Respiratory extracellular vesicle isolation optimization through proteomic profiling of equine samples and identification of candidates for cell-of-origin studies

E Elise Hickman V Victoria Carberry C Celeste Carberry B Bethanie Cooper A Angie L. Mordant A Allie Mills M Marina Sokolsky L Laura E. Herring (Department of Pharmacology, University of North Carolina Metabolomics and Proteomics Core, University of North Carolina at Chapel Hill) N Neil E. Alexis M Meghan E. Rebuli I Ilona Jaspers K Katie Sheats J Julia E. Rager

Abstract

Growing evidence supports the importance of extracellular vesicle (EV) as mediators of communication in pathological processes, including those underlying respiratory disease. However, establishing methods for isolating and characterizing EVs remains challenging, particularly for respiratory samples. This study set out to address this challenge by comparing different EV isolation methods and evaluating their impacts on EV yield, markers of purity, and proteomic signatures, utilizing equine/horse bronchoalveolar lavage samples. Horses can serve as effective translational animal models for respiratory studies due to similarities with human immune responses, shared environmental exposures, and naturally occurring respiratory diseases including asthma. Further, horses are long-lived large animals that allow for longitudinal sample collection, and provide large sample volume and cell yield, which are particularly useful since EV research is commonly limited by low sample yields. Here, EVs were isolated from horse bronchoalveolar lavage fluid (BALF) using four different methods (ultracentrifugation, microcentrifugation, and two sizes of size exclusion chromatography columns) and characterized by measuring particle counts, EV purity, total protein yield, and proteomic cargo, with a specific focus on vesicle surface marker expression potentially informing cell type of origin. We found that size exclusion chromatography yielded the highest particle counts, greatest EV purity markers and elevated vesicle surface marker expression. Overall proteomic profiles differed across isolation methods, with size exclusion chromatography clustering separately from centrifugation. Taken together, our results demonstrate that different isolation methods impact characteristics of EVs, notably that size exclusion chromatography, compared to centrifugation methods, resulted in higher EV purity and better characterized proteomic diversity, including information on EV cell-of-origin. This is the first study to characterize proteomic profiles of EVs following different isolation methods using equine BALF. The results of this study will pave the way for future studies using equine and human samples to characterize respiratory tract EVs.

Article Details

Journal PLoS ONE
Volume / Issue Vol. 20, Issue 1
Published January 24, 2025
Pages e0315743
ISSN 1932-6203
Publisher Public Library of Science

Journal Info

PLoS ONE

Public Library of Science

ISSN: 1932-6203 Open Access Health Sciences

Authors (13)

E

Elise Hickman

V

Victoria Carberry

C

Celeste Carberry

B

Bethanie Cooper

A

Angie L. Mordant

A

Allie Mills

M

Marina Sokolsky

L

Laura E. Herring

Department of Pharmacology, University of North Carolina Metabolomics and Proteomics Core, University of North Carolina at Chapel Hill

N

Neil E. Alexis

M

Meghan E. Rebuli

I

Ilona Jaspers

K

Katie Sheats

J

Julia E. Rager