Comparative Analysis of Cardiac Puncture and Perfusate Blood Collection for Murine Extracellular Vesicle Isolation
Abstract
1. Introduction
2. Materials and Methods
2.1. Animals
2.2. Thoracic Contusion Injury
2.3. Blood Collection
2.4. Platelet-Free Plasma Preparation
2.5. EV Isolation
2.6. Nanoparticle Tracking Analysis
2.7. Multiplex Bead-Based Flow Cytometric Analysis of EV Surface Proteins by MACSPlex Exosome Kit Mouse
2.8. Statistical Analysis
3. Results
3.1. Cardiac Puncture Yields Higher Particle Concentration but Comparable Total Particle Recovery
3.2. Perfusate Blood Collection Enriches CD9 Expression in Naïve EVs
3.3. Cardiac Puncture-Derived EVs Exhibit Higher Prominin-1 Expression in Naïve Mice
3.4. Surface Marker Profiles Remain Consistent Between Collection Methods in 50 Kdyne Subacute SCI Mice
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Van Niel, G.; Carter, D.R.F.; Clayton, A.; Lambert, D.W.; Raposo, G.; Vader, P. Challenges and directions in studying cell–cell communication by extracellular vesicles. Nat. Rev. Mol. Cell. Biol. 2022, 23, 369–382. [Google Scholar] [CrossRef]
- Mathieu, M.; Martin-Jaular, L.; Lavieu, G.; Théry, C. Specificities of secretion and uptake of exosomes and other extracellular vesicles for cell-to-cell communication. Nat. Cell. Biol. 2019, 21, 9–17. [Google Scholar] [CrossRef]
- Pitt, J.M.; Kroemer, G.; Zitvogel, L. Extracellular vesicles: Masters of intercellular communication and potential clinical interventions. J. Clin. Invest. 2016, 126, 1139–1143. [Google Scholar] [CrossRef]
- Kumar, M.A.; Baba, S.K.; Sadida, H.Q.; Marzooqi, S.A.; Jerobin, J.; Altemani, F.H.; Algehainy, N.; Alanazi, M.A.; Abou-Samra, A.-B.; Kumar, R.; et al. Extracellular vesicles as tools and targets in therapy for diseases. Signal Transduct. Target. Ther. 2024, 9, 27. [Google Scholar] [CrossRef]
- Mori, M.A.; Ludwig, R.G.; Garcia-Martin, R.; Brandão, B.B.; Kahn, C.R. Extracellular miRNAs: From Biomarkers to Mediators of Physiology and Disease. Cell. Metab. 2019, 30, 656–673. [Google Scholar] [CrossRef] [PubMed]
- Ghosh, M.; Pearse, D.D. The Yin and Yang of Microglia-Derived Extracellular Vesicles in CNS Injury and Diseases. Cells 2024, 13, 1834. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Ghosh, M.; Pearse, D.D. Schwann Cell-Derived Exosomal Vesicles: A Promising Therapy for the Injured Spinal Cord. Int. J. Mol. Sci. 2023, 24, 17317. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Wiklander, O.P.B.; Nordin, J.Z.; O’Loughlin, A.; Gustafsson, Y.; Corso, G.; Mäger, I.; Vader, P.; Lee, Y.; Sork, H.; Seow, Y.; et al. Extracellular vesicle in vivo biodistribution is determined by cell source, route of administration and targeting. J. Extracell. Vesicles 2015, 4, 26316. [Google Scholar] [CrossRef]
- Cooper, J.; Airey, S.T.; Patino, E.; Andriot, T.; Ghosh, M.; Pearse, D.D. Temporal and Severity-Dependent Alterations in Plasma Extracellular Vesicle Profiles Following Spinal Cord Injury. Cells 2025, 14, 1065. [Google Scholar] [CrossRef]
- Lai, C.P.; Mardini, O.; Ericsson, M.; Prabhakar, S.; Maguire, C.A.; Chen, J.W.; Tannous, B.A.; Breakefield, X.O. Dynamic Biodistribution of Extracellular Vesicles in Vivo Using a Multimodal Imaging Reporter. ACS Nano 2014, 8, 483–494. [Google Scholar] [CrossRef]
- Hill, A.F. Extracellular Vesicles and Neurodegenerative Diseases. J. Neurosci. 2019, 39, 9269–9273. [Google Scholar] [CrossRef] [PubMed]
- André-Grégoire, G.; Roux, Q.; Gavard, J. Isolating plasma extracellular vesicles from mouse blood using size-exclusion chromatography, density gradient, and ultracentrifugation. STAR Protoc. 2023, 4, 102740. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Lucien, F.; Gustafson, D.; Lenassi, M.; Li, B.; Teske, J.J.; Boilard, E.; von Hohenberg, K.C.; Falcón-Perez, J.M.; Gualerzi, A.; Reale, A.; et al. MIBlood-EV: Minimal information to enhance the quality and reproducibility of blood extracellular vesicle research. J. Extracell. Vesicles 2023, 12, 12385. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Welsh, J.A.; Goberdhan, D.C.I.; O’Driscoll, L.; Buzas, E.I.; Blenkiron, C.; Bussolati, B.; Cai, H.; Di Vizio, D.; Driedonks, T.A.; Erdbrügger, U.; et al. Minimal information for studies of extracellular vesicles (MISEV2023): From basic to advanced approaches. J. Extracell. Vesicles 2024, 13, e12404. [Google Scholar] [CrossRef]
- Holcar, M.; Kandušer, M.; Lenassi, M. Blood Nanoparticles—Influence on Extracellular Vesicle Isolation and Characterization. Front. Pharmacol. 2021, 12, 773844. [Google Scholar] [CrossRef] [PubMed]
- Tran, V.; de Oliveira, G.P., Jr.; Chidester, S.; Lu, S.; Pleet, M.L.; Ivanov, A.R.; Tigges, J.; Yang, M.; Jacobson, S.; Gonçalves, M.C.; et al. Choice of blood collection methods influences extracellular vesicles counts and miRNA profiling. J. Extracell. Biol. 2024, 3, e70008. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Donovan, J.; Brown, P. Blood Collection. Curr. Protoc. Neurosci. 2005, 33, A.4G.1–A.4G.9. [Google Scholar] [CrossRef]
- George, A.J.; O’Malley, C.I.; Bulock, R.E.; Harmsen, B.J.; Brado, G.E.; Turner, P.V.; Williams, W.O. Implementation of an Alternative Training Method for Cardiac Blood Collection in Mice. J. Am. Assoc. Lab. Anim. Sci. JAALAS 2023, 62, 487–493. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Chan, Y.K.; Davis, P.F.; Poppitt, S.D.; Sun, X.; Greenhill, N.S.; Krishnamurthi, R.; Przepiorski, A.; McGill, A.-T.; Krissansen, G.W. Influence of tail versus cardiac sampling on blood glucose and lipid profiles in mice. Lab. Anim. 2012, 46, 142–147. [Google Scholar] [CrossRef]
- Hu, W.; Sheng, H.; Yang, J.; Chen, C.; Shang, R.; Liu, Z.; Hu, X.; Zhang, X.; He, W.; Huang, C.; et al. Comparison of inferior vena cava puncture under continuous cardiac perfusion with cardiac puncture in blood acquisition of the laboratory mouse. Lab. Anim. 2025, 59, 178–191. [Google Scholar] [CrossRef] [PubMed]
- Ahrens Kress, A.P.; Zhang, Y.; Kaiser-Vry, A.R.; Sauer, M.B. A Comparison of Blood Collection Techniques in Mice and their Effects on Welfare. J. Am. Assoc. Lab. Anim. Sci. JAALAS 2022, 61, 287–295. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Christensen, S.D.; Mikkelsen, L.F.; Fels, J.J.; Bodvarsdóttir, T.B.; Hansen, A.K. Quality of plasma sampled by different methods for multiple blood sampling in mice. Lab. Anim. 2009, 43, 65–71. [Google Scholar] [CrossRef]
- Maggio, D.M.; Singh, A.; Iorgulescu, J.B.; Bleicher, D.H.; Ghosh, M.; Lopez, M.M.; Tuesta, L.M.; Flora, G.; Dietrich, W.D.; Pearse, D.D. Identifying the Long-Term Role of Inducible Nitric Oxide Synthase after Contusive Spinal Cord Injury Using a Transgenic Mouse Model. Int. J. Mol. Sci. 2017, 18, 245. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Gandham, S.; Su, X.; Wood, J.; Nocera, A.L.; Alli, S.C.; Milane, L.; Zimmerman, A.; Amiji, M.; Ivanov, A.R. Technologies and Standardization in Research on Extracellular Vesicles. Trends Biotechnol. 2020, 38, 1066–1098. [Google Scholar] [CrossRef] [PubMed]
- Bojmar, L.; Kim, H.S.; Tobias, G.C.; Pelissier Vatter, F.A.; Lucotti, S.; Gyan, K.E.; Kenific, C.M.; Wan, Z.; Kim, K.A.; Kim, D.; et al. Extracellular vesicle and particle isolation from human and murine cell lines, tissues, and bodily fluids. STAR Protoc. 2020, 2, 100225. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Mammadova-Bach, E.; Gudermann, T.; Braun, A. Platelet Mechanotransduction: Regulatory Cross Talk Between Mechanosensitive Receptors and Calcium Channels. Arterioscler. Thromb. Vasc. Biol. 2023, 43, 1339–1348. [Google Scholar] [CrossRef] [PubMed]
- Lou, C.; Cai, X. The emerging roles of platelet-derived extracellular vesicles in disease. Ann. Med. 2025, 57, 2499029. [Google Scholar] [CrossRef] [PubMed]
- Dhondt, B.; Pinheiro, C.; Geeurickx, E.; Tulkens, J.; Vergauwen, G.; Van Der Pol, E.; Nieuwland, R.; Decock, A.; Miinalainen, I.; Rappu, P.; et al. Benchmarking blood collection tubes and processing intervals for extracellular vesicle performance metrics. J. Extracell. Vesicles 2023, 12, e12315. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Fargeas, C.A.; Florek, M.; Huttner, W.B.; Corbeil, D. Characterization of Prominin-2, a New Member of the Prominin Family of Pentaspan Membrane Glycoproteins. J. Biol. Chem. 2003, 278, 8586–8596. [Google Scholar] [CrossRef]
- Bell, T.A.; Luce, B.E.; Hakim, P.; Ananda, V.Y.; Dardari, H.; Nguyen, T.H.; Monshizadeh, A.; Chao, L.H. Prominin 1 and Tweety Homology 1 both induce extracellular vesicle formation. eLife 2024, 13, e100061. [Google Scholar] [CrossRef]
- Zhang, J.; Li, J.; Zheng, Y.; Zhu, C.; Wu, Z.; Wang, T.; Li, Y.; Zhu, J.; Wei, S.; Qian, H.; et al. Lipid metabolism and lipid signaling in extracellular vesicles ontogeny: From biogenesis to functional execution. J. Nanobiotechnology 2025, 23, 672. [Google Scholar] [CrossRef] [PubMed]
- Record, M.; Silvente-Poirot, S.; Poirot, M.; Wakelam, M.J.O. Extracellular vesicles: Lipids as key components of their biogenesis and functions. J. Lipid Res. 2018, 59, 1316–1324. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Rome, S.; Tacconi, S. High-fat diets: You are what you eat… your extracellular vesicles too! J. Extracell. Vesicles 2024, 13, 12382. [Google Scholar] [CrossRef]
- Lei, Z.; Krishnamachary, B.; Khan, N.Z.; Ji, Y.; Li, Y.; Li, H.; Brunner, K.; Faden, A.I.; Jones, J.W.; Wu, J. Spinal cord injury disrupts plasma extracellular vesicles cargoes leading to neuroinflammation in the brain and neurological dysfunction in aged male mice. Brain Behav. Immun. 2024, 120, 584–603. [Google Scholar] [CrossRef] [PubMed]
- Park, C.; Lei, Z.; Li, Y.; Ren, B.; He, J.; Huang, H.; Chen, F.; Li, H.; Brunner, K.; Zhu, J. Extracellular vesicles in sepsis plasma mediate neuronal inflammation in the brain through miRNAs and innate immune signaling. J. Neuroinflammation 2024, 21, 252. [Google Scholar] [CrossRef] [PubMed]





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Cooper, J.; Airey, S.T.; Patino, E.; Andriot, T.; Ghosh, M.; Pearse, D.D. Comparative Analysis of Cardiac Puncture and Perfusate Blood Collection for Murine Extracellular Vesicle Isolation. Methods Protoc. 2026, 9, 40. https://doi.org/10.3390/mps9020040
Cooper J, Airey ST, Patino E, Andriot T, Ghosh M, Pearse DD. Comparative Analysis of Cardiac Puncture and Perfusate Blood Collection for Murine Extracellular Vesicle Isolation. Methods and Protocols. 2026; 9(2):40. https://doi.org/10.3390/mps9020040
Chicago/Turabian StyleCooper, Jamie, Scott Tait Airey, Eric Patino, Theo Andriot, Mousumi Ghosh, and Damien D. Pearse. 2026. "Comparative Analysis of Cardiac Puncture and Perfusate Blood Collection for Murine Extracellular Vesicle Isolation" Methods and Protocols 9, no. 2: 40. https://doi.org/10.3390/mps9020040
APA StyleCooper, J., Airey, S. T., Patino, E., Andriot, T., Ghosh, M., & Pearse, D. D. (2026). Comparative Analysis of Cardiac Puncture and Perfusate Blood Collection for Murine Extracellular Vesicle Isolation. Methods and Protocols, 9(2), 40. https://doi.org/10.3390/mps9020040

