Background: In this study, we present a SVM-based ranking algorithm for the concurrent learning of compounds with different activity profiles and their varying prioritization. To this end, a specific labeling of each compound was elaborated in order to infer virtual screening models against multiple targets. We compared the method with several state-of-the-art SVM classification techniques that are capable of inferring multi-target screening models on three chemical data sets (cytochrome P450s, dehydrogenases, and a trypsin-like protease data set) containing three different biological targets each.
Results: The experiments show that ranking-based algorithms show an increased performance for single- and multi-target virtual screening. Moreover, compounds that do not completely fulfill the desired activity profile are still ranked higher than decoys or compounds with an entirely undesired profile, compared to other multi-target SVM methods.
Conclusions: SVM-based ranking methods constitute a valuable approach for virtual screening in multi-target drug design. The utilization of such methods is most helpful when dealing with compounds with various activity profiles and the finding of many ligands with an already perfectly matching activity profile is not to be expected.
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http://dx.doi.org/10.1186/s13321-014-0050-6 | DOI Listing |
ChemMedChem
January 2025
Université Claude Bernard Lyon 1: Universite Claude Bernard Lyon 1, Centre de Recherche en Cancérologie de Lyon, FRANCE.
The serine/threonine protein kinase CK2, a tetramer composed of a regulatory dimer (CK2β2) bound to two catalytic subunits CK2α, is a well-established therapeutic target for various pathologies, including cancer and viral infections. Several types of CK2 inhibitors have been developed, including inhibitors that bind to the catalytic ATP-site, bivalent inhibitors that occupy both the CK2α ATP-site and the αD pocket, and inhibitors that target the CK2α/CK2β interface. Interestingly, the bivalent inhibitor AB668 shares a similar chemical structure with the interface inhibitor CCH507.
View Article and Find Full Text PDFChem Biodivers
January 2025
Chuxiong Normal University, Academy of Science and Technology, Chuxiong Normal University, Chuxiong, 675000,China, No. 456 Luchengnan Road, chuxiong, Academy of Science and Technology, 651000, chuxiong, CHINA.
Gray mold disease is caused by B. cinerea, which could severely reduce the production yield and quality of tomatoes. To explore more potential fungicides with new scaffolds for controlling the gray mold disease, ten aldehydes-thiourea derivatives were designed, synthesized and assayed for inhibitory activity against three plant pathogenic fungi.
View Article and Find Full Text PDFChem Biodivers
January 2025
Shaanxi University of Science and Technology, Chllege of Chemistry and Chemical Engineering, Weiyang Daxue Yuanqv, 710021, Xi'an, CHINA.
Bromodomain and extra terminal domain (BET) proteins play important roles in biological processes such as cell proliferation, differentiation, and signaling, and are involved in the occurrence and development of many diseases, including cancer and inflammatory diseases. Selective inhibitors targeting the first bromodomain (BD1) or the second bromodomain (BD2) have triggered a new wave of research to produce more specific and safer drugs. In this study, 37 novel selective BET BD2 inhibitors with anti-inflammatory activity are selected to construct robust Topomer CoMFA (q2=0.
View Article and Find Full Text PDFPest Manag Sci
January 2025
College of Plant Science and Technology, Huazhong Agricultural University, Wuhan, China.
Background: The cotton-melon aphid, Aphis gossypii Glover, is a polyphagous pest damaging plants across over 100 families. It has multiple host-specialized lineages, including one colonizing Malvaceae (MA) and one colonizing Cucurbitaceae (CU). The mechanisms underlying these host relationships remain unknown.
View Article and Find Full Text PDFFront Cell Infect Microbiol
January 2025
Mkelly Biotech Pvt Ltd., Mohali, Punjab, India.
Background: The rise of antibiotic-resistant pathogens has intensified the search for novel antimicrobial agents. This study aimed to isolate from local soil samples and evaluate its antimicrobial properties, along with optimizing the production of bioactive compounds.
Methods: Soil samples were collected from local regions, processed, and analysed for Streptomyces strains isolation using morphological characteristics and molecular identification through 16S rRNA gene PCR assay.
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