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3374-88-7
  • names:

    ICA

  • CAS號:

    3374-88-7

    MDL Number: MFCD00642222
  • MF(分子式): C13H10N4S MW(分子量): 254.31
  • EINECS: Reaxys Number:
  • Pubchem ID:772885 Brand:BIOFOUNT
ICA
ICA(3374-88-7)是SK通道 (SK channel) 抑制劑。ICA有抗利什曼原蟲活性
貨品編碼 規(guī)格 純度 價格 (¥) 現(xiàn)價(¥) 特價(¥) 庫存描述 數(shù)量 總計(jì) (¥)
YZM000799-5mg 5mg 99.6% ¥ 4556.00 ¥ 4556.00 2-3天
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0.00
YZM000799-1mg 1mg 99.6% ¥ 1462.00 ¥ 1462.00 2-3天
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中文別名 ICA(3374-88-7);TCMDC-124275;GNF-PF-4773;Pyridin-2-yl-(4-pyridin-2-yl-thiazol-2-yl)-amine
英文別名 ICA,3374-88-7
CAS號 3374-88-7
Inchi InChI=1S/C13H10N4S/c1-3-7-14-10(5-1)11-9-18-13(16-11)17-12-6-2-4-8-15-12/h1-9H,(H,15,16,17)
InchiKey RYCUBTFYRLAMFA-UHFFFAOYSA-N
分子式 Formula C13H10N4S
分子量 Molecular Weight 254.31
溶解度Solubility 生物體外In Vitro:DMSO溶解度≥ 49.5 mg/mL(194.64 mM)*"≥" means soluble可溶, but saturation unknown溶解度未知.
性狀 淺棕色至棕色固體粉末
儲藏條件 Storage conditions storage at -4℃ (1-2weeks), longer storage period at -20℃ (1-2years)

ICA(3374-88-7)實(shí)驗(yàn)注意事項(xiàng):
1.實(shí)驗(yàn)前需戴好防護(hù)眼鏡,穿戴防護(hù)服和口罩,佩戴手套,避免與皮膚接觸。
2.實(shí)驗(yàn)過程中如遇到有毒或者刺激性物質(zhì)及有害物質(zhì)產(chǎn)生,必要時實(shí)驗(yàn)操作需要手套箱內(nèi)完成以免對實(shí)驗(yàn)人員造成傷害
3.實(shí)驗(yàn)后產(chǎn)生的廢棄物需分類存儲,并交于專業(yè)生物廢氣物處理公司處理,以免造成環(huán)境污染

ICA(3374-88-7) Experimental considerations:
1. Wear protective glasses, protective clothing and masks, gloves, and avoid contact with the skin during the experiment.
2. The waste generated after the experiment needs to be stored separately, and handed over to a professional biological waste gas treatment company to avoid environmental pollution.

Tag:ICA(3374-88-7),ICA試劑,ICA抑制劑,ICA的純度,ICA的作用,ICA的外觀,ICA的合成,ICA的用途,ICA的廠家,ICA的溶解度,ICA的價格,ICA的生產(chǎn),ICA的MSDS,ICA的使用,ICA的注意事項(xiàng)
產(chǎn)品說明 ICA(3374-88-7)是SK通道 (SK channel) 抑制劑。ICA有抗利什曼原蟲活性
IntroductionICA (3374-88-7) is an SK channel inhibitor. ICA has anti-leishmania activity
Application1
Application2
Application3
Antiarrhythmic effect of the Ca2+-activated K+ (SK) channel inhibitor ICA combined with either amiodarone or dofetilide in an isolated heart model of atrial fibrillation
Pharmacological blockade of small conductance Ca2+-activated K+ channels by ICA reduces arrhythmic load in rats with acute myocardial infarction
Theory of magnetism close to the5\nT\n2 —1\nA\n1 crossover in iron(II) complexes(Theoretica chimica acta,1971)
Magnetic properties of iron(II) complex with 2-(pyridin-2-ylamino)-4-(pyridin-2-yl)thiazole(Magnetic Properties of Paramagnetic Compounds,2017)
Small-conductance Ca2+-activated K+ channels: insights into their roles in cardiovascular disease(Experimental & Molecular Medicine,2018)

Towards Control of the Intrinsic Characteristics of Spin-Crossover in Ferrous Materials
Abstract:
Metal complexes exhibiting spin-crossover between low-spin (LS) and high-spin (HS) electronic states have been recognized since Cambi, Szegö and Cagnasso first observed “magnetic isomerism” for tris(dithiocarbamato) iron(III) complexes in 1931 [1]. Today, about 100 spin-crossover systems are known and the field has developed into an important area of contemporary coordination chemistry spanning from theory to applications and based upon ligand design and elaborated physicochemical studies of the resulting complexes.

Spin transition in iron(II) complexes induced by heat, pressure, light, and nuclear decay
Abstract:
The phenomenon of temperature-dependent spin transition will be introduced and the numerous chemical and physical influences affecting the spin transition characteristics will be discussed. We shall mainly concentrate on the spin crossover system [Fe(2-pic)3]X2·Sol (2-pic=2-aminomethylpyridine; X=Cl, Br; Sol=C2H5OH, CH3OH) and demonstrate how the behaviour of the spin transition5T2g(Oh)?1A1g(Oh) is influenced by substituting the metalion, the non-coordinating anions X, the crystal solvent molecules Sol and by isotopic exchange with H/D and14N/15N. It will also be shown that the spin transition is very susceptible to pressure. A quantitative spin state conversion from low spin to high spin can also be achieved by illuminating the crystals of a spin crossover system at sufficiently low temperatures. The metastable quintet state can be trapped with practically infinite lifetimes. Several examples for this “Light-Induced Excited Spin State Trapping” (LIESST) will be given. Finally, the occurrence of short-lived anomalous spin quintet states following the57Co(EC)57Fe nuclear decay, which have been observed in the Mössbauer emission spectra of57Co-doped complex compounds, will be discussed with particular references to the LIESST effect.

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