Jing Chen

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Organization: Shanghai Institute of Materia Medica
Department: Key Laboratory of Receptor Research
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Co-reporter:Zhengyu Wang, Xiaofan Shi, Huan Zhang, Liang Yu, Yanhua Cheng, Hefeng Zhang, Huibin Zhang, Jinpei Zhou, Jing Chen, Xu Shen, Wenhu Duan
European Journal of Medicinal Chemistry 2017 Volume 139(Volume 139) pp:
Publication Date(Web):20 October 2017
DOI:10.1016/j.ejmech.2017.07.051
•A series of cycloalkyl-fused N-thiazol-2-yl-benzamides was investigated as tissue non-specific partial GK activators.•Compound 72 showed a good balance between in vitro potency and enzyme kinetic parameters.•Chronic treatment of compound 72 demonstrated potent activity in the OGTT in diabetic db/db mice.•Chronic oral administration of 72 showed no obvious effects on CHO, HDL-C and LDL-C when compared with the vehicle group.•Acute treatment of compound 72 did not induce hypoglycemia in C57BL/6J mice even at 200 mg/kg via oral administration.Glucokinase (GK) activators are being developed for the treatment of type 2 diabetes mellitus (T2DM). However, existing GK activators have risks of hypoglycemia caused by over-activation of GK in islet cells and dyslipidemia caused by over-activation of intrahepatic GK. In the effort to mitigate risks of hypoglycemia and dyslipidemia while maintaining the promising efficacy of GK activator, we investigated a series of cycloalkyl-fused N-thiazol-2-yl-benzamides as tissue non-specific partial GK activators, which led to the identification of compound 72 that showed a good balance between in vitro potency and enzyme kinetic parameters, and protected β-cells from streptozotocin-induced apoptosis. Chronic treatment of compound 72 demonstrated its potent activity in regulation of glucose homeostasis and low risk of dyslipidemia with diabetic db/db mice in oral glucose tolerance test (OGTT). Moreover, acute treatment of compound 72 did not induce hypoglycemia in C57BL/6J mice even at 200 mg/kg via oral administration.Download high-res image (352KB)Download full-size image
Co-reporter:T T Zhou, L L Quan, L P Chen, T Du, K X Sun, J C Zhang, L Yu, Y Li, P Wan, L L Chen, B H Jiang, L H Hu, J Chen and X Shen
Cell Death & Disease 2016 7(5) pp:e2216
Publication Date(Web):2016-05-01
DOI:10.1038/cddis.2016.119
Kv2.1 as a voltage-gated potassium (Kv) channel subunit has a pivotal role in the regulation of glucose-stimulated insulin secretion (GSIS) and pancreatic β-cell apoptosis, and is believed to be a promising target for anti-diabetic drug discovery, although the mechanism underlying the Kv2.1-mediated β-cell apoptosis is obscure. Here, the small molecular compound, ethyl 5-(3-ethoxy-4-methoxyphenyl)-2-(4-hydroxy-3-methoxybenzylidene)-7-methyl-3-oxo-2,3-dihydro-5H-[1,3]thiazolo[3,2–a]pyrimidine-6-carboxylate (SP6616) was discovered to be a new Kv2.1 inhibitor. It was effective in both promoting GSIS and protecting β cells from apoptosis. Evaluation of SP6616 on either high-fat diet combined with streptozocin-induced type 2 diabetic mice or db/db mice further verified its efficacy in the amelioration of β-cell dysfunction and glucose homeostasis. SP6616 treatment efficiently increased serum insulin level, restored β-cell mass, decreased fasting blood glucose and glycated hemoglobin levels, and improved oral glucose tolerance. Mechanism study indicated that the promotion of SP6616 on β-cell survival was tightly linked to its regulation against both protein kinases C (PKC)/extracellular-regulated protein kinases 1/2 (Erk1/2) and calmodulin(CaM)/phosphatidylinositol 3-kinase(PI3K)/serine/threonine-specific protein kinase (Akt) signaling pathways. To our knowledge, this may be the first report on the underlying pathway responsible for the Kv2.1-mediated β-cell protection. In addition, our study has also highlighted the potential of SP6616 in the treatment of type 2 diabetes.
Co-reporter:Hailong Liu, Ruoming Wu, Yanyan Sun, Yan Ye, Jing Chen, Xiaomin Luo, Xu Shen, Hong Liu
Bioorganic & Medicinal Chemistry 2014 Volume 22(Issue 22) pp:6344-6352
Publication Date(Web):15 November 2014
DOI:10.1016/j.bmc.2014.09.057
Dengue virus is endemic throughout tropical and subtropical regions, and cause severe epidemic diseases. The NS2B/NS3 protease is a promising drug target for dengue virus. Herein, we report the discovery and modification of a novel class of thiadiazoloacrylamide derivatives with potent inhibitory activity against the NS2B/NS3 protease. Thiadiazolopyrimidinone 1 was firstly determined as a new chemical structure against NS2B/NS3 from a commercial compound library. Then, we sought to identify similar compounds with the thiadiazoloacrylamide core that would exhibit better activity. A series of analogues were synthesized and fourteen of them were identified with strong inhibitory activities, in which the nitrile group in the linker part was discovered as an essential group for the inhibitory activity. The best of these (8b) demonstrated an IC50 at 2.24 μM based on in vitro DENV2 NS2B-NS3pro assays.
Co-reporter:Chengqian Xiao, Yunan Tian, Min Lei, Fanglei Chen, Xianwen Gan, Xingang Yao, Xu Shen, Jing Chen, Lihong Hu
Bioorganic & Medicinal Chemistry Letters (1 March 2017) Volume 27(Issue 5) pp:
Publication Date(Web):1 March 2017
DOI:10.1016/j.bmcl.2016.09.064
It is demonstrated that natural product vindoline can enhance the glucose-stimulated insulin secretion (GSIS) in MIN6 cells with the EC50 value of 50.2 μM. In order to improve the activities, a series of vindoline derivatives are synthesized and evaluated in MIN6 cells. Compounds 4, 8, 17 and 24 show about 4.5 times more effective stimulation insulin secretion ability (EC50: 10.4, 14.2, 11.0 and 12.7 μM, respectively) than vindoline.
BENZOIC ACID, 4-[[(6-METHYL-2-PYRIDINYL)METHYL]AMINO]-
1-isobutyryl-1H-1,2,3-benzotriazole
1H-Benzotriazole, 1-(1-oxopropyl)-
Benzoic acid,4-[(2-pyridinylmethyl)amino]-
VINDOLINE, DEACETYL-
Vindoline
Benzoic acid, 4-iodo-3-(phenylmethoxy)-, methyl ester
Benzenesulfonamide, 4-methyl-N-[(3-methylphenyl)methylene]-
1H-Indole-3-carboxaldehyde, 1-[[4-(trifluoromethyl)phenyl]methyl]-
2-[(3-formylindol-1-yl)methyl]benzonitrile