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Biophysical aspects of migrasome organelle formation and their diverse cellular functions
Raviv Dharan1,2, Raya Sorkin1,2
1School of Chemistry, Raymond & Beverly Sackler Faculty of Exact Sciences, Tel Aviv University, Tel Aviv, Israel.
Abstract:
The transient cellular organelles known as migrasomes, which form during cell migration along retraction fibers, have emerged as a crutial factor in various fundamental cellular processes and pathologies. These membrane vesicles originate from local membrane swellings, encapsulate specific cytoplasmic content, and are eventually released to the extracellular environment or taken up by recipient cells. Migrasome biogenesis entails a sequential membrane remodeling process involving a complex interplay between various molecular factors such as tetraspanin proteins, and mechanical properties like membrane tension and bending rigidity. In this review, we summarize recent studies exploring the mechanism of migrasome formation. We emphasize how physical forces, together with molecular factors, shape migrasome biogenesis, and detail the involvement of migrasomes in various cellular processes and pathologies. A comprehensive understanding of the exact mechanism underlying migrasome formation and the identification of key molecules involved hold promise for advancing their therapeutic and diagnostic applications.
Insights
Migrasomes, cellular organelles formed during cell migration, are key to cell processes and diseases. Understanding their formation mechanism and molecular players offers therapeutic potential.
Area of Science:
- Cell Biology
- Biophysics
Background:
- Migrasomes are transient cellular organelles formed during cell migration.
- They originate from membrane swellings on retraction fibers and encapsulate cytoplasmic material.
- Migrasomes play roles in fundamental cellular processes and various pathologies.
Purpose of the Study:
- To review recent studies on migrasome formation mechanisms.
- To emphasize the interplay of physical forces and molecular factors in biogenesis.
- To detail the involvement of migrasomes in cellular functions and diseases.
Main Methods:
- Literature review of recent studies on migrasome formation.
- Analysis of molecular factors (e.g., tetraspanins) and biophysical properties (e.g., membrane tension).
Main Results:
- Migrasome biogenesis involves sequential membrane remodeling.
- Physical forces and molecular components intricately regulate formation.
- Migrasomes are implicated in diverse cellular activities and disease states.
Conclusions:
- A deeper understanding of migrasome formation mechanisms is crucial.
- Identifying key molecules involved can lead to new therapeutic and diagnostic strategies.
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