Focused On-demand Libraries - Receptor.AI Collaboration


Explore the Potential with AI-Driven Innovation

This extensive focused library is tailor-made using the latest virtual screening and parameter assessment technology, operated by the Receptor.AI drug discovery platform. This technique is more effective than traditional methods, offering compounds with improved 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 promising modulators annotated with 38 ADME-Tox and 32 physicochemical and drug-likeness parameters. Also, each compound is presented with its optimal docking poses, affinity scores, and activity scores, providing a comprehensive overview.


We use our state-of-the-art dedicated workflow for designing focused libraries.


 

Fig. 1. The screening workflow of Receptor.AI

Our strategy employs molecular simulations to explore an extensive range of proteins, capturing their dynamics both individually and within complexes with other proteins. Through ensemble virtual screening, we address proteins' conformational mobility, uncovering key binding sites at both functional regions and remote allosteric locations. This comprehensive investigation ensures a thorough assessment of all potential mechanisms of action, with the goal of discovering innovative therapeutic targets and lead molecules across across diverse biological functions.


Our library is unique due to several crucial aspects:


  • Receptor.AI compiles all relevant data on the target protein, such as past experimental results, literature findings, known ligands, and structural data, thereby enhancing the likelihood of focusing on the most significant compounds.

  • By utilizing advanced molecular simulations, the platform is adept at locating potential binding sites, rendering the compounds in the focused library well-suited for unearthing allosteric inhibitors and binders for hidden pockets.

  • The platform is supported by more than 50 highly specialized AI models, all of which have been rigorously tested and validated in diverse drug discovery and research programs. Its design emphasizes efficiency, reliability, and accuracy, crucial for producing focused libraries.

  • Receptor.AI extends beyond just creating focused libraries; it offers a complete spectrum of services and solutions during the preclinical drug discovery phase, with a success-dependent pricing strategy that reduces risk and fosters shared success in the project.


PARTNER
Receptor.AI
 
UPACC
P05026

UPID:
AT1B1_HUMAN

ALTERNATIVE NAMES:
Sodium/potassium-dependent ATPase subunit beta-1

ALTERNATIVE UPACC:
P05026; Q5TGZ3

BACKGROUND:
The beta subunit of the sodium/potassium-dependent ATPase, known as Sodium/potassium-transporting ATPase subunit beta-1, is essential for the active enzyme's function in ATP hydrolysis coupled with Na(+) and K(+) ion exchange. It regulates the sodium pumps' transport to the plasma membrane and plays a pivotal role in enhancing virus-triggered induction of interferons and interferon-stimulated genes, marking its significance in innate immune responses.

THERAPEUTIC SIGNIFICANCE:
Exploring the functionalities of Sodium/potassium-transporting ATPase subunit beta-1 unveils potential avenues for therapeutic intervention. Its critical role in maintaining cellular ion balance, supporting cell adhesion, and modulating immune responses positions it as a promising target in drug discovery for various diseases.

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