| Literature DB >> 28054556 |
Maximilien Cottat1,2,3, Ryohei Yasukuni1, Yo Homma1,2,3, Nathalie Lidgi-Guigui1, Nadine Varin-Blank2,3, Marc Lamy de la Chapelle1, Christine Le Roy2,3.
Abstract
Spleen Tyrosine Kinase (Syk) plays a crucial role in immune cell signalling and its altered expression or activation are involved in several cancers. Syk activity relies on its phosphorylation status and its multiple phosphorylation sites predict several Syk conformations. In this report, we characterized Syk structural changes according to its phosphorylation/activation status by Surface Enhanced Raman Spectroscopy (SERS). Unphosphorylated/inactive and phosphorylated/active Syk forms were produced into two expression systems with different phosphorylation capability. Syk forms were then analysed by SERS that was carried out in liquid condition on a lithographically designed gold nanocylinders array. Our study demonstrated that SERS signatures of the two Syk forms were drastically distinct, indicating structural modifications related to their phosphorylation status. By comparison with the atomic structure of the unphosphorylated Syk, the SERS peak assignments of the phosphorylated Syk nearest gold nanostructures revealed a differential interaction with the gold surface. We finally described a model for Syk conformational variations according to its phosphorylation status. In conclusion, SERS is an efficient technical approach for studying in vitro protein conformational changes and might be a powerful tool to determine protein functions in tumour cells.Entities:
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Year: 2017 PMID: 28054556 PMCID: PMC5214100 DOI: 10.1038/srep39766
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Phosphorylation and activation levels of Syk produced in bacteria and insect cells.
Constructs encoding human wild type (WT) Syk were expressed in BL21 bacteria (A and B) and Sf9 insect cells (A,B and C). Kinase assay in presence (+) or not (−) of Adenosine Triphosphate (ATP) was used to measure Syk self kinase activity that was reflected by tyrosine phosphorylated (pY)-Syk (A and B). Phosphatase treatment with calf intestinal alkaline phosphatase (CIP) was used to transform P-Syk into deP-Syk (C). Produced Syk forms were separated on SDS-PAGE gel and Syk expression and phosphorylation were revealed with the indicated antibodies anti-Syk (α-Syk), anti-phospho-tyrosine antibody (α-pY) and anti-phospho-specific antibodies (α-pY-323, -348 and -525).
Biophysical properties of the Syk samples.
| Sample | Tag | Expression system | Phosphorylation status | Kinase activity |
|---|---|---|---|---|
| P-Syk | GST-HIS | Sf9 cells | phosphorylated | active |
| deP-Syk | GST-HIS | Sf9 cells | unphosphorylated | inactive |
| unP-Syk | HIS | BL21 bacteria | unphosphorylated | inactive |
| KD-Syk | HIS | BL21 bacteria | unphosphorylated | dead |
For the four Syk samples used in this study (first column), which were differentially tagged (second column) and produced in insect cells or bacteria (third column), their phosphorylation status (fourth column) and self-kinase activity (fifth column) are indicated based on the results shown in Fig. 1.
Figure 2SERS spectra of KD-, unP-, deP- and P-Syk forms.
For each Syk form, spectra were acquired at five locations on the same array. After correcting background, measures obtained the spectra were averaged and normalized at their maximum. The baseline of each spectrum was offset for clarity.
Figure 3Model of phosphorylation-dependent Syk conformational changes based on SERS spectra analysis.
This model shows SH2 domains in orange, the interdomain A in purple, interdomain B in blue and kinase domain in green. Dotted lines show hydrogen bonds between interdomains as well as between the interdomain A and kinase domain. (A) Auto-inhibited form of unphosphorylated Syk adsorbed onto gold surface through Cys101 in its N-SH2 domain and through Cys593-Cys597 disulfide bond in its kinase domain. (B) Active Syk form of phosphorylated Syk adsorbed onto gold surface through hydrophobic interactions after motion of its interdomain B.