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95% purity and confirmed the viability (infectivity) and molecular specificity (specific cell tropism) of biological nanomaterials sorted with nanoFACS. This nanoFACS method provides a unique way to analyse and sort functional EV- and viral-subsets with preservation of vesicular structure, surface protein specificity and RNA cargo activity." />

High-fidelity detection and sorting of nanoscale vesicles in viral disease and cancer.

Aizea Morales-Kastresana | Thomas A Musich | Joshua A Welsh | William Telford | Thorsten Demberg | James C S Wood | Marty Bigos | Carley D Ross | Aliaksander Kachynski | Alan Dean | Edward J Felton | Jonathan Van Dyke | John Tigges | Vasilis Toxavidis | David R Parks | W Roy Overton | Aparna H Kesarwala | Gordon J Freeman | Ariel Rosner | Stephen P Perfetto | Lise Pasquet | Masaki Terabe | Katherine McKinnon | Veena Kapoor | Jane B Trepel | Anu Puri | Hisataka Kobayashi | Bryant Yung | Xiaoyuan Chen | Peter Guion | Peter Choyke | Susan J Knox | Ionita Ghiran | Marjorie Robert-Guroff | Jay A Berzofsky | Jennifer C Jones
Journal of extracellular vesicles | 2019

Biological nanoparticles, including viruses and extracellular vesicles (EVs), are of interest to many fields of medicine as biomarkers and mediators of or treatments for disease. However, exosomes and small viruses fall below the detection limits of conventional flow cytometers due to the overlap of particle-associated scattered light signals with the detection of background instrument noise from diffusely scattered light. To identify, sort, and study distinct subsets of EVs and other nanoparticles, as individual particles, we developed nanoscale Fluorescence Analysis and Cytometric Sorting (nanoFACS) methods to maximise information and material that can be obtained with high speed, high resolution flow cytometers. This nanoFACS method requires analysis of the instrument background noise (herein defined as the "reference noise"). With these methods, we demonstrate detection of tumour cell-derived EVs with specific tumour antigens using both fluorescence and scattered light parameters. We further validated the performance of nanoFACS by sorting two distinct HIV strains to >95% purity and confirmed the viability (infectivity) and molecular specificity (specific cell tropism) of biological nanomaterials sorted with nanoFACS. This nanoFACS method provides a unique way to analyse and sort functional EV- and viral-subsets with preservation of vesicular structure, surface protein specificity and RNA cargo activity.

Pubmed ID: 31258878

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Associated grants

  • Agency: NHLBI NIH HHS, United States
    Id: U01 HL126497
  • Agency: NIAID NIH HHS, United States
    Id: P01 AI054456
  • Agency: Intramural NIH HHS, United States
    Id: ZIA BC011502
  • Agency: NIAID NIH HHS, United States
    Id: R01 AI089955
  • Agency: NCRR NIH HHS, United States
    Id: C06 RR012088
  • Agency: NCRR NIH HHS, United States
    Id: S10 RR025518

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DC2.4 (tool)

RRID:CVCL_J409

Cell line DC2.4 is a Transformed cell line with a species of origin Mus musculus (Mouse)

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HEK293T (tool)

RRID:CVCL_0063

Cell line HEK293T is a Transformed cell line with a species of origin Homo sapiens (Human)

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