AI Article Synopsis

  • Proteins usually function in solution, but their structures are often studied in crystals.
  • The study utilizes solid-state NMR and multi-microsecond molecular dynamics simulations on different crystal forms of ubiquitin to examine how crystal packing affects protein dynamics.
  • Findings indicate that crystal packing can significantly change the thermodynamics and kinetics of protein conformational exchange and that some protein molecules exhibit small reorientational motions within the crystal lattice.

Article Abstract

Proteins perform their functions in solution but their structures are most frequently studied inside crystals. Here we probe how the crystal packing alters microsecond dynamics, using solid-state NMR measurements and multi-microsecond MD simulations of different crystal forms of ubiquitin. In particular, near-rotary-resonance relaxation dispersion (NERRD) experiments probe angular backbone motion, while Bloch-McConnell relaxation dispersion data report on fluctuations of the local electronic environment. These experiments and simulations reveal that the packing of the protein can significantly alter the thermodynamics and kinetics of local conformational exchange. Moreover, we report small-amplitude reorientational motion of protein molecules in the crystal lattice with an ~3-5° amplitude on a tens-of-microseconds time scale in one of the crystals, but not in others. An intriguing possibility arises that overall motion is to some extent coupled to local dynamics. Our study highlights the importance of considering the packing when analyzing dynamics of crystalline proteins.X-ray crystallography is the main method for protein structure determination. Here the authors combine solid-state NMR measurements and molecular dynamics simulations and show that crystal packing alters the thermodynamics and kinetics of local conformational exchange as well as overall rocking motion of protein molecules in the crystal lattice.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5529581PMC
http://dx.doi.org/10.1038/s41467-017-00165-8DOI Listing

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