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AB23505

Anti-CD81 抗体 [1D6]

Anti-CD81 antibody [1D6]

5

(1 Review)

|

(18 Publications)

Mouse Monoclonal CD81 antibody. Suitable for Flow Cyt and reacts with Human samples. Cited in 18 publications. Immunogen corresponding to Cell preparation containing CD81 protein.

別名を表示する

CD81, TAPA1, TSPAN28, CD81 antigen, 26 kDa cell surface protein TAPA-1, Target of the antiproliferative antibody 1, Tetraspanin-28, Tspan-28

1 Images
Flow Cytometry - Anti-CD81 antibody [1D6] (AB23505)
  • Flow Cyt

Lab

Flow Cytometry - Anti-CD81 antibody [1D6] (AB23505)

Overlay histogram showing HAP1 wildtype (green line) and HAP1-CD81 knockout cells (red line) stained with ab23505. The cells were fixed with 4% formaldehyde (10 min) and then permeabilized with 0.1% PBS-Triton X-100 for 15 min. The cells were then incubated in 1x PBS / 10% normal goat serum to block non-specific protein-protein interactions followed by the antibody (ab23505, 0.1μg/ml) for 30 min at 22°C. The secondary antibody used was Alexa Fluor® 488 goat anti-mouse IgG (H&L) presorbed (ab150117) at 1/2000 dilution for 30 min at 22°C.

A mouse IgG1 isotype control antibody (ab170190) was used at the same concentration and conditions as the primary antibody (HAP1 wildtype - black line, HAP1-CD81 knockout - grey line). Unlabelled sample was also used as a control (this line is not shown for the purpose of simplicity).

Acquisition of >5,000 events were collected using a 50 mW Blue laser (488nm) and 530/30 bandpass filter.

This antibody can also be used in HAP1 cells fixed with 80% methanol (5 min), permeabilized with 0.1% PBS-Triton X-100 for 15 min under the same conditions.

関連する標識済み抗体及び組成の異なる製品 (1)

  • 519 FITC

    FITC Anti-CD81 antibody [1D6]

Key facts

宿主種

Mouse

クローン性

Monoclonal

クローン番号

1D6

アイソタイプ

IgG1

キャリアフリー

No

交差種

Human

アプリケーション

Flow Cyt

applications

免疫原

Cell preparation containing CD81 protein. The exact immunogen used to generate this antibody is proprietary information.

P60033

特異性

ab23505 recognises human CD81, a 26kD cell surface antigen also known as TAPA-1, and a member of the tetraspanin family.

Reactivity data

{ "title": "Reactivity Data", "filters": { "stats": ["", "Species", "Dilution Info", "Notes"], "tabs": { "all-applications": {"fullname" : "All Applications", "shortname": "All Applications"}, "FlowCyt" : {"fullname" : "Flow Cytometry", "shortname":"Flow Cyt"}, "WB" : {"fullname" : "Western blot", "shortname":"WB"} }, "product-promise": { "all": "all", "testedAndGuaranteed": "tested", "guaranteed": "expected", "predicted": "predicted", "notRecommended": "not-recommended" } }, "values": { "Human": { "FlowCyt-species-checked": "testedAndGuaranteed", "FlowCyt-species-dilution-info": "1/5 - 1/10", "FlowCyt-species-notes": "<p><a href='/products/primary-antibodies/mouse-igg1-kappa-monoclonal-15-6e10a7-isotype-control-ab170190'>ab170190</a> - Mouse monoclonal IgG1, is suitable for use as an isotype control with this antibody.</p>", "WB-species-checked": "notRecommended", "WB-species-dilution-info": "", "WB-species-notes": "<p>Although there are references supporting the use of the clone in WB, our internal testing failed to achieve suitable results. Unfortunately this antibody cannot be guaranteed for WB</p>" }, "Chimpanzee": { "FlowCyt-species-checked": "predicted", "FlowCyt-species-dilution-info": "", "FlowCyt-species-notes": "", "WB-species-checked": "notRecommended", "WB-species-dilution-info": "", "WB-species-notes": "" }, "Goat": { "FlowCyt-species-checked": "predicted", "FlowCyt-species-dilution-info": "", "FlowCyt-species-notes": "", "WB-species-checked": "notRecommended", "WB-species-dilution-info": "", "WB-species-notes": "" }, "Sheep": { "FlowCyt-species-checked": "predicted", "FlowCyt-species-dilution-info": "", "FlowCyt-species-notes": "", "WB-species-checked": "notRecommended", "WB-species-dilution-info": "", "WB-species-notes": "" } } }

製品の詳細

This antibody induces homotypic adhesion and has powerful anti proliferative effects.

出荷温度及び保存条件

製品の状態
Liquid
精製方法
Affinity purification Protein G
バッファー組成
pH: 7.4 Preservative: 0.09% Sodium azide Constituents: PBS
出荷温度
Blue Ice
短期保存期間
1-2 weeks
短期保存温度
+4°C
長期保存温度
-20°C
分注に関する情報
Upon delivery aliquot

補足情報

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

CD81 also known as TAPA-1 or 26 kDa protein is a member of the tetraspanin family featuring four transmembrane domains. The molecular weight of CD81 is approximately 26-28 kDa. This protein exhibits expression in numerous cell types such as leukocytes endothelial cells and epithelial tissues. CD81 plays a mechanical role by facilitating membrane protein interactions and contributing to cellular processes like adhesion and morphogenesis. Researchers have identified specific isoforms like M38 and labels like 1D6 CHAN in studies involving this target often analyzing CD81 through techniques like Western blot to determine expression levels and molecular weight.
Biological function summary

CD81 interacts with other tetraspanins and forms complexes within the membrane to regulate cellular signaling trafficking and adhesion. It participates in the assembly of larger tetraspanin-enriched microdomains which are important for efficient signaling and functional variety. These complexes modulate cell morphology proliferation and development influencing immune responses and pathogen entry to cells. The presence of CD81 in diverse tissues implies its involvement in a wide range of cellular processes forming essential complexes with proteins like integrins that further engage in tissue repair and immunological defense.

Pathways

CD81 plays significant roles in the immune system and viral entry pathways. It interacts with other proteins like CD9 and CD19 within the immune response pathways regulating lymphocyte activation and differentiation. CD81 is notably a coreceptor in the hepatitis C virus (HCV) entry pathway facilitating viral attachment and fusion into host cells. These interactions illustrate CD81's involvement in modulation of immune cell responses and influence on pathogen infection processes integrating into the complex cellular pathways important for maintaining homeostasis and response to external stimuli.

CD81 has connections to hepatitis C virus (HCV) infections and immunological disorders such as systemic lupus erythematosus (SLE). During HCV infection CD81 serves as an important entry point for the virus interacting with proteins like claudin-1 and scavenger receptor class B type I (SR-BI) enabling viral entry and replication within liver cells. In SLE alterations in CD81 expression can impact autoantibody production and lymphocyte behavior contributing to the disease's pathology. Understanding CD81's role in these diseases provides insight into therapeutic targets and potential interventions for managing infections and autoimmune responses.

製品プロトコール

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ターゲットの情報

Structural component of specialized membrane microdomains known as tetraspanin-enriched microdomains (TERMs), which act as platforms for receptor clustering and signaling. Essential for trafficking and compartmentalization of CD19 receptor on the surface of activated B cells (PubMed : 16449649, PubMed : 20237408, PubMed : 27881302). Upon initial encounter with microbial pathogens, enables the assembly of CD19-CR2/CD21 and B cell receptor (BCR) complexes at signaling TERMs, lowering the threshold dose of antigen required to trigger B cell clonal expansion and antibody production (PubMed : 15161911, PubMed : 20237408). In T cells, facilitates the localization of CD247/CD3 zeta at antigen-induced synapses with B cells, providing for costimulation and polarization toward T helper type 2 phenotype (PubMed : 22307619, PubMed : 23858057, PubMed : 8766544). Present in MHC class II compartments, may also play a role in antigen presentation (PubMed : 8409388, PubMed : 8766544). Can act both as positive and negative regulator of homotypic or heterotypic cell-cell fusion processes. Positively regulates sperm-egg fusion and may be involved in acrosome reaction (By similarity). In myoblasts, associates with CD9 and PTGFRN and inhibits myotube fusion during muscle regeneration (By similarity). In macrophages, associates with CD9 and beta-1 and beta-2 integrins, and prevents macrophage fusion into multinucleated giant cells specialized in ingesting complement-opsonized large particles (PubMed : 12796480). Also prevents the fusion of mononuclear cell progenitors into osteoclasts in charge of bone resorption (By similarity). May regulate the compartmentalization of enzymatic activities. In T cells, defines the subcellular localization of dNTPase SAMHD1 and permits its degradation by the proteasome, thereby controlling intracellular dNTP levels (PubMed : 28871089). Also involved in cell adhesion and motility. Positively regulates integrin-mediated adhesion of macrophages, particularly relevant for the inflammatory response in the lung (By similarity).. (Microbial infection) Acts as a receptor for hepatitis C virus (HCV) in hepatocytes. Association with CLDN1 and the CLDN1-CD81 receptor complex is essential for HCV entry into host cell.. (Microbial infection) Involved in SAMHD1-dependent restriction of HIV-1 replication. May support early replication of both R5- and X4-tropic HIV-1 viruses in T cells, likely via proteasome-dependent degradation of SAMHD1.. (Microbial infection) Specifically required for Plasmodium falciparum infectivity of hepatocytes, controlling sporozoite entry into hepatocytes via the parasitophorous vacuole and subsequent parasite differentiation to exoerythrocytic forms.
See full target information CD81

文献 (18)

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

PloS one 20:e0329014 PubMed40938891

2025

A novel sialylation pathway mediated by extracellular vesicles in aggressive prostate cancer.

Applications

Unspecified application

Species

Unspecified reactive species

Camila A Bach,Md Niamat Hossain,Ishan J Chaudhari,Cecilia E Verrillo,Nicole M Naranjo,Isabella Amoroso,Anna Testa,Samuel Sey,William K Kelly,Susan L Bellis,Aurelio Lorico,Ada G Blidner,Gabriel A Rabinovich,Lucia R Languino

Scientific reports 15:23217 PubMed40603896

2025

Irradiation of prostate cancer alters circulating small extracellular vesicle functions.

Applications

Unspecified application

Species

Unspecified reactive species

Aejaz Sayeed,Vaughn Garcia,Cecilia E Verrillo,Rachel M DeRita,Md Niamat Hossain,Shiv Ram Krishn,Samuel Sey,Christopher D Shields,Adrian D Altieri,Qin Liu,Khalid Sossey-Alaoui,William K Kelly,Lucia R Languino

Journal of extracellular vesicles 13:e12482 PubMed39105261

2024

Expression of the αVβ3 integrin affects prostate cancer sEV cargo and density and promotes sEV pro-tumorigenic activity in vivo through a GPI-anchored receptor, NgR2.

Applications

Unspecified application

Species

Unspecified reactive species

Cecilia E Verrillo,Fabio Quaglia,Christopher D Shields,Stephen Lin,Andrew V Kossenkov,Hsin-Yao Tang,David Speicher,Nicole M Naranjo,Anna Testa,William K Kelly,Qin Liu,Benjamin Leiby,Luca Musante,Khalid Sossey-Alaoui,Navneet Dogra,Tzu-Yi Chen,Dario C Altieri,Lucia R Languino

Frontiers in medicine 10:1220309 PubMed37795410

2023

Association of Wilms tumor-1 protein in urinary exosomes with kidney injury: a population-based cross-sectional study.

Applications

Unspecified application

Species

Unspecified reactive species

Sukhanshi Khandpur,Medha Srivastava,Rajni Sharma,Shafaque Asif,Dharmendra S Bhadauria,Prabhaker Mishra,Anil J Purty,Swasti Tiwari

Frontiers in endocrinology 14:1157194 PubMed37251672

2023

Therapeutic potential of urine exosomes derived from rats with diabetic kidney disease.

Applications

Unspecified application

Species

Unspecified reactive species

Deendayal Das Mishra,Biswajit Sahoo,Pramod Kumar Maurya,Rajni Sharma,Santosh Varughese,Narayan Prasad,Swasti Tiwari

Cancer biology & therapy 23:173-185 PubMed35188070

2022

Small extracellular vesicle-mediated siRNA delivery downregulates the αVβ6 integrin and inhibits adhesion and migration of recipient prostate cancer cells.

Applications

Unspecified application

Species

Unspecified reactive species

Shiv Ram Krishn,Vaughn Garcia,Nicole M Naranjo,Fabio Quaglia,Christopher D Shields,Maisha A Harris,Andrew V Kossenkov,Qin Liu,Eva Corey,Dario C Altieri,Lucia R Languino

The Biochemical journal 478:3905-3921 PubMed34622927

2021

IFIT3 (interferon induced protein with tetratricopeptide repeats 3) modulates STAT1 expression in small extracellular vesicles.

Applications

Unspecified application

Species

Unspecified reactive species

Nicole M Naranjo,Israa Salem,Maisha A Harris,Lucia R Languino

Oncotarget 11:2216-2232 PubMed32577166

2020

Profiling the circulating mRNA transcriptome in human liver disease.

Applications

Unspecified application

Species

Unspecified reactive species

Aejaz Sayeed,Brielle E Dalvano,David E Kaplan,Usha Viswanathan,John Kulp,Alhaji H Janneh,Lu-Yu Hwang,Adam Ertel,Cataldo Doria,Timothy Block

Journal of extracellular vesicles 9:1761072 PubMed32922691

2020

Small extracellular vesicles modulated by αVβ3 integrin induce neuroendocrine differentiation in recipient cancer cells.

Applications

Unspecified application

Species

Unspecified reactive species

Fabio Quaglia,Shiv Ram Krishn,George G Daaboul,Srawasti Sarker,Raffaella Pippa,Josep Domingo-Domenech,Gaurav Kumar,Paolo Fortina,Peter McCue,William K Kelly,Himisha Beltran,Qin Liu,Lucia R Languino

Journal of extracellular vesicles 9:1763594 PubMed32595914

2020

The αvβ6 integrin in cancer cell-derived small extracellular vesicles enhances angiogenesis.

Applications

Unspecified application

Species

Unspecified reactive species

Shiv Ram Krishn,Israa Salem,Fabio Quaglia,Nicole M Naranjo,Ekta Agarwal,Qin Liu,Srawasti Sarker,Jessica Kopenhaver,Peter A McCue,Paul H Weinreb,Shelia M Violette,Dario C Altieri,Lucia R Languino
View all publications

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