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Methods to Study Mrp4-containing Macromolecular Complexes in the Regulation of Fibroblast Migration
Published on: May 19, 2016
Metastasis suppressor 1 interacts with α-actinin 4 to affect its localization and regulate formation of membrane
Lijun Liang1, Xiaoping Liang1, Peng Jiang1
1The Key Laboratory of Protein Chemistry and Developmental Biology of Ministry of Education, College of Life Sciences, Hunan Normal University, Changsha, China.
Abstract:
Membrane ruffling plays an important role in the directed cell migration and escape of tumor cells from the monolayer. Metastasis suppressor 1 (MTSS1), also known as missing in metastasis, has been implicated in cell morphology, motility, metastasis, and development. Here, the dynamic interaction proteins associated with MTSS1 and involved in membrane ruffling were determined by cross-linking and mass spectrometry analysis. We identified α-actinin 4 (ACTN4) as an interacting protein and confirmed a direct interaction between MTSS1 and ACTN4. Moreover, co-expression of MTSS1 in fibroblasts recruited cytoplasmic ACTN4 to the cell periphery, at which point ruffling became thick and rigid. In MCF-7 cells, MTSS1 knockdown did not show an obvious effect on the cell shape or the distribution of endogenous ACTN4; however, ACTN4 overexpression transformed cell morphology from an epidermal- to a fibroblast-like shape, and further MTSS1 depletion significantly increased the ratio of fibroblast cells exhibiting prominent ruffling. Furthermore, biochemical data suggested that MTSS1 cross-linking with ACTN4 induced the formation of actin fiber bundles into more organized structures in vitro. These data indicated that MTSS1 might recruit cytoplasmic ACTN4 to the cell periphery and regulate cytoskeleton dynamics to restrict its performance in membrane ruffling.
Insights
Metastasis suppressor 1 (MTSS1) interacts with α-actinin 4 (ACTN4) to regulate cell membrane ruffling. This interaction influences cytoskeleton dynamics, impacting cell shape and migration, potentially restricting tumor cell metastasis.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Membrane ruffling is crucial for cell migration and tumor cell metastasis.
- Metastasis suppressor 1 (MTSS1) is involved in cell morphology, motility, and metastasis.
Purpose of the Study:
- To identify proteins interacting with MTSS1 that are involved in membrane ruffling.
- To elucidate the functional relationship between MTSS1 and its interacting partners in regulating cell shape and migration.
Main Methods:
- Cross-linking and mass spectrometry were used to identify MTSS1-interacting proteins.
- Co-expression studies and knockdown experiments in fibroblasts and MCF-7 cells were performed.
- In vitro biochemical assays were conducted to analyze actin bundle formation.
Main Results:
- α-actinin 4 (ACTN4) was identified as a direct interacting protein with MTSS1.
- Co-expression of MTSS1 recruited ACTN4 to the cell periphery, leading to thicker, rigid membrane ruffles.
- ACTN4 overexpression transformed cell morphology, and MTSS1 depletion enhanced ruffling in fibroblast-like cells.
- MTSS1-ACTN4 interaction promoted the formation of organized actin fiber bundles in vitro.
Conclusions:
- MTSS1 recruits cytoplasmic ACTN4 to the cell periphery.
- This interaction regulates cytoskeleton dynamics, influencing membrane ruffling and potentially restricting cell migration and metastasis.
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