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首-款上市的15-d-PGJ2 ELISA試劑盒,可用于類花生酸研究
15-deoxy-Δ12,14-PGJ2(15-d-PGJ2)是PGD2的最終脫水產(chǎn)物之一,通過中間體Δ12-PGJ2形成。生理條件下,15-d-PGJ2存在于體液中,濃度介于10^(-12)至10^(-9)M,但在感染和炎癥等應激條件下會急劇增加。在細胞類型和濃度的影響下,15-d-PGJ發(fā)揮促進和抗炎癥作用,其中許多作用是通過與過氧化物酶體增殖劑激活受體(PPAR-γ)的γ異構(gòu)體結(jié)合而介導的。15-d-PGJ2似乎通過一種與PPAR-γ無關(guān)的機制誘導HO-1的表達,該機制由活性氧(ROS)的產(chǎn)生介導。
Enzo Life Sciences的15-脫氧-Δ12,14-前列腺素J2 ELISA試劑盒是一種比色競爭法酶聯(lián)免疫檢測試劑盒,可在5小時內(nèi)得到檢測結(jié)果,相比GC/MS 分析節(jié)省時間且耗時少得多。欣博盛生物作為Enzo Life Sciences授權(quán)中國一級代理,可提供該產(chǎn)品,歡迎咨詢。
產(chǎn)品特色
◆ 靈敏度高,可測量低至36.8 pg/ml的15-deoxy-Δ12,14-PGJ2
◆ 檢測快速,較GC/MS分析耗時少得多
◆ 易于使用的即用型液體顏色編碼試劑,可減少錯誤
◆ 優(yōu)于半定量Western blot分析的完-全定量檢測
產(chǎn)品信息
產(chǎn)品貨號 | ADI-900-023/ ADI-901-023 |
產(chǎn)品名稱 | 15-deoxy-Δ12,14-PGJ2 ELISA kit(15-脫氧-Δ12,14-前列腺素J2 ELISA試劑盒) |
規(guī)格 | 96 wells/ 5x96 wells |
其他名稱 | 15-deoxy-Δ12,14-Prostaglandin J2 |
靈敏度 | 36.8 pg/ml |
檢測范圍 | 195 - 200,000 pg/ml |
檢測時間 | 5 hours |
應用 | ELISA, Colorimetric detection |
檢測波長 | 405 nm |
樣本類型 | 細胞培養(yǎng)上清,血漿,唾液和尿液 |
適用種屬 | 不限種屬 |
試劑盒組分 | GxR IgG Microtiter plate, Conjugate, Antibody, Assay buffer, Wash buffer concentrate, Standard, pNpp Substrate, Stop solution |
標曲示例
部分產(chǎn)品引用文獻
1. Redox aspects of cytotoxicity and anti-neuroinflammatory profile of chloroquine and hydroxychloroquine in serum-starved BV-2 microglia: L. Ra?ková, et al.; Toxicol. Appl. Pharmacol. 447, 116084 (2022)
2. Fluoxetine‐induced hepatic lipid accumulation is mediated by prostaglandin endoperoxide synthase 1 and is linked to elevated 15‐deoxy‐Δ12, 14PGJ2: A. Ayyash, et al.; J. Appl. Toxicol. 4272, 1002 (2021)
3. Oxylipin biosynthesis reinforces cellular senescence and allows detection of senolysis: C.D. Wiley, et al.; Cell Metab. 33, 1124 (2021)
4. Cocaine-mediated circadian reprogramming in the striatum through dopamine D2R and PPARγ activation: K. Brami-Cherrier, et al.; Nat. Commun. 11, 4448 (2020)
5. Thymopentin improves the survival of septic mice by promoting the production of 15-deoxy-prostaglandin J2 and activating the PPARγ signaling pathway: Y. Zhang, et al.; FASEB J. 34, 11772 (2020)
6. Apolipoprotein D overexpression alters hepatic prostaglandin and omega fatty acid metabolism during the development of a non-inflammatory hepatic steatosis: F. Desmarais, et al.; Biochim. Biophys. Acta Mol. Cell Biol. Lipids 1864, 522 (2019)
7. Association of chronic inflammation and perceived stress with abnormal functional connectivity in brain areas involved with interoception in hepatitis C patients: G. Oriolo, et al.; Brain Behav. Immun. 80, 204 (2019)
8. Programming of macrophages by UV-irradiated apoptotic cancer cells inhibits cancer progression and lung metastasis: Y.B. Kim, et al.; Cell. Mol. Immunol. 16, 851 (2019)
9. Arachidonic acid induces ARE/Nrf2-dependent heme oxygenase-1 transcription in rat brain astrocytes: C.C. Lin, et al.; Mol. Neurobiol. 55, 3328 (2018)
10. Bone-marrow-derived mesenchymal stem cells inhibit gastric aspiration lung injury and inflammation in rats: J. Zhou, et al.; J. Cell Mol. Med. 20, 1706 (2016)
11. Implications of a genetically determined nitric oxide deficit for endothelial cell-leukocyte interaction and cardiovascular disease: I. Kadiyska; (2016)
12. CRTH2 is a critical regulator of neutrophil migration and resistance to polymicrobial sepsis: M. Ishii, et al.; J. Immunol. 188, 5655 (2012)
13. Choroidal involution is a key component of oxygen-induced retinopathy: Z. Shao, et al.; Invest. Ophthalmol. Vis. Sci. 52, 6238 (2011)
14. Response of chondrocytes to shear stress: antagonistic effects of the binding partners Toll-like receptor 4 and caveolin-1: P. Wang, et al.; FASEB J. 25, 3401 (2011)
15. The myocardial infarct size-limiting effect of sitagliptin is PKA-dependent, whereas the protective effect of pioglitazone is partially dependent on PKA: Y. Ye, et al.; Am. J. Physiol. Heart Circ. Physiol. 298, H1454 (2010)
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