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Methods to Study Mrp4-containing Macromolecular Complexes in the Regulation of Fibroblast Migration
Published on: May 19, 2016
Methods to Study Mrp4-containing Macromolecular Complexes in the Regulation of Fibroblast Migration
Chandrima Sinha1,2, Kavisha Arora1, Anjaparavanda P Naren1,2
1Division of Pulmonary Medicine, Department of Pediatrics, Cincinnati Children's Hospital Medical Center.
Abstract:
Multidrug resistance protein 4 (MRP4) is a member of the ATP-binding cassette family of membrane transporters and is an endogenous efflux transporter of cyclic nucleotides. By modulating intracellular cyclic nucleotide concentration, MRP4 can regulate multiple cyclic nucleotide-dependent cellular events including cell migration. Previously, we demonstrated that in the absence of MRP4, fibroblast cells contain higher levels of intracellular cyclic nucleotides and can migrate faster. To understand the underlying mechanisms of this finding, we adopted a direct yet multifaceted approach. First, we isolated potential interacting protein complexes of MRP4 from a MRP4 over-expression cell system using immunoprecipitation followed by mass-spectrometry. After identifying unique proteins in the MRP4 interactome, we utilized Ingenuity Pathway Analysis (IPA) to explore the role of these protein-protein interactions in the context of signal transduction. We elucidated the potential role of the MRP4 protein complex in cell migration and identified F-actin as a major mediator of the effect of MRP4 on cell migration. This study also emphasized the role of cAMP and cGMP as key players in the migratory phenomena. Using high-content microscopy, we performed cell-migration assays and observed that the effect of MRP4 on fibroblast migration is completely abolished by disruption of the actin cytoskeleton or inhibition of cAMP-dependent kinase A (PKA). To visualize signaling modulations in a migrating cell in real time, we utilized a FRET-based sensor for measuring PKA activity and found, the presence of more polarized PKA activity near the leading edge of migrating Mrp4(-/-) fibroblast, compared to Mrp4(+/+)fibroblasts. This in turn increased cortical actin formation and augmented the process of migration. Our approach enables identification of the proteins acting downstream to MRP4 and provides us with an overview of the mechanism involved in MRP4-dependent regulation of fibroblast migration.
Insights
Multidrug resistance protein 4 (MRP4) regulates fibroblast migration by controlling cyclic nucleotide levels. Its absence increases cell migration via enhanced PKA activity and actin cytoskeleton dynamics.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Multidrug resistance protein 4 (MRP4) is an ATP-binding cassette transporter involved in effluxing cyclic nucleotides.
- MRP4 influences cellular events, including cell migration, by modulating intracellular cyclic nucleotide concentrations.
- Previous studies showed that MRP4-deficient fibroblasts exhibit increased migration.
Purpose of the Study:
- To elucidate the molecular mechanisms underlying MRP4's regulation of fibroblast migration.
- To identify proteins interacting with MRP4 and their role in signal transduction pathways.
- To investigate the involvement of cyclic nucleotides and the actin cytoskeleton in MRP4-mediated cell migration.
Main Methods:
- Immunoprecipitation and mass spectrometry to identify MRP4-interacting proteins.
- Ingenuity Pathway Analysis (IPA) to explore signaling pathways.
- High-content microscopy and cell migration assays.
- Förster Resonance Energy Transfer (FRET)-based sensors to measure protein kinase A (PKA) activity in real-time.
Main Results:
- F-actin was identified as a key mediator in MRP4's effect on cell migration.
- Disruption of the actin cytoskeleton or inhibition of PKA abolished the enhanced migration of MRP4-deficient fibroblasts.
- MRP4-deficient fibroblasts showed more polarized PKA activity at the leading edge, increased cortical actin formation, and augmented migration.
- cAMP and cGMP were highlighted as crucial players in the observed migratory phenomena.
Conclusions:
- MRP4 regulates fibroblast migration through a mechanism involving the modulation of intracellular cyclic nucleotides and PKA activity.
- The actin cytoskeleton and PKA signaling are essential downstream effectors of MRP4 in controlling cell migration.
- This study provides a mechanistic overview of MRP4-dependent fibroblast migration, identifying key protein interactions and signaling pathways.

