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Erschienen in: Urolithiasis 6/2005

01.12.2005 | Original Paper

Analysis of urinary calculi obtained from a patient with idiopathic hypouricemia using micro area x-ray diffractometry and LC-MS

verfasst von: Kiyoko Kaneko, Tomoyo Yamanobe, Maki Onoda, Ken-ichi Mawatari, Kazuya Nakagomi, Shin Fujimori

Erschienen in: Urolithiasis | Ausgabe 6/2005

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Abstract

Urolithiasis is a common complication in patients with hypouricemia. Using a microarea x-ray diffractometer and nanoflow liquid chromatography-mass spectrometry (LC-MS) following SDS-polyacrylamide gel electrophoresis (PAGE), recurrent urinary calculi complicating a hypouricemic patient were analyzed. Analysis with the microarea x-ray diffractometer showed that one of the calculi was composed of calcium oxalate monohydrate and hydroxyapatite. The other was found to be formed from calcium oxalate dihydrate. After determination with LC-MS, both were found to contain uromodulin, albumin, osteopontin, protein Z, and defensins. Lysozyme and calgranulin A were also identified in these calculi. Defensins, which were antimicrobial peptides, and lysozyme, a mucopeptide glycohydrolase, were identified as new organic components of urinary stones. The role of these proteins in the process of urolithiasis is of particular interest.
Literatur
1.
Zurück zum Zitat Sperling O (1989) Hereditary renal hypouricemia. In: Scriver CR, Beaudet AL, Sly WS (eds) The metabolic basis of inherited disease, 6th edn. McGraw-Hill, New York, p 2605 Sperling O (1989) Hereditary renal hypouricemia. In: Scriver CR, Beaudet AL, Sly WS (eds) The metabolic basis of inherited disease, 6th edn. McGraw-Hill, New York, p 2605
2.
Zurück zum Zitat Binette J, Binette M, Gawinowicz M, Kendrick N (1996) Urinary stone proteins: an update.Scanning Microsc, 10: 509 Binette J, Binette M, Gawinowicz M, Kendrick N (1996) Urinary stone proteins: an update.Scanning Microsc, 10: 509
3.
Zurück zum Zitat Siddiqu A, Sultana T, Buchhols NP, Waqar M, Talati J (1998) Protein in renal stones and urine of stone formers. Urol Res 2: 6383 Siddiqu A, Sultana T, Buchhols NP, Waqar M, Talati J (1998) Protein in renal stones and urine of stone formers. Urol Res 2: 6383
4.
Zurück zum Zitat Kohri K, Nomura S, Kitamura Y, Nagata T, Yoshioka TK, Iguchi M, Yamate T, Umekawa TT, Suzuki Y, Sinohara H, Kurita T (1993) Structure and expression of the mRNA encoding urinary stone protein (osteopontin). J Biol Chem 268: 15180PubMed Kohri K, Nomura S, Kitamura Y, Nagata T, Yoshioka TK, Iguchi M, Yamate T, Umekawa TT, Suzuki Y, Sinohara H, Kurita T (1993) Structure and expression of the mRNA encoding urinary stone protein (osteopontin). J Biol Chem 268: 15180PubMed
5.
Zurück zum Zitat Yamate T, Umekawa T, Iguchi M, Kurita T, Kohri K (1997) Detection of osteopontin as matrix protein in calcium-containing urinary stones. Acta Urol Jpn 43: 623 Yamate T, Umekawa T, Iguchi M, Kurita T, Kohri K (1997) Detection of osteopontin as matrix protein in calcium-containing urinary stones. Acta Urol Jpn 43: 623
6.
Zurück zum Zitat Grover P, Stapletpn A, Ryall R (1999) Prothrombin gene expression in rat kidneys provides an opportunity to examine its role in urinary stone. J Am Soc Nephrol 10: S404PubMed Grover P, Stapletpn A, Ryall R (1999) Prothrombin gene expression in rat kidneys provides an opportunity to examine its role in urinary stone. J Am Soc Nephrol 10: S404PubMed
7.
Zurück zum Zitat Nishio S, Hatanaka M, Takeda H, Aoki K, Iseda T, Iwata H, Yokoyama M (2000) Calcium phosphate crystal-associated proteins: α2-HS-glycoprotein, prothrombin F1, and osteopontin. Mol Urol 4: 383PubMed Nishio S, Hatanaka M, Takeda H, Aoki K, Iseda T, Iwata H, Yokoyama M (2000) Calcium phosphate crystal-associated proteins: α2-HS-glycoprotein, prothrombin F1, and osteopontin. Mol Urol 4: 383PubMed
8.
Zurück zum Zitat Umekawa T, Kurita T (1994) Calprotectin-like protein is related to soluble organic matrix in calcium oxalate urinary stone. Biochem Mol Biol Int 34: 309PubMed Umekawa T, Kurita T (1994) Calprotectin-like protein is related to soluble organic matrix in calcium oxalate urinary stone. Biochem Mol Biol Int 34: 309PubMed
9.
Zurück zum Zitat Bennett J, Dretler S, Selengut J, Orme-Johnson W (1994) Identification of the calcium-binding protein calgranulin in the matrix of struvite stones. J Endourol 8: 95PubMed Bennett J, Dretler S, Selengut J, Orme-Johnson W (1994) Identification of the calcium-binding protein calgranulin in the matrix of struvite stones. J Endourol 8: 95PubMed
10.
Zurück zum Zitat Tawada T, Fujita K, Sakakura T, Shibutani T, Nagata T, Iguchi M, Kohri K (1999) Distribution of osteopontin and calprotectin as matrix protein in calcium-containing stone. Urol Res 27: 238CrossRefPubMed Tawada T, Fujita K, Sakakura T, Shibutani T, Nagata T, Iguchi M, Kohri K (1999) Distribution of osteopontin and calprotectin as matrix protein in calcium-containing stone. Urol Res 27: 238CrossRefPubMed
11.
Zurück zum Zitat Prowse C, Esnouf M (1977) The isolation of a new warfarin-sensitive protein from bovine plasma. Biochem Soc Trans 5: 255PubMed Prowse C, Esnouf M (1977) The isolation of a new warfarin-sensitive protein from bovine plasma. Biochem Soc Trans 5: 255PubMed
12.
Zurück zum Zitat Broze G, Miletich J (1984) Human protein Z. J Clin Invest 73: 933PubMed Broze G, Miletich J (1984) Human protein Z. J Clin Invest 73: 933PubMed
13.
Zurück zum Zitat Miletich J, Broze G (1987) Human plasma protein Z antigen: range in normal subjects and effect of warfarin therapy. Blood 69: 1580PubMed Miletich J, Broze G (1987) Human plasma protein Z antigen: range in normal subjects and effect of warfarin therapy. Blood 69: 1580PubMed
14.
Zurück zum Zitat Sejima H, Hayashi T, Deyashiki Y, Nishioka J, Suzuki K (1990) Primary structure of vitamin K-dependent human protein Z. Biochem Biophys Res Commun 171: 661CrossRefPubMed Sejima H, Hayashi T, Deyashiki Y, Nishioka J, Suzuki K (1990) Primary structure of vitamin K-dependent human protein Z. Biochem Biophys Res Commun 171: 661CrossRefPubMed
15.
Zurück zum Zitat Fujimaki K, Yamazaki T, Taniwaki M, Ichinose A (1998) The gene for human protein Z is localized to chromosome 13 at band q34 and is coded by eight regular exons and one alternative exon. Biochemistry 37: 6838CrossRefPubMed Fujimaki K, Yamazaki T, Taniwaki M, Ichinose A (1998) The gene for human protein Z is localized to chromosome 13 at band q34 and is coded by eight regular exons and one alternative exon. Biochemistry 37: 6838CrossRefPubMed
16.
Zurück zum Zitat Ravi S, Mauron T, Lammle B, Wuillemin W (1998) Protein Z in healthy human individuals and in patients with a bleeding tendency. J Haematol 102: 1219CrossRef Ravi S, Mauron T, Lammle B, Wuillemin W (1998) Protein Z in healthy human individuals and in patients with a bleeding tendency. J Haematol 102: 1219CrossRef
17.
Zurück zum Zitat Kaneko K, Yamanobe T, Nakagomi K, Mawatari K, Onoda M, Fujimori S (2004) Detection of protein Z in a renal calculus composed of calcium oxalate monohydrate with the use of LC-MS/MS following 2D-PAGE separation. Anal Biochem 324: 191CrossRefPubMed Kaneko K, Yamanobe T, Nakagomi K, Mawatari K, Onoda M, Fujimori S (2004) Detection of protein Z in a renal calculus composed of calcium oxalate monohydrate with the use of LC-MS/MS following 2D-PAGE separation. Anal Biochem 324: 191CrossRefPubMed
18.
Zurück zum Zitat Rost S, Fregin A, Koch D, Compes M, Muller C, Oldenburg J (2004) Compound heterozygous mutations in the gamma-glutamyl carboxylase gene cause combined deficiency of all vitamin K-dependent blood coagulation factors. Br J Haematol 126: 546CrossRefPubMed Rost S, Fregin A, Koch D, Compes M, Muller C, Oldenburg J (2004) Compound heterozygous mutations in the gamma-glutamyl carboxylase gene cause combined deficiency of all vitamin K-dependent blood coagulation factors. Br J Haematol 126: 546CrossRefPubMed
19.
Zurück zum Zitat Vossen C, Hasstedt S, Rosendaal F, Callas P, Bauer K, Broze G, Hoogendoorn H, Long G, Scott B, Bovill E (2004) Heritability of plasma concentrations of clotting factors and measures of a prethrombotic state in a protein C-deficient family. J Thromb Haemost 2: 242CrossRefPubMed Vossen C, Hasstedt S, Rosendaal F, Callas P, Bauer K, Broze G, Hoogendoorn H, Long G, Scott B, Bovill E (2004) Heritability of plasma concentrations of clotting factors and measures of a prethrombotic state in a protein C-deficient family. J Thromb Haemost 2: 242CrossRefPubMed
20.
Zurück zum Zitat Gorg A, Postel W, Gunther S (1988) The current state of two-dimensional electrophoresis with immobilized pH gradients. Electrophoresis 9: 531CrossRefPubMed Gorg A, Postel W, Gunther S (1988) The current state of two-dimensional electrophoresis with immobilized pH gradients. Electrophoresis 9: 531CrossRefPubMed
21.
Zurück zum Zitat Eng J, McCormack A, Yates J (1994) An approach to correlate tandem mass spectral data of peptides with amino acid sequences in a protein database. J Am Soc Mass Spectrom 5: 976CrossRef Eng J, McCormack A, Yates J (1994) An approach to correlate tandem mass spectral data of peptides with amino acid sequences in a protein database. J Am Soc Mass Spectrom 5: 976CrossRef
22.
Zurück zum Zitat Kawakami T, Nagata T, Muraguchi A, Nishimura T (2000) Alteration of protein composition in mouse thymocytes by signals through T-cell receptor. Electrophoresis 21: 1846CrossRefPubMed Kawakami T, Nagata T, Muraguchi A, Nishimura T (2000) Alteration of protein composition in mouse thymocytes by signals through T-cell receptor. Electrophoresis 21: 1846CrossRefPubMed
23.
Zurück zum Zitat Figeys D (2003) Proteomics in 2002: a year of technical development and wide-ranging application. Anal Chem 75: 2892CrossRef Figeys D (2003) Proteomics in 2002: a year of technical development and wide-ranging application. Anal Chem 75: 2892CrossRef
24.
Zurück zum Zitat Lin D, Tabb D, Yates J III (2003) Large-scale protein identification using mass spectrometry. Biochim Biophys Acta 1646: 1PubMed Lin D, Tabb D, Yates J III (2003) Large-scale protein identification using mass spectrometry. Biochim Biophys Acta 1646: 1PubMed
25.
Zurück zum Zitat Kaneko K, Fujimori S, Kamatani N, Yamanaka H, Yamaoka N, Akaoka I (1997) Microanalysis of pathological crystals and urinary calculi. Adv Exp Med Biol 431: 41 Kaneko K, Fujimori S, Kamatani N, Yamanaka H, Yamaoka N, Akaoka I (1997) Microanalysis of pathological crystals and urinary calculi. Adv Exp Med Biol 431: 41
26.
Zurück zum Zitat Kaneko K, Maru M (2000) Determination of urate crystal formation using flow cytometry and micro area X-ray diffractometry. Anal Biochem 281: 9CrossRefPubMed Kaneko K, Maru M (2000) Determination of urate crystal formation using flow cytometry and micro area X-ray diffractometry. Anal Biochem 281: 9CrossRefPubMed
27.
Zurück zum Zitat Kaneko K, Fujimori S, Ito H, Nakayama Y, Oyama H, Kanbayashi T, Miyashita H, Akaoka I (1988)Renal handling of hypoxanthine and xanthine in normal subjects and in four cases of idiopathic renal hypouricemia. J Rheumatol 15: 325PubMed Kaneko K, Fujimori S, Ito H, Nakayama Y, Oyama H, Kanbayashi T, Miyashita H, Akaoka I (1988)Renal handling of hypoxanthine and xanthine in normal subjects and in four cases of idiopathic renal hypouricemia. J Rheumatol 15: 325PubMed
28.
Zurück zum Zitat Shevchenko A, Wilm M, Vorm O, Mann M (1996) Mass spectrometric sequencing of proteins from silver-stained polyacrylamide gels. Anal Chem 68: 850CrossRefPubMed Shevchenko A, Wilm M, Vorm O, Mann M (1996) Mass spectrometric sequencing of proteins from silver-stained polyacrylamide gels. Anal Chem 68: 850CrossRefPubMed
29.
Zurück zum Zitat Bleasby A, Akrigg D, Attwood T (1994) OWL-A non-redundant composite protein sequence database. Nucleic Acids Res 22: 3574PubMed Bleasby A, Akrigg D, Attwood T (1994) OWL-A non-redundant composite protein sequence database. Nucleic Acids Res 22: 3574PubMed
30.
Zurück zum Zitat Campopiano D, Clarke D, Polfer N, Barran P, Langley R (2004) Structure-activity relationships in defensin dimers. A novel link between beta-defensin tertiary structure and antimicrobial activity. J Biol Chem (2004) 279: 48671 Campopiano D, Clarke D, Polfer N, Barran P, Langley R (2004) Structure-activity relationships in defensin dimers. A novel link between beta-defensin tertiary structure and antimicrobial activity. J Biol Chem (2004) 279: 48671
31.
Zurück zum Zitat Ganz T (2004) Defensins: antimicrobial peptides of vertebrates. C R Biol 327: 539PubMed Ganz T (2004) Defensins: antimicrobial peptides of vertebrates. C R Biol 327: 539PubMed
32.
Zurück zum Zitat Ozasa H, Suzuki T, Takahashi K, Ota K (1989) Protein components of amyloid-like kidney stones of chronic hemodialysis patients. Nephron 53: 257PubMed Ozasa H, Suzuki T, Takahashi K, Ota K (1989) Protein components of amyloid-like kidney stones of chronic hemodialysis patients. Nephron 53: 257PubMed
33.
Zurück zum Zitat Barak M, Ginesin Y, Hornstein L, Levin R, Gruener N (1990) Excretion of urinary protein induced by extracorporeal piezoelectric lithotripsy. Br J Urol 66: 575PubMed Barak M, Ginesin Y, Hornstein L, Levin R, Gruener N (1990) Excretion of urinary protein induced by extracorporeal piezoelectric lithotripsy. Br J Urol 66: 575PubMed
Metadaten
Titel
Analysis of urinary calculi obtained from a patient with idiopathic hypouricemia using micro area x-ray diffractometry and LC-MS
verfasst von
Kiyoko Kaneko
Tomoyo Yamanobe
Maki Onoda
Ken-ichi Mawatari
Kazuya Nakagomi
Shin Fujimori
Publikationsdatum
01.12.2005
Verlag
Springer-Verlag
Erschienen in
Urolithiasis / Ausgabe 6/2005
Print ISSN: 2194-7228
Elektronische ISSN: 2194-7236
DOI
https://doi.org/10.1007/s00240-005-0480-8

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