Nephrotic syndrome sera induce different transcriptomes in podocytes based on the steroid response
Jazyk angličtina Země Spojené státy americké Médium print
Typ dokumentu časopisecké články
Grantová podpora
384119
Grantova agentura Univerzity Karlovy
00064203
Motol University Hospital
CZ.1.05/4.1.00/16.0337
Research and Development for Innovation Operational Programme
PubMed
38307723
PubMed Central
PMC10837055
DOI
10.14814/phy2.15932
Knihovny.cz E-zdroje
- Klíčová slova
- RNA sequencing, human immortalized podocytes, nephrotic syndrome, serum, transcriptome,
- MeSH
- dítě MeSH
- glukokortikoidy farmakologie MeSH
- lidé MeSH
- nefrotický syndrom * genetika MeSH
- podocyty * metabolismus MeSH
- steroidy metabolismus MeSH
- transkriptom MeSH
- Check Tag
- dítě MeSH
- lidé MeSH
- Publikační typ
- časopisecké články MeSH
- Názvy látek
- glukokortikoidy MeSH
- steroidy MeSH
As the molecular mechanism of nephrotic syndrome remains largely undiscovered, patients continue to be exposed to the pros and cons of uniform glucocorticoid treatment. We explored whether the exposure of in vitro-cultivated podocytes to sera from children with steroid-sensitive or steroid-resistant nephrotic syndrome induces differences in gene expression profiles, which could help to elucidate the pathogenesis of the steroid response. Human immortalized podocytes were cultivated with patient sera for 3 days. After cell lysis, RNA extraction, 3'-mRNA libraries were prepared and sequenced. There were 34 significantly upregulated and 14 downregulated genes (fold difference <0.5 and >2.0, respectively, and false discovery rate-corrected p < 0.05) and 22 significantly upregulated and 6 downregulated pathways (false discovery rate-corrected p < 0.01) in the steroid-sensitive (n = 9) versus steroid-resistant group (n = 4). The observed pathways included upregulated redox reactions, DNA repair, mitosis, protein translation and downregulated cholesterol biosynthesis. Sera from children with nephrotic syndrome induce disease subtype-specific transcriptome changes in human podocytes in vitro. However, further exploration of a larger cohort is needed to verify whether clinically distinct types of nephrotic syndrome or disease activity may be differentiated by specific transcriptomic profiles and whether this information may help to elucidate the pathogenesis of the steroid response.
Zobrazit více v PubMed
Agrawal, S. , Brier, M. E. , Kerlin, B. A. , & Smoyer, W. E. (2021). Plasma cytokine profiling to predict steroid resistance in pediatric nephrotic syndrome. Kidney International Reports, 6, 785–795. PubMed PMC
Agrawal, S. , Merchant, M. L. , Kino, J. , Li, M. , Wilkey, D. W. , Gaweda, A. E. , Brier, M. E. , Chanley, M. A. , Gooding, J. R. , Sumner, S. J. , Klein, J. B. , & Smoyer, W. E. (2020). Predicting and defining steroid resistance in pediatric nephrotic syndrome using plasma proteomics. Kidney International Reports, 5, 66–80. PubMed PMC
Bezdíčka, M. , Štolbová, Š. , Seeman, T. , Cinek, O. , Malina, M. , Šimánková, N. , Průhová, Š. , & Zieg, J. (2018). Genetic diagnosis of steroid‐resistant nephrotic syndrome in a longitudinal collection of Czech and Slovak patients: A high proportion of causative variants in NUP93. Pediatric Nephrology, 33, 1347–1363. PubMed
Cameron, J. S. (1968). Histology, protein clearances, and response to treatment in the nephrotic syndrome. British Medical Journal, 4, 352–356. PubMed PMC
Candelier, J. J. , & Lorenzo, H. K. (2020). Idiopathic nephrotic syndrome and serum permeability factors: A molecular jigsaw puzzle. Cell and Tissue Research, 379, 231–243. PubMed
Coward, R. J. , Foster, R. R. , Patton, D. , Ni, L. , Lennon, R. , Bates, D. O. , Harper, S. J. , Mathieson, P. W. , & Saleem, M. A. (2005). Nephrotic plasma alters slit diaphragm‐dependent signaling and translocates nephrin, podocin, and CD2 associated protein in cultured human podocytes. Journal of the American Society of Nephrology, 16, 629–637. PubMed
Dobin, A. , Davis, C. A. , Schlesinger, F. , Drenkow, J. , Zaleski, C. , Jha, S. , Batut, P. , Chaisson, M. , & Gingeras, T. R. (2013). STAR: ultrafast universal RNA‐seq aligner. Bioinformatics, 29, 15–21. PubMed PMC
Fu, R. , Guo, C. , Wang, S. , Huang, Y. , Jin, O. , Hu, H. , Chen, J. , Xu, B. , Zhou, M. , Zhao, J. , Sung, S. J. , Wang, H. , Gaskin, F. , Yang, N. , & Fu, S. M. (2017). Podocyte activation of NLRP3 inflammasomes contributes to the development of proteinuria in lupus nephritis. Arthritis & Rhematology, 69, 1636–1646. PubMed PMC
Gault, M. H. , & Muehrcke, R. C. (1983). Renal biopsy: Current views and controversies. Nephron, 34, 1–34. PubMed
Ihim, S. A. , Abubakar, S. D. , Zian, Z. , Sasaki, T. , Saffarioun, M. , Maleknia, S. , & Azizi, G. (2022). Interleukin‐18 cytokine in immunity, inflammation, and autoimmunity: Biological role in induction, regulation, and treatment. Frontiers in Immunology, 13, 919973. PubMed PMC
Kang, H. G. , Seo, H. , Lim, J. H. , Kim, J. I. , Han, K. H. , Park, H. W. , Koo, J. W. , Kim, K. H. , Kim, J. H. , Cheong, H. I. , & Ha, I. S. (2017). Markers of disease and steroid responsiveness in paediatric idiopathic nephrotic syndrome: Whole‐transcriptome sequencing of peripheral blood mononuclear cells. The Journal of International Medical Research, 45, 948–963. PubMed PMC
Kemper, M. J. , Wolf, G. , & Müller‐Wiefel, D. E. (2001). Transmission of glomerular permeability factor from a mother to her child. The New England Journal of Medicine, 344, 386–387. PubMed
Kiliś‐Pstrusińska, K. , Medyńska, A. , Zwolińska, D. , & Wawro, A. (2008). Interleukin‐18 in urine and serum of children with idiopathic nephrotic syndrome. Kidney & Blood Pressure Research, 31, 122–126. PubMed
Lennon, R. , Singh, A. , Welsh, G. I. , Coward, R. J. , Satchell, S. , Ni, L. , Mathieson, P. W. , Bakker, W. W. , & Saleem, M. A. (2008). Hemopexin induces nephrin‐dependent reorganization of the Actin cytoskeleton in podocytes. Journal of the American Society of Nephrology, 19, 2140–2149. PubMed PMC
Li, G. , Cui, G. , Dismuke, W. M. , Navarro, I. , Perkumas, K. , Woodward, D. F. , & Stamer, W. D. (2017). Differential response and withdrawal profile of glucocorticoid‐treated human trabecular meshwork cells. Experimental Eye Research, 155, 38–46. PubMed PMC
Love, M. I. , Huber, W. , & Anders, S. (2014). Moderated estimation of fold change and dispersion for RNA‐seq data with DESeq2. Genome Biology, 15, 550. PubMed PMC
Martin, M. (2011). Cutadapt removes adapter sequences from high‐throughput sequencing reads. EMBnet. Journal, 17(3), 10–12.
Narayanan, L. , Mulligan, C. , Durso, L. , Thames, B. , Thomason, J. , Fellman, C. , Mackin, A. , Wills, R. , & Archer, T. (2020). Recovery of T‐cell function in healthy dogs following cessation of oral cyclosporine administration. Veterinary Medicine and Science, 6, 277–282. PubMed PMC
Narla, D. , & Swiatecka‐Urban, A. (2020). Therapeutic response to corticosteroids remains a valid approach to initial management of children with idiopathic nephrotic syndrome. Frontiers in Pediatrics, 8, 533. PubMed PMC
Ni, L. , Saleem, M. , & Mathieson, P. W. (2012). Podocyte culture: Tricks of the trade. Nephrology (Carlton), 17, 525–531. PubMed
Panigrahi, S. , Pardeshi, V. C. , Chandrasekaran, K. , Neelakandan, K. , Ps, H. , & Vasudevan, A. (2021). Expression profiling of cultured podocytes exposed to nephrotic plasma reveals intrinsic molecular signatures of nephrotic syndrome. Clinical and Experimental Pediatrics, 64, 355–363. PubMed PMC
Printza, N. , Papachristou, F. , Tzimouli, V. , Taparkou, A. , & Kanakoudi‐Tsakalidou, F. (2008). IL‐18 is correlated with type‐2 immune response in children with steroid sensitive nephrotic syndrome. Cytokine, 44, 262–268. PubMed
Rayman, M. P. (2012). Selenium and human health. Lancet, 379, 1256–1268. PubMed
Rex, D. A. B. , Agarwal, N. , Prasad, T. S. K. , Kandasamy, R. K. , Subbannayya, Y. , & Pinto, S. M. (2020). A comprehensive pathway map of IL‐18‐mediated signalling. Journal of Cell Communication and Signaling, 14, 257–266. PubMed PMC
Rovin, B. H. , Adler, S. G. , Barratt, J. , Bridoux, F. , Burdge, K. A. , Chan, T. M. , Cook, H. T. , Fervenza, F. C. , Gibson, K. L. , Glassock, R. J. , & Jayne, D. R. (2021). KDIGO 2021 clinical practice guideline for the management of glomerular diseases. Kidney International, 100, S1–S276. PubMed
Saleem, M. A. (2019). Molecular stratification of idiopathic nephrotic syndrome. Nature Reviews Nephrology, 15, 750–765. PubMed
Saleem, M. A. , O'Hare, M. J. , Reiser, J. , Coward, R. J. , Inward, C. D. , Farren, T. , Xing, C. Y. , Ni, L. , Mathieson, P. W. , & Mundel, P. (2002). A conditionally immortalized human podocyte cell line demonstrating nephrin and podocin expression. Journal American Society of Nephrology, 13, 630–638. PubMed
Savin, V. J. , Sharma, M. , Zhou, J. , Gennochi, D. , Fields, T. , Sharma, R. , McCarthy, E. T. , Srivastava, T. , Domen, J. , Tormo, A. , & Gauchat, J. F. (2015). Renal and hematological effects of CLCF‐1, a B‐cell‐stimulating cytokine of the IL‐6 family. Journal of Immunology Research, 2015, 714964. PubMed PMC
Schulman, S. L. , Kaiser, B. A. , Polinsky, M. S. , Srinivasan, R. , & Baluarte, H. J. (1988). Predicting the response to cytotoxic therapy for childhood nephrotic syndrome: Superiority of response to corticosteroid therapy over histopathologic patterns. The Journal of Pediatrics, 113, 996–1001. PubMed
Sharma, M. , Sharma, R. , Reddy, S. R. , McCarthy, E. T. , & Savin, V. J. (2002). Proteinuria after injection of human focal segmental glomerulosclerosis factor. Transplantation, 73, 366–372. PubMed
Sinha, A. , & Bagga, A. (2022). Clinical practice guidelines for nephrotic syndrome: Consensus is emerging. Pediatric Nephrology, 37, 2975–2984. PubMed
Trautmann, A. , Bodria, M. , Ozaltin, F. , Gheisari, A. , Melk, A. , Azocar, M. , Anarat, A. , Caliskan, S. , Emma, F. , Gellermann, J. , Oh, J. , Baskin, E. , Ksiazek, J. , Remuzzi, G. , Erdogan, O. , Akman, S. , Dusek, J. , Davitaia, T. , Özkaya, O. , … Schaefer, F. (2015). Spectrum of steroid‐resistant and congenital nephrotic syndrome in children: The PodoNet registry cohort. Clinical Journal of the American Society of Nephrology, 10, 592–600. PubMed PMC
Trautmann, A. , Boyer, O. , Hodson, E. , Bagga, A. , Gipson, D. S. , Samuel, S. , Wetzels, J. , Alhasan, K. , Banerjee, S. , Bhimma, R. , Bonilla‐Felix, M. , Cano, F. , Christian, M. , Hahn, D. , Kang, H. G. , Nakanishi, K. , Safouh, H. , Trachtman, H. , Xu, H. , … Haffner, D. (2023). IPNA clinical practice recommendations for the diagnosis and management of children with steroid‐sensitive nephrotic syndrome. Pediatric Nephrology, 38, 877–919. PubMed PMC
Vaziri, N. D. (2016). Disorders of lipid metabolism in nephrotic syndrome: Mechanisms and consequences. Kidney International, 90, 41–52. PubMed PMC
Veltkamp, F. , Rensma, L. R. , & Bouts, A. H. M. (2021). Incidence and relapse of idiopathic nephrotic syndrome: Meta‐analysis. Pediatrics, 148, e2020029249. PubMed
Vivarelli, M. , Massella, L. , Ruggiero, B. , & Emma, F. (2017). Minimal change disease. Clinical Journal of the American Society of Nephrology, 12, 332–345. PubMed PMC
Watany, M. M. , & El‐Horany, H. E. (2018). Nephronectin (NPNT) and the prediction of nephrotic syndrome response to steroid treatment. European Journal of Human Genetics, 26, 1354–1360. PubMed PMC
Wu, D. , & Smyth, G. K. (2012). Camera: A competitive gene set test accounting for inter‐gene correlation. Nucleic Acids Research, 40, e133. PubMed PMC
Zhao, S. , Fung‐Leung, W. P. , Bittner, A. , Ngo, K. , & Liu, X. (2014). Comparison of RNA‐seq and microarray in transcriptome profiling of activated T cells. PLoS One, 9, e78644. PubMed PMC