Minimal information for studies of extracellular vesicles (MISEV2023): From basic to advanced approaches

Минимальная информация для исследований внеклеточных везикул (MISEV2023): от базовых до передовых подходов
Adrian L. Harris, Lorraine O’Driscoll, András Saftics, Andries Zijlstra, Zoltán Varga, Jan Lötvall, Lei Zheng, Takahiro Ochiya, Dmitry Ter‐Ovanesyan, Elena S. Martens‐Uzunova, Juan Manuel Falcón‐Pérez, Andrew Rowland, Susmita Sahoo, Lauren A. Newman, Zivile Useckaite, Sai Kiang Lim, Cherie Blenkiron, Sujata Mohanty, Dylan Burger, Norman J. Haughey, Marca H. M. Wauben, Rienk Nieuwland, Edwin van der Pol, Clotilde Théry, Kenneth W. Witwer, Paolo Bergese, Benedetta Bussolati, Edit I. Buzás, Emanuele Cocucci, Rossella Crescitelli, Dolores Di Vizio, Tom A. P. Driedonks, Uta Erdbrügger, Deborah C. I. Goberdhan, An Hendrix, Andrew F. Hill, Tijana Jovanović‐Talisman, Cecilia Lässer, Metka Lenassi, Eva Rohde, Julie A. Saugstad, Faezeh Shekari, Simon Swift, Ana Cláudia Torrecilhas, Juan Pablo Tosar, Martijn J. C. van Herwijnen, Ann M. Wehman, Joshua A Welsh, Qing‐Ling Fu, Diego Kyburz, Andrea Zendrini, Ursula S. Sandau, Houjian Cai, Mỹ G. Mahoney, Andreas Möller, Sarah Abuelreich, Reem Bagabas, Esther Bridges, Marco Brucale, Randy P. Carney, Edveena Hanser, Kimberley L. Alexander, Nicole A. Kruh‐Garcia, Vera Faustino, Kathleen M. Lennon, Adam L. Maddox, Rachel R. Mizenko, Andrea Ridolfi, Tatu Rojalin, Francesco Valle, S Williams, Alan Zimmerman, Alexander R. Ivanov, Vroniqa Ku'ulei‐Lyn Faustino, Houjian Cai
2024-02-01

EV characterizationEV metrologyEV nomenclatureEV release and uptakeextracellular vesicles
Extracellular vesicles (EVs), through their complex cargo, can reflect the state of their cell of origin and change the functions and phenotypes of other cells. These features indicate strong biomarker and therapeutic potential and have generated broad interest, as evidenced by the steady year-on-year increase in the numbers of scientific publications about EVs. Important advances have been made in EV metrology and in understanding and applying EV biology. However, hurdles remain to realising the potential of EVs in domains ranging from basic biology to clinical applications due to challenges in EV nomenclature, separation from non-vesicular extracellular particles, characterisation and functional studies. To address the challenges and opportunities in this rapidly evolving field, the International Society for Extracellular Vesicles (ISEV) updates its 'Minimal Information for Studies of Extracellular Vesicles', which was first published in 2014 and then in 2018 as MISEV2014 and MISEV2018, respectively. The goal of the current document, MISEV2023, is to provide researchers with an updated snapshot of available approaches and their advantages and limitations for production, separation and characterisation of EVs from multiple sources, including cell culture, body fluids and solid tissues. In addition to presenting the latest state of the art in basic principles of EV research, this document also covers advanced techniques and approaches that are currently expanding the boundaries of the field. MISEV2023 also includes new sections on EV release and uptake and a brief discussion of in vivo approaches to study EVs. Compiling feedback from ISEV expert task forces and more than 1000 researchers, this document conveys the current state of EV research to facilitate robust scientific discoveries and move the field forward even more rapidly.
1
Compiled from ISEV expert task forces and feedback from more than 1000 researchers, MISEV2023 aims to improve reproducibility and accelerate robust EV discoveries.
2
MISEV2023 emphasizes persistent challenges in EV nomenclature, separation from non-vesicular particles, characterization, and functional evaluation.
3
MISEV2023 updates the 2014 and 2018 guidelines for rigorous extracellular vesicle research across basic and clinical applications.
4
The document reviews available methods for EV production, separation, and characterization from cell cultures, body fluids, and solid tissues.
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The guideline summarizes advanced techniques, EV release and uptake mechanisms, and emerging in vivo approaches, while discussing methodological advantages and limitations.

Extracellular vesicles (EVs) from multiple sources (cell culture, body fluids, solid tissues)

Available approaches, advantages, limitations, and advanced methods for EV production, separation, characterization, release, uptake, and in vivo study

Publication Details
Publication Date
2024-02-01
Journal
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ISSN
Cited by
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Author Information
Authors
Adrian L. Harris
Lorraine O’Driscoll
András Saftics
Andries Zijlstra
Zoltán Varga
Jan Lötvall
Lei Zheng
Takahiro Ochiya
Dmitry Ter‐Ovanesyan
Elena S. Martens‐Uzunova
Juan Manuel Falcón‐Pérez
Andrew Rowland
Susmita Sahoo
Lauren A. Newman
Zivile Useckaite
Sai Kiang Lim
Cherie Blenkiron
Sujata Mohanty
Dylan Burger
Norman J. Haughey
Marca H. M. Wauben
Rienk Nieuwland
Edwin van der Pol
Clotilde Théry
Kenneth W. Witwer
Paolo Bergese
Benedetta Bussolati
Edit I. Buzás
Emanuele Cocucci
Rossella Crescitelli
Dolores Di Vizio
Tom A. P. Driedonks
Uta Erdbrügger
Deborah C. I. Goberdhan
An Hendrix
Andrew F. Hill
Tijana Jovanović‐Talisman
Cecilia Lässer
Metka Lenassi
Eva Rohde
Julie A. Saugstad
Faezeh Shekari
Simon Swift
Ana Cláudia Torrecilhas
Juan Pablo Tosar
Martijn J. C. van Herwijnen
Ann M. Wehman
Joshua A Welsh
Qing‐Ling Fu
Diego Kyburz
Andrea Zendrini
Ursula S. Sandau
Houjian Cai
Mỹ G. Mahoney
Andreas Möller
Sarah Abuelreich
Reem Bagabas
Esther Bridges
Marco Brucale
Randy P. Carney
Edveena Hanser
Kimberley L. Alexander
Nicole A. Kruh‐Garcia
Vera Faustino
Kathleen M. Lennon
Adam L. Maddox
Rachel R. Mizenko
Andrea Ridolfi
Tatu Rojalin
Francesco Valle
S Williams
Alan Zimmerman
Alexander R. Ivanov
Vroniqa Ku'ulei‐Lyn Faustino
Houjian Cai
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