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Scot A Lieser

Publications and source records attributed to Scot A Lieser.

5 recordsLinked to original sources

SRC tail phosphorylation is limited by structural changes in the regulatory tyrosine kinase Csk.

Src family tyrosine kinases are down-regulated through phosphorylation of a single C-terminal tyrosine by the nonreceptor tyrosine kinase Csk. Despite the fundamental role of Csk in controlling cell growth and differentiation, it is unclear what limits this key signaling reaction and controls the production of catalytically repressed Src. To investigate this issue, stopped-flow fluorescence experiments were performed to determine which steps modulate catalysis. Both Src binding and phosphorylation can be monitored by changes in intrinsic tryptophan fluorescence. Association kinetics are biphasic with the initial phase corresponding to the bimolecular interaction of both proteins and the second phase representing a slow conformational change that coincides with the rate of maximum turnover. The kinetic transients for the phosphorylation reaction are also biphasic with the initial phase corresponding to the rapid phosphorylation and the release of phospho-Src. These data, along with equilibrium sedimentation and product inhibition experiments, suggest that steps involving Src association, phosphorylation, and product release are fast and that a structural change in Csk participates in limiting the catalytic cycle.

CSK Tyrosine-Protein Kinase↗

Coupling phosphoryl transfer and substrate interactions in protein kinases.

Protein kinases control cell signaling events through the ATP-dependent phosphorylation of serine, threonine and tyrosine residues in protein targets. The recognition of these protein substrates by the kinases relies on two principal factors: proper subcellular co-localization and molecular interactions between the kinase and substrate. In this review, we will focus on the kinetic role of the latter in conveying favorable substrate recognition. Using rapid mixing technologies, we demonstrate that the intrinsic thermodynamic affinities of two protein substrates for their respective kinases (Csk with Src and Sky1p with Npl3) are weak compared to their apparent affinities measured in traditional steady-state kinetic assays (i.e.--Km < Kd). The source of the high apparent affinities rests in a very fast and highly favorable phosphoryl transfer step that serves as a clamp for substrate recognition. In this mechanism, both Csk and Sky1p utilize this step to draw the substrate toward product, thereby, converting a high Kd into a low Km. We propose that this one form of substrate recognition employed by protein kinases is advantageous since it simultaneously facilitates high apparent substrate affinity and fast protein turnover.

CSK Tyrosine-Protein Kinase↗

Coupled motions in the SH2 and kinase domains of Csk control Src phosphorylation.

The C-terminal Src kinase (Csk) phosphorylates and down-regulates Src family tyrosine kinases. The Csk-binding protein (Cbp) localizes Csk close to its substrates at the plasma membrane, and increases the specific activity of the kinase. To investigate this long-range catalytic effect, the phosphorylation of Src and the conformation of Csk were investigated in the presence of a high-affinity phosphopeptide derived from Cbp. This peptide binds tightly to the SH2 domain and enhances Src recognition (lowers K(m)) by increasing the apparent phosphoryl transfer rate in the Csk active site, a phenomenon detected in rapid quench flow experiments. Previous studies demonstrated that the regulation of Csk activity is linked to conformational changes in the enzyme that can be probed with hydrogen-deuterium exchange methods. We show that the Cbp peptide impacts deuterium incorporation into its binding partner (the SH2 domain), and into the SH2-kinase linker and several sequences in the kinase domain, including the glycine-rich loop in the active site. These findings, along with computational data from normal mode analyses, suggest that the SH2 domain moves in a cantilever fashion with respect to the small lobe of the kinase domain, ordering the active site for catalysis. The binding of a small Cbp-derived peptide to the SH2 domain of Csk modifies these motions, enhancing Src recognition.

Adaptor Proteins, Signal Transducing↗

Phosphoryl transfer step in the C-terminal Src kinase controls Src recognition.

All members of the Src family of nonreceptor protein tyrosine kinases are phosphorylated and subsequently down-regulated by the C-terminal Src kinase, Csk. Although the recognition of Src protein substrates is essential for a diverse set of signaling events linked to cellular growth and differentiation, the factors controlling this critical protein-protein interaction are not well known. To understand how Csk recognizes Src, the chemical/physical events that modulate apparent substrate affinity and turnover were investigated. Src is phosphorylated in a biphasic manner in rapid quench flow experiments, suggesting that the phosphoryl transfer step is fast and highly favorable and does not limit overall turnover. As opposed to other kinase-substrate pairs, turnover is not limited by the physical release of ADP based on stopped-flow fluorescence and catalytic trapping experiments, suggesting that other steps control net phosphorylation. The K(d) for Src is considerably larger than the K(m) based on single turnover kinetic and equilibrium sedimentation experiments. Taken together, the data are consistent with a mechanism whereby Csk achieves a low K(m) for the substrate Src, not by stabilizing protein-protein interactions but rather by facilitating a fast phosphoryl transfer step. In this manner, the phosphoryl transfer step functions as a chemical clamp facilitating substrate recognition.

Adenosine Diphosphate↗

DNA-binding and oligomerization studies of the manganese(II) metalloregulatory protein MntR from Bacillus subtilis.

The metalloregulatory protein MntR from Bacillus subtilis acts as a transcriptional regulator of manganese homeostasis. MntR is a member of a subfamily of DtxR-related proteins that perform analogous regulatory functions in a variety of pathogenic organisms. Metal ions activate MntR to bind DNA and repress the transcription of the mntH gene, which encodes for a proton-coupled metal ion transporter. Size-exclusion chromatography and sedimentation equilibrium ultracentrifugation studies show that apo MntR is predominantly a homodimer in solution. Using fluorescence anisotropy measurements, the DNA binding properties of MntR have been examined. In the strict absence of divalent transition metal ions MntR has a low affinity for the mntH control sequence (K(d) > 8.0 microM). However, binding of MntR is stimulated by the presence of Mn(2+) and Cd(2+) to generate high affinity binding with K(d) values of 16.0 and 7.3 nM, respectively. MntR is also shown to bind the mntH control sequence in the presence of other divalent transition metals, including Ni(2+), Cu(2+), and Zn(2+), but with much lower affinity (K(d) approximately 1.3-2.3 microM). The data here demonstrate that differences in metal-activated DNA binding plays a role in the mechanism of manganese(II)-selective transcription factors and that the oligomerization of MntR is metal-independent, which distinguishes this protein from iron(II)-responsive homologues in the DtxR protein family.

Amino Acid Sequence↗