Centrifuge for 5 min after cool down on ice.
     
    Electrophoretic separation
    1. According to the concentration of extracted protein, load appropriate amount of protein sample and marker onto SDS-PAGE gels for electrophoresis. Recommended separating gel (lower gel) concentration: 10%. Reference Table for Selecting SDS-PAGE Separation Gel Concentrations
    2. Power up 80V for 30 minutes. Then the power supply is adjusted (110 V~150 V), the Marker is observed, and the electrophoresis can be stopped when the indicator band of the predyed protein Marker where the protein is located is properly separated. (Note that the current should not be too large when electrophoresis, too large current (more than 150 mA) will cause the temperature to rise, affecting the result of running glue. If high currents cannot be avoided, an ice bath can be used to cool the bath.)
     
    Transfer membrane
    1. Take out the converter, soak the clip and consumables in the pre-cooled converter;
    2. Activate PVDF membrane with methanol for 1 min and rinse with transfer buffer;
    3. Install it in the order of "black edge of clip - sponge - filter paper - filter paper - glue -PVDF membrane - filter paper - filter paper - sponge - white edge of clip";
    4. The protein was electrotransferred to PVDF membrane. ( 0.22 µm PVDF membrane is recommended )) Reference Table for Selecting PVDF Membrane Pore Size Specifications
    Recommended conditions for wet transfer: 200 mA, 60 min.
    ( Note that the transfer conditions can be adjusted according to the protein size. For high-molecular-weight proteins, a higher current and longer transfer time are recommended. However, ensure that the transfer tank remains at a low temperature to prevent gel melting.)
     
    Block
    1. After electrotransfer, wash the film with TBST at room temperature for 5 minutes;
    2. Incubate the film in the blocking solution for 1 hour at room temperature;
    3. Wash the film with TBST for 3 times, 5 minutes each time.
     
    Antibody incubation
    1. Use primary antibody dilution buffer to prepare the primary antibody working liquid (recommended dilution ratio for primary antibody 1:2000), gently shake and incubate with the film at 4°C overnight;
    2. Wash the film with TBST 3 times, 5 minutes each time;
    3. Add the secondary antibody to the blocking solution and incubate with the film gently at room temperature for 1 hour;
    4. After incubation, wash the film with TBST 3 times for 5 minutes each time.
     
    Antibody staining
    1. Add the prepared ECL luminescent substrate (or select other color developing substrate according to the second antibody) and mix evenly;
    2. Incubate with the film for 1 minute, remove excess substrate (keep the film moist), wrap with plastic film, and expose in the imaging system.
    IHC
    Experimental Protocol:
     
    Deparaffinization/Rehydration
    1. Deparaffinize/hydrate sections:
    2. Incubate sections in three washes of xylene for 5 min each.
    3. Incubate sections in two washes of 100% ethanol for 10 min each.
    4. Incubate sections in two washes of 95% ethanol for 10 min each.
    5. Wash sections two times in dH2O for 5 min each.
    6.Antigen retrieval: For Citrate: Heat slides in a microwave submersed in 1X citrate unmasking solution until boiling is initiated; continue with 10 min at a sub-boiling temperature (95°-98°C). Cool slides on bench top for 30 min.
     
    Staining
    1. Wash sections in dH2O three times for 5 min each.
    2. Incubate sections in 3% hydrogen peroxide for 10 min.
    3. Wash sections in dH2O two times for 5 min each.
    4. Wash sections in wash buffer for 5 min.
    5. Block each section with 100–400 µl of blocking solution for 1 hr at room temperature.
    6. Remove blocking solution and add 100–400 µl primary antibody diluent in to each section. Incubate overnight at 4°C.
    7. Remove antibody solution and wash sections with wash buffer three times for 5 min each.
    8. Cover section with 1–3 drops HRPas needed. Incubate in a humidified chamber for 30 min at room temperature.
    9. Wash sections three times with wash buffer for 5 min each.
    10. Add DAB Chromogen Concentrate to DAB Diluent and mix well before use.
    11. Apply 100–400 µl DAB to each section and monitor closely. 1–10 min generally provides an acceptable staining intensity.
    12. Immerse slides in dH2O.
    13. If desired, counterstain sections with hematoxylin.
    14. Wash sections in dH2O two times for 5 min each.
    15. Dehydrate sections: Incubate sections in 95% ethanol two times for 10 sec each; Repeat in 100% ethanol, incubating sections two times for 10 sec each; Repeat in xylene, incubating sections two times for 10 sec each.
    16. Mount sections with coverslips and mounting medium.
     
    IP
    Experimental Procedure:
     
    Reagents and Preparation
    1. Basic buffers: 1× PBS or 1× TBS (pre-chilled on ice); 1× cell lysis buffer (add 1 mM PMSF protease inhibitor immediately before use; add phosphatase inhibitors for phosphoproteins).
    2. Capture medium: Protein A/G magnetic beads or agarose beads (Sepharose beads).
    3. Controls: Use an isotype control IgG matching the host species and IgG subclass of the primary antibody, at the same concentration. It is recommended to reserve a portion of the cell lysate that has not been subjected to immunoprecipitation as the Input control; if necessary, a beads-only control (beads added without antibody) may also be included.
    4. Loading and elution reagents: 3× or 4× SDS sample loading buffer (containing DTT/reducing agent); if non-denaturing elution is to be performed, prepare the corresponding elution buffer and neutralization buffer separately; for denaturing elution, 1× PBS is typically used to dilute the 3× or 4× SDS sample loading buffer to 1×.
     
    Cell Lysis and Sample Preparation (Native Protein Extraction)
    1. Cell harvesting: Discard the culture medium and wash the cells once with ice-cold 1× PBS.
    2. Cell lysis: Add 0.5–1 mL of ice-cold 1× cell lysis buffer to a 10-cm culture dish and incubate on ice for 5–10 minutes.
    3. Lysate collection and clarification: Scrape the cells and transfer the lysate to a microcentrifuge tube. Some adherent cells may require detachment using digestive enzymes or mechanical methods. Centrifuge at 14,000 rpm at 4°C for 5–15 min. Collect the supernatant as the clarified cell lysate. It is recommended to determine the protein concentration.
     
    Pre-clearing and Immunoprecipitation Reaction
    1. Pre-clearing of the lysate (recommended): Take an appropriate amount of beads (magnetic beads or agarose beads) and pre-wash 2–3 times with cell lysis buffer or 1× TBS/PBS. After pre-washing, it is recommended to remove the wash buffer as completely as possible before adding subsequent reagents, to avoid extra dilution of the sample. For lysis systems containing detergents or specific salt concentrations, prefer pre-washing with a buffer identical or compatible with the lysis buffer to minimize buffer-system mismatches.
    2. Pre-clearing treatment: Mix the cell lysate with the pre-washed beads and incubate with rotation at room temperature for 30–60 min, or at 4°C with rotation for 1–2 h.
    When using agarose beads, pellet the beads by centrifugation after incubation and collect the supernatant.
    When using magnetic beads, separate the beads using a magnetic stand after incubation and collect the supernatant.
    This step removes proteins that bind non-specifically to the beads. For unstable proteins, phosphoproteins, or protein complexes, incubation at 4°C is preferred to minimize protein degradation, dephosphorylation, or complex dissociation. Beads used for pre-clearing should generally not be pre-coupled with a specific antibody, to avoid loss of the target antigen.
    3. Formation of the “bead–antibody–antigen” immunocomplex
    Either of the following two approaches may be used:
    3.1 Pre-form the antibody–antigen complex, then add the beads: Add an appropriate amount of primary antibody to the pre-cleared supernatant obtained in step 2, and set up an isotype control IgG group in parallel. Incubate with rotation at 4°C overnight (recommended), or at room temperature with rotation for 2 h, to allow formation of the antibody–antigen complex.
    In parallel, take an appropriate amount of beads and pre-wash them as described in step 1 of this section. Add the antibody–antigen complex to the pre-washed magnetic or agarose beads and incubate with rotation at room temperature for 30 min–1 h, or at 4°C with rotation for 1–2 h, to allow the antibody–antigen complex to bind efficiently to the beads.
    3.2 Pre-form the bead–antibody complex, then add the cell lysate: Dilute the primary antibody in cell lysis buffer at the dilution ratio recommended in the antibody instruction manual to prepare the antibody working solution. Add an appropriate amount of pre-washed magnetic beads to the antibody working solution and incubate with rotation at room temperature for 15 min, or at 4°C with rotation for 1 h, to form the bead–antibody complex.
    Recover the beads by magnetic separation or centrifugation, discard the supernatant, and pre-wash the beads 2–3 times with 1× TBS. Then add the cell lysate and incubate with rotation at 4°C overnight (recommended), or at room temperature with rotation for 2 h.
     
    Washing of the Precipitate and Sample Elution
    1. Once immunoprecipitation is complete, separate the beads according to their type and discard the supernatant.
    Magnetic beads are separated using a magnetic stand.
    For agarose beads, low-speed centrifugation (500–1000 rpm) appropriate for the bead specifications should be used, to avoid bead compaction or damage caused by high-speed centrifugation.
    2. Washing the beads: Gently wash the beads 3–5 times with ice-cold 1× cell lysis buffer or 1× TBS/TBST. Keep the temperature low throughout the washes. After each addition of wash buffer, mix gently to fully resuspend the beads; then separate the beads using a magnetic stand or appropriate centrifugation, depending on the bead type, and remove the wash buffer thoroughly to minimize unbound and non-specifically bound components. During each wash, remove as much supernatant as possible while avoiding aspiration of the beads. After the final wash, remove residual wash buffer as completely as possible to prevent dilution of the eluate or interference with downstream analyses. Keep the samples on ice after each wash.
    3. Sample elution (choose one of the following):
    3.1 Denaturing direct elution (most commonly used): Add SDS sample loading buffer to the bead pellet to a final concentration of 1×. If 3× or 4× SDS sample loading buffer is used, it must first be diluted to 1×. Mix well and heat at 95–100°C for 5 minutes. Separate the beads and collect the supernatant for subsequent electrophoresis.
    3.2 Chemical / non-denaturing elution (preserves protein activity): After the final wash, separate the beads using a magnetic stand or low-speed centrifugation, depending on the bead type, and remove residual wash buffer as completely as possible to prevent dilution of the eluate. Add an appropriate amount of acidic elution buffer / high-salt elution buffer to the beads and resuspend them thoroughly. Mix gently and incubate briefly at room temperature to allow the immunocomplex to dissociate from the beads. Separate the beads with a magnetic stand or low-speed centrifugation, and transfer the eluate to a collection tube pre-filled with an appropriate amount of neutralization buffer; adjust the pH if necessary. To improve recovery, elution may be repeated and the eluates pooled. The composition and volume of the elution buffer and neutralization buffer should be determined according to the instructions for the beads and kit used.
    3.3 Post-elution sample handling
    For protein activity assays, native protein complex analysis, or other non-denaturing analyses: do not add SDS sample loading buffer; keep the sample on ice and proceed to the subsequent experiment as quickly as possible.
    For SDS-PAGE or Western blot: add SDS sample loading buffer to the neutralized or desalted eluate to a final concentration of 1×, and then process the sample according to the subsequent electrophoresis requirements.
    Select appropriate storage conditions according to the stability of the target protein and the requirements of downstream experiments, and avoid repeated freeze–thaw cycles.
     
    Downstream Analysis
    Western blot analysis: Take the supernatant and perform SDS-PAGE electrophoresis followed by membrane transfer. It is recommended to use light- and heavy-chain-specific or conformation-specific secondary antibodies to avoid interference of the immunoglobulin heavy/light chain bands (50 kDa / 25 kDa) with detection of the target protein. It is recommended to include Input, isotype control IgG-IP, and target antibody-IP samples on the same Western blot; if necessary, a beads-only control may also be added to evaluate immunoprecipitation efficiency and non-specific binding. Kinase activity assay (if applicable): skip the denaturation step, wash the beads with kinase buffer, then add substrate and ATP directly to perform the kinase reaction.
     

    Note: All lysis and immunoprecipitation procedures should be performed at 4°C or on ice to preserve the native conformation of proteins as much as possible and prevent their degradation.

    Datasheet & SDS

    生物学的記述

    Specificity
    Vasopressin Antibody (Rabbit mAb) [P14E10] detects Vasopressin.
    タンパク質の局在
    細胞質小胞、細胞外環境
    Uniprot ID
    P01185
    Clone
    P14E10
    Synonym(s)
    Vasopressin-neurophysin 2-copeptin, AVP-NPII, Avp
    Background
    Arginine vasopressin, also known as antidiuretic hormone, is a cyclic nonapeptide synthesized as part of a larger precursor alongside its carrier protein neurophysin II, which binds vasopressin during axonal transport and storage within the neurohypophysis before hormone release into the circulation. Vasopressin signals through three related G-protein-coupled receptor subtypes, V1aR, V1bR, and V2R, and additionally cross-activates the structurally related oxytocin receptor, with receptor subtype determining which downstream second-messenger cascade is engaged. The V2 receptor is unique among the vasopressin receptor subtypes in coupling to the stimulatory G protein Gs, and vasopressin binding to V2R on the basolateral membrane of kidney collecting duct principal cells activates adenylyl cyclase, raising intracellular cyclic AMP and activating protein kinase A; PKA is tethered specifically to aquaporin-2-bearing intracellular vesicles through A-kinase anchoring proteins, including AKAP18delta and AKAP220, and this anchored PKA population phosphorylates the water channel aquaporin-2, most notably at serine 256, driving redistribution of aquaporin-2 vesicles from the cytoplasm to the apical plasma membrane. This translocation of aquaporin-2 completes the water permeability pathway, since basolateral aquaporin-3 and aquaporin-4 are constitutively expressed and provide the exit route for water that enters through apical aquaporin-2, together enabling net water reabsorption and urine concentration. Phosphoproteomic analysis in PKA-null collecting duct cells shows that V2R-mediated vasopressin signaling is predominantly but not entirely PKA-dependent, with residual, PKA-independent phosphorylation events detected at aquaporin-2 serine 256 and in downstream kinases including SPAK and an atypical protein kinase C, indicating that a secondary, PKA-independent signaling arm contributes to the trafficking response. Beyond the cAMP-PKA axis, V2R activation also engages arrestin-dependent pathways that drive receptor internalization and MAP kinase phosphorylation linked to cell growth and proliferation, distinguishing acute water-channel trafficking from longer-term proliferative signaling downstream of the same receptor. In contrast to V2R, the V1a and V1b receptor subtypes couple to Gq and activate phospholipase C, generating inositol trisphosphate and diacylglycerol that mobilize intracellular calcium and activate protein kinase C, a signaling route responsible for vasopressin's vasoconstrictive action on peripheral vessels rather than its renal antidiuretic effect.
    References

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