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Saiti, A.

Publications and source records attributed to Saiti, A..

2 recordsLinked to original sources

Emergence of new function through evolutionary divergence of an intrinsically disordered region

Intrinsically disordered regions (IDRs) are major drivers of protein functional diversification, yet the molecular features that enable the emergence of new functions within disordered sequences remain poorly understood. FCHO1 and FCHO2 are paralogous pioneer proteins of clathrin-mediated endocytosis that share a conserved domain architecture but perform distinct cellular functions and cannot compensate for each other's loss. Here we show that functional divergence between these proteins is associated with the acquisition of transient structure within their disordered regions. Using nuclear magnetic resonance spectroscopy, we identify two highly populated -helical elements in the IDR of FCHO1 that are absent from FCHO2. One of these helices mediates FCHO1 self-association and drives intracellular assembly, whereas FCHO2 lacks this behavior. Introduction of the FCHO1 helix into FCHO2 is sufficient to confer self-association and cellular assembly, demonstrating that a transient structural element embedded within an IDR can act as a transferable functional module. Evolutionary analysis reveals that this helical propensity emerged following duplication of the ancestral FCHO gene and became progressively reinforced during evolution. Despite this divergence, the same region retains a conserved membrane-binding activity in both paralogs. Together, our findings show how acquisition of transient secondary structure within an intrinsically disordered region can generate new molecular behaviors while preserving ancestral functions, providing a mechanism for the functional specialization of paralogous proteins.

biophysics↗

Claudin-4 polymerizes after the incorporation of just two extracellular claudin-3 residues

Tight junctions play a pivotal role in the functional integrity of the human body by forming barriers crucial for tissue compartmentalization and protecting the body from external threats. Essential components of tight junctions are the transmembrane claudin proteins, which can polymerize into tight junction strands and meshworks. This study delves into the structural determinants of claudin polymerization, utilizing the close homology yet strong difference in polymerization capacity between claudin-3 and claudin-4. Through a combination of sequence alignment and structural modeling, critical residues in the second extracellular segment are pinpointed. Molecular dynamics simulations provide insights into the interactions of and the conformational changes induced by the identified extracellular segment 2 residues, shedding light on the intricacies of claudin polymerization. Live-STED imaging demonstrates that introduction of these residues from claudin-3 into claudin-4 significantly enhances polymerization in non-epithelial cells. In tight junction-deficient epithelial cells, mutated claudin-4 not only influences tight junction morphology but also partially restores barrier function. Understanding the structural basis of claudin polymerization is of paramount importance, as it offers insights into the dynamic nature of tight junctions. This knowledge could be applied to targeted therapeutic interventions, offering insight to repair or prevent barrier defects associated with pathological conditions, or introduce temporary barrier openings during drug delivery.

cell biology↗