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Advances in Understanding Stimulus-Responsive Phase Behavior of Intrinsically Disordered Protein Polymers
Authors:Kiersten M. Ruff  Stefan Roberts  Ashutosh Chilkoti  Rohit V. Pappu
Affiliation:1. Center for Biological Systems Engineering and Department of Biomedical Engineering, Washington University in St. Louis, St. Louis, MO 63130, USA;2. Department of Biomedical Engineering, Duke University, Durham, NC 27708, USA
Abstract:Proteins and synthetic polymers can undergo phase transitions in response to changes to intensive solution parameters such as temperature, proton chemical potentials (pH), and hydrostatic pressure. For proteins and protein-based polymers, the information required for stimulus-responsive phase transitions is encoded in their amino acid sequence. Here, we review some of the key physical principles that govern the phase transitions of archetypal intrinsically disordered protein polymers (IDPPs). These are disordered proteins with repetitive amino acid sequences. Advances in recombinant technologies have enabled the design and synthesis of protein sequences of a variety of sequence complexities and lengths. We summarize insights that have been gleaned from the design and characterization of IDPPs that undergo thermo-responsive phase transitions and build on these insights to present a general framework for IDPPs with pH and pressure responsive phase behavior. In doing so, we connect the stimulus-responsive phase behavior of IDPPs with repetitive sequences to the coil-to-globule transitions that these sequences undergo at the single-chain level in response to changes in stimuli. The proposed framework and ongoing studies of stimulus-responsive phase behavior of designed IDPPs have direct implications in bioengineering, where designing sequences with bespoke material properties broadens the spectrum of applications, and in biology and medicine for understanding the sequence-specific driving forces for the formation of protein-based membraneless organelles as well as biological matrices that act as scaffolds for cells and mediators of cell-to-cell communication.
Keywords:intrinsically disordered protein polymers  stimulus-responsive phase transitions  upper critical solution temperature  lower critical solution temperature  collapse transitions of polymers  IDPPs  intrinsically disordered protein polymers  SLiMs  short linear motifs  IDRs  intrinsically disordered regions  IDPs  intrinsically disordered proteins  ELPs  elastin-like polypeptides  UCST  upper critical solution temperature  LCST  lower critical solution temperature  PNIPAM  LCDs  low-complexity domains
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