Andreu Matamoros-Angles

Postdoc fellow- Marie Skłodowska-Curie Action



Institute of Neuropathology

University Medical Center Hamburg-Eppendorf (UKE)

Campus Forschung - N27
Room 02.003
Martinistraße 52, 20246
Hamburg. Germany



Efficient enzyme‐free isolation of brain‐derived extracellular vesicles


Journal article


A. Matamoros-Angles, E. Karadjuzovic, B. Mohammadi, F. Song, S. Brenna, Susanne Caroline Meister, B. Siebels, H. Voß, C. Seuring, I. Ferrer, H. Schlüter, M. Kneussel, H. Altmeppen, M. Schweizer, B. Puig, M. Shafiq, M. Glatzel
Journal of Extracellular Vesicles, 2024


Semantic Scholar DOI PubMedCentral
Cite

Cite

APA   Click to copy
Matamoros-Angles, A., Karadjuzovic, E., Mohammadi, B., Song, F., Brenna, S., Meister, S. C., … Glatzel, M. (2024). Efficient enzyme‐free isolation of brain‐derived extracellular vesicles. Journal of Extracellular Vesicles. https://doi.org/10.1002/jev2.70011


Chicago/Turabian   Click to copy
Matamoros-Angles, A., E. Karadjuzovic, B. Mohammadi, F. Song, S. Brenna, Susanne Caroline Meister, B. Siebels, et al. “Efficient Enzyme‐Free Isolation of Brain‐Derived Extracellular Vesicles.” Journal of Extracellular Vesicles (2024).


MLA   Click to copy
Matamoros-Angles, A., et al. “Efficient Enzyme‐Free Isolation of Brain‐Derived Extracellular Vesicles.” Journal of Extracellular Vesicles, 2024, doi:10.1002/jev2.70011.


BibTeX   Click to copy

@article{a2024a,
  title = {Efficient enzyme‐free isolation of brain‐derived extracellular vesicles},
  year = {2024},
  journal = {Journal of Extracellular Vesicles},
  doi = {10.1002/jev2.70011},
  author = {Matamoros-Angles, A. and Karadjuzovic, E. and Mohammadi, B. and Song, F. and Brenna, S. and Meister, Susanne Caroline and Siebels, B. and Voß, H. and Seuring, C. and Ferrer, I. and Schlüter, H. and Kneussel, M. and Altmeppen, H. and Schweizer, M. and Puig, B. and Shafiq, M. and Glatzel, M.}
}

Abstract

Abstract Extracellular vesicles (EVs) have gained significant attention as pathology mediators and potential diagnostic tools for neurodegenerative diseases. However, isolation of brain‐derived EVs (BDEVs) from tissue remains challenging, often involving enzymatic digestion steps that may compromise the integrity of EV proteins and overall functionality. Here, we describe that collagenase digestion, commonly used for BDEV isolation, produces undesired protein cleavage of EV‐associated proteins in brain tissue homogenates and cell‐derived EVs. In order to avoid this effect, we studied the possibility of isolating BDEVs with a reduced amount of collagenase or without any protease. Characterization of the isolated BDEVs from mouse and human samples (both female and male) revealed their characteristic morphology and size distribution with both approaches. However, we show that even minor enzymatic digestion induces ‘artificial’ proteolytic processing in key BDEV markers, such as Flotillin‐1, CD81, and the cellular prion protein (PrPC), whereas avoiding enzymatic treatment completely preserves their integrity. We found no major differences in mRNA and protein content between non‐enzymatically and enzymatically isolated BDEVs, suggesting that the same BDEV populations are purified with both approaches. Intriguingly, the lack of Golgi marker GM130 signal, often referred to as contamination indicator (or negative marker) in EV preparations, seems to result from enzymatic digestion rather than from its actual absence in BDEV samples. Overall, we show that non‐enzymatic isolation of EVs from brain tissue is possible and avoids artificial pruning of proteins while achieving an overall high BDEV yield and purity. This protocol will help to understand the functions of BDEV and their associated proteins in a near‐physiological setting, thus opening new research approaches.


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