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Peering into Tunneling Nanotubes-The Path Forward

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Journal EMBO J
Date 2021 Mar 1
PMID 33646572
Citations 59
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Abstract

The identification of Tunneling Nanotubes (TNTs) and TNT-like structures signified a critical turning point in the field of cell-cell communication. With hypothesized roles in development and disease progression, TNTs' ability to transport biological cargo between distant cells has elevated these structures to a unique and privileged position among other mechanisms of intercellular communication. However, the field faces numerous challenges-some of the most pressing issues being the demonstration of TNTs in vivo and understanding how they form and function. Another stumbling block is represented by the vast disparity in structures classified as TNTs. In order to address this ambiguity, we propose a clear nomenclature and provide a comprehensive overview of the existing knowledge concerning TNTs. We also discuss their structure, formation-related pathways, biological function, as well as their proposed role in disease. Furthermore, we pinpoint gaps and dichotomies found across the field and highlight unexplored research avenues. Lastly, we review the methods employed to date and suggest the application of new technologies to better understand these elusive biological structures.

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References
1.
Kloc M, Bilinski S, Dougherty M, Brey E, Etkin L . Formation, architecture and polarity of female germline cyst in Xenopus. Dev Biol. 2004; 266(1):43-61. DOI: 10.1016/j.ydbio.2003.10.002. View

2.
Ishimoto T, Mori H . A new bioluminescence-based tool for modulating target proteins in live cells. Sci Rep. 2019; 9(1):18239. PMC: 6890795. DOI: 10.1038/s41598-019-54712-y. View

3.
Hurtig J, Chiu D, Onfelt B . Intercellular nanotubes: insights from imaging studies and beyond. Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2010; 2(3):260-76. PMC: 5602582. DOI: 10.1002/wnan.80. View

4.
Roehlecke C, Schmidt M . Tunneling Nanotubes and Tumor Microtubes in Cancer. Cancers (Basel). 2020; 12(4). PMC: 7226329. DOI: 10.3390/cancers12040857. View

5.
Zhang J, Whitehead J, Liu Y, Yang Q, Leach J, Liu G . Direct Observation of Tunneling Nanotubes within Human Mesenchymal Stem Cell Spheroids. J Phys Chem B. 2018; 122(43):9920-9926. DOI: 10.1021/acs.jpcb.8b07305. View