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Journal Abstract Search


209 related items for PubMed ID: 29372474

  • 21. The sensitivity and specificity of the routine kidney biopsy immunofluorescence panel are inferior to diagnosing renal immunoglobulin-derived amyloidosis by mass spectrometry.
    Gonzalez Suarez ML, Zhang P, Nasr SH, Sathick IJ, Kittanamongkolchai W, Kurtin PJ, Alexander MP, Cornell LD, Fidler ME, Grande JP, Herrera Hernandez LP, Said SM, Sethi S, Dispenzieri A, Gertz MA, Leung N.
    Kidney Int; 2019 Oct; 96(4):1005-1009. PubMed ID: 31447055
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  • 22. The diagnosis and characteristics of renal heavy-chain and heavy/light-chain amyloidosis and their comparison with renal light-chain amyloidosis.
    Nasr SH, Said SM, Valeri AM, Sethi S, Fidler ME, Cornell LD, Gertz MA, Dispenzieri A, Buadi FK, Vrana JA, Theis JD, Dogan A, Leung N.
    Kidney Int; 2013 Mar; 83(3):463-70. PubMed ID: 23302715
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  • 24. Post-translational modification of amyloid a protein in patients with AA amyloidosis.
    Kluve-Beckerman B, Smith JT, Ivancic C, Benson MD.
    Amyloid; 2022 Mar; 29(1):50-57. PubMed ID: 34787027
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  • 27. A comparison of immunohistochemistry and mass spectrometry for determining the amyloid fibril protein from formalin-fixed biopsy tissue.
    Gilbertson JA, Theis JD, Vrana JA, Lachmann H, Wechalekar A, Whelan C, Hawkins PN, Dogan A, Gillmore JD.
    J Clin Pathol; 2015 Apr; 68(4):314-7. PubMed ID: 25637636
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  • 28. Mass Spectrometry Amyloid Typing Is Reproducible across Multiple Organ Sites.
    Holub D, Flodrova P, Pika T, Flodr P, Hajduch M, Dzubak P.
    Biomed Res Int; 2019 Apr; 2019():3689091. PubMed ID: 30834260
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  • 29. Renal amyloidosis: origin and clinicopathologic correlations of 474 recent cases.
    Said SM, Sethi S, Valeri AM, Leung N, Cornell LD, Fidler ME, Herrera Hernandez L, Vrana JA, Theis JD, Quint PS, Dogan A, Nasr SH.
    Clin J Am Soc Nephrol; 2013 Sep; 8(9):1515-23. PubMed ID: 23704299
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  • 33. Spatial resolution of renal amyloid deposits through MALDI-MSI: a combined digital and molecular approach to monoclonal gammopathies.
    Bindi G, Smith A, Oliveira G, Eccher A, Vatrano S, Alberici F, Cazzaniga G, Galimberti S, Capitoli G, Magni F, Pagni F, L'Imperio V.
    J Clin Pathol; 2024 May 17; 77(6):402-410. PubMed ID: 36813560
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  • 34. Renal amyloidosis: an update on diagnosis and pathogenesis.
    Gupta N, Kaur H, Wajid S.
    Protoplasma; 2020 Sep 17; 257(5):1259-1276. PubMed ID: 32447467
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  • 35. Characterization of glomerular diseases using proteomic analysis of laser capture microdissected glomeruli.
    Satoskar AA, Shapiro JP, Bott CN, Song H, Nadasdy GM, Brodsky SV, Hebert LA, Birmingham DJ, Nadasdy T, Freitas MA, Rovin BH.
    Mod Pathol; 2012 May 17; 25(5):709-21. PubMed ID: 22282304
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  • 36. A stepwise data interpretation process for renal amyloidosis typing by LMD-MS.
    Ke M, Li X, Wang L, Yue S, Zhao B.
    BMC Nephrol; 2022 Apr 13; 23(1):144. PubMed ID: 35418036
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  • 39. Proteome analysis of laser microdissected glomeruli from formalin-fixed paraffin-embedded kidneys of autopsies of diabetic patients: nephronectin is associated with the development of diabetic glomerulosclerosis.
    Nakatani S, Wei M, Ishimura E, Kakehashi A, Mori K, Nishizawa Y, Inaba M, Wanibuchi H.
    Nephrol Dial Transplant; 2012 May 13; 27(5):1889-97. PubMed ID: 22172726
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