首页 | 本学科首页   官方微博 | 高级检索  
     检索      


Identification of potential inhibitor and enzyme-inhibitor complex on trypanothione reductase to control Chagas disease
Institution:1. Vilnius University, Instituteof Biochemistry, Sauletekio av. 7, Vilnius LT-10222, Lithuania;2. Vilnius University, Institute of Theoretical Physics and Astronomy, Sauletekio av. 3, Vilnius, LT-10222, Lithuania
Abstract:Chagas is a parasitic disease with major threat to public health due to its resistance against commonly available drugs. Trypanothione reductase (TryR) is the key enzyme to develop this disease. Though this enzyme is well thought-out as potential drug target, the accurate structure of enzyme-inhibitor complex is required to design a potential inhibitor which is less available for TryR. In this research, we aimed to investigate the advanced drug over the available existing drugs by designing inhibitors as well as to identify a new enzyme-inhibitor complex that may act as a template for drug design. A set of analogues were designed from a known inhibitor Quinacrine Mustard (QUM) to identify the effective inhibitor against this enzyme. Further, the pharmacoinformatics elucidation and structural properties of designed inhibitor proposed effective drug candidates against Chagas disease. Molecular docking study suggests that a designed inhibitor has higher binding affinity in both crystal and modeled TryR and also poses similar interacting residues as of crystal TryR-QUM complex structure. The comparative studies based on in silico prediction proposed an enzyme-inhibitor complex which could be effective to control the disease activity. So our in silico analysis based on TryR built model, Pharmacophore and docking analysis might play an important role for the development of novel therapy for Chagas disease. But both animal model experiments and clinical trials must be done to confirm the efficacy of the therapy.
Keywords:Chagas disease  Pharmacoinformatics  Molecular docking  Enzyme-inhibitor complex  TryR"}  {"#name":"keyword"  "$":{"id":"kw0030"}  "$$":[{"#name":"text"  "_":"trypanothione reductase  QUM"}  {"#name":"keyword"  "$":{"id":"kw0050"}  "$$":[{"#name":"text"  "_":"quinacrine mustard  ADMET"}  {"#name":"keyword"  "$":{"id":"kw0060"}  "$$":[{"#name":"text"  "_":"absorption  distribution  metabolism distribution and toxicity  BBB"}  {"#name":"keyword"  "$":{"id":"kw0070"}  "$$":[{"#name":"text"  "_":"blood brain barrier transport  LogBB"}  {"#name":"keyword"  "$":{"id":"kw0080"}  "$$":[{"#name":"text"  "_":"Blood Brain Distribution  LogPS"}  {"#name":"keyword"  "$":{"id":"kw0090"}  "$$":[{"#name":"text"  "_":"blood brain barrier permeability  DBP"}  {"#name":"keyword"  "$":{"id":"kw0100"}  "$$":[{"#name":"text"  "_":"Drug binding to plasma protein  Vd"}  {"#name":"keyword"  "$":{"id":"kw0110"}  "$$":[{"#name":"text"  "_":"volume of distribution  Pgp"}  {"#name":"keyword"  "$":{"id":"kw0120"}  "$$":[{"#name":"text"  "_":"P-glycoprotein  QSAR"}  {"#name":"keyword"  "$":{"id":"kw0130"}  "$$":[{"#name":"text"  "_":"quantititive structure–activity relationship  LogS"}  {"#name":"keyword"  "$":{"id":"kw0140"}  "$$":[{"#name":"text"  "_":"solubility  TPSA"}  {"#name":"keyword"  "$":{"id":"kw0150"}  "$$":[{"#name":"text"  "_":"the polar surface area  cLogP"}  {"#name":"keyword"  "$":{"id":"kw0160"}  "$$":[{"#name":"text"  "_":"logarithm of partition coefficient  Mw"}  {"#name":"keyword"  "$":{"id":"kw0170"}  "$$":[{"#name":"text"  "_":"molecular weight
本文献已被 ScienceDirect 等数据库收录!
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号