SOAT1/ACAT1 Antibody (Rabbit mAb) [E19E10]

CatNo: F5661

    Application: Reactivity:
    • Lane 1: Hela, Lane 2: HepG2, Lane 3: Huh7, Lane 4: SK-MEL-28
    1/

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

    使用情報

    Dilution
    1:1000
    1:1000
    1:1000
    1:250
    Application
    WB, IP, IHC, IF
    Source
    Rabbit Monoclonal Antibody
    Reactivity
    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 Observed MW
    65 kDa 50 kDa,100 kDa,150 kDa
    *なぜ予測分子量と実際の分子量が異なるのか?
    下記の原因により、実際の分子量が予測と異なる:タンパク質の翻訳後修飾(リン酸化/糖鎖付加),スプライシングバリアント,イソフォーム,相対的な電荷,ポリマー。
    ポジティブコントロール Human cerebellum tissue; Human adrenal gland tissue; Human testis tissue; Human colon tissue; HeLa cells; HepG2 cells
    ネガティブコントロール Human cerebellum tissue; HT-29 cells

    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. ( 0.45 µm PVDF membrane is recommended ) Reference Table for Selecting PVDF Membrane Pore Size Specifications
    Recommended conditions for wet transfer: 200 mA, 120 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 1:1000), 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.
    IF
    Experimental Protocol:
     
    Sample Preparation
    1. Adherent Cells: Place a clean, sterile coverslip in a culture dish. Once the cells grow to near confluence as a monolayer, remove the coverslip for further use.
    2. Suspension Cells: Seed the cells onto a clean, sterile slide coated with poly-L-lysine.
    3. Frozen Sections: Allow the slide to thaw at room temperature. Wash it with pure water or PBS for 2 times, 3 minutes each time.
    4. Paraffin Sections: Deparaffinization and rehydration. Wash the slide with pure water or PBS for 3 times, 3 minutes each time. Then perform antigen retrieval.
     
    Fixation
    1. Fix the cell coverslips/spots or tissue sections at room temperature using a fixative such as 4% paraformaldehyde (4% PFA) for 10-15 minutes.
    2. Wash the sample with PBS for 3 times, 3 minutes each time.
     
    Permeabilization
    1.Add a detergent such as 0.1–0.3% Triton X-100 to the sample and incubate at room temperature for 10–20 minutes.
    (Note: This step is only required for intracellular antigens. For antigens expressed on the cell membrane, this step is unnecessary.)
    Wash the sample with PBS for 3 times, 3 minutes each time.
     
    Blocking
    Add blocking solution and incubate at room temperature for at least 1 hour. (Common blocking solutions include: serum from the same source as the secondary antibody, BSA, or goat serum.)
    Note: Ensure the sample remains moist during and after the blocking step to prevent drying, which can lead to high background.
     
    Immunofluorescence Staining (Day 1)
    1. Remove the blocking solution and add the diluted primary antibody.
    2. Incubate the sample in a humidified chamber at 4°C overnight.
     
    Immunofluorescence Staining (Day 2)
    1. Remove the primary antibody and wash with PBST for 3 times, 5 minutes each time.
    2. Add the diluted fluorescent secondary antibody and incubate in the dark at 4°C for 1–2 hours.
    3. Remove the secondary antibody and wash with PBST for 3 times, 5 minutes each time.
    4. Add diluted DAPI and incubate at room temperature in the dark for 5–10 minutes.
    5. Wash with PBST for 3 times, 5 minutes each time.
     
    Mounting
    1. Mount the sample with an anti-fade mounting medium.
    2. Allow the slide to dry at room temperature overnight in the dark.
    3. Store the slide in a slide storage box at 4°C, protected from light.
     
    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.
     

    Datasheet & SDS

    生物学的記述

    Specificity
    SOAT1/ACAT1 Antibody (Rabbit mAb) [E19E10] detects endogenous levels of total SOAT1/ACAT1 protein.
    タンパク質の局在
    小胞体、細胞内膜系
    Uniprot ID
    P35610
    Clone
    E19E10
    Synonym(s)
    ACACT | ACACT1 | ACAT | ACAT1 | SOAT | STAT | SOAT1 | Sterol O-acyltransferase 1 | Acyl-coenzyme A:cholesterol acyltransferase 1 | Cholesterol acyltransferase 1 | ACAT-1
    Background
    Sterol O-acyltransferase 1 (SOAT1), also known as acyl-CoA:cholesterol acyltransferase 1 (ACAT1), is an endoplasmic reticulum-resident membrane enzyme that catalyzes the conversion of free cholesterol and oxysterols into cholesteryl esters using long-chain fatty acyl-CoA, thereby supporting intracellular cholesterol homeostasis and lipid droplet biogenesis in diverse cell types including macrophages, vascular smooth muscle cells, and many other tissues where it is widely expressed. ACAT1/SOAT1 contains sterol-binding regions that accommodate substrates with a 3β-hydroxyl group and couples them to fatty acyl-CoA within the lipid bilayer, functioning as an allosteric enzyme activated by cholesterol and oxysterols and integrating flux from lipoprotein-derived sterols and locally generated oxysterols into esterification pathways that control free cholesterol levels in late endosomes, lysosomes, and the ER. In macrophages exposed to modified low-density lipoproteins, SOAT1 drives the formation of neutral lipid droplets rich in cholesteryl esters and contributes to foam cell formation, while dynamic cycling between esterification by SOAT1 and hydrolysis by neutral cholesterol ester hydrolases regulates the balance between stored and free cholesterol, influencing membrane composition, organelle function, and susceptibility to cholesterol crystal formation. In atherosclerotic lesions, SOAT1 activity in myeloid cells supports accumulation of cholesteryl esters and foam cell-rich plaques, but selective deletion of Acat1 in the myeloid lineage alters inflammatory signaling: macrophages lacking ACAT1 or treated with a specific ACAT1 inhibitor (K604) show reduced induction of pro-inflammatory mediators such as iNOS, COX2, and multiple chemokines upon cholesterol loading with acetylated LDL, indicating a direct coupling between cholesterol esterification capacity and the transcriptional program of innate immune activation. This modulation of inflammatory output coincides with changes in plaque biology, as myeloid-specific Acat1 knockout in ApoE-deficient mice decreases macrophage content in advanced aortic lesions, reduces total plaque area, and lowers cholesterol crystal burden in necrotic cores without increasing apoptotic cell death, linking SOAT1-mediated cholesterol ester formation to both foam cell density and the generation of lysosome-damaging cholesterol crystals that engage inflammasome pathways. Beyond macrophages, vascular smooth muscle cells and other non-myeloid cells in lesions express SOAT1 and ACAT2, and exposure to the oxysterol 25-hydroxycholesterol increases SOAT1 protein levels in smooth muscle cells and enhances cholesteryl ester synthesis that remains predominantly ACAT1-dependent, demonstrating that oxysterol-rich environments in advanced plaques expand esterification capacity in both macrophages and smooth muscle cells and maintain foam cell formation even when myeloid SOAT1 is absent. These data place SOAT1 at the intersection of membrane sterol load, oxysterol signaling, and immune effector function: esterification dampens free cholesterol accumulation and oxysterol toxicity yet also promotes foam cell persistence and can favor plaque progression by sustaining lipid droplet-rich cells that secrete cytokines and matrix-degrading enzymes. In systemic physiology, ubiquitous SOAT1 expression implies roles in steroidogenic tissues, liver, adipose tissue, and the nervous system through regulation of accessible cholesterol pools that feed steroidogenesis, lipoprotein secretion, and specialized membrane domains, while its ER localization and responsiveness to sterol composition suggest integration into broader cholesterol-sensing networks such as SREBP and oxysterol-driven transcriptional programs, although these connections are inferred from its enzymatic properties and the sterol milieu described in lesion and cell culture models. Pathologically, SOAT1 contributes to atherosclerosis by supporting foam cell formation in macrophages and smooth muscle cells, and advanced mouse and human lesions contain both SOAT1 and ACAT2 in macrophage-rich and smooth muscle-rich regions, indicating that selective or combined modulation of these enzymes can reshape plaque lipid architecture and inflammatory tone. Experimental inhibition or genetic deletion of ACAT1/SOAT1 in myeloid cells protects against advanced atherosclerosis burden in hyperlipidemic mice, primarily by reducing macrophage infiltration and cholesterol crystal content and by shifting macrophages toward a less inflammatory phenotype under conditions of cholesterol loading, which has established SOAT1 as a mechanistic node for linking cholesterol esterification to innate immune signaling in vascular disease.
    References

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