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.


The compounds are cherry-picked from the vast virtual chemical space of over 60B molecules. The synthesis and delivery of compounds is facilitated by Reaxense.


The library features a range of promising modulators, each detailed with 38 ADME-Tox and 32 physicochemical and drug-likeness parameters. Plus, each compound is presented with its ideal docking poses, affinity scores, and activity scores, ensuring a thorough insight.


Our top-notch dedicated system is used to design specialised libraries.


 

Fig. 1. The screening workflow of Receptor.AI

By deploying molecular simulations, our approach comprehensively covers a broad array of proteins, tracking their flexibility and dynamics individually and within complexes. Ensemble virtual screening is utilised to take into account conformational dynamics, identifying pivotal binding sites located within functional regions and at allosteric locations. This thorough exploration ensures that every conceivable mechanism of action is considered, aiming to identify new therapeutic targets and advance lead compounds throughout a vast spectrum of biological functions.


Our library distinguishes itself through several key aspects:


  • The Receptor.AI platform integrates all available data about the target protein, including past experiments, literature data, known ligands, structural information and more. This consolidated approach maximises the probability of prioritising highly relevant compounds.

  • The platform uses sophisticated molecular simulations to identify possible binding sites so that the compounds in the focused library are suitable for discovering allosteric inhibitors and the binders for cryptic pockets.

  • The platform integrates over 50 highly customisable AI models, which are thoroughly tested and validated on a multitude of commercial drug discovery programs and research projects. It is designed to be efficient, reliable and accurate. All this power is utilised when producing the focused libraries.

  • In addition to producing the focused libraries, Receptor.AI provides services and end-to-end solutions at every stage of preclinical drug discovery. The pricing model is success-based, which reduces your risks and leverages the mutual benefits of the project's success.


PARTNER
Receptor.AI
 
UPACC
O14787

UPID:
TNPO2_HUMAN

ALTERNATIVE NAMES:
Karyopherin beta-2b

ALTERNATIVE UPACC:
O14787; O14655; Q6IN77

BACKGROUND:
Transportin-2, identified by its alternative name Karyopherin beta-2b, plays a crucial role in the nuclear import of proteins, acting as a receptor for nuclear localization signals (NLS) in cargo substrates. Its function is essential for the importin/substrate complex's interaction with the nuclear pore complex (NPC) and the subsequent energy-requiring translocation process, governed by the Ran GTPase. This protein's activity is vital for the regulated import of proteins into the nucleus, a process critical for cellular function and integrity.

THERAPEUTIC SIGNIFICANCE:
Given its involvement in Intellectual developmental disorder with hypotonia, impaired speech, and dysmorphic facies, Transportin-2 represents a significant target for research into genetic disorders affecting intellectual and physical development. Exploring the role of Transportin-2 in this disorder opens doors to potential therapeutic strategies, highlighting the importance of genetic and molecular research in uncovering treatments for complex diseases.

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