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Updated: Apr 23, 2026

A Mass Spectrometry-Based Approach to Identify Phosphoprotein Phosphatases and their Interactors
Published on: April 29, 2022
Quantitative phosphoproteomics of cytotoxic T cells to reveal protein kinase d 2 regulated networks
María N Navarro1, Juergen Goebel1, Jens L Hukelmann1
1From the ‡Division of Cell Signalling and Immunology. College of Life Sciences University of Dundee, Dundee, Scotland, U.K.
Abstract:
The focus of the present study was to characterize the phosphoproteome of cytotoxic T cells and to explore the role of the serine threonine kinase PKD2 (Protein Kinase D2) in the phosphorylation networks of this key lymphocyte population. We used Stable Isotope Labeling of Amino acids in Culture (SILAC) combined with phosphopeptide enrichment and quantitative mass-spectrometry to determine the impact of PKD2 loss on the cytotoxic T cells phosphoproteome. We identified 15,871 phosphorylations on 3505 proteins in cytotoxic T cells. 450 phosphosites on 281 proteins were down-regulated and 300 phosphosites on 196 proteins were up-regulated in PKD2 null cytotoxic T cells. These data give valuable new insights about the protein phosphorylation networks operational in effector T cells and reveal that PKD2 regulates directly and indirectly about 5% of the cytotoxic T-cell phosphoproteome. PKD2 candidate substrates identified in this study include proteins involved in two distinct biological functions: regulation of protein sorting and intracellular vesicle trafficking, and control of chromatin structure, transcription, and translation. In other cell types, PKD substrates include class II histone deacetylases such as HDAC7 and actin regulatory proteins such as Slingshot. The current data show these are not PKD substrates in primary T cells revealing that the functional role of PKD isoforms is different in different cell lineages.
Insights
Protein Kinase D2 (PKD2) significantly impacts the cytotoxic T cell phosphoproteome, regulating protein sorting and chromatin structure. Loss of PKD2 alters numerous phosphorylation sites, revealing lineage-specific roles for PKD isoforms.
Area of Science:
- Immunology
- Cell Biology
- Biochemistry
Background:
- Cytotoxic T cells are crucial for adaptive immunity.
- Understanding their phosphorylation networks is key to immune response.
- Protein Kinase D2 (PKD2) is a serine/threonine kinase with roles in cell signaling.
Purpose of the Study:
- To characterize the phosphoproteome of cytotoxic T cells.
- To investigate the role of PKD2 in T cell phosphorylation networks.
- To identify PKD2-regulated phosphosites and associated biological functions.
Main Methods:
- Stable Isotope Labeling of Amino acids in Culture (SILAC) for quantitative proteomics.
- Phosphopeptide enrichment and mass spectrometry.
- Comparison of phosphoproteomes in wild-type versus PKD2-null cytotoxic T cells.
Main Results:
- Identified 15,871 phosphorylations on 3505 proteins in cytotoxic T cells.
- PKD2 loss resulted in 450 downregulated and 300 upregulated phosphosites.
- PKD2 regulates approximately 5% of the cytotoxic T-cell phosphoproteome.
- Candidate substrates involved in protein sorting, vesicle trafficking, chromatin structure, transcription, and translation were identified.
Conclusions:
- PKD2 plays a significant role in regulating the cytotoxic T cell phosphoproteome.
- PKD2 influences key cellular processes including protein trafficking and gene expression.
- PKD substrates and functions differ between T cells and other cell types, highlighting isoform-specific roles.

