Focused On-demand Libraries - Receptor.AI Collaboration


Explore the Potential with AI-Driven Innovation

Our detailed focused library is generated on demand with advanced virtual screening and parameter assessment technology powered by the Receptor.AI drug discovery platform. This method surpasses traditional approaches, delivering compounds of better quality with enhanced activity, selectivity, and safety.


We pick out particular compounds from an extensive virtual database of more than 60 billion molecules. The preparation and shipment of these compounds are facilitated by Reaxense.


The library includes a list of the most effective modulators, each annotated with 38 ADME-Tox and 32 physicochemical and drug-likeness parameters. Furthermore, each compound is shown with its optimal docking poses, affinity scores, and activity scores, offering a detailed summary.


We employ our advanced, specialised process to create targeted libraries.


 

Fig. 1. The screening workflow of Receptor.AI

Our methodology leverages molecular simulations to examine a vast array of proteins, capturing their dynamics in both isolated forms and in complexes with other proteins. Through ensemble virtual screening, we thoroughly account for the protein's conformational mobility, identifying critical binding sites within functional regions and distant allosteric locations. This detailed exploration ensures that we comprehensively assess every possible mechanism of action, with the objective of identifying novel therapeutic targets and lead compounds that span a wide spectrum of biological functions.


Key features that set our library apart include:


  • The Receptor.AI platform integrates extensive information about the target protein, such as historical experiments, academic research, known ligands, and structural insights, thereby increasing the likelihood of identifying highly relevant compounds.

  • The platform’s sophisticated molecular simulations are designed to discover potential binding sites, ensuring that our focused library is optimal for the discovery of allosteric inhibitors and binders for cryptic pockets.

  • With over 50 customisable AI models, verified through extensive testing in commercial drug discovery and research, Receptor.AI is efficient, reliable, and precise. These models are essential in the production of our focused libraries.

  • Receptor.AI not only produces focused libraries but also provides full services and solutions at every stage of preclinical drug discovery, with a success-based pricing structure that aligns our interests with the success of your project.


PARTNER
Receptor.AI
 
UPACC
Q9NX14

UPID:
NDUBB_HUMAN

ALTERNATIVE NAMES:
Complex I-ESSS; NADH-ubiquinone oxidoreductase ESSS subunit; Neuronal protein 17.3

ALTERNATIVE UPACC:
Q9NX14; Q5JRR3; Q5JRR4; Q6IAB6; Q8WZ96; Q9BXX9

BACKGROUND:
The NADH-ubiquinone oxidoreductase ESSS subunit, a key component of the mitochondrial respiratory chain, is instrumental in the process of oxidative phosphorylation. It is not directly involved in catalysis but is essential for the function of Complex I, which is responsible for electron transfer from NADH to ubiquinone in the energy production pathway.

THERAPEUTIC SIGNIFICANCE:
Involvement in disorders such as Linear skin defects with multiple congenital anomalies 3 and Mitochondrial complex I deficiency highlights the protein's clinical significance. Targeting NADH-ubiquinone oxidoreductase ESSS subunit's function offers a promising avenue for developing treatments for these mitochondrial disorders.

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