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Transcriptomic signatures reveal immune dysregulation in human diabetic and idiopathic gastroparesis
Madhusudan Grover, Simon J. Gibbons, Asha Nair, Cheryl E. Bernard, Adeel Zubair, Seth T. Eisenman, Laura Wilson, Laura Miriel, Pankaj J. Pasricha, Henry P. Parkman, Irene Sarosiek, Richard W. McCallum, Kenneth L. Koch, Thomas L. Abell, William J. Snape
BMC Medical Genomics · 2018 · ▲ 54 citations
Abstract
Cellular changes described in human gastroparesis have revealed a role for immune dysregulation, however, a mechanistic understanding of human gastroparesis and the signaling pathways involved are still unclear. Diabetic gastroparetics, diabetic non-gastroparetic controls, idiopathic gastroparetics and non-diabetic non-gastroparetic controls underwent full-thickness gastric body biopsies. Deep RNA sequencing was performed and pathway analysis of differentially expressed transcripts was done using Ingenuity®. A subset of differentially expressed genes in diabetic gastroparesis was validated in a separate cohort using QT-PCR. 111 genes were differentially expressed in diabetic gastroparesis and 181 in idiopathic gastroparesis with a log2fold difference of | ≥ 2| and false detection rate (FDR) < 5%. Top canonical pathways in diabetic gastroparesis included genes involved with macrophages, fibroblasts and endothelial cells in rheumatoid arthritis, osteoarthritis pathway and differential regulation of cytokine production in macrophages and T helper cells by IL-17A and IL-17F. Top canonical pathways in idiopathic gastroparesis included genes involved in granulocyte adhesion and diapedesis, agranulocyte adhesion and diapedesis, and role of macrophages, fibroblasts and endothelial cells in rheumatoid arthritis. Sixty-five differentially expressed genes (log2fold difference | ≥ 2|, FDR < 5%) were common in both diabetic and idiopathic gastroparesis with genes in the top 5 canonical pathways associated with immune signaling. 4/5 highly differentially expressed genes (SGK1, APOLD1, CXCR4, CXCL2, and FOS) in diabetic gastroparesis were validated in a separate cohort of patients using RT-PCR. Immune profile analysis revealed that genes associated with M1 (pro inflammatory) macrophages were enriched in tissues from idiopathic gastroparesis tissues compared to controls (p < 0.05). Diabetic and idiopathic gastroparesis have both unique and overlapping transcriptomic signatures. Innate immune signaling likely plays a central role in pathogenesis of human gastroparesis.
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- 10.1186/s12920-018-0379-1
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- 2026-07-25 MST
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APA
Grover, M., Gibbons, S.J., Nair, A., Bernard, C.E., Zubair, A., Eisenman, S.T., Wilson, L., Miriel, L., Pasricha, P.J., Parkman, H.P., Sarosiek, I., McCallum, R.W., Koch, K.L., Abell, T.L., Snape, W.J., Kuo, B., Shulman, R.J., McKenzie, T.J., Kellogg, T.A., & Kendrick, M.L. (2018). Transcriptomic signatures reveal immune dysregulation in human diabetic and idiopathic gastroparesis. <em>BMC Medical Genomics</em>. https://doi.org/10.1186/s12920-018-0379-1
Vancouver
Grover M, Gibbons SJ, Nair A, Bernard CE, Zubair A, Eisenman ST, et al. Transcriptomic signatures reveal immune dysregulation in human diabetic and idiopathic gastroparesis. BMC Medical Genomics. 2018. doi:10.1186/s12920-018-0379-1.
BibTeX
@article{madhusudan2018Transc,
title = {Transcriptomic signatures reveal immune dysregulation in human diabetic and idiopathic gastroparesis},
author = {Madhusudan Grover and Simon J. Gibbons and Asha Nair and Cheryl E. Bernard and Adeel Zubair and Seth T. Eisenman and Laura Wilson and Laura Miriel and Pankaj J. Pasricha and Henry P. Parkman and Irene Sarosiek and Richard W. McCallum and Kenneth L. Koch and Thomas L. Abell and William J. Snape and Braden Kuo and Robert J. Shulman and Travis J. McKenzie and Todd A. Kellogg and Michael L. Kendrick and James Tonascia and Frank A. Hamilton and Gianrico Farrugia},
journal = {BMC Medical Genomics},
year = {2018},
doi = {10.1186/s12920-018-0379-1},
}
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