TY - JOUR
T1 - The 2.35 Å crystal structure of the inactivated form of chicken Src
T2 - A dynamic molecule with multiple regulatory interactions
AU - Williams, John C.
AU - Weijland, Albert
AU - Gonfloni, Stefania
AU - Thompson, Andy
AU - Courtneidge, Sara A.
AU - Superti-Furga, Giulio
AU - Wierenga, Rik K.
N1 - Funding Information:
It is a pleasure to thank Dr Hiroto Yamaguchi and Professor Wayne Hendrickson for providing the coordinates of the Lck kinase domain and useful comments. We also thank the staff of the beam lines ID4 and ID14 at the ESRF, Grenoble and the EMBL X11 beam line at the DORIS storage ring, Hamburg for help with the data collection, Professors Louise Johnson and Sung Ho Kim for the phosphorylase kinase and apo-Cdk2 coordinates, respectively. At EMBL, we thank Dr Manfred Koegl for his early contributions to the expression and purification of Src, Dr Christian Engel with the initial data collection experiments, Gitte Neubauer for the mass spectrometry mesurements and Drs Matti Saraste and Luis Serrano for carefully reading the manuscript. The coordinates (2PTK) and structure factors (R2PTKSF) have been deposited at the PDB. A. W. has been supported by an EU grant, J. C. W. gratefully acknowledges support from the Alexander von Humboldt Stiftung. We thank the referees for their comments.
PY - 1997/12/19
Y1 - 1997/12/19
N2 - The Src protein tyrosine kinase plays a critical role in a variety of signal transduction pathways. Strict regulation of its activity is necessary for proper signalling. We present here the crystal structure of chicken Src which is phosphorylated at Tyr527 and represents its least active form. Our structure, similar to the recently reported human Hck and Src structures, contains the SH3, SH2 and the kinase domains and the C-terminal regulatory tail but not the N-terminal unique domain. The SH3 domain uses its hydrophobic surface to coordinate the SH2-kinase linker such that residues Gln251 and Leu255 specifically interact with side chains in the β2-β3 and the αC-β4 loops of the N-terminal lobe opposite of the kinase active site. This position of the SH3 domain and the coordination of the SH2-kinase linker also optimally places the SH2 domain such that the phosphorylated Tyr527 in the C-terminal tail interacts with the SH2 binding pocket. Analogous to Cdk2 kinase, the position of the Src αC-helix in the N-terminal lobe is swung out disrupting the position of the active site residues. Superposition of other protein kinases including human Hck and Src onto chicken Src indicate that the αC-helix position is affected by the relative position of the N-terminal lobe with respect to the C-terminal lobe of the kinase and that the presence of the SH3/SH2-kinase linker/N-terminal lobe interactions restricts the kinase lobes and αC-helix access to the active conformation. These superpositions also suggest that the highly conserved αC-β4 loop restricts the conformational freedom of the N-terminal lobe by anchoring it to the C-terminal lobe. Finally, based on sequence alignments and conservation of hydrophobic residues in the Src SH2-kinase linker as well as in the αC-β4 and β2-β3 loops, we propose that the Src-related kinases, Abl, Btk and Csk, share the same quaternary structure.
AB - The Src protein tyrosine kinase plays a critical role in a variety of signal transduction pathways. Strict regulation of its activity is necessary for proper signalling. We present here the crystal structure of chicken Src which is phosphorylated at Tyr527 and represents its least active form. Our structure, similar to the recently reported human Hck and Src structures, contains the SH3, SH2 and the kinase domains and the C-terminal regulatory tail but not the N-terminal unique domain. The SH3 domain uses its hydrophobic surface to coordinate the SH2-kinase linker such that residues Gln251 and Leu255 specifically interact with side chains in the β2-β3 and the αC-β4 loops of the N-terminal lobe opposite of the kinase active site. This position of the SH3 domain and the coordination of the SH2-kinase linker also optimally places the SH2 domain such that the phosphorylated Tyr527 in the C-terminal tail interacts with the SH2 binding pocket. Analogous to Cdk2 kinase, the position of the Src αC-helix in the N-terminal lobe is swung out disrupting the position of the active site residues. Superposition of other protein kinases including human Hck and Src onto chicken Src indicate that the αC-helix position is affected by the relative position of the N-terminal lobe with respect to the C-terminal lobe of the kinase and that the presence of the SH3/SH2-kinase linker/N-terminal lobe interactions restricts the kinase lobes and αC-helix access to the active conformation. These superpositions also suggest that the highly conserved αC-β4 loop restricts the conformational freedom of the N-terminal lobe by anchoring it to the C-terminal lobe. Finally, based on sequence alignments and conservation of hydrophobic residues in the Src SH2-kinase linker as well as in the αC-β4 and β2-β3 loops, we propose that the Src-related kinases, Abl, Btk and Csk, share the same quaternary structure.
KW - Conformational dynamics
KW - Crystal structure
KW - Signal transduction
KW - Src
KW - Tyrosine kinase
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U2 - 10.1006/jmbi.1997.1426
DO - 10.1006/jmbi.1997.1426
M3 - Article
C2 - 9405157
AN - SCOPUS:0031578579
SN - 0022-2836
VL - 274
SP - 757
EP - 775
JO - Journal of Molecular Biology
JF - Journal of Molecular Biology
IS - 5
ER -