<p>Protein design has focused on the design of ground states, ensuring that they are sufficiently low energy to be highly populated<sup><CitationRef CitationID="CR1">1</CitationRef></sup>. Designing the kinetics and dynamics of a system requires, in addition, the design of excited states that are traversed in transitions from one low-lying state to another<sup><CitationRef CitationID="CR2">2</CitationRef>,<CitationRef CitationID="CR3">3</CitationRef></sup>. This is a challenging task because such states must be sufficiently strained to be poorly populated, but not so strained that they are not populated at all, and because protein design methods have focused on generating near-ideal structures<sup><CitationRef AdditionalCitationIDS="CR5 CR6" CitationID="CR4">4</CitationRef>–<CitationRef CitationID="CR7">7</CitationRef></sup>. Here we describe a general approach for designing systems that use an induced-fit power stroke<sup><CitationRef CitationID="CR8">8</CitationRef></sup> to generate a structurally frustrated<sup><CitationRef CitationID="CR9">9</CitationRef></sup> and strained excited state, allosterically driving protein&#xa0;complex dissociation. X-ray crystallography, double electron–electron resonance spectroscopy and kinetic binding measurements show that incorporating excited states enables the design of effector-induced increases in dissociation rates as high as 5,700-fold. We highlight the power of this approach by designing rapid biosensors, kinetically controlled circuits and cytokine mimics that can be dissociated from their receptors within seconds, enabling dissection of the temporal dynamics of interleukin-2 signalling.</p>

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Design of facilitated dissociation enables timing of cytokine signalling

  • Adam J. Broerman,
  • Christoph Pollmann,
  • Yang Zhao,
  • Mauriz A. Lichtenstein,
  • Mark D. Jackson,
  • Maxx H. Tessmer,
  • Won Hee Ryu,
  • Masato Ogishi,
  • Mohamad H. Abedi,
  • Danny D. Sahtoe,
  • Aza Allen,
  • Alex Kang,
  • Joshmyn De La Cruz,
  • Evans Brackenbrough,
  • Banumathi Sankaran,
  • Asim K. Bera,
  • Daniel M. Zuckerman,
  • Stefan Stoll,
  • K. Christopher Garcia,
  • Florian Praetorius,
  • Jacob Piehler,
  • David Baker

摘要

Protein design has focused on the design of ground states, ensuring that they are sufficiently low energy to be highly populated1. Designing the kinetics and dynamics of a system requires, in addition, the design of excited states that are traversed in transitions from one low-lying state to another2,3. This is a challenging task because such states must be sufficiently strained to be poorly populated, but not so strained that they are not populated at all, and because protein design methods have focused on generating near-ideal structures47. Here we describe a general approach for designing systems that use an induced-fit power stroke8 to generate a structurally frustrated9 and strained excited state, allosterically driving protein complex dissociation. X-ray crystallography, double electron–electron resonance spectroscopy and kinetic binding measurements show that incorporating excited states enables the design of effector-induced increases in dissociation rates as high as 5,700-fold. We highlight the power of this approach by designing rapid biosensors, kinetically controlled circuits and cytokine mimics that can be dissociated from their receptors within seconds, enabling dissection of the temporal dynamics of interleukin-2 signalling.