Protein Cargo of Extracellular Vesicles From Bovine Follicular Fluid and Analysis of Their Origin From Different Ovarian Cells.

bovine exosomes extracellular vesicles follicular cells follicular fluid oocyte proteome transcriptome

Journal

Frontiers in veterinary science
ISSN: 2297-1769
Titre abrégé: Front Vet Sci
Pays: Switzerland
ID NLM: 101666658

Informations de publication

Date de publication:
2020
Historique:
received: 18 07 2020
accepted: 21 09 2020
entrez: 17 12 2020
pubmed: 18 12 2020
medline: 18 12 2020
Statut: epublish

Résumé

Follicular fluid (FF) fills the interior portion of the ovarian antral follicle and provides a suitable microenvironment for the growth of the enclosed oocyte through molecular factors that originate from plasma and the secretions of follicular cells. FF contains extracellular nanovesicles (ffEVs), including 30-100-nm membrane-coated exosomes, which carry different types of RNA, proteins, and lipids and directly influence oocyte competence to develop embryo. In the present study, we aimed to characterize the protein cargo of EVs from the FF of 3-6-mm follicles and uncover the origins of ffEVs by assessing expression levels of corresponding mRNAs in bovine follicular cells and oocyte and cell proteomes. Isolated exosome-like ffEVs were 53.6 + 23.3 nm in size and could be internalized by cumulus-oocyte complex. Proteomes of ffEVs and granulosa cells (GC) were assessed using nanoflow liquid chromatography coupled with high-resolution tandem mass spectrometry after the gel fractionation of total proteins. In total, 460 protein isoforms corresponding to 322 unique proteins were identified in ffEVs; among them, 190 were also identified via GC. Gene Ontology terms related to the ribosome, protein and RNA folding, molecular transport, endocytosis, signal transduction, complement and coagulation cascades, apoptosis, and developmental biology pathways, including PI3K-Akt signaling, were significantly enriched features of ffEV proteins. FfEVs contain numerous ribosome and RNA-binding proteins, which may serve to compact different RNAs to regulate gene expression and RNA degradation, and might transfer ribosomal constituents to the oocyte. Majority of genes encoding ffEV proteins expressed at different levels in follicular cells and oocyte, corroborating with numerous proteins, which were reported in bovine oocyte and cumulus cells in other studies thus indicating possible origin of ffEV proteins. The limited abundance of several mRNAs within follicular cells indicated that corresponding ffEV proteins likely originated from circulating exosomes released by other tissues. Analysis of bovine ffEV transcriptome revealed that mRNAs present in ffEV accounted for only 18.3% of detected ffEV proteins. In conclusion, our study revealed numerous proteins within ffEVs, which originated from follicular and other cells. These proteins are likely involved in the maintenance of follicular homeostasis and may affect oocyte competence.

Identifiants

pubmed: 33330709
doi: 10.3389/fvets.2020.584948
pmc: PMC7672127
doi:

Types de publication

Journal Article

Langues

eng

Pagination

584948

Informations de copyright

Copyright © 2020 Uzbekova, Almiñana, Labas, Teixeira-Gomes, Combes-Soia, Tsikis, Carvalho, Uzbekov and Singina.

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Auteurs

Svetlana Uzbekova (S)

CNRS, IFCE, INRAE, Université de Tours, PRC, Nouzilly, France.

Carmen Almiñana (C)

CNRS, IFCE, INRAE, Université de Tours, PRC, Nouzilly, France.
Functional Genomics, Vetsuisse Faculty Zurich, Institute of Veterinary Anatomy, University of Zurich, Zurich, Switzerland.

Valerie Labas (V)

CHU de Tours, INRAE, Université de Tours, PRC, CIRE, Tours, France.

Ana-Paula Teixeira-Gomes (AP)

CHU de Tours, INRAE, Université de Tours, PRC, CIRE, Tours, France.
INRAE, Université de Tours, ISP, Nouzilly, France.

Lucie Combes-Soia (L)

CHU de Tours, INRAE, Université de Tours, PRC, CIRE, Tours, France.

Guillaume Tsikis (G)

CNRS, IFCE, INRAE, Université de Tours, PRC, Nouzilly, France.

Anais Vitorino Carvalho (AV)

CNRS, IFCE, INRAE, Université de Tours, PRC, Nouzilly, France.

Rustem Uzbekov (R)

Faculty of Medecine, University of Tours, Tours, France.
Faculty of Bioengineering and Bioinformatics, Moscow State University, Moscow, Russia.

Galina Singina (G)

L. K. Ernst Federal Science Center for Animal Husbandry, Podolsk, Russia.

Classifications MeSH