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AB72189

Anti-FADS2抗体

Anti-FADS2 antibody

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(6 Publications)

Knockout Tested Rabbit Polyclonal FADS2 antibody. Suitable for IP, WB and reacts with Human samples. Cited in 6 publications.

查看别名

Acyl-CoA 6-desaturase, Delta(6) fatty acid desaturase, Fatty acid desaturase 2, D6D, Delta(6) desaturase, Delta-6 desaturase, FADS2

3 Images
Immunoprecipitation - Anti-FADS2 antibody (AB72189)
  • IP

Unknown

Immunoprecipitation - Anti-FADS2 antibody (AB72189)

FADS2 was immunoprecipitated using 0.5mg HepG2 whole cell extract, 5µg of Rabbit polyclonal to FADS2 and 50µl of protein G magnetic beads (+). No antibody was added to the control (-).
The antibody was incubated under agitation with Protein G beads for 10min, HepG2 whole cell extract lysate diluted in RIPA buffer was added to each sample and incubated for a further 10min under agitation.
Proteins were eluted by addition of 40µl SDS loading buffer and incubated for 10min at 70oC; 10µl of each sample was separated on a SDS PAGE gel, transferred to a nitrocellulose membrane, blocked with 5% BSA and probed with ab72189.
Secondary : Mouse monoclonal [SB62a] Secondary Antibody to Rabbit IgG light chain (HRP) (ab99697).
Band : 45kDa : FADS2.

All lanes:

Immunoprecipitation - Anti-FADS2 antibody (ab72189)

Predicted band size: 52 kDa

false

Western blot - Anti-FADS2 antibody (AB72189)
  • WB

Unknown

Western blot - Anti-FADS2 antibody (AB72189)

ab72189 detects a strong band at 45 kDa in human liver and brain tissue lysates, aswell as hela and hepG2 whole cell lysates. This antibody was raised against an immunogen that is predicted to cross react with all known isoforms of Fatty acid desaturase 2 (FADS2). FADS2 has three isoforms, isoform one has a molecular weight of 52 kDa with isoforms two and three a molecular weight of 49 and 45 respectively(SwissProt data). The band we have observed is thought to represent isoform 3 of FADS2 (45 kDa).

All lanes:

Western blot - Anti-FADS2 antibody (ab72189) at 1 µg/mL

Lane 1:

HeLa (Human epithelial carcinoma cell line) Whole Cell Lysate at 10 µg

Lane 2:

Human liver tissue lysate - total protein (<a href='/products/unavailable/human-liver-tissue-lysate-total-protein-ab29889'>ab29889</a>) at 10 µg

Lane 3:

HepG2 (Human hepatocellular liver carcinoma cell line) Whole Cell Lysate at 10 µg

Lane 4:

Human brain tissue lysate - total protein (<a href='/products/unavailable/human-brain-tissue-lysate-total-protein-ab29466'>ab29466</a>) at 10 µg

Secondary

All lanes:

Goat polyclonal to Rabbit IgG - H&L - Pre-Adsorbed (HRP) at 1/3000 dilution

Predicted band size: 52 kDa

Observed band size: 45 kDa,62.5 kDa

true

Exposure time: 2min

Western blot - Anti-FADS2 antibody (AB72189)
  • WB

Lab

Western blot - Anti-FADS2 antibody (AB72189)

Western blot : Anti-FADS2 antibody (ab72189) staining at 1 ug/ml, shown in green; Mouse anti-CANX [CANX/1543] (ab238078) loading control staining at 1/20000 dilution, shown in magenta. In Western blot, ab72189 was shown to bind specifically to FADS2. A band was observed at 40-45 kDa in wild-type A549 cell lysates with no signal observed at this size in FADS2 knockout cell line. To generate this image, wild-type and FADS2 knockout A549 cell lysates were analysed. First, samples were run on an SDS-PAGE gel then transferred onto a nitrocellulose membrane. Membranes were blocked in 3 % milk in TBS-0.1 % Tween® 20 (TBS-T) before incubation with primary antibodies overnight at 4 °C. Blots were washed four times in TBS-T, incubated with secondary antibodies for 1 h at room temperature, washed again four times then imaged. Secondary antibodies used were Goat anti-Rabbit IgG H&L 800CW and Goat anti-Mouse IgG H&L 680RD at 1/20000 dilution.

All lanes:

Western blot - Anti-FADS2 antibody (ab72189) at 1 µg/mL

Lane 1:

Wild-type A549 cell lysate at 20 µg

Lane 2:

FADS2 knockout A549 cell lysate at 20 µg

Secondary

All lanes:

Goat anti-Rabbit IgG H&L 800CW and Goat anti-Mouse IgG H&L 680RD at 1/20000 dilution

Predicted band size: 52 kDa

Observed band size: 40 kDa,45 kDa

false

关键信息

宿主种属

Rabbit

克隆

Polyclonal

亚型

IgG

不含载体蛋白

No

反应种属

Human

应用

IP, WB

applications

免疫原

The exact immunogen used to generate this antibody is proprietary information.

反应性数据

{ "title": "Reactivity Data", "filters": { "stats": ["", "Species", "Dilution Info", "Notes"], "tabs": { "all-applications": {"fullname" : "All Applications", "shortname": "All Applications"}, "IP" : {"fullname" : "Immunoprecipitation", "shortname":"IP"}, "WB" : {"fullname" : "Western blot", "shortname":"WB"} }, "product-promise": { "all": "all", "testedAndGuaranteed": "tested", "guaranteed": "expected", "predicted": "predicted", "notRecommended": "not-recommended" } }, "values": { "Human": { "IP-species-checked": "testedAndGuaranteed", "IP-species-dilution-info": "", "IP-species-notes": "<p></p>", "WB-species-checked": "testedAndGuaranteed", "WB-species-dilution-info": "1 µg/mL", "WB-species-notes": "<p></p>" }, "Baboon": { "IP-species-checked": "predicted", "IP-species-dilution-info": "", "IP-species-notes": "", "WB-species-checked": "predicted", "WB-species-dilution-info": "", "WB-species-notes": "" }, "Monkey": { "IP-species-checked": "predicted", "IP-species-dilution-info": "", "IP-species-notes": "", "WB-species-checked": "predicted", "WB-species-dilution-info": "", "WB-species-notes": "" }, "Orangutan": { "IP-species-checked": "predicted", "IP-species-dilution-info": "", "IP-species-notes": "", "WB-species-checked": "predicted", "WB-species-dilution-info": "", "WB-species-notes": "" } } }

性能和储存信息

形式
Liquid
纯化工艺
Affinity purification Immunogen
存储溶液
pH: 7.4 Preservative: 0.02% Sodium azide Constituents: PBS, 1% BSA
运输条件
Blue Ice
推荐的短期储存时间
1-2 weeks
推荐的短期储存条件
+4°C
推荐的长期储存条件
-20°C
分装信息
Upon delivery aliquot
储存信息
Avoid freeze / thaw cycle

补充信息

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

FADS2 also known as Fatty Acid Desaturase 2 or FABRED27 functions as an enzyme involved in creating double bonds in specific fatty acids. It holds a molecular weight of approximately 52 kDa. Researchers find this enzyme prominently expressed in liver tissue and it plays an essential role in the process of lipid metabolism.
Biological function summary

FADS2 contributes to the metabolism of polyunsaturated fatty acids by introducing double bonds specifically within the fatty acid synthetic pathway. It does not function as part of a larger complex but operates independently. Through its enzymatic action it influences the production of essential fatty acids such as arachidonic acid and eicosapentaenoic acid which are important for maintaining normal cellular function.

Pathways

FADS2 plays an integral part within both the fatty acid biosynthesis and fatty acid metabolism pathways. It closely relates with other enzymes such as acyl-CoA synthetase and elongation enzymes which work together to metabolize various fats within the body. These pathways help maintain cellular homeostasis by regulating levels of essential long-chain polyunsaturated fatty acids.

Alterations in FADS2 activity have connections to metabolic disorders like obesity and cardiovascular disease. Aberrant expression of FADS2 can influence lipid profiles in these conditions potentially exacerbating disease outcomes. FADS2 also interacts with other proteins such as SCD1 (Stearoyl-CoA Desaturase 1) within these disorders further highlighting its role in lipid metabolism and associated diseases.

产品实验方案

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

靶点信息

Involved in the biosynthesis of highly unsaturated fatty acids (HUFA) from the essential polyunsaturated fatty acids (PUFA) linoleic acid (LA) (18 : 2n-6) and alpha-linolenic acid (ALA) (18 : 3n-3) precursors, acting as a fatty acyl-coenzyme A (CoA) desaturase that introduces a cis double bond at carbon 6 of the fatty acyl chain. Catalyzes the first and rate limiting step in this pathway which is the desaturation of LA (18 : 2n-6) and ALA (18 : 3n-3) into gamma-linoleate (GLA) (18 : 3n-6) and stearidonate (18 : 4n-3), respectively (PubMed : 12713571). Subsequently, in the biosynthetic pathway of HUFA n-3 series, it desaturates tetracosapentaenoate (24 : 5n-3) to tetracosahexaenoate (24 : 6n-3), which is then converted to docosahexaenoate (DHA)(22 : 6n-3), an important lipid for nervous system function (By similarity). Desaturates hexadecanate (palmitate) to produce 6Z-hexadecenoate (sapienate), a fatty acid unique to humans and major component of human sebum, that has been implicated in the development of acne and may have potent antibacterial activity (PubMed : 12713571). It can also desaturate (11E)-octadecenoate (trans-vaccenoate, the predominant trans fatty acid in human milk) at carbon 6 generating (6Z,11E)-octadecadienoate (By similarity). In addition to Delta-6 activity, this enzyme exhibits Delta-8 activity with slight biases toward n-3 fatty acyl-CoA substrates (By similarity).
See full target information FADS2

文献 (6)

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

Cancer discovery 13:1720-1747 PubMed37012202

2023

C/EBPα Confers Dependence to Fatty Acid Anabolic Pathways and Vulnerability to Lipid Oxidative Stress-Induced Ferroptosis in FLT3-Mutant Leukemia.

Applications

Unspecified application

Species

Unspecified reactive species

Marie Sabatier,Rudy Birsen,Laura Lauture,Sarah Mouche,Paolo Angelino,Jonas Dehairs,Léa Goupille,Ismael Boussaid,Maël Heiblig,Emeline Boet,Ambrine Sahal,Estelle Saland,Juliana C Santos,Marc Armengol,Miranda Fernández-Serrano,Thomas Farge,Guillaume Cognet,Federico Simonetta,Corentin Pignon,Antoine Graffeuil,Céline Mazzotti,Hervé Avet-Loiseau,Océane Delos,Justine Bertrand-Michel,Amélie Chedru,Vilma Dembitz,Paolo Gallipoli,Natasha S Anstee,Sun Loo,Andrew H Wei,Martin Carroll,Armelle Goubard,Rémy Castellano,Yves Collette,François Vergez,Véronique Mansat-De Mas,Sarah Bertoli,Suzanne Tavitian,Muriel Picard,Christian Récher,Nathalie Bourges-Abella,Fanny Granat,Olivier Kosmider,Pierre Sujobert,Benoit Colsch,Carine Joffre,Lucille Stuani,Johannes V Swinnen,Hervé Guillou,Gael Roué,Nawad Hakim,Anne S Dejean,Petros Tsantoulis,Clément Larrue,Didier Bouscary,Jerome Tamburini,Jean-Emmanuel Sarry

Biochimica et biophysica acta. Molecular and cell biology of lipids 1866:158884 PubMed33444759

2021

Extensive transcription mis-regulation and membrane defects in AdipoR2-deficient cells challenged with saturated fatty acids.

Applications

Unspecified application

Species

Unspecified reactive species

Mario Ruiz,Henrik Palmgren,Marcus Henricsson,Ranjan Devkota,Himjyot Jaiswal,Marcello Maresca,Mohammad Bohlooly-Y,Xiao-Rong Peng,Jan Borén,Marc Pilon

Lifestyle genomics 13:64-73 PubMed32036361

2020

Ximenynic Acid Regulation of n-3 PUFA Content in Liver and Brain.

Applications

Unspecified application

Species

Unspecified reactive species

Fang Cai,Yandi Liu,Dhanushka S Hettiarachichi,Fenglei Wang,Jie Li,Bruce Sunderland,Duo Li

Cellular and molecular life sciences : CMLS 77:1153-1175 PubMed31302749

2019

Impact of 17β-HSD12, the 3-ketoacyl-CoA reductase of long-chain fatty acid synthesis, on breast cancer cell proliferation and migration.

Applications

Unspecified application

Species

Unspecified reactive species

Maria Tsachaki,Pirmin Strauss,Anja Dunkel,Hana Navrátilová,Natasa Mladenovic,Alex Odermatt

Cell metabolism 29:856-870.e7 PubMed30686744

2019

Polyunsaturated Fatty Acid Desaturation Is a Mechanism for Glycolytic NAD Recycling.

Applications

Unspecified application

Species

Unspecified reactive species

Wondong Kim,Amy Deik,Clicerio Gonzalez,Maria Elena Gonzalez,Feifei Fu,Michele Ferrari,Claire L Churchhouse,Jose C Florez,Suzanne B R Jacobs,Clary B Clish,Eugene P Rhee

Biochimica et biophysica acta. Molecular and cell 1862:485-495 PubMed28185952

2017

Region-specific vulnerability to lipid peroxidation and evidence of neuronal mechanisms for polyunsaturated fatty acid biosynthesis in the healthy adult human central nervous system.

Applications

WB

Species

Human

Alba Naudí,Rosanna Cabré,Mayelin Dominguez-Gonzalez,Victoria Ayala,Mariona Jové,Natalia Mota-Martorell,Gerard Piñol-Ripoll,Maria Pilar Gil-Villar,Montserrat Rué,Manuel Portero-Otín,Isidre Ferrer,Reinald Pamplona
View all publications

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