JavaScript is disabled in your browser. Please enable JavaScript to view this website.
AB1906

Anti-Apolipoprotein E antibody [D6E10] - BSA and Azide free

4

(9 Reviews)

|

(66 Publications)

Mouse Monoclonal Apolipoprotein E antibody. Carrier free. Suitable for IHC-P and reacts with Human samples. Cited in 66 publications. Immunogen corresponding to Synthetic Peptide within Human APOE aa 100-200.

View Alternative Names

Apolipoprotein E, Apo-E, APOE

3 Images
Immunohistochemistry (Formalin/PFA-fixed paraffin-embedded sections) - Anti-Apolipoprotein E antibody [D6E10] - BSA and Azide free (AB1906)
  • IHC-P

AbReview31436****

Immunohistochemistry (Formalin/PFA-fixed paraffin-embedded sections) - Anti-Apolipoprotein E antibody [D6E10] - BSA and Azide free (AB1906)

ab1906 staining Apolipoprotein E in human testis tissue sections by Immunohistochemistry (IHC-P - paraformaldehyde-fixed, paraffin-embedded sections). Tissue was fixed with formaldehyde and blocked with 1% BSA for 10 minutes at 21°C; antigen retrieval was by heat mediation in citric acid. Samples were incubated with primary antibody (1/200 in TBS/BSA/azide) for 2 hours at 21°C. An undiluted biotin-conjugated goat anti-mouse IgG polyclonal was used as the secondary antibody.

This image is courtesy of an Abreview submitted by Carl Hobbs.

Immunohistochemistry (Formalin/PFA-fixed paraffin-embedded sections) - Anti-Apolipoprotein E antibody [D6E10] - BSA and Azide free (AB1906)
  • IHC-P

Supplier Data

Immunohistochemistry (Formalin/PFA-fixed paraffin-embedded sections) - Anti-Apolipoprotein E antibody [D6E10] - BSA and Azide free (AB1906)

Immunohistochemistry (Formalin/PFA-fixed paraffin-embedded sections) analysis of Alzheimer's disease brain tissue labelling Apolipoprotein E with ab1906. The tissue was incubated with 5 μg/mL of the primary antibody overnight at 4°C. Antigen retrieval was performed using Sodium Citrate H.I.E.R. Counterstained with hematoxylin. The image was captured with a 40X objective. Scale bar : 50 μm.

Immunohistochemistry (Formalin/PFA-fixed paraffin-embedded sections) - Anti-Apolipoprotein E antibody [D6E10] - BSA and Azide free (AB1906)
  • IHC-P

Supplier Data

Immunohistochemistry (Formalin/PFA-fixed paraffin-embedded sections) - Anti-Apolipoprotein E antibody [D6E10] - BSA and Azide free (AB1906)

Immunohistochemistry (Formalin/PFA-fixed paraffin-embedded sections) analysis of human cerebellum tissue labelling Apolipoprotein E with ab1906. The tissue was incubated with 10 μg/mL of the primary antibody overnight at 4°C. Antigen retrieval was performed using Sodium Citrate H.I.E.R. Counterstained with hematoxylin. The image was captured with a 40X objective. Scale bar : 50 μm.

Key facts

Host species

Mouse

Clonality

Monoclonal

Clone number

D6E10

Isotype

IgG1

Light chain type

kappa

Carrier free

Yes

Reacts with

Human

Applications

IHC-P

applications

Immunogen

Synthetic Peptide within Human APOE aa 100-200. The exact immunogen used to generate this antibody is proprietary information.

P02649

Specificity

Mouse reactivity: Please be aware that we have received positive as well as negative feedback for reactivity of this antibody with mouse samples. The antibody is not being batch-tested in the mouse samples. Anti-Apolipoprotein E antibody [D6E10] recognizes the E2, E3 and E4 isoforms of apolipoprotein E. It was raised against a peptide sequence corresponding to aa 141-160 of human Apo-E.

Reactivity data

{ "title": "Reactivity Data", "filters": { "stats": ["", "Species", "Dilution Info", "Notes"], "tabs": { "all-applications": {"fullname" : "All Applications", "shortname": "All Applications"}, "IHCP" : {"fullname" : "Immunohistochemistry (Formalin/PFA-fixed paraffin-embedded sections)", "shortname":"IHC-P"} }, "product-promise": { "all": "all", "testedAndGuaranteed": "tested", "guaranteed": "expected", "predicted": "predicted", "notRecommended": "not-recommended" } }, "values": { "Human": { "IHCP-species-checked": "testedAndGuaranteed", "IHCP-species-dilution-info": "5-10 µg/mL", "IHCP-species-notes": "<p>The staining intensity of formalin-fixed paraffin embedded tissues may be significantly improved by pretreatment methods such as: 70% Formic acid for 10-30 minutes at room temperature or Hydrolytic autoclaving.</p> Antigen retrieval is not essential but may optimise staining." } } }

Product details

This product was changed from ascites to tissue culture supernatant on 2nd February 2018. Please note that the dilutions may need to be adjusted accordingly. If you have any questions, please do not hesitate to contact our scientific support team.

Properties and storage information

Form
Liquid
Purification notes
Purified from TCS
Storage buffer
Constituents: PBS
Shipped at conditions
Blue Ice
Appropriate short-term storage duration
1-2 weeks
Appropriate short-term storage conditions
+4°C
Appropriate long-term storage conditions
-20°C
Aliquoting information
Upon delivery aliquot
Storage information
Avoid freeze / thaw cycle

Supplementary information

This supplementary information is collated from multiple sources and compiled automatically.

Apolipoprotein E (ApoE) also known as apolipoprotein e or apoE is a major protein involved in lipid metabolism. It has an approximate molecular weight of 34 kDa. This protein is mainly produced in the liver and brain where it plays a critical role in transporting lipoproteins fat-soluble vitamins and cholesterol. ApoE exists in three common isoforms: ApoE2 ApoE3 and ApoE4 each having different impacts on lipid binding and metabolic processes. Scientists often use an ApoE ELISA kit to quantify this protein in various samples providing insights into its expression in health and disease.
Biological function summary

ApoE mediates the binding internalization and catabolism of these lipoprotein particles facilitating their interaction with specific cell-surface receptors such as the LDL receptor. This protein operates as part of a complex that includes various other apolipoproteins and lipid molecules. The study of mouse apoe using tools like a mouse apoe ELISA provides valuable data due to its similar physiological functions in lipid transport and metabolism.

Pathways

In the lipid metabolism pathway ApoE interacts with proteins such as the LDL receptor influencing the clearance of chylomicron remnants and VLDL from the bloodstream. In the cardiovascular disease pathway this protein impacts cholesterol levels and promotes plaques stabilization. ApoE's role in these pathways offers insights into its interaction with related proteins like apolipoprotein B and LDL receptor which are critical for maintaining lipid equilibrium.

In Alzheimer’s disease ApoE4 isoform has a higher risk factor compared to ApoE3 and ApoE2 contributing to amyloid plaque formation through interactions with amyloid precursor protein. In cardiovascular diseases ApoE abnormalities influence atherosclerosis development with ApoE-deficient models showing increased susceptibility. ApoE's links to these diseases also connect it to other key proteins such as presenilin-1 in Alzheimer's disease and apolipoprotein B in cardiovascular disorders highlighting its extensive biological impact.

Product protocols

For this product, it's our understanding that no specific protocols are required. You can visit:

Target data

APOE is an apolipoprotein, a protein associating with lipid particles, that mainly functions in lipoprotein-mediated lipid transport between organs via the plasma and interstitial fluids (PubMed : 14754908, PubMed : 1911868, PubMed : 6860692). APOE is a core component of plasma lipoproteins and is involved in their production, conversion and clearance (PubMed : 14754908, PubMed : 1911868, PubMed : 1917954, PubMed : 23620513, PubMed : 2762297, PubMed : 6860692, PubMed : 9395455). Apolipoproteins are amphipathic molecules that interact both with lipids of the lipoprotein particle core and the aqueous environment of the plasma (PubMed : 2762297, PubMed : 6860692, PubMed : 9395455). As such, APOE associates with chylomicrons, chylomicron remnants, very low density lipoproteins (VLDL) and intermediate density lipoproteins (IDL) but shows a preferential binding to high-density lipoproteins (HDL) (PubMed : 1911868, PubMed : 6860692). It also binds a wide range of cellular receptors including the LDL receptor/LDLR, the LDL receptor-related proteins LRP1, LRP2 and LRP8 and the very low-density lipoprotein receptor/VLDLR that mediate the cellular uptake of the APOE-containing lipoprotein particles (PubMed : 12950167, PubMed : 1530612, PubMed : 1917954, PubMed : 20030366, PubMed : 20303980, PubMed : 2063194, PubMed : 2762297, PubMed : 7635945, PubMed : 7768901, PubMed : 8756331, PubMed : 8939961). Finally, APOE has also a heparin-binding activity and binds heparan-sulfate proteoglycans on the surface of cells, a property that supports the capture and the receptor-mediated uptake of APOE-containing lipoproteins by cells (PubMed : 23676495, PubMed : 7635945, PubMed : 9395455, PubMed : 9488694). A main function of APOE is to mediate lipoprotein clearance through the uptake of chylomicrons, VLDLs, and HDLs by hepatocytes (PubMed : 1911868, PubMed : 1917954, PubMed : 23676495, PubMed : 29516132, PubMed : 9395455). APOE is also involved in the biosynthesis by the liver of VLDLs as well as their uptake by peripheral tissues ensuring the delivery of triglycerides and energy storage in muscle, heart and adipose tissues (PubMed : 2762297, PubMed : 29516132). By participating in the lipoprotein-mediated distribution of lipids among tissues, APOE plays a critical role in plasma and tissues lipid homeostasis (PubMed : 1917954, PubMed : 2762297, PubMed : 29516132). APOE is also involved in two steps of reverse cholesterol transport, the HDLs-mediated transport of cholesterol from peripheral tissues to the liver, and thereby plays an important role in cholesterol homeostasis (PubMed : 14754908, PubMed : 23620513, PubMed : 9395455). First, it is functionally associated with ABCA1 in the biogenesis of HDLs in tissues (PubMed : 14754908, PubMed : 23620513). Second, it is enriched in circulating HDLs and mediates their uptake by hepatocytes (PubMed : 9395455). APOE also plays an important role in lipid transport in the central nervous system, regulating neuron survival and sprouting (PubMed : 25173806, PubMed : 8939961). APOE is also involved in innate and adaptive immune responses, controlling for instance the survival of myeloid-derived suppressor cells (By similarity). Binds to the immune cell receptor LILRB4 (PubMed : 30333625). APOE may also play a role in transcription regulation through a receptor-dependent and cholesterol-independent mechanism, that activates MAP3K12 and a non-canonical MAPK signal transduction pathway that results in enhanced AP-1-mediated transcription of APP (PubMed : 28111074).. (Microbial infection) Through its interaction with HCV envelope glycoprotein E2, participates in the attachment of HCV to HSPGs and other receptors (LDLr, VLDLr, and SR-B1) on the cell surface and to the assembly, maturation and infectivity of HCV viral particles (PubMed : 25122793, PubMed : 29695434). This interaction is probably promoted via the up-regulation of cellular autophagy by the virus (PubMed : 29695434).
See full target information APOE

Publications (66)

Recent publications for all applications. Explore the full list and refine your search

Cellular and molecular life sciences : CMLS 82:313 PubMed40802025

2025

RER1 regulates lipid metabolism in monocytes and macrophages.

Applications

Unspecified application

Species

Unspecified reactive species

Yanxia Liu,Sandra Theil,Mohamed H Yaghmour,Anja Kerksiek,Peng Chen,Ingo G H Schmidt-Wolf,Rebecca Barker,Eva Bartok,Dieter Lütjohann,Christoph Thiele,Jochen Walter

Communications biology 8:296 PubMed40033126

2025

Maternal immune activation followed by peripubertal stress combinedly produce reactive microglia and confine cerebellar cognition.

Applications

Unspecified application

Species

Unspecified reactive species

Momoka Hikosaka,Md Sorwer Alam Parvez,Yuki Yamawaki,Souichi Oe,Yuan Liang,Yayoi Wada,Yukie Hirahara,Taro Koike,Hirohiko Imai,Naoya Oishi,Sina M Schalbetter,Asuka Kumagai,Mari Yoshida,Takeshi Sakurai,Masaaki Kitada,Urs Meyer,Shuh Narumiya,Gen Ohtsuki

The Journal of biological chemistry 301:108236 PubMed39880097

2025

Apolipoprotein E3 and E4 isoforms exhibit differing effects in countering endotoxins.

Applications

Unspecified application

Species

Unspecified reactive species

Manoj Puthia,Jan K Marzinek,Katerina Vesela,Axel Larsson,Artur Schmidtchen,Peter J Bond,Jitka Petrlova

Biochimica et biophysica acta. Molecular basis of disease 1870:167479 PubMed39181516

2024

25-Hydroxycholesterol attenuates tumor necrosis factor alpha-induced blood-brain barrier breakdown in vitro.

Applications

Unspecified application

Species

Unspecified reactive species

Rodrigo Azevedo Loiola,Cindy Nguyen,Shiraz Dib,Julien Saint-Pol,Lucie Dehouck,Emmanuel Sevin,Marie Naudot,Christophe Landry,Jens Pahnke,Caroline Pot,Fabien Gosselet

Molecular psychiatry 29:3364-3380 PubMed38734844

2024

Reduction of APOE accounts for neurobehavioral deficits in fetal alcohol spectrum disorders.

Applications

Unspecified application

Species

Unspecified reactive species

Hye M Hwang,Satoshi Yamashita,Yu Matsumoto,Mariko Ito,Alex Edwards,Junko Sasaki,Dipankar J Dutta,Shahid Mohammad,Chiho Yamashita,Leah Wetherill,Tae-Hwi Schwantes-An,Marco Abreu,Amanda H Mahnke,Sarah N Mattson,Tatiana Foroud,Rajesh C Miranda,Christina Chambers,Masaaki Torii,Kazue Hashimoto-Torii

iScience 27:109231 PubMed38439966

2024

ApoE maintains neuronal integrity via microRNA and H3K27me3-mediated repression.

Applications

Unspecified application

Species

Unspecified reactive species

Jiazi Tan,Yow-Yong Tan,Zhen-Kai Ngian,Suet-Yen Chong,Vinay Kumar Rao,Jiong-Wei Wang,Xianmin Zeng,Chin-Tong Ong

Nature communications 14:5904 PubMed37737269

2023

A branching model of lineage differentiation underpinning the neurogenic potential of enteric glia.

Applications

Unspecified application

Species

Unspecified reactive species

Anna Laddach,Song Hui Chng,Reena Lasrado,Fränze Progatzky,Michael Shapiro,Alek Erickson,Marisol Sampedro Castaneda,Artem V Artemov,Ana Carina Bon-Frauches,Eleni-Maria Amaniti,Jens Kleinjung,Stefan Boeing,Sila Ultanir,Igor Adameyko,Vassilis Pachnis

Neuron 111:3619-3633.e8 PubMed37689059

2023

Irisin reduces amyloid-β by inducing the release of neprilysin from astrocytes following downregulation of ERK-STAT3 signaling.

Applications

Unspecified application

Species

Unspecified reactive species

Eunhee Kim,Hyeonwoo Kim,Mark P Jedrychowski,Grisilda Bakiasi,Joseph Park,Jane Kruskop,Younjung Choi,Sang Su Kwak,Luisa Quinti,Doo Yeon Kim,Christiane D Wrann,Bruce M Spiegelman,Rudolph E Tanzi,Se Hoon Choi

International journal of molecular sciences 24: PubMed36983062

2023

TNFα Activates the Liver X Receptor Signaling Pathway and Promotes Cholesterol Efflux from Human Brain Pericytes Independently of .

Applications

Unspecified application

Species

Unspecified reactive species

Shiraz Dib,Rodrigo Azevedo Loiola,Emmanuel Sevin,Julien Saint-Pol,Fumitaka Shimizu,Takashi Kanda,Jens Pahnke,Fabien Gosselet

CNS neuroscience & therapeutics 29:2018-2035 PubMed36914567

2023

Microglial cGAS drives neuroinflammation in the MPTP mouse models of Parkinson's disease.

Applications

Unspecified application

Species

Unspecified reactive species

Chunmei Ma,Ying Liu,Sheng Li,Chanyuan Ma,Jiajia Huang,Shuang Wen,Shuo Yang,Bingwei Wang
View all publications

Product promise

We are committed to supporting your work with high-quality reagents, and we're here for you every step of the way. In the unlikely event that one of our products does not perform as expected, you're protected by our Product Promise.
For full details, please see our Terms & Conditions

Please note: All products are 'FOR RESEARCH USE ONLY. NOT FOR USE IN DIAGNOSTIC OR THERAPEUTIC PROCEDURES'.

For licensing inquiries, please contact partnerships@abcam.com