计算溶液所需的质量、体积或浓度。
活性类型 | 活性值-log(M) | 作用机制 | 期刊 | 参考文献(PubMed IDs) |
---|
货号 (SKU) | 包装规格 | 是否现货 | 价格 | 数量 |
---|---|---|---|---|
F127328-10mg |
10mg |
现货 ![]() |
| |
F127328-50mg |
50mg |
现货 ![]() |
| |
F127328-100mg |
100mg |
现货 ![]() |
| |
F127328-500mg |
500mg |
现货 ![]() |
| |
F127328-1g |
1g |
现货 ![]() |
| |
F127328-5g |
5g |
期货 ![]() |
|
别名 | 佛司可林 | 毛喉素 | 7β-乙酰氧基-8,13--环氧-1α,6β,9α-三羟基labd-14-烯-11-酮 | 考福新 | 洋紫苏醇 |
---|---|
英文别名 | BDBM50010261 | MLS001333256 | SMP1_000128 | DTXSID8040484 | NSC 357088 | (3R,4aR,5S,6S,6aS,10S,10aR,10bS)-Dodecahydro-5,6,10,10b-tetrahydroxy-3,4a,7,7,10a-pentamethyl-3-vinyl-1H-naphtho(2,1-b)pyran-1-one 5-acetate | colforsina | NCGC00024996-05 | 1F7A44V6 |
规格或纯度 | Moligand™, ≥98% |
英文名称 | Forskolin |
生化机理 | 蕨素是从 Coleus forskohlii 中分离出来的一种二萜类化合物,可直接与 A 环酶(腺苷酸环化酶)的催化亚基相互作用,激活该酶并提高细胞内 cAMP 的水平。蕨麻具有细胞渗透性,在体内具有活性,可产生正性肌力、抗血小板聚集和抗高血压作用。蕨麻还具有平滑肌松弛活性、降低眼压和促进垂体释放激素的作用。抑制 MAP 激酶,诱导 CREB、Connexin 43、Bad、ATF-1 和 PKB 的磷酸化。佛司可林是 AChR 的抑制剂。直接与该酶的催化亚基相互作用,提高细胞内的 cAMP 水平。在体内具有正性肌力、抗血小板聚集和抗高血压作用。 |
应用 | An adenylate cyclase activator and MAP kinase inhibitor |
储存温度 | -20°C储存 |
运输条件 | 超低温冰袋运输 |
备注 | 如果有可能,您尽量在使用的当天配置溶液,并在当天使用完它。但是,如果您需要预先配制储备溶液,我们建议您将溶液等份保存在-20°C的密封小瓶中。通常,它们最多可以使用一个月。在使用前和打开样品瓶之前,我们建议您让您的产品在室温下平衡至少1小时。需要更多关于溶解度,用法和处理的建议吗?请访问我们的常见问题(FAQ)页面以获取更多详细信息。 |
产品介绍 |
Forskolin是一种普遍存在的真核细胞腺苷酸环化酶(AC)激活剂,在细胞生理学研究中,常用来提高cAMP水平。An adenylate cyclase activator and MAP kinase inhibitor Forskolin is a ubiquitous activator of eukaryotic adenylyl cyclase (AC), commonly used to raise levels of cAMP in the study and research of cell physiology. |
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | PubMed Id | doi | Assay Aladdin ID |
---|
活性类型 | Relation | Activity value | Units | Action Type | Journal | 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 | 504753649 |
---|---|
分子类型 | 小分子 |
IUPAC Name | [(3R,4aR,5S,6S,6aS,10S,10aR,10bS)-3-ethenyl-6,10,10b-trihydroxy-3,4a,7,7,10a-pentamethyl-1-oxo-5,6,6a,8,9,10-hexahydro-2H-benzo[f]chromen-5-yl] acetate |
INCHI | InChI=1S/C22H34O7/c1-8-19(5)11-14(25)22(27)20(6)13(24)9-10-18(3,4)16(20)15(26)17(28-12(2)23)21(22,7)29-19/h8,13,15-17,24,26-27H,1,9-11H2,2-7H3/t13-,15-,16-,17-,19-,20-,21+,22-/m0/s1 |
InChi Key | OHCQJHSOBUTRHG-KGGHGJDLSA-N |
Canonical SMILES | CC(=O)OC1C(C2C(CCC(C2(C3(C1(OC(CC3=O)(C)C=C)C)O)C)O)(C)C)O |
Isomeric SMILES | CC(=O)O[C@H]1[C@H]([C@@H]2[C@]([C@H](CCC2(C)C)O)([C@@]3([C@@]1(O[C@@](CC3=O)(C)C=C)C)O)C)O |
WGK Germany | 3 |
RTECS | QL6150000 |
PubChem CID | 47936 |
分子量 | 410.5 |
Beilstein号 | 1692720 |
溶解性 | Soluble in DMSO (5 mg/ml), ethanol, methanol, and Chloroform.Insolule in water. |
---|---|
比旋光度 | -17° |
熔点 | 224.0 to 228.0°C |
分子量 | 410.500 g/mol |
XLogP3 | 1.000 |
氢键供体数Hydrogen Bond Donor Count | 3 |
氢键受体数Hydrogen Bond Acceptor Count | 7 |
可旋转键计数Rotatable Bond Count | 3 |
精确质量Exact Mass | 410.23 Da |
单同位素质量Monoisotopic Mass | 410.23 Da |
拓扑极表面积Topological Polar Surface Area | 113.000 Ų |
重原子数Heavy Atom Count | 29 |
形式电荷Formal Charge | 0 |
复杂度Complexity | 747.000 |
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 | 8 |
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 |
Purity(HPLC) | 98-100(%) |
---|---|
Carbon by Elemental Analysis | 63.1-65.7(%) |
Appearance(F127328) | White to Off-White Powder |
Infrared spectrum | Conforms to Structure |
NMR spectrum | Conforms to Structure |
Solubility in EtOH,Colorless to Pale Yellow Clear(50 mg/ml) | pass |
通过匹配包装上的批号来查找并下载产品的 COA,每批产品都进行了严格的验证,您可放心使用!
批号(Lot Number) | 证书类型 | 日期 | 货号 |
---|---|---|---|
![]() |
分析证书 | 25-03-05 | F127328 |
![]() |
分析证书 | 25-02-07 | F127328 |
![]() |
分析证书 | 25-01-15 | F127328 |
![]() |
分析证书 | 25-01-15 | F127328 |
![]() |
分析证书 | 24-11-14 | F127328 |
![]() |
分析证书 | 24-07-05 | F127328 |
![]() |
分析证书 | 24-03-21 | F127328 |
![]() |
分析证书 | 23-11-08 | F127328 |
![]() |
分析证书 | 23-11-08 | F127328 |
![]() |
分析证书 | 23-11-08 | F127328 |
![]() |
分析证书 | 23-11-08 | F127328 |
![]() |
分析证书 | 23-11-08 | F127328 |
![]() |
分析证书 | 23-09-15 | F127328 |
![]() |
分析证书 | 22-11-26 | F127328 |
![]() |
分析证书 | 22-09-21 | F127328 |
![]() |
分析证书 | 22-05-24 | F127328 |
![]() |
分析证书 | 22-05-08 | F127328 |
![]() |
分析证书 | 22-03-24 | F127328 |
![]() |
分析证书 | 22-03-24 | F127328 |
![]() |
分析证书 | 22-03-24 | F127328 |
![]() |
分析证书 | 22-03-24 | F127328 |
![]() |
分析证书 | 22-03-24 | F127328 |
¥259.90
1. Gao Rongyin, Zhang Ximei, Zou Kun, Meng Duo, Lv Jinpeng. (2023) Cryptochrome 1 activation inhibits melanogenesis and melanosome transport through negative regulation of cAMP/PKA/CREB signaling pathway. Frontiers in Pharmacology, 14 [PMID:36814484] [10.3389/fphar.2023.1081030] |
2. Fangwei Yang, Yixuan Li, Yunfei Xie, Weirong Yao, Fazheng Ren. (2022) Diethyl phosphate disrupts hypothalamus-pituitary-adrenal axis endocrine hormones via nuclear receptors GR and Nur77: Integration of evidences from in vivo, in vitro and in silico approaches. SCIENCE OF THE TOTAL ENVIRONMENT, 844 (157015). [PMID:35777568] [10.1016/j.scitotenv.2022.157015] |
3. Ye-ying Jiang, Rong-yun Wei, Kai Tang, Zhen Wang, Ning-hua Tan. (2022) Ginsenoside Rg1 promotes neurite growth of retinal ganglion cells through cAMP/PKA/CREB pathways. Journal of Ginseng Research, [PMID:38465221] [10.1016/j.jgr.2022.05.002] |
4. Chenhui Duan, Yanjun Fang, Jingran Sun, Zhenxin Li, Qiangqiang Wang, Jialei Bai, Hui Peng, Jun Liang, Zhixian Gao. (2020) Effects of fast food packaging plasticizers and their metabolites on steroid hormone synthesis in H295R cells. SCIENCE OF THE TOTAL ENVIRONMENT, 726 (138500). [PMID:32334352] [10.1016/j.scitotenv.2020.138500] |
5. Minchi Liu, Wenjun Qian, Selvaraj Subramaniyam, Shuang Liu, Wenkuan Xin. (2020) Denatonium enhanced the tone of denuded rat aorta via bitter taste receptor and phosphodiesterase activation. EUROPEAN JOURNAL OF PHARMACOLOGY, 872 (172951). [PMID:32006560] [10.1016/j.ejphar.2020.172951] |
1. Aslostovar L et al.. (2021) Abnormal dopamine receptor signaling allows selective therapeutic targeting of neoplastic progenitors in AML patients.. Cell Rep Med, 2 (2): (100202). [PMID:33665638] |
2. Gomes C et al.. (2013) Activation of microglial cells triggers a release of brain-derived neurotrophic factor (BDNF) inducing their proliferation in an adenosine A2A receptor-dependent manner: A2A receptor blockade prevents BDNF release and proliferation of microglia.. J Neuroinflammation, 10 (16). [PMID:23363775] |
3. Tyurin-Kuzmin PA et al.. (2016) Activation of ß-adrenergic receptors is required for elevated a1A-adrenoreceptors expression and signaling in mesenchymal stromal cells.. Sci Rep, 6 (32835). [PMID:27596381] |
4. Brown LM et al.. (2014) Allosteric inhibition of Epac: computational modeling and experimental validation to identify allosteric sites and inhibitors.. J Biol Chem, 289 (42): (29148-57). [PMID:25183009] |
5. Sakai Y et al.. (2021) BRCA1-BARD1 Regulates Axon Regeneration in Concert with the Gqa-DAG Signaling Network.. J Neurosci, 41 (13): (2842-2853). [PMID:33593852] |
6. Hu S et al.. (2019) Caffeine programs hepatic SIRT1-related cholesterol synthesis and hypercholesterolemia via A2AR/cAMP/PKA pathway in adult male offspring rats.. Toxicology, 418 (11-21). [PMID:30825513] |
7. Evans RC et al.. (2015) Calcium-dependent inactivation of calcium channels in the medial striatum increases at eye opening.. J Neurophysiol, 113 (7): (2979-86). [PMID:25673739] |
8. Carlyle BC et al.. (2014) cAMP-PKA phosphorylation of tau confers risk for degeneration in aging association cortex.. Proc Natl Acad Sci U S A, 111 (13): (5036-41). [PMID:24707050] |
9. Bayliss AL & Evans PD. (2013) Characterisation of AmphiAmR11, an amphioxus (Branchiostoma floridae) D2-dopamine-like G protein-coupled receptor.. PLoS One, 8 (11): (e80833). [PMID:24265838] |
10. Sampieri L et al.. (2021) CREB3L2 Modulates Nerve Growth Factor-Induced Cell Differentiation.. Front Mol Neurosci, 14 (650338). [PMID:34421533] |
11. Wang L et al.. (2016) Curcumin inhibits lipolysis via suppression of ER stress in adipose tissue and prevents hepatic insulin resistance.. J Lipid Res, 57 (7): (1243-55). [PMID:27220352] |
12. Chen J et al.. (2016) Cyp2aa9 regulates haematopoietic stem cell development in zebrafish.. Sci Rep, 6 (26608). [PMID:27197559] |
13. Gandia J et al.. (2008) Detection of higher-order G protein-coupled receptor oligomers by a combined BRET-BiFC technique.. FEBS Lett, 582 (20): (2979-84). [PMID:18675812] |
14. Luchkina NV et al.. (2014) Developmental switch in the kinase dependency of long-term potentiation depends on expression of GluA4 subunit-containing AMPA receptors.. Proc Natl Acad Sci U S A, 111 (11): (4321-6). [PMID:24599589] |
15. Abutaleb NO & Truskey GA. (2021) Differentiation and characterization of human iPSC-derived vascular endothelial cells under physiological shear stress.. STAR Protoc, 2 (2): (100394). [PMID:33796871] |
16. Witkowski G et al.. (2012) Effect of cyclic adenosine monophosphate on the G protein-dependent inward rectifier K(+)-like channel current in medial prefrontal cortex pyramidal neurons.. J Physiol Pharmacol, 63 (5): (457-62). [PMID:23211299] |
17. Tazi MF et al.. (2016) Elevated Mirc1/Mir17-92 cluster expression negatively regulates autophagy and CFTR (cystic fibrosis transmembrane conductance regulator) function in CF macrophages.. Autophagy, 12 (11): (2026-2037). [PMID:27541364] |
18. Xiong G et al.. (2022) FOSL1 promotes tumor growth and invasion in ameloblastoma.. Front Oncol, 12 (900108). [PMID:36185257] |
19. Godoy V et al.. (2014) Functional crosstalk between the adenosine transporter CNT3 and purinergic receptors in the biliary epithelia.. J Hepatol, 61 (6): (1337-43). [PMID:25034758] |
20. Miete C et al.. (2022) Gai2-induced conductin/axin2 condensates inhibit Wnt/ß-catenin signaling and suppress cancer growth.. Nat Commun, 13 (674). [PMID:35115535] |
21. Chiang HS et al.. (2014) GEF-H1 controls microtubule-dependent sensing of nucleic acids for antiviral host defenses.. Nat Immunol, 15 (63-71). [PMID:24270516] |
22. Brown LM et al.. (2014) Identification and validation of modulators of exchange protein activated by cAMP (Epac) activity: structure-function implications for Epac activation and inhibition.. J Biol Chem, 289 (12): (8217-30). [PMID:24497631] |
23. Lanore F et al.. (2010) Impaired development of hippocampal mossy fibre synapses in mouse mutants for the presynaptic scaffold protein Bassoon.. J Physiol, 588 (Pt 12): (2133-45). [PMID:20421286] |
24. Li N et al.. (2018) Inhibition of GPR158 by microRNA-449a suppresses neural lineage of glioma stem/progenitor cells and correlates with higher glioma grades.. Oncogene, 37 (31): (4313-4333). [PMID:29720725] |
25. Feng S et al.. (2020) Large-scale Generation of Functional and Transplantable Hepatocytes and Cholangiocytes from Human Endoderm Stem Cells.. Cell Rep, 33 (10): (108455). [PMID:33296648] |
26. Hashimotodani Y et al.. (2017) LTP at Hilar Mossy Cell-Dentate Granule Cell Synapses Modulates Dentate Gyrus Output by Increasing Excitation/Inhibition Balance.. Neuron, 95 (4): (928-943.e3). [PMID:28817805] |
27. Gete YG et al.. (2021) Mechanisms of angiogenic incompetence in Hutchinson-Gilford progeria via downregulation of endothelial NOS.. Aging Cell, 20 (7): (e13388). [PMID:34086398] |
28. Martin C et al.. (2018) NaV1.9 Potentiates Oxidized Phospholipid-Induced TRP Responses Only under Inflammatory Conditions.. Front Mol Neurosci, 11 (7). [PMID:29410612] |
29. Jia Q et al.. (2022) Novel GSK-3 kinase inhibitor Pym-5 induces GSK-3β rather than GSK-3α-dependent melanogenesis in murine melanoma cells.. J Dermatol Sci, 106 (3): (170-180). [PMID:35641396] |
30. Ilhan R et al.. (2022) Novel regulation mechanism of adrenal cortisol and DHEA biosynthesis via the endogen ERAD inhibitor small VCP-interacting protein.. Sci Rep, 12 (869). [PMID:35042898] |
31. Toyohara T et al.. (2020) Patient hiPSCs Identify Vascular Smooth Muscle Arylacetamide Deacetylase as Protective against Atherosclerosis.. Cell Stem Cell, 27 (147-157.e7). [PMID:32413331] |
32. Wang S et al.. (2012) Pericytes regulate vascular basement membrane remodeling and govern neutrophil extravasation during inflammation.. PLoS One, 7 (9): (e45499). [PMID:23029055] |
33. Briddon SJ et al.. (2008) Plasma membrane diffusion of G protein-coupled receptor oligomers.. Biochim Biophys Acta, 1783 (12): (2262-8). [PMID:18691614] |
34. Musante V et al.. (2017) Reciprocal regulation of ARPP-16 by PKA and MAST3 kinases provides a cAMP-regulated switch in protein phosphatase 2A inhibition.. Elife, 6 [PMID:28613156] |
35. Fenton RA et al.. (2014) Renal Phosphate Wasting in the Absence of Adenylyl Cyclase 6.. J Am Soc Nephrol, [PMID:24854272] |
36. Lesiak AJ et al.. (2015) RiboTag is a flexible tool for measuring the translational state of targeted cells in heterogeneous cell cultures.. Biotechniques, 58 (6): (308-17). [PMID:26054767] |
37. Gambino F et al.. (2010) Synaptic maturation at cortical projections to the lateral amygdala in a mouse model of Rett syndrome.. PLoS One, 5 (7): (e11399). [PMID:20625482] |
38. McMacken G et al.. (2018) The beta-adrenergic agonist salbutamol modulates neuromuscular junction formation in zebrafish models of human myasthenic syndromes.. Hum Mol Genet, 27 (9): (1556-1564). [PMID:29462491] |
39. Gao Rongyin, Zhang Ximei, Zou Kun, Meng Duo, Lv Jinpeng. (2023) Cryptochrome 1 activation inhibits melanogenesis and melanosome transport through negative regulation of cAMP/PKA/CREB signaling pathway. Frontiers in Pharmacology, 14 [PMID:36814484] [10.3389/fphar.2023.1081030] |
40. Fangwei Yang, Yixuan Li, Yunfei Xie, Weirong Yao, Fazheng Ren. (2022) Diethyl phosphate disrupts hypothalamus-pituitary-adrenal axis endocrine hormones via nuclear receptors GR and Nur77: Integration of evidences from in vivo, in vitro and in silico approaches. SCIENCE OF THE TOTAL ENVIRONMENT, 844 (157015). [PMID:35777568] [10.1016/j.scitotenv.2022.157015] |
41. Ye-ying Jiang, Rong-yun Wei, Kai Tang, Zhen Wang, Ning-hua Tan. (2022) Ginsenoside Rg1 promotes neurite growth of retinal ganglion cells through cAMP/PKA/CREB pathways. Journal of Ginseng Research, [PMID:38465221] [10.1016/j.jgr.2022.05.002] |
42. Chenhui Duan, Yanjun Fang, Jingran Sun, Zhenxin Li, Qiangqiang Wang, Jialei Bai, Hui Peng, Jun Liang, Zhixian Gao. (2020) Effects of fast food packaging plasticizers and their metabolites on steroid hormone synthesis in H295R cells. SCIENCE OF THE TOTAL ENVIRONMENT, 726 (138500). [PMID:32334352] [10.1016/j.scitotenv.2020.138500] |
43. Minchi Liu, Wenjun Qian, Selvaraj Subramaniyam, Shuang Liu, Wenkuan Xin. (2020) Denatonium enhanced the tone of denuded rat aorta via bitter taste receptor and phosphodiesterase activation. EUROPEAN JOURNAL OF PHARMACOLOGY, 872 (172951). [PMID:32006560] [10.1016/j.ejphar.2020.172951] |