scholarly journals Nonadditivity in Public and Inhouse Data – Implications for Drug Design

Author(s):  
Dea Gogishvili ◽  
Eva Nittinger ◽  
Christian Margreitter ◽  
Christian Tyrchan

Abstract Numerous ligand-based drug discovery projects are based on structure-activity relationship (SAR) analysis, such as Free-Wilson (FW) or matched molecular pair (MMP) analysis. Intrinsically they assume linearity and additivity of substituent contributions. These techniques are challenged by nonadditivity (NA) in protein-ligand binding where the change of two functional groups in one molecule results in much higher or lower activity than expected from the respective single changes. Identifying nonlinear cases and possible underlying explanations is crucial for a drug design project since it might influence which lead to follow. By systematically analyzing all AstraZeneca (AZ) inhouse compound data and publicly available ChEMBL25 bioactivity data, we show significant NA events in almost every second assay among the inhouse and once in every third assay in public data sets. Furthermore, 9.4% of all compounds of the AZ database and 5.1% from public sources display significant additivity shifts indicating important SAR features or fundamental measurement errors. Using NA data in combination with machine learning showed that nonadditive data is challenging to predict and even the addition of nonadditive data into training did not result in an increase in predictivity. Overall, NA analysis should be applied on a regular basis in many areas of computational chemistry and can further improve rational drug design.

2019 ◽  
Vol 39 (1) ◽  
Author(s):  
Ser-Xian Phua ◽  
Kwok-Fong Chan ◽  
Chinh Tran-To Su ◽  
Jun-Jie Poh ◽  
Samuel Ken-En Gan

AbstractThe reductionist approach is prevalent in biomedical science. However, increasing evidence now shows that biological systems cannot be simply considered as the sum of its parts. With experimental, technological, and computational advances, we can now do more than view parts in isolation, thus we propose that an increasing holistic view (where a protein is investigated as much as a whole as possible) is now timely. To further advocate this, we review and discuss several studies and applications involving allostery, where distant protein regions can cross-talk to influence functionality. Therefore, we believe that an increasing big picture approach holds great promise, particularly in the areas of antibody engineering and drug discovery in rational drug design.


2009 ◽  
Vol 9 (3) ◽  
pp. 304-318 ◽  
Author(s):  
TAP de Beer ◽  
GA Wells ◽  
PB Burger ◽  
F. Joubert ◽  
E. Marechal ◽  
...  

2014 ◽  
Vol 28 (12) ◽  
pp. 1205-1215 ◽  
Author(s):  
Antje Wolf ◽  
Sebastian Schoof ◽  
Sascha Baumann ◽  
Hans-Dieter Arndt ◽  
Karl N. Kirschner

2013 ◽  
Vol 5 (6) ◽  
pp. e201302011 ◽  
Author(s):  
Valère Lounnas ◽  
Tina Ritschel ◽  
Jan Kelder ◽  
Ross McGuire ◽  
Robert P. Bywater ◽  
...  

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