Large Extracellular Vesicles—A New Frontier of Liquid Biopsy in Oncology
Abstract
:1. Introduction
2. Nomenclature of Extracellular Vesicles
3. Biogenesis of L-EVs
4. Content of L-EVs
4.1. Nucleic Acids
4.2. Proteins
4.3. Lipids
5. Methods for the Isolation of L-EVs
5.1. Ultracentrifugation
5.2. Ultrafiltration
5.3. Gel Filtration (Size Exclusion Chromatography)
5.4. Precipitation
5.5. Immune Affinity Interaction
5.6. EV Markers for Quality Control
6. Role of L-EVs in Cancer
7. L-EVs and Drug Resistance
8. Applications of L-EVs for Liquid Biopsy
8.1. Diagnosis and Prognosis
8.2. Predictive Biomarker
8.3. Monitoring Response and Acquired Resistance to Treatments
9. Conclusions and Future Perspectives
Author Contributions
Funding
Conflicts of Interest
Abbreviations
ANXV | Annexin V |
ASGPR1 | Asialoglycoprotein receptor 1 |
ARF-6 | ADP-ribosylation factor 6 |
ARRDC1 | Arrestin Domain-Containing Protein-1 |
BC | Breast Cancer |
BRCP | Breast Cancer Resistance Protein. |
CAF | Cancer-associated fibroblast |
CK | Cytokeratin |
CRC | Colorectal Cancer |
DIAPH3 | Diaphanous-related formin-3 |
GBM | Glioblastoma Multiforme |
EMMPRIN | Extracellular Matrix Metalloproteinase Inducer |
EpCAM | Epithelial Cell Adhesion molecule |
HSP70 | Heat-Shock Protein 70 |
L-EVs | Large-Extracellular Vesicles |
MLCK | Myosin Light-Chain Kinase |
MSC | Mesenchymal-stem cell |
MMP | Matrix Metalloproteinase |
NSCLC | Non-Small Cells Lung Cancer |
PCa | Prostate Cancer |
S-EVs | Small-Extracellular Vesicles |
TrpC5 | Short transient receptor potential channel 5 |
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L-EV Isolation Method | Advantages | Disadvantages |
---|---|---|
Ultracentrifugation | Cost-effective No limitations on sample volume No additional reagents needed | Time-consuming Possible protein contamination |
Ultrafiltration | Easy to perform No limitations on sample volume | EVs can be damaged by pressure Possible protein contamination |
Gel Filtration | Easy to perform Preservation of EV integrity | High cost Diluted yield Possible protein contamination |
Precipitation | Fast to perform No limitations on sample volume | Possible protein contamination |
Immunoaffinity | Isolation of specific EVs subpopulations High purity of the yield | Possible nonspecific binding Lower recovery efficiency |
Applications for L-EV Liquid Biopsy | Evidences |
---|---|
Cancer diagnosis | L-EVs containing CK18 as a marker of Prostate Cancer EMMPRIN+ L-EVs as a generic cancer marker |
Prognosis evaluation | Higher plasma L-EV count correlates with poorer prognosis (PCa, BC, NSCLC, CRC) |
Predictive biomarker | The analysis of predictive mutations could be performed on plasma L-EVs |
Treatment monitoring | AnnexinV+/EpCAM+/ASGPR1+ L-EVs as a marker of response to surgery in HCC TrpC5+ L-EVs as a marker of chemoresistance in BC BCRP+ L-EVs as an early marker of chemoresistance in BC |
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Pezzicoli, G.; Tucci, M.; Lovero, D.; Silvestris, F.; Porta, C.; Mannavola, F. Large Extracellular Vesicles—A New Frontier of Liquid Biopsy in Oncology. Int. J. Mol. Sci. 2020, 21, 6543. https://doi.org/10.3390/ijms21186543
Pezzicoli G, Tucci M, Lovero D, Silvestris F, Porta C, Mannavola F. Large Extracellular Vesicles—A New Frontier of Liquid Biopsy in Oncology. International Journal of Molecular Sciences. 2020; 21(18):6543. https://doi.org/10.3390/ijms21186543
Chicago/Turabian StylePezzicoli, Gaetano, Marco Tucci, Domenica Lovero, Franco Silvestris, Camillo Porta, and Francesco Mannavola. 2020. "Large Extracellular Vesicles—A New Frontier of Liquid Biopsy in Oncology" International Journal of Molecular Sciences 21, no. 18: 6543. https://doi.org/10.3390/ijms21186543
APA StylePezzicoli, G., Tucci, M., Lovero, D., Silvestris, F., Porta, C., & Mannavola, F. (2020). Large Extracellular Vesicles—A New Frontier of Liquid Biopsy in Oncology. International Journal of Molecular Sciences, 21(18), 6543. https://doi.org/10.3390/ijms21186543