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Journal Abstract Search
398 related items for PubMed ID: 28646076
1. Transcriptomic and Proteomic Profiling Provides Insight into Mesangial Cell Function in IgA Nephropathy. Liu P, Lassén E, Nair V, Berthier CC, Suguro M, Sihlbom C, Kretzler M, Betsholtz C, Haraldsson B, Ju W, Ebefors K, Nyström J. J Am Soc Nephrol; 2017 Oct; 28(10):2961-2972. PubMed ID: 28646076 [Abstract] [Full Text] [Related]
2. Mesangial cells from patients with IgA nephropathy have increased susceptibility to galactose-deficient IgA1. Ebefors K, Liu P, Lassén E, Elvin J, Candemark E, Levan K, Haraldsson B, Nyström J. BMC Nephrol; 2016 Apr 05; 17():40. PubMed ID: 27044423 [Abstract] [Full Text] [Related]
3. RNA-Seq profiling of microdissected glomeruli identifies potential biomarkers for human IgA nephropathy. Park S, Yang SH, Jeong CW, Moon KC, Kim DK, Joo KW, Kim YS, Lee JW, Lee H. Am J Physiol Renal Physiol; 2020 Nov 01; 319(5):F809-F821. PubMed ID: 32954852 [Abstract] [Full Text] [Related]
4. MiR-100-3p and miR-877-3p regulate overproduction of IL-8 and IL-1β in mesangial cells activated by secretory IgA from IgA nephropathy patients. Liang Y, Zhao G, Tang L, Zhang J, Li T, Liu Z. Exp Cell Res; 2016 Oct 01; 347(2):312-21. PubMed ID: 27542871 [Abstract] [Full Text] [Related]
5. Pathogenic role of glycan-specific IgG antibodies in IgA nephropathy. Zhao YF, Zhu L, Liu LJ, Shi SF, Lv JC, Zhang H. BMC Nephrol; 2017 Sep 29; 18(1):301. PubMed ID: 28969604 [Abstract] [Full Text] [Related]
6. Differential effects of circulating IgA isolated from patients with IgA nephropathy on superoxide and fibronectin production of mesangial cells. Chen HC, Guh JY, Chang JM, Lai YH. Nephron; 2001 Jul 29; 88(3):211-7. PubMed ID: 11423751 [Abstract] [Full Text] [Related]
7. JAK-STAT Activity in Peripheral Blood Cells and Kidney Tissue in IgA Nephropathy. Tao J, Mariani L, Eddy S, Maecker H, Kambham N, Mehta K, Hartman J, Wang W, Kretzler M, Lafayette RA. Clin J Am Soc Nephrol; 2020 Jul 01; 15(7):973-982. PubMed ID: 32354727 [Abstract] [Full Text] [Related]
8. Synergistic effect of mesangial cell-induced CXCL1 and TGF-β1 in promoting podocyte loss in IgA nephropathy. Zhu L, Zhang Q, Shi S, Liu L, Lv J, Zhang H. PLoS One; 2013 Jul 01; 8(8):e73425. PubMed ID: 24023680 [Abstract] [Full Text] [Related]
9. Differential glycosylation of polymeric and monomeric IgA: a possible role in glomerular inflammation in IgA nephropathy. Oortwijn BD, Roos A, Royle L, van Gijlswijk-Janssen DJ, Faber-Krol MC, Eijgenraam JW, Dwek RA, Daha MR, Rudd PM, van Kooten C. J Am Soc Nephrol; 2006 Dec 01; 17(12):3529-39. PubMed ID: 17050773 [Abstract] [Full Text] [Related]
10. Plasma Gelsolin Promotes Proliferation of Mesangial Cell in IgA Nephropathy. Zhang L, Kong D, Meng H, Han C, Zhu J, Qiao J, He Y, Wang T, Li X, Zhang F, Jin X. Cell Physiol Biochem; 2016 Dec 01; 40(6):1473-1486. PubMed ID: 27997897 [Abstract] [Full Text] [Related]
11. Identification of IgA autoantibodies targeting mesangial cells redefines the pathogenesis of IgA nephropathy. Nihei Y, Haniuda K, Higashiyama M, Asami S, Iwasaki H, Fukao Y, Nakayama M, Suzuki H, Kikkawa M, Kazuno S, Miura Y, Suzuki Y, Kitamura D. Sci Adv; 2023 Mar 22; 9(12):eadd6734. PubMed ID: 36947618 [Abstract] [Full Text] [Related]
12. Role of Mesangial-Podocytic-Tubular Cross-Talk in IgA Nephropathy. Leung JCK, Lai KN, Tang SCW. Semin Nephrol; 2018 Sep 22; 38(5):485-495. PubMed ID: 30177020 [Abstract] [Full Text] [Related]
13. Podocyte injury induced by mesangial-derived cytokines in IgA nephropathy. Lai KN, Leung JC, Chan LY, Saleem MA, Mathieson PW, Tam KY, Xiao J, Lai FM, Tang SC. Nephrol Dial Transplant; 2009 Jan 22; 24(1):62-72. PubMed ID: 18685143 [Abstract] [Full Text] [Related]
14. Dual involvement of growth arrest-specific gene 6 in the early phase of human IgA nephropathy. Nagai K, Miyoshi M, Kake T, Fukushima N, Matsuura M, Shibata E, Yamada S, Yoshikawa K, Kanayama HO, Fukawa T, Yamaguchi K, Izaki H, Mima A, Abe N, Araoka T, Murakami T, Kishi F, Kishi S, Tominaga T, Moriya T, Abe H, Doi T. PLoS One; 2013 Jan 22; 8(6):e66759. PubMed ID: 23826128 [Abstract] [Full Text] [Related]
15. Role of podocyte injury in IgA nephropathy. Menon MC, Chuang PY, He JC. Contrib Nephrol; 2013 Jan 22; 181():41-51. PubMed ID: 23689566 [Abstract] [Full Text] [Related]
16. Mass spectrometry-based screening identifies circulating immunoglobulinA-α1-microglobulin complex as potential biomarker in immunoglobulin A nephropathy. Xu B, Zhu L, Wang Q, Zhao Y, Jia M, Shi S, Liu L, Lv J, Lai W, Ji J, Zhang H. Nephrol Dial Transplant; 2021 Apr 26; 36(5):782-792. PubMed ID: 33351144 [Abstract] [Full Text] [Related]
17. Tissue-specific expression of renin-angiotensin system components in IgA nephropathy. Miyake-Ogawa C, Miyazaki M, Abe K, Harada T, Ozono Y, Sakai H, Koji T, Kohno S. Am J Nephrol; 2005 Apr 26; 25(1):1-12. PubMed ID: 15644622 [Abstract] [Full Text] [Related]
18. Oxford Classification of IgA nephropathy 2016: an update from the IgA Nephropathy Classification Working Group. Trimarchi H, Barratt J, Cattran DC, Cook HT, Coppo R, Haas M, Liu ZH, Roberts IS, Yuzawa Y, Zhang H, Feehally J, IgAN Classification Working Group of the International IgA Nephropathy Network and the Renal Pathology SocietyHospital Británico de Buenos Aires, Argentina., Conference Participants. Kidney Int; 2017 May 26; 91(5):1014-1021. PubMed ID: 28341274 [Abstract] [Full Text] [Related]
19. Integrin α1/β1 and α2/β1 as a receptor for IgA1 in human glomerular mesangial cells in IgA nephropathy. Kaneko Y, Otsuka T, Tsuchida Y, Gejyo F, Narita I. Int Immunol; 2012 Apr 26; 24(4):219-32. PubMed ID: 22298882 [Abstract] [Full Text] [Related]
20. Application of Oxford classification, and overexpression of transforming growth factor-β1 and immunoglobulins in immunoglobulin A nephropathy: correlation with World Health Organization classification of immunoglobulin A nephropathy in a Chinese patient cohort. Meng H, Zhang L, E X, Ye F, Li H, Han C, Yamakawa M, Jin X. Transl Res; 2014 Jan 26; 163(1):8-18. PubMed ID: 23891568 [Abstract] [Full Text] [Related] Page: [Next] [New Search]