Quantitative Proteomics Reveals Temporal Proteomic Changes in Signaling Pathways during BV2 Mouse Microglial Cell Activation.
Jongmin WooDo Hyun HanJoseph Injae WangJoonho ParkHyunsoo KimYoungsoo KimPublished in: Journal of proteome research (2017)
The development of systematic proteomic quantification techniques in systems biology research has enabled one to perform an in-depth analysis of cellular systems. We have developed a systematic proteomic approach that encompasses the spectrum from global to targeted analysis on a single platform. We have applied this technique to an activated microglia cell system to examine changes in the intracellular and extracellular proteomes. Microglia become activated when their homeostatic microenvironment is disrupted. There are varying degrees of microglial activation, and we chose to focus on the proinflammatory reactive state that is induced by exposure to such stimuli as lipopolysaccharide (LPS) and interferon-gamma (IFN-γ). Using an improved shotgun proteomics approach, we identified 5497 proteins in the whole-cell proteome and 4938 proteins in the secretome that were associated with the activation of BV2 mouse microglia by LPS or IFN-γ. Of the differentially expressed proteins in stimulated microglia, we classified pathways that were related to immune-inflammatory responses and metabolism. Our label-free parallel reaction monitoring (PRM) approach made it possible to comprehensively measure the hyper-multiplex quantitative value of each protein by high-resolution mass spectrometry. Over 450 peptides that corresponded to pathway proteins and direct or indirect interactors via the STRING database were quantified by label-free PRM in a single run. Moreover, we performed a longitudinal quantification of secreted proteins during microglial activation, in which neurotoxic molecules that mediate neuronal cell loss in the brain are released. These data suggest that latent pathways that are associated with neurodegenerative diseases can be discovered by constructing and analyzing a pathway network model of proteins. Furthermore, this systematic quantification platform has tremendous potential for applications in large-scale targeted analyses. The proteomics data for discovery and label-free PRM analysis have been deposited to the ProteomeXchange Consortium with identifiers <PXD006558> and <PXD006556>, respectively.
Keyphrases
- label free
- inflammatory response
- lps induced
- lipopolysaccharide induced
- neuropathic pain
- single cell
- cell therapy
- high throughput
- toll like receptor
- high resolution mass spectrometry
- high resolution
- mass spectrometry
- dendritic cells
- emergency department
- signaling pathway
- electronic health record
- resting state
- climate change
- big data
- mesenchymal stem cells
- epithelial mesenchymal transition
- pi k akt
- binding protein
- functional connectivity
- multiple sclerosis
- drug delivery
- blood brain barrier
- brain injury
- data analysis
- endoplasmic reticulum stress
- gas chromatography
- cancer therapy