An expanded allosteric network in PTP1B by multitemperature crystallography, fragment screening, and covalent tethering

Allostery is an inherent feature of proteins, but it remains challenging to reveal the mechanisms by which allosteric signals propagate. A clearer understanding of this intrinsic circuitry would afford new opportunities to modulate protein function. Here, we have identified allosteric sites in prote...

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Үндсэн зохиолчид: Keedy, D, Hill, Z, Biel, J, Kang, E, Rettenmaier, T, Brandao-Neto, J, Pearce, N, Von Delft, F, Wells, J, Fraser, J
Формат: Journal article
Хэвлэсэн: eLife Sciences Publications 2018
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author Keedy, D
Hill, Z
Biel, J
Kang, E
Rettenmaier, T
Brandao-Neto, J
Pearce, N
Von Delft, F
Wells, J
Fraser, J
author_facet Keedy, D
Hill, Z
Biel, J
Kang, E
Rettenmaier, T
Brandao-Neto, J
Pearce, N
Von Delft, F
Wells, J
Fraser, J
author_sort Keedy, D
collection OXFORD
description Allostery is an inherent feature of proteins, but it remains challenging to reveal the mechanisms by which allosteric signals propagate. A clearer understanding of this intrinsic circuitry would afford new opportunities to modulate protein function. Here, we have identified allosteric sites in protein tyrosine phosphatase 1B (PTP1B) by combining multiple-temperature X-ray crystallography experiments and structure determination from hundreds of individual small- molecule fragment soaks. New modeling approaches reveal ’hidden’ low-occupancy conformational states for protein and ligands. Our results converge on allosteric sites that are conformationally coupled to the active-site WPD loop and are hotspots for fragment binding. Targeting one of these sites with covalently tethered molecules or mutations allosterically inhibits enzyme activity. Overall, this work demonstrates how the ensemble nature of macromolecular structure, revealed here by multitemperature crystallography, can elucidate allosteric mechanisms and open new doors for long-range control of protein function.
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spelling oxford-uuid:883b9c80-6cf1-414d-b385-27cec47e38c82022-03-26T22:15:51ZAn expanded allosteric network in PTP1B by multitemperature crystallography, fragment screening, and covalent tetheringJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:883b9c80-6cf1-414d-b385-27cec47e38c8Symplectic Elements at OxfordeLife Sciences Publications2018Keedy, DHill, ZBiel, JKang, ERettenmaier, TBrandao-Neto, JPearce, NVon Delft, FWells, JFraser, JAllostery is an inherent feature of proteins, but it remains challenging to reveal the mechanisms by which allosteric signals propagate. A clearer understanding of this intrinsic circuitry would afford new opportunities to modulate protein function. Here, we have identified allosteric sites in protein tyrosine phosphatase 1B (PTP1B) by combining multiple-temperature X-ray crystallography experiments and structure determination from hundreds of individual small- molecule fragment soaks. New modeling approaches reveal ’hidden’ low-occupancy conformational states for protein and ligands. Our results converge on allosteric sites that are conformationally coupled to the active-site WPD loop and are hotspots for fragment binding. Targeting one of these sites with covalently tethered molecules or mutations allosterically inhibits enzyme activity. Overall, this work demonstrates how the ensemble nature of macromolecular structure, revealed here by multitemperature crystallography, can elucidate allosteric mechanisms and open new doors for long-range control of protein function.
spellingShingle Keedy, D
Hill, Z
Biel, J
Kang, E
Rettenmaier, T
Brandao-Neto, J
Pearce, N
Von Delft, F
Wells, J
Fraser, J
An expanded allosteric network in PTP1B by multitemperature crystallography, fragment screening, and covalent tethering
title An expanded allosteric network in PTP1B by multitemperature crystallography, fragment screening, and covalent tethering
title_full An expanded allosteric network in PTP1B by multitemperature crystallography, fragment screening, and covalent tethering
title_fullStr An expanded allosteric network in PTP1B by multitemperature crystallography, fragment screening, and covalent tethering
title_full_unstemmed An expanded allosteric network in PTP1B by multitemperature crystallography, fragment screening, and covalent tethering
title_short An expanded allosteric network in PTP1B by multitemperature crystallography, fragment screening, and covalent tethering
title_sort expanded allosteric network in ptp1b by multitemperature crystallography fragment screening and covalent tethering
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