نتایج جستجو برای: qsar model

تعداد نتایج: 2106830  

Journal: :Biomedicines 2023

Gap junctions (GJs) made of connexin-43 (Cx43) are necessary for the conduction electrical impulses in heart. Modulation Cx43 GJ activity may be beneficial treatment cardiac arrhythmias and other dysfunctions. The search novel GJ-modulating agents using molecular docking allows accurate prediction binding affinities ligands, which, unfortunately, often poorly correlate with their potencies. obj...

Journal: :Journal of chemical information and modeling 2008
Dmitry A. Konovalov Lyndon E. Llewellyn Yvan Vander Heyden Danny Coomans

A quantitative structure-activity relationship (QSAR) model is typically developed to predict the biochemical activity of untested compounds from the compounds' molecular structures. "The gold standard" of model validation is the blindfold prediction when the model's predictive power is assessed from how well the model predicts the activity values of compounds that were not considered in any wa...

Journal: :Journal of chemical information and modeling 2012
Eduardo B. de Melo Márcia M. C. Ferreira

Despite highly active antiretroviral therapy (HAART) implementation, there is a continuous need to search for new anti-HIV agents. HIV-1 integrase (HIV-1 IN) is a recently validated biological target for AIDS therapy. In this work, a four-dimensional quantitative structure-activity relationship (4D-QSAR) study using the new methodology named LQTA-QSAR approach with a training set of 85 HIV-1 IN...

2011
Jonna C. Stålring Lars Carlsson Pedro Almeida Scott Boyer

BACKGROUND Machine learning has a vast range of applications. In particular, advanced machine learning methods are routinely and increasingly used in quantitative structure activity relationship (QSAR) modeling. QSAR data sets often encompass tens of thousands of compounds and the size of proprietary, as well as public data sets, is rapidly growing. Hence, there is a demand for computationally ...

Journal: :Molecules 2016
Meimei Chen Fafu Yang Jie Kang Xuemei Yang Xinmei Lai Yuxing Gao

In this study, in silico approaches, including multiple QSAR modeling, structural similarity analysis, and molecular docking, were applied to develop QSAR classification models as a fast screening tool for identifying highly-potent ABCA1 up-regulators targeting LXRβ based on a series of new flavonoids. Initially, four modeling approaches, including linear discriminant analysis, support vector m...

COX-2 inhibitory activities of some 1,4-dihydropyridine and 5-oxo-1,4,5,6,7,8-hexahydroquinoline derivatives were modeled by quantitative structure–activity relationship (QSAR) using stepwise-multiple linear regression (SW-MLR) method. The built model was robust and predictive with correlation coefficient (R2) of 0.972 and 0.531 for training and test groups, respectively. The quality of the mod...

2017
Liang-Yong Xia Yu-Wei Wang De-Yu Meng Xiao-Jun Yao Hua Chai Yong Liang

The quantitative structure-activity relationship (QSAR) model searches for a reliable relationship between the chemical structure and biological activities in the field of drug design and discovery. (1) Background: In the study of QSAR, the chemical structures of compounds are encoded by a substantial number of descriptors. Some redundant, noisy and irrelevant descriptors result in a side-effec...

2016
Meimei Chen Xuemei Yang Xinmei Lai Jie Kang Huijuan Gan Yuxing Gao

In this paper, a three level in silico approach was applied to investigate some important structural and physicochemical aspects of a series of anthranilic acid derivatives (AAD) newly identified as potent partial farnesoid X receptor (FXR) agonists. Initially, both two and three-dimensional quantitative structure activity relationship (2D- and 3D-QSAR) studies were performed based on such AAD ...

Journal: :Chemistry Central Journal 2010

2010
Kyaw Zeyar Myint Xiang-Qun Xie

This paper provides an overview of recently developed two dimensional (2D) fragment-based QSAR methods as well as other multi-dimensional approaches. In particular, we present recent fragment-based QSAR methods such as fragment-similarity-based QSAR (FS-QSAR), fragment-based QSAR (FB-QSAR), Hologram QSAR (HQSAR), and top priority fragment QSAR in addition to 3D- and nD-QSAR methods such as comp...

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