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Published on: December 29, 2017
Intercellular mRNA trafficking via membrane nanotube-like extensions in mammalian cells
Gal Haimovich1,2, Christopher M Ecker3, Margaret C Dunagin3
1Department of Molecular Genetics, Weizmann Institute of Science, Rehovot 7610001, Israel.
Abstract:
RNAs have been shown to undergo transfer between mammalian cells, although the mechanism behind this phenomenon and its overall importance to cell physiology is not well understood. Numerous publications have suggested that RNAs (microRNAs and incomplete mRNAs) undergo transfer via extracellular vesicles (e.g., exosomes). However, in contrast to a diffusion-based transfer mechanism, we find that full-length mRNAs undergo direct cell-cell transfer via cytoplasmic extensions characteristic of membrane nanotubes (mNTs), which connect donor and acceptor cells. By employing a simple coculture experimental model and using single-molecule imaging, we provide quantitative data showing that mRNAs are transferred between cells in contact. Examples of mRNAs that undergo transfer include those encoding GFP, mouse β-actin, and human Cyclin D1, BRCA1, MT2A, and HER2. We show that intercellular mRNA transfer occurs in all coculture models tested (e.g., between primary cells, immortalized cells, and in cocultures of immortalized human and murine cells). Rapid mRNA transfer is dependent upon actin but is independent of de novo protein synthesis and is modulated by stress conditions and gene-expression levels. Hence, this work supports the hypothesis that full-length mRNAs undergo transfer between cells through a refined structural connection. Importantly, unlike the transfer of miRNA or RNA fragments, this process of communication transfers genetic information that could potentially alter the acceptor cell proteome. This phenomenon may prove important for the proper development and functioning of tissues as well as for host-parasite or symbiotic interactions.
Insights
Full-length messenger RNAs (mRNAs) transfer directly between connected mammalian cells via membrane nanotubes, not exosomes. This intercellular mRNA transfer conveys genetic information, potentially altering recipient cell proteomes.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Cell-to-cell RNA transfer is known but mechanisms and significance are unclear.
- Previous studies suggested transfer via extracellular vesicles like exosomes.
- Full-length mRNA transfer mechanisms remained largely uncharacterized.
Purpose of the Study:
- To investigate the mechanism of full-length mRNA transfer between mammalian cells.
- To determine the physiological relevance of direct mRNA intercellular transfer.
- To identify factors influencing mRNA transfer.
Main Methods:
- Coculture of mammalian cells (primary, immortalized, human, murine).
- Single-molecule imaging and quantitative analysis.
- Investigated dependence on actin and protein synthesis.
Main Results:
- Full-length mRNAs transfer directly between contacting cells via membrane nanotubes (mNTs).
- Transferred mRNAs include those encoding GFP, β-actin, Cyclin D1, BRCA1, MT2A, and HER2.
- Transfer is actin-dependent, independent of de novo protein synthesis, and influenced by stress and gene expression.
Conclusions:
- Direct cell-to-cell transfer of full-length mRNAs occurs through mNTs.
- This process transfers functional genetic information, potentially altering the acceptor cell proteome.
- Intercellular mRNA transfer may be crucial for tissue development, function, and host-parasite interactions.
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