Identification of an allosteric signaling network within Tec family kinases

RE Joseph, Q Xie, AH Andreotti - Journal of molecular biology, 2010 - Elsevier
RE Joseph, Q Xie, AH Andreotti
Journal of molecular biology, 2010Elsevier
The Tec family kinases are tyrosine kinases that function primarily in hematopoietic cells.
The catalytic activity of the Tec kinases is positively influenced by the regulatory domains
outside of the kinase domain. The current lack of a full-length Tec kinase structure leaves a
void in our understanding of how these positive regulatory signals are transmitted to the
kinase domain. Recently, a conserved structure within kinases, the 'regulatory spine', which
assembles and disassembles as a kinase switches between its active and inactive states …
The Tec family kinases are tyrosine kinases that function primarily in hematopoietic cells. The catalytic activity of the Tec kinases is positively influenced by the regulatory domains outside of the kinase domain. The current lack of a full-length Tec kinase structure leaves a void in our understanding of how these positive regulatory signals are transmitted to the kinase domain. Recently, a conserved structure within kinases, the ‘regulatory spine’, which assembles and disassembles as a kinase switches between its active and inactive states, has been identified. Here, we define the residues that comprise the regulatory spine within Tec kinases. Compared to previously characterized systems, the Tec kinases contain an extended regulatory spine that includes a conserved methionine within the C-helix and a conserved tryptophan within the Src homology 2-kinase linker of Tec kinases. This extended regulatory spine forms a conduit for transmitting the presence of the regulatory domains of Tec kinases to the catalytic domain. We further show that mutation of the gatekeeper residue at the edge of the regulatory spine stabilizes the regulatory spine, resulting in a constitutively active kinase domain. Importantly, the regulatory spine is preassembled in this gatekeeper mutant, rendering phosphorylation on the activation loop unnecessary for its activity. Moreover, we show that the disruption of the conserved electrostatic interaction between Bruton's tyrosine kinase R544 on the activation loop and Bruton's tyrosine kinase E445 on the C-helix also aids in the assembly of the regulatory spine. Thus, the extended regulatory spine is a key structure that is critical for maintaining the activity of Tec kinases.
Elsevier