Targeted Proteomics-Driven Computational Modeling of Macrophage S1P Chemosensing.
Mol Cell Proteomics
; 14(10): 2661-81, 2015 Oct.
Article
in En
| MEDLINE
| ID: mdl-26199343
Osteoclasts are monocyte-derived multinuclear cells that directly attach to and resorb bone. Sphingosine-1-phosphate (S1P)(1) regulates bone resorption by functioning as both a chemoattractant and chemorepellent of osteoclast precursors through two G-protein coupled receptors that antagonize each other in an S1P-concentration-dependent manner. To quantitatively explore the behavior of this chemosensing pathway, we applied targeted proteomics, transcriptomics, and rule-based pathway modeling using the Simmune toolset. RAW264.7 cells (a mouse monocyte/macrophage cell line) were used as model osteoclast precursors, RNA-seq was used to identify expressed target proteins, and selected reaction monitoring (SRM) mass spectrometry using internal peptide standards was used to perform absolute abundance measurements of pathway proteins. The resulting transcript and protein abundance values were strongly correlated. Measured protein abundance values, used as simulation input parameters, led to in silico pathway behavior matching in vitro measurements. Moreover, once model parameters were established, even simulated responses toward stimuli that were not used for parameterization were consistent with experimental findings. These findings demonstrate the feasibility and value of combining targeted mass spectrometry with pathway modeling for advancing biological insight.
Full text:
1
Collection:
01-internacional
Database:
MEDLINE
Main subject:
Sphingosine
/
Lysophospholipids
/
Chemotaxis
/
Proteomics
/
Macrophages
Type of study:
Prognostic_studies
Limits:
Animals
Language:
En
Journal:
Mol Cell Proteomics
Journal subject:
BIOLOGIA MOLECULAR
/
BIOQUIMICA
Year:
2015
Document type:
Article
Country of publication:
United States