计算溶液所需的质量、体积或浓度。
This is a demo store. No orders will be fulfilled.
| 货号 (SKU) | 包装规格 | 是否现货 | 价格 | 数量 |
|---|---|---|---|---|
| N132356-5mg |
5mg |
期货 ![]() |
| |
| N132356-25mg |
25mg |
期货 ![]() |
| |
| N132356-100mg |
100mg |
期货 ![]() |
|
| 别名 | 5-(N-乙基-N-异丙基)阿米洛利 |
|---|---|
| 英文别名 | 5-(Ethylisopropyl)amiloride | Ethylisopropyl amiloride | EU-0100045 | HY-101840 | SMR000326875 | Tox21_500045 | 3-Amino-N-(aminoiminomethyl)-6-chloro-5-(ethyl(1-methylethyl)amino)pyrazinecarboxamide | DTXSID80151084 | N-Amidino-3-amino-5-ethylisopropylami |
| 规格或纯度 | Moligand™, ≥95% |
| 英文名称 | EIPA |
| 生化机理 | TRPP3通道抑制剂(IC50 =10.5μM)。抑制Na + / H +交换剂(NHE)。阿米洛利的衍生物。 |
| 储存温度 | -20°C储存 |
| 运输条件 | 超低温冰袋运输 |
| 作用类型 | 通道阻滞剂 |
| 作用机制 | α 2A 肾上腺素受体的异构调节剂;ASIC1 的通道阻断剂;TRPP2 的通道阻断剂 |
| 产品介绍 |
EIPA (L593754) 是一种具有口服活性的 TRPP3 通道抑制剂,IC50 为 10.5 μM。EIPA 可通过抑制 Na+/H+-exchanger 3 (NHE3) 来促进自噬 (autophagy)。EIPA 也抑制巨胞饮作用 (macropinocytosis)。EIPA 可用于炎症和癌症的研究,如胃癌、结肠癌、胰腺癌。 |
| 纯度 | ≥95% |
| 活性类型 | Relation | Activity value | Units | Action Type | 期刊 | PubMed Id | doi | Assay Aladdin ID |
|---|
| 作用机制 | Action Type | target ID | Target Name | Target Type | Target Organism | Binding Site Name | 参考文献 |
|---|
| PubChem SID | 504750507 |
|---|---|
| 分子类型 | 小分子 |
| IIUPAC Name | 3-amino-6-chloro-N-(diaminomethylidene)-5-[ethyl(propan-2-yl)amino]pyrazine-2-carboxamide |
| INCHI | 1S/C11H18ClN7O/c1-4-19(5(2)3)9-7(12)16-6(8(13)17-9)10(20)18-11(14)15/h5H,4H2,1-3H3,(H2,13,17)(H4,14,15,18,20) |
| InChi Key | QDERNBXNXJCIQK-UHFFFAOYSA-N |
| Smiles | CCN(C1=NC(=C(N=C1Cl)C(=O)N=C(N)N)N)C(C)C |
| Isomeric SMILES | CCN(C1=NC(=C(N=C1Cl)C(=O)N=C(N)N)N)C(C)C |
| 分子量 | 299.76 |
| Reaxy-Rn | 8708046 |
| Reaxys-RN link address | https://www.reaxys.com/reaxys/secured/hopinto.do?context=S&query=IDE.XRN=8708046&ln= |
| 溶解性 | 溶于DMSO, 最高浓度 (mg/mL): 29.98, 最高浓度(mM): 100;溶于1eq. HCl, 最高浓度 (mg/mL): 14.99, 最高浓度(mM): 50 |
|---|---|
| 分子量 | 299.760 g/mol |
| XLogP3 | 1.300 |
| 氢键供体数Hydrogen Bond Donor Count | 3 |
| 氢键受体数Hydrogen Bond Acceptor Count | 5 |
| 可旋转键计数Rotatable Bond Count | 4 |
| 精确质量Exact Mass | 299.126 Da |
| 单同位素质量Monoisotopic Mass | 299.126 Da |
| 拓扑极表面积Topological Polar Surface Area | 137.000 Ų |
| 重原子数Heavy Atom Count | 20 |
| 形式电荷Formal Charge | 0 |
| 复杂度Complexity | 372.000 |
| 同位素原子数Isotope Atom Count | 0 |
| 定义的原子立体中心计数Defined Atom Stereocenter Count | 0 |
| 未定义的原子立体中心计数Undefined Atom Stereocenter Count | 0 |
| 定义的键立体中心计数Defined Bond Stereocenter Count | 0 |
| 未定义的键立体中心计数Undefined Bond Stereocenter Count | 0 |
| 所有立体化学键的总数The total count of all stereochemical bonds | 0 |
| 共价键合单元计数Covalently-Bonded Unit Count | 1 |
| 象形图 | GHS07 |
|---|---|
| 信号词 | 警告 |
| 危险声明 |
H315: 引起皮肤刺激 H319: 引起严重眼睛刺激 H335: 可能引起呼吸道刺激 |
| 预防措施声明 |
P261: 避免吸入灰尘/烟雾/气体/雾/蒸汽/喷雾 P264: 处理后要彻底洗手。 P271: 仅在室外或通风良好的地方使用。 P280: 戴防护手套/穿防护服/戴防护眼罩/戴防护面具。 P321: 特殊处理(请参阅此标签上的...)。 P302+P352: 如皮肤沾染:用水充分清洗。 P304+P340: 如误吸入:将人转移到空气新鲜处,保持呼吸舒适体位。 P305+P351+P338: 如进入眼睛:用水小心冲洗几分钟。如戴隐形眼镜并可方便地取出,取出隐形眼镜。继续冲洗。 P362+P364: 脱掉沾污的衣服,清洗后方可重新使用。 P405: 密闭存放 P403+P233: 存放在通风良好的地方。保持容器密闭。 P501: 将内容物/容器处理到。。。 P264+P265: 处理后彻底洗手[和…]。不要触摸眼睛。 P337+P317: 如果眼睛刺激持续:寻求医疗帮助。 P332+P317: 如果出现皮肤刺激:请寻求医疗帮助。 P319: 如果你感到不适,请寻求医疗帮助。 |
| WGK Germany | 3 |
| 个人防护装备 | dust mask type N95 (US), Eyeshields, Gloves |
¥549.90
| 1. Li, M., Li, S., Huang, Y., Chen, H., Zhang, S., Zhang, Z., Wu, W., Zeng, X., Zhou, B., and Li, B.. (2021) Secreted expression of mRNA-encoded truncated ACE2 variants for SARS-CoV-2 via lipid-like nanoassemblies.. Adv. Mater. , 34 (33): (2101707). [10.1002/adma.202101707] |
| 2. Huang, Y., Yang, M., Wang, N., Li, S., Liu, Z., Li, Z., Ji, Z., and Li, B.. (2022) Intracellular delivery of messenger RNA to macrophages with surfactant-derived lipid nanoparticles. Mater. Today Adv., 16 (NA): (100295 ). [10.1016/j.mtadv.2022.100295] |
| 3. Xucan Yang, Lulu Cheng, Yile Zhao, Haoran Ma, Haitao Song, Xuanmin Yang, Kang-Nan Wang, Yanrong Zhang. (2024) Aggregation-induced emission-active iridium (III)-based mitochondria-targeting nanoparticle for two-photon imaging-guided photodynamic therapy. JOURNAL OF COLLOID AND INTERFACE SCIENCE, 659 (320). [PMID:38176241] [10.1016/j.jcis.2023.12.172] |
| 4. Dan Yuan, Qi Li, Qibo Zhang, Feibai Zhou, Qiangzhong Zhao, Mouming Zhao. (2024) Enhanced curcumin transportation across epithelial barrier by mucus-permeable soy protein nanoparticles-mediated dual transcytosis pathways. FOOD CHEMISTRY, 437 (137771). [PMID:37897825] [10.1016/j.foodchem.2023.137771] |
| 5. Xin Chang, Chang Liu, Yu-Mo Han, Qiu-Ling Li, Bin Guo, Hu-Lin Jiang. (2023) Efficient transfected liposomes co-loaded with pNrf2 and pirfenidone improves safe delivery for enhanced pulmonary fibrosis reversion. Molecular Therapy-Nucleic Acids, 32 (415-431). [PMID:37159604] [10.1016/j.omtn.2023.04.006] |
| 6. Wu Wenting, Ding Quan, Zhou Zhiwei, Kuang Wenliang, Jiang Lipeng, Liu Peng, Ai Weiping, Zhu Weifeng. (2023) Transcellular Transport Behavior of the Intact Polymeric Mixed Micelles with Different Polymeric Ratios. AAPS PHARMSCITECH, 24 (2): (1-16). [PMID:36792796] [10.1208/s12249-022-02454-y] |
| 7. Hou Zhenyu, Zhou Mei, Ma Yuanyuan, Xu Xiaoxuan, Zhang Zhiqi, Lai Shiwei, Fan Wenpei, Xie Jinbing, Ju Shenghong. (2022) Size-changeable nanoprobes for the combined radiotherapy and photodynamic therapy of tumor. EUROPEAN JOURNAL OF NUCLEAR MEDICINE AND MOLECULAR IMAGING, 49 (8): (2655-2667). [PMID:35536421] [10.1007/s00259-022-05830-9] |
| 8. Xiudan Wang, Junya Lu, Yuling Mao, Qinfu Zhao, Caishun Chen, Jianan Han, Meiqi Han, Huijuan Yuan, Siling Wang. (2022) A mutually beneficial macrophages-mediated delivery system realizing photo/immune therapy. JOURNAL OF CONTROLLED RELEASE, 347 (14). [PMID:35489548] [10.1016/j.jconrel.2022.04.038] |
| 9. Mingming Song, Shuqi Dong, Xiaofei An, Wenxiang Zhang, Ning Shen, Yanbo Li, Caixia Guo, Chang Liu, Xiao Li, Siyu Chen. (2022) Erythrocyte-biomimetic nanosystems to improve antitumor effects of paclitaxel on epithelial cancers. JOURNAL OF CONTROLLED RELEASE, 345 (744). [PMID:35381274] [10.1016/j.jconrel.2022.03.060] |
| 10. Min Li, Sanpeng Li, Yixuan Huang, Haixia Chen, Songya Zhang, Zhicheng Zhang, Weigang Wu, Xiaobin Zeng, Boping Zhou, Bin Li. (2021) Secreted Expression of mRNA-Encoded Truncated ACE2 Variants for SARS-CoV-2 via Lipid-Like Nanoassemblies. ADVANCED MATERIALS, 33 (34): (2101707). [PMID:34278613] [10.1002/adma.202101707] |
| 11. Yu Zhang, Junxi Liu, Pengfei Dou, Zhijing Wu, Ziming Zheng, Xianglin Pan, Tao Zhou, Kaiping Wang. (2021) Oral absorption characteristics and mechanisms of a pectin-type polysaccharide from Smilax china L. across the intestinal epithelium. CARBOHYDRATE POLYMERS, 270 (118383). [PMID:34364625] [10.1016/j.carbpol.2021.118383] |
| 12. Zhuqing Dai, Jiangfeng Song, Ye Chen, Lei Feng, Yayuan Xu, Dajing Li, Caie Wu, Zhongyuan Zhang, Jun Liu. (2021) Study on the bioavailability of stevioside-encapsulized lutein and its mechanism. FOOD CHEMISTRY, 354 (129528). [PMID:33756320] [10.1016/j.foodchem.2021.129528] |
| 13. Guo Shiqi, Liang Yanzi, Liu Lanze, Yin Miaomiao, Wang Aiping, Sun Kaoxiang, Li Youxin, Shi Yanan. (2021) Research on the fate of polymeric nanoparticles in the process of the intestinal absorption based on model nanoparticles with various characteristics: size, surface charge and pro-hydrophobics. JOURNAL OF NANOBIOTECHNOLOGY, 19 (1): (1-21). [PMID:33499885] [10.1186/s12951-021-00770-2] |
| 14. Hu Gaowei, Miao Yingjie, Luo Xi, Chu Wenhui, Fu Yongqian. (2020) Identification of a novel cell-penetrating peptide derived from the capsid protein of chicken anemia virus and its application in gene delivery. APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 104 (24): (10503-10513). [PMID:33141296] [10.1007/s00253-020-10988-z] |
| 15. Xinyi Tan, Na Yin, Zixu Liu, Rong Sun, Jingxin Gou, Tian Yin, Yu Zhang, Haibing He, Xing Tang. (2020) Hydrophilic and Electroneutral Nanoparticles to Overcome Mucus Trapping and Enhance Oral Delivery of Insulin. MOLECULAR PHARMACEUTICS, 17 (9): (3177–3191). [PMID:32697099] [10.1021/acs.molpharmaceut.0c00223] |
| 16. Yajun Liu, Rui Dai, Qiuyu Wei, Wenzhe Li, Guang Zhu, Hao Chi, Zhaoming Guo, Li Wang, Changhao Cui, Jianqiang Xu, Kun Ma. (2019) Dual-Functionalized Janus Mesoporous Silica Nanoparticles with Active Targeting and Charge Reversal for Synergistic Tumor-Targeting Therapy. ACS Applied Materials & Interfaces, 11 (47): (44582–44592). [PMID:31682097] [10.1021/acsami.9b15434] |
| 17. Hu Gaowei, Zheng Wenlv, Li Ao, Mu Yaru, Shi Mingyu, Li Tuofan, Zou Haitao, Shao Hongxia, Qin Aijian, Ye Jianqiang. (2018) A novel CAV derived cell-penetrating peptide efficiently delivers exogenous molecules through caveolae-mediated endocytosis. VETERINARY RESEARCH, 49 (1): (1-9). [PMID:29439726] [10.1186/s13567-018-0513-2] |
| 18. Liu Di, Guo Hua, Zheng Wenyun, Zhang Na, Wang Tianwen, Wang Ping, Ma Xingyuan. (2016) Discovery of the cell-penetrating function of A2 domain derived from LTA subunit of Escherichia coli heat-labile enterotoxin. APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 100 (11): (5079-5088). [PMID:26960316] [10.1007/s00253-016-7423-x] |
| 19. Dan Li, Gaoyang Yi, Guifang Cao, Adam C. Midgley, Yongli Yang, Dan Yang, Wenguang Liu, Yujuan He, Xiaolin Yao, Guoliang Li. (2025) Dual-Carriers of Tartary Buckwheat-Derived Exosome-Like Nanovesicles Synergistically Regulate Glucose Metabolism in the Intestine-Liver Axis. Small, (2410124). [PMID:40079102] [10.1002/smll.202410124] |
| 20. Xiao-Lin Hou, Bin Zhang, Kai Cheng, Fang Zhang, Xiao-Ting Xie, Wei Chen, Lin-Fang Tan, Jin-Xuan Fan, Bo Liu, Qiu-Ran Xu. (2024) Engineering Phage Nanocarriers Integrated with Bio-Intelligent Plasmids for Personalized and Tunable Enzyme Delivery to Enhance Chemodynamic Therapy. Advanced Science, (2308349). [PMID:38582522] [10.1002/advs.202308349] |
| 21. Junxi Liu, Xiaoke Zhang, Yan Liu, Zhijing Wu, Zheng Cui, Xianglin Pan, Yuheng Zheng, Jinglin Wang, Kaiping Wang, Yu Zhang. (2024) Intestinal lymphatic transport of Smilax china L. pectic polysaccharide via Peyer's patches and its uptake and transport mechanisms in mononuclear phagocytes. CARBOHYDRATE POLYMERS, 339 (122256). [PMID:38823922] [10.1016/j.carbpol.2024.122256] |
| 22. Yadan Zhang, Xiaoyu Zhang, Tianhan Kai, Lin Zhang, Anping Li. (2024) Lycium ruthenicum Murray derived exosome-like nanovesicles inhibit Aβ-induced apoptosis in PC12 cells via MAPK and PI3K/AKT signaling pathways. INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 277 (134309). [PMID:39089544] [10.1016/j.ijbiomac.2024.134309] |
| 23. Dan Yuan, Zhicheng Niu, Wenyu Zheng, Qiangzhong Zhao, Feibai Zhou, Mouming Zhao. (2024) Mind the Particle Rigidity: Blooms the Bioavailability via Rapidly Crossing the Mucus Layer and Alters the Intracellular Fate of Curcumin. ACS Nano, 18 (39): (27026-27041). [PMID:39297569] [10.1021/acsnano.4c09838] |
| 24. Xiao-Lin Hou, Lin-Fang Tan, Xiao-Ting Xie, Bin Zhang, Qiong Wang, Kai Cheng, Jin-Xuan Fan, Tian-Cai Liu, Bo Liu. (2024) Peroxisome-inspired T4 phage hybrid enzyme nanoreactors for photodynamic therapy of breast cancer. CHEMICAL ENGINEERING JOURNAL, (159138). [10.1016/j.cej.2024.159138] |
| 25. Dan Yang, Yuqi Feng, Ying Yuan, Linxuan Zhang, Yao Zhou, Adam C. Midgley, Yanrong Wang, Ning Liu, Guoliang Li, Xiaolin Yao, Dechun Liu. (2024) Protein Coronas Derived from Mucus Act as Both Spear and Shield to Regulate Transferrin Functionalized Nanoparticle Transcellular Transport in Enterocytes. ACS Nano, [PMID:38417159] [10.1021/acsnano.3c11315] |
| 26. Yixuan Huang, Jiacai Wu, Sanpeng Li, Zhen Liu, Zhenghua Li, Boping Zhou, Bin Li. (2024) Quaternization drives spleen-to-lung tropism conversion for mRNA-loaded lipid-like nanoassemblies. Theranostics, 14 (2): (830-842). [PMID:38169552] [10.7150/thno.90071] |
| 27. Wu Can, Zhang Xiao Wei, Wang Manman, Sun Jinpan, Chen Jianfei, Guan Yanbin, Pang Xin. (2025) Trypsin-instructed bioactive peptide nanodrugs with cascading transformations to improve chemotherapy against colon cancer. JOURNAL OF NANOBIOTECHNOLOGY, 23 (1): (1-20). [PMID:39891144] [10.1186/s12951-025-03143-1] |
| 28. Huan Tang, Jie Zhou, Tong Yang, Hai-Ning Lyu, Zheng Chu, Ying Zhang, Ang Ma, Junzhe Zhang, Yuqing Meng, Chong Qiu, Sheng-Tao Yang, Jigang Wang, Zipeng Gong. (2025) Understanding the biological identity of metal-organic framework through profiling proteomic fingerprinting of protein corona. CHEMICAL ENGINEERING JOURNAL, 509 (161320). [10.1016/j.cej.2025.161320] |