» Articles » PMID: 31237340

Transcriptomic Analysis of Early B-cell Development in the Chicken Embryo

Overview
Journal Poult Sci
Publisher Elsevier
Date 2019 Jun 26
PMID 31237340
Citations 7
Authors
Affiliations
Soon will be listed here.
Abstract

The chicken bursa of Fabricius is a primary lymphoid tissue important for B-cell development. Our long-term goal is to understand the role of bursal microenvironment in an early B-cell differentiation event initiating repertoire development through immunoglobulin gene conversion in the chick embryo. We hypothesize that early bursal B-cell differentiation is guided by signals through cytokine receptors. Our theory is based on previous evidence for expression of the receptor tyrosine kinase superfamily members and interleukin receptors in unseparated populations of bursal B-cells and bursal tissue. Knowledge of the expressed genes that are responsible for B-cell differentiation is a prerequisite for understanding the bursal microenvironment's function. This project uses transcriptomic analysis to evaluate gene expression across early B-cell development. RNA-seq was performed with total RNA isolated from bursal B-cells at embryonic day (ED) 16 and ED 19 (n = 3). Approximately 90 million high-quality clean reads were obtained from the cDNA libraries. The analysis revealed differentially expressed genes involved in the Jak-STAT pathway, Wnt signaling pathway, MAPK signaling pathway, metabolic pathways including tyrosine metabolism, Toll-like receptor signaling pathway, and cell-adhesion molecules. The genes predicted to encode surface receptors, signal transduction proteins, and transcription factors identified in this study represent gene candidates for controlling B-cell development in response to differentiation factors in the bursal microenvironment.

Citing Articles

Comparative analysis of changes in immune cell in the chicken spleen across different ages using flow cytometry.

Lee Y, Lee R, Kim J, Han Y, Hunter C, Park J BMC Vet Res. 2024; 20(1):429.

PMID: 39334332 PMC: 11438354. DOI: 10.1186/s12917-024-04287-2.


How to Break through the Bottlenecks of in Ovo Vaccination in Poultry Farming.

Li X, Liu X, Cui L, Liu Z, Zhang Y, Li H Vaccines (Basel). 2024; 12(1).

PMID: 38250861 PMC: 10821430. DOI: 10.3390/vaccines12010048.


Transcriptomic analysis of spleen B cell revealed the molecular basis of bursopentin on B cell differentiation.

Zhang Z, Cai J, Hao S, Li C, Chen J, Li T Vet Res. 2022; 53(1):109.

PMID: 36517897 PMC: 9753308. DOI: 10.1186/s13567-022-01123-z.


Transcriptome analysis revealed the roles of long non-coding RNA and mRNA in the bursa of Fabricius during pigeon () development.

Wang X, Wu J, Hu S, Peng Q, Yang F, Zhao L Front Immunol. 2022; 13:916086.

PMID: 35958547 PMC: 9357926. DOI: 10.3389/fimmu.2022.916086.


The Chicken Embryo Model: A Novel and Relevant Model for Immune-Based Studies.

Garcia P, Wang Y, Viallet J, Macek Jilkova Z Front Immunol. 2021; 12:791081.

PMID: 34868080 PMC: 8640176. DOI: 10.3389/fimmu.2021.791081.


References
1.
Deist M, Lamont S . What Makes the Harderian Gland Transcriptome Different From Other Chicken Immune Tissues? A Gene Expression Comparative Analysis. Front Physiol. 2018; 9:492. PMC: 5952037. DOI: 10.3389/fphys.2018.00492. View

2.
Hirano T, Ishihara K, Hibi M . Roles of STAT3 in mediating the cell growth, differentiation and survival signals relayed through the IL-6 family of cytokine receptors. Oncogene. 2000; 19(21):2548-56. DOI: 10.1038/sj.onc.1203551. View

3.
Blencowe B . Alternative splicing: new insights from global analyses. Cell. 2006; 126(1):37-47. DOI: 10.1016/j.cell.2006.06.023. View

4.
Masteller E, Pharr G, Funk P, Thompson C . Avian B cell development. Int Rev Immunol. 1997; 15(3-4):185-206. DOI: 10.3109/08830189709068176. View

5.
Monson M, Van Goor A, Ashwell C, Persia M, Rothschild M, Schmidt C . Immunomodulatory effects of heat stress and lipopolysaccharide on the bursal transcriptome in two distinct chicken lines. BMC Genomics. 2018; 19(1):643. PMC: 6117931. DOI: 10.1186/s12864-018-5033-y. View