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Perez-Areales, F. J.

Publications and source records attributed to Perez-Areales, F. J..

2 recordsLinked to original sources

Targeting a Pleckstrin Homology Domain with a Lysine-Reactive Cova-lent Binder

Brutons Tyrosine Kinase (BTK) is a validated target for haematological malignancies, with numerous FDA approved inhibitors on the market. Current therapies target the highly conserved ATP binding site and hence limit the therapeutic index given the sites highly conserved nature across the kinome. We explore a novel approach for BTK inhibition, by targeting the PH domain-mediated membrane recruitment and activation of BTK. We have identified a fragment which covalently labels a lysine in the inositol phosphate (PIP3) binding site. Fragment growth and an extensive structure-binding relationship study uncovered 27 crystal structures and a best-in-class analog, 24. Evaluation of pKa values of the targeted lysine in BTK and other PH domains suggests this as a more general approach to PH domain inhibition.

biochemistry↗

Ancestral acetylcholine receptor β-subunit forms homopentamers that prime before opening spontaneously

Human adult muscle-type acetylcholine receptors are heteropentameric ion channels formed from two -subunits, and one each of the {beta}-, {delta}-, and {varepsilon}-subunits. To form functional channels, the subunits must assemble with one another in a precise stoichiometry and arrangement. Despite being different, the four subunits share a common ancestor that is presumed to have formed homopentamers. The extent to which the properties of the modern-day receptor result from its subunit complexity is unknown. Here we show that a reconstructed ancestral muscle-type {beta}-subunit can form homopentameric ion channels. These homopentamers open spontaneously and display single-channel hallmarks of muscle-type acetylcholine receptor activity. Our findings demonstrate that signature features of muscle-type acetylcholine receptor function are independent of agonist, and do not necessitate the complex heteropentameric architecture of the modern-day receptor.

biophysics↗