Focused On-demand Libraries - Receptor.AI Collaboration


Explore the Potential with AI-Driven Innovation

The focused library is created on demand with the latest virtual screening and parameter assessment technology, supported by the Receptor.AI drug discovery platform. This method is more effective than traditional methods and results in higher-quality compounds with better activity, selectivity, and safety.


We carefully select specific compounds from a vast collection of over 60 billion molecules in virtual chemical space. Reaxense helps in synthesizing and delivering these compounds.


In the library, a selection of top modulators is provided, each marked with 38 ADME-Tox and 32 parameters related to physicochemical properties and drug-likeness. Also, every compound comes with its best docking poses, affinity scores, and activity scores, providing a comprehensive overview.


We utilise our cutting-edge, exclusive workflow to develop focused libraries.


 

Fig. 1. The screening workflow of Receptor.AI

Utilising molecular simulations, our approach thoroughly examines a wide array of proteins, tracking their conformational changes individually and within complexes. Ensemble virtual screening enables us to address conformational flexibility, revealing essential binding sites at functional regions and allosteric locations. Our rigorous analysis guarantees that no potential mechanism of action is overlooked, aiming to uncover new therapeutic targets and lead compounds 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
Q9Y283

UPID:
INVS_HUMAN

ALTERNATIVE NAMES:
Inversion of embryo turning homolog; Nephrocystin-2

ALTERNATIVE UPACC:
Q9Y283; A2A2Y2; Q2NKL0; Q5W0T6; Q8IVX8; Q9BRB9; Q9Y488; Q9Y498

BACKGROUND:
The protein Inversin, or Nephrocystin-2, is essential for proper kidney development and determining the left-right axis in the body. It acts as a critical regulator within Wnt signaling pathways, specifically inhibiting the canonical pathway to promote tubular epithelial cell differentiation. Inversin also plays a role in the organization of apical junctions in kidney cells alongside NPHP1, NPHP4, and RPGRIP1L/NPHP8, although its role in ciliogenesis is not deemed essential.

THERAPEUTIC SIGNIFICANCE:
Mutations in the Inversin gene are responsible for Nephronophthisis 2, a severe autosomal recessive kidney disorder marked by early onset and rapid progression towards end-stage renal disease. The exploration of Inversin's function offers promising avenues for developing targeted therapies for this and potentially other related renal disorders.

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