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Clinical Study

Noninvasive evaluation of IgA nephropathy fibrosis using Doppler ultrasound

ORCID Icon & ORCID Icon
Pages 1843-1849 | Received 29 Jul 2022, Accepted 19 Oct 2022, Published online: 28 Oct 2022

References

  • Li M, Foo JN, Wang JQ, et al. Identification of new susceptibility loci for IgA nephropathy in Han Chinese. Nat Commun. 2015;6:7270.
  • Wyatt RJ, Julian BA. IgA nephropathy. N Engl J Med. 2013;368(25):2402–2414.
  • Pattrapornpisut P, Avila-Casado C, Reich HN. IgA nephropathy: core curriculum 2021. Am J Kidney Dis. 2021;78(3):429–441.
  • Markowitz G. Glomerular disease: updated Oxford classification of IgA nephropathy: a new MEST-C score. Nat Rev Nephrol. 2017;13(7):385–386.
  • Cattran DC, Coppo R, Cook HT, et al. The Oxford classification of IgA nephropathy: rationale, clinicopathological correlations, and classification. Kidney Int. 2009;76(5):534–545.
  • Roberts IS. Oxford classification of immunoglobulin A nephropathy: an update. Curr Opin Nephrol Hypertens. 2013;22(3):281–286.
  • Tampe D, Schridde L, Korsten P, et al. Different patterns of kidney fibrosis are indicative of injury to distinct renal compartments. Cells. 2021;10(8):2014.
  • Barbour SJ, Coppo R, Zhang H, et al. Evaluating a new international risk-prediction tool in IgA nephropathy. JAMA Intern Med. 2019;179(7):942–952.
  • Yu F, Zhu X, Yuan S, et al. Predictive value of sub classification of focal segmental glomerular sclerosis in Oxford classification of IgA nephropathy. Ann Med. 2021;53(1):587–595.
  • Sun Q, Baues M, Klinkhammer BM, et al. Elastin imaging enables noninvasive staging and treatment monitoring of kidney fibrosis. Sci Transl Med. 2019;11:486.
  • Asano K, Ogata A, Tanaka K, et al. Acoustic radiation force impulse elastography of the kidneys: is shear wave velocity affected by tissue fibrosis or renal blood flow? J Ultrasound Med. 2014;33(5):793–801.
  • Wu J, Shi Z, Zhang Y, et al. Native T1 mapping in assessing kidney fibrosis for patients with chronic glomerulonephritis. Front Med. 2021;8:772326.
  • Yang WQ, Mou S, Xu Y, et al. Quantitative parameters of contrast-enhanced ultrasonography for assessment of renal pathology: a preliminary study in chronic kidney disease. Clin Hemorheol Microcirc. 2018;68(1):71–82.
  • Grenier N, Poulain S, Lepreux S, et al. Quantitative elastography of renal transplants using supersonic shear imaging: a pilot study. Eur Radiol. 2012;22(10):2138–2146.
  • Kliewer MA, Tupler RH, Carroll BA, et al. Renal artery stenosis: analysis of Doppler waveform parameters and tardus-parvus pattern. Radiology. 1993;189(3):779–787.
  • Harrell FE Jr., Lee KL, Mark DB. Multivariable prognostic models: issues in developing models, evaluating assumptions and adequacy, and measuring and reducing errors. Stat Med. 1996;15(4):361–387.
  • Yau T, Korbet SM, Schwartz MM, et al. The Oxford classification of IgA nephropathy: a retrospective analysis. Am J Nephrol. 2011;34(5):435–444.
  • Yu GZ, Guo L, Dong JF, et al. Persistent hematuria and kidney disease progression in IgA nephropathy: a cohort study. Am J Kidney Dis. 2020;76(1):90–99.
  • Coppo R, D'Arrigo G, Tripepi G, et al. Is there long-term value of pathology scoring in immunoglobulin a nephropathy? A validation study of the Oxford classification for IgA nephropathy (VALIGA) update. Nephrol Dial Transplant. 2020;35(6):1002–1009.
  • Konieczny A, Donizy P, Gołębiowski T, et al. Clinical and histopathological factors influencing IgA nephropathy outcome. Diagnostics. 2021;11(10):1764.
  • Tan J, Luo X, Yang J, et al. Clinicopathological characteristics and risk factors in elderly patients with biopsy-proven IgA nephropathy. Ren Fail. 2022;44(1):1026–1036.
  • Huang PP, Shu DH, Su Z, et al. Association between lifestyle, gender and risk for developing end-stage renal failure in IgA nephropathy: a case-control study within 10 years. Ren Fail. 2019;41(1):914–920.
  • Wen D, Tang Y, Tan L, et al. Sex disparities in IgA nephropathy: a retrospective study in Chinese patients. Int Urol Nephrol. 2021;53(2):315–323.
  • Petrucci I, Clementi A, Sessa C, et al. Ultrasound and color Doppler applications in chronic kidney disease. J Nephrol. 2018;31(6):863–879.
  • van der Sande NG, Blankestijn PJ, Leiner T, et al. High ratios of kidney function to kidney size are related to mortality and kidney function decline in high-risk patients. Eur J Prev Cardiol. 2017;24(9):926–933.
  • Jovanović D, Gasic B, Pavlovic S, et al. Correlation of kidney size with kidney function and anthropometric parameters in healthy subjects and patients with chronic kidney diseases. Ren Fail. 2013;35(6):896–900.
  • Zhang J, Chen GD, Qiu J, et al. Color Doppler ultrasound and hemodynamics for evaluating graft dysfunction in recurrent immunoglobulin a nephropathy. Ann Transplant. 2021;26:e931736.
  • Ștefan G, Florescu C, Sabo AA, et al. Intrarenal resistive index conundrum: systemic atherosclerosis versus renal arteriolosclerosis. Ren Fail. 2019;41(1):930–936.
  • Cianci R, Gigante A, Bagordo D, et al. Renal resistive index in IgA nephropathy and renal scleroderma vasculopathy. Microvasc Res. 2021;133:104095.
  • Li H, Shen Y, Yu Z, et al. Potential role of the renal arterial resistance index in the differential diagnosis of diabetic kidney disease. Front Endocrinol. 2021;12:731187.
  • Parolini C, Noce A, Staffolani E, et al. Renal resistive index and long-term outcome in chronic nephropathies. Radiology. 2009;252(3):888–896.
  • Fiorini F, Granata A, Noce A, et al. Index resistance in renal ultrasound: what is the clinical significance? G Ital Nefrol. 2013;30(2):1–16.
  • Ikee R, Kobayashi S, Hemmi N, et al. Correlation between the resistive index by Doppler ultrasound and kidney function and histology. Am J Kidney Dis. 2005;46(4):603–609.
  • Kang DH, Kanellis J, Hugo C, et al. Role of the microvascular endothelium in progressive renal disease. J Am Soc Nephrol. 2002;13(3):806–816.
  • Matsumoto M, Tanaka T, Yamamoto T, et al. Hypoperfusion of peritubular capillaries induces chronic hypoxia before progression of tubulointerstitial injury in a progressive model of rat glomerulonephritis. J Am Soc Nephrol. 2004;15(6):1574–1581.