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Items: 1 to 20 of 88

1.

A translocation causing increased alpha-klotho level results in hypophosphatemic rickets and hyperparathyroidism.

Brownstein CA, Adler F, Nelson-Williams C, Iijima J, Li P, Imura A, Nabeshima Y, Reyes-Mugica M, Carpenter TO, Lifton RP.

Proc Natl Acad Sci U S A. 2008 Mar 4;105(9):3455-60. doi: 10.1073/pnas.0712361105. Epub 2008 Feb 28.

2.

Circulating levels of soluble klotho and FGF23 in X-linked hypophosphatemia: circadian variance, effects of treatment, and relationship to parathyroid status.

Carpenter TO, Insogna KL, Zhang JH, Ellis B, Nieman S, Simpson C, Olear E, Gundberg CM.

J Clin Endocrinol Metab. 2010 Nov;95(11):E352-7. doi: 10.1210/jc.2010-0589. Epub 2010 Aug 4.

3.

Role of FGF23 in vitamin D and phosphate metabolism: implications in chronic kidney disease.

Quarles LD.

Exp Cell Res. 2012 May 15;318(9):1040-8. doi: 10.1016/j.yexcr.2012.02.027. Epub 2012 Mar 7. Review.

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[Updates on rickets and osteomalacia: various roles of Klotho and FGF23 in vivo ].

Imura A.

Clin Calcium. 2013 Oct;23(10):1476-82. doi: CliCa131014761482. Review. Japanese.

PMID:
24076646
7.

Increased bone volume and correction of HYP mouse hypophosphatemia in the Klotho/HYP mouse.

Brownstein CA, Zhang J, Stillman A, Ellis B, Troiano N, Adams DJ, Gundberg CM, Lifton RP, Carpenter TO.

Endocrinology. 2010 Feb;151(2):492-501. doi: 10.1210/en.2009-0564. Epub 2009 Dec 1.

8.

[CKD-MBD (Chronic Kidney Disease-Mineral and Bone Disorder). Role of FGF23-Klotho axis in CKD-MBD].

Komaba H.

Clin Calcium. 2010 Jul;20(7):1028-36. doi: CliCa100710281036. Review. Japanese.

PMID:
20585181
9.

Parathyroid Klotho and FGF-receptor 1 expression decline with renal function in hyperparathyroid patients with chronic kidney disease and kidney transplant recipients.

Krajisnik T, Olauson H, Mirza MA, Hellman P, Akerström G, Westin G, Larsson TE, Björklund P.

Kidney Int. 2010 Nov;78(10):1024-32. doi: 10.1038/ki.2010.260. Epub 2010 Aug 4.

10.

New insights into the FGF23-Klotho axis.

Olauson H, Vervloet MG, Cozzolino M, Massy ZA, Ureña Torres P, Larsson TE.

Semin Nephrol. 2014 Nov;34(6):586-97. doi: 10.1016/j.semnephrol.2014.09.005. Review.

PMID:
25498378
11.

Soluble klotho and autosomal dominant polycystic kidney disease.

Pavik I, Jaeger P, Ebner L, Poster D, Krauer F, Kistler AD, Rentsch K, Andreisek G, Wagner CA, Devuyst O, Wüthrich RP, Schmid C, Serra AL.

Clin J Am Soc Nephrol. 2012 Feb;7(2):248-57. doi: 10.2215/CJN.09020911. Epub 2011 Dec 22.

12.

Serum klotho: relation to fibroblast growth factor-23 and other regulators of phosphate metabolism in children with chronic kidney disease.

Sawires HK, Essam RM, Morgan MF, Mahmoud RA.

Nephron. 2015;129(4):293-9. doi: 10.1159/000377633. Epub 2015 Mar 10.

PMID:
25766835
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14.

Increased parathyroid expression of klotho in uremic rats.

Hofman-Bang J, Martuseviciene G, Santini MA, Olgaard K, Lewin E.

Kidney Int. 2010 Dec;78(11):1119-27. doi: 10.1038/ki.2010.215. Epub 2010 Jul 14.

15.

Impact of parathyroidectomy on serum FGF23 and soluble Klotho in hemodialysis patients with severe secondary hyperparathyroidism.

Takahashi H, Komaba H, Takahashi Y, Sawada K, Tatsumi R, Kanai G, Suzuki H, Kakuta T, Fukagawa M.

J Clin Endocrinol Metab. 2014 Apr;99(4):E652-8. doi: 10.1210/jc.2013-4050. Epub 2014 Jan 29.

PMID:
24476081
16.

Klotho gene, phosphocalcic metabolism, and survival in dialysis.

Torres PU, Prié D, Beck L, De Brauwere D, Leroy C, Friedlander G.

J Ren Nutr. 2009 Jan;19(1):50-6. doi: 10.1053/j.jrn.2008.10.018. Review.

PMID:
19121771
17.

Osteocyte regulation of phosphate homeostasis and bone mineralization underlies the pathophysiology of the heritable disorders of rickets and osteomalacia.

Feng JQ, Clinkenbeard EL, Yuan B, White KE, Drezner MK.

Bone. 2013 Jun;54(2):213-21. doi: 10.1016/j.bone.2013.01.046. Epub 2013 Feb 9. Review.

18.

Coupling fibroblast growth factor 23 production and cleavage: iron deficiency, rickets, and kidney disease.

Wolf M, White KE.

Curr Opin Nephrol Hypertens. 2014 Jul;23(4):411-9. doi: 10.1097/01.mnh.0000447020.74593.6f. Review.

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