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Profile Publications (47)
XB-PERS-2660

Publications By Kei Miyamoto

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The Actin-Family Protein Arp4 Is a Novel Suppressor for the Formation and Functions of Nuclear F-Actin., Yamazaki S, Gerhold C, Yamamoto K, Ueno Y, Grosse R, Miyamoto K, Harata M., Cells. March 19, 2020; 9 (3):   


Role of the putative PKC phosphorylation sites of the type IIc sodium-dependent phosphate transporter in parathyroid hormone regulation., Fujii T, Segawa H, Hanazaki A, Nishiguchi S, Minoshima S, Ohi A, Tominaga R, Sasaki S, Tanifuji K, Koike M, Arima Y, Shiozaki Y, Kaneko I, Ito M, Tatsumi S, Miyamoto KI., Clin Exp Nephrol. July 1, 2019; 23 (7): 898-907.


Various nuclear reprogramming systems using egg and oocyte materials., Miyamoto K., J Reprod Dev. June 14, 2019; 65 (3): 203-208.   


Analysis of opossum kidney NaPi-IIc sodium-dependent phosphate transporter to understand Pi handling in human kidney., Fujii T, Shiozaki Y, Segawa H, Nishiguchi S, Hanazaki A, Noguchi M, Kirino R, Sasaki S, Tanifuji K, Koike M, Yokoyama M, Arima Y, Kaneko I, Tatsumi S, Ito M, Miyamoto KI., Clin Exp Nephrol. March 1, 2019; 23 (3): 313-324.


Chromatin Accessibility Impacts Transcriptional Reprogramming in Oocytes., Miyamoto K, Nguyen KT, Allen GE, Jullien J, Kumar D, Otani T, Bradshaw CR, Livesey FJ, Kellis M, Gurdon JB., Cell Rep. July 10, 2018; 24 (2): 304-311.   


Gene Resistance to Transcriptional Reprogramming following Nuclear Transfer Is Directly Mediated by Multiple Chromatin-Repressive Pathways., Jullien J, Vodnala M, Pasque V, Oikawa M, Miyamoto K, Allen G, David SA, Brochard V, Wang S, Bradshaw C, Koseki H, Sartorelli V, Beaujean N, Gurdon J., Mol Cell. March 2, 2017; 65 (5): 873-884.e8.   


Sperm is epigenetically programmed to regulate gene transcription in embryos., Teperek M, Simeone A, Gaggioli V, Miyamoto K, Allen GE, Erkek S, Kwon T, Marcotte EM, Zegerman P, Bradshaw CR, Peters AH, Gurdon JB, Jullien J., Genome Res. August 1, 2016; 26 (8): 1034-46.


The Expression of TALEN before Fertilization Provides a Rapid Knock-Out Phenotype in Xenopus laevis Founder Embryos., Miyamoto K, Suzuki KT, Suzuki M, Sakane Y, Sakuma T, Herberg S, Simeone A, Simpson D, Jullien J, Yamamoto T, Gurdon JB., PLoS One. November 18, 2015; 10 (11): e0142946.   


Histone H3 lysine 9 trimethylation is required for suppressing the expression of an embryonically activated retrotransposon in Xenopus laevis., Herberg S, Simeone A, Oikawa M, Jullien J, Bradshaw CR, Teperek M, Gurdon J, Miyamoto K., Sci Rep. September 21, 2015; 5 14236.   


Manipulation and in vitro maturation of Xenopus laevis oocytes, followed by intracytoplasmic sperm injection, to study embryonic development., Miyamoto K, Simpson D, Gurdon JB., J Vis Exp. February 9, 2015; (96): e52496.   


Sperm and spermatids contain different proteins and bind distinct egg factors., Teperek M, Miyamoto K, Simeone A, Feret R, Deery MJ, Gurdon JB, Jullien J., Int J Mol Sci. September 19, 2014; 15 (9): 16719-40.   


Hierarchical molecular events driven by oocyte-specific factors lead to rapid and extensive reprogramming., Jullien J, Miyamoto K, Pasque V, Allen GE, Bradshaw CR, Garrett NJ, Halley-Stott RP, Kimura H, Ohsumi K, Gurdon JB., Mol Cell. August 21, 2014; 55 (4): 524-36.   


Transcriptional regulation and nuclear reprogramming: roles of nuclear actin and actin-binding proteins., Miyamoto K, Gurdon JB., Cell Mol Life Sci. September 1, 2013; 70 (18): 3289-302.   


Nuclear Wave1 is required for reprogramming transcription in oocytes and for normal development., Miyamoto K, Teperek M, Yusa K, Allen GE, Bradshaw CR, Gurdon JB., Science. August 30, 2013; 341 (6149): 1002-5.


Processing and stability of type IIc sodium-dependent phosphate cotransporter mutations in patients with hereditary hypophosphatemic rickets with hypercalciuria., Haito-Sugino S, Ito M, Ohi A, Shiozaki Y, Kangawa N, Nishiyama T, Aranami F, Sasaki S, Mori A, Kido S, Tatsumi S, Segawa H, Miyamoto K., Am J Physiol Cell Physiol. May 1, 2012; 302 (9): C1316-30.


Identification and functional analysis of a splice variant of mouse sodium-dependent phosphate transporter Npt2c., Kuwahara S, Aranami F, Segawa H, Onitsuka A, Honda N, Tominaga R, Hanabusa E, Kaneko I, Yamanaka S, Sasaki S, Ohi A, Nomura K, Tatsumi S, Kido S, Ito M, Miyamoto K., J Med Invest. January 1, 2012; 59 (1-2): 116-26.


Epigenetic factors influencing resistance to nuclear reprogramming., Pasque V, Jullien J, Miyamoto K, Halley-Stott RP, Gurdon JB., Trends Genet. December 1, 2011; 27 (12): 516-25.   


Nuclear actin in transcriptional reprogramming by oocytes: are actin nucleators key players?, Miyamoto K, Pasque V, Gurdon JB., Cell Cycle. September 15, 2011; 10 (18): 3040-1.


Nuclear actin and transcriptional activation., Miyamoto K, Gurdon JB., Commun Integr Biol. September 1, 2011; 4 (5): 582-3.


Mechanisms of nuclear reprogramming by eggs and oocytes: a deterministic process?, Jullien J, Pasque V, Halley-Stott RP, Miyamoto K, Gurdon JB., Nat Rev Mol Cell Biol. June 23, 2011; 12 (7): 453-9.


Nuclear actin polymerization is required for transcriptional reprogramming of Oct4 by oocytes., Miyamoto K, Pasque V, Jullien J, Gurdon JB., Genes Dev. May 1, 2011; 25 (9): 946-58.   


Mammalian nuclear transplantation to Germinal Vesicle stage Xenopus oocytes - a method for quantitative transcriptional reprogramming., Halley-Stott RP, Pasque V, Astrand C, Miyamoto K, Simeoni I, Jullien J, Gurdon JB., Methods. May 1, 2010; 51 (1): 56-65.   


Reversible membrane permeabilization of mammalian cells treated with digitonin and its use for inducing nuclear reprogramming by Xenopus egg extracts., Miyamoto K, Yamashita T, Tsukiyama T, Kitamura N, Minami N, Yamada M, Imai H., Cloning Stem Cells. December 1, 2008; 10 (4): 535-42.


Reprogramming events of mammalian somatic cells induced by Xenopus laevis egg extracts., Miyamoto K, Furusawa T, Ohnuki M, Goel S, Tokunaga T, Minami N, Yamada M, Ohsumi K, Imai H., Mol Reprod Dev. October 1, 2007; 74 (10): 1268-77.


Cloning, gene structure and dietary regulation of the type-IIc Na/Pi cotransporter in the mouse kidney., Ohkido I, Segawa H, Yanagida R, Nakamura M, Miyamoto K., Pflugers Arch. April 1, 2003; 446 (1): 106-15.


Growth-related renal type II Na/Pi cotransporter., Segawa H, Kaneko I, Takahashi A, Kuwahata M, Ito M, Ohkido I, Tatsumi S, Miyamoto K., J Biol Chem. May 31, 2002; 277 (22): 19665-72.


Human L-type amino acid transporter 1 (LAT1): characterization of function and expression in tumor cell lines., Yanagida O, Kanai Y, Chairoungdua A, Kim DK, Segawa H, Nii T, Cha SH, Matsuo H, Fukushima J, Fukasawa Y, Tani Y, Taketani Y, Uchino H, Kim JY, Inatomi J, Okayasu I, Miyamoto K, Takeda E, Goya T, Endou H., Biochim Biophys Acta. October 1, 2001; 1514 (2): 291-302.


Multiplicity, structures, and endocrine and exocrine natures of eel fucose-binding lectins., Honda S, Kashiwagi M, Miyamoto K, Takei Y, Hirose S., J Biol Chem. October 20, 2000; 275 (42): 33151-7.   


Transport properties of a system y+L neutral and basic amino acid transporter. Insights into the mechanisms of substrate recognition., Kanai Y, Fukasawa Y, Cha SH, Segawa H, Chairoungdua A, Kim DK, Matsuo H, Kim JY, Miyamoto K, Takeda E, Endou H., J Biol Chem. July 7, 2000; 275 (27): 20787-93.


Faropenem transport across the renal epithelial luminal membrane via inorganic phosphate transporter Npt1., Uchino H, Tamai I, Yabuuchi H, China K, Miyamoto K, Takeda E, Tsuji A., Antimicrob Agents Chemother. March 1, 2000; 44 (3): 574-7.


Identification and functional analysis of three isoforms for the Na+-dependent phosphate co-transporter (NaPi-2) in rat kidney., Miyamoto K, Tatsumi S, Segawa H, Ohkido I, Takeda E., Nephrol Dial Transplant. January 1, 2000; 15 Suppl 6 31-3.


Regulation of intestinal Na+-dependent phosphate co-transporters by a low-phosphate diet and 1,25-dihydroxyvitamin D3., Katai K, Miyamoto K, Kishida S, Segawa H, Nii T, Tanaka H, Tani Y, Arai H, Tatsumi S, Morita K, Taketani Y, Takeda E., Biochem J. November 1, 1999; 343 Pt 3 705-12.


Identification and functional characterization of a Na+-independent neutral amino acid transporter with broad substrate selectivity., Segawa H, Fukasawa Y, Miyamoto K, Takeda E, Endou H, Kanai Y., J Biol Chem. July 9, 1999; 274 (28): 19745-51.


Nicotinamide inhibits sodium-dependent phosphate cotransport activity in rat small intestine., Katai K, Tanaka H, Tatsumi S, Fukunaga Y, Genjida K, Morita K, Kuboyama N, Suzuki T, Akiba T, Miyamoto K, Takeda E., Nephrol Dial Transplant. May 1, 1999; 14 (5): 1195-201.


Regulation of PiT-1, a sodium-dependent phosphate co-transporter in rat parathyroid glands., Miyamoto K, Tatsumi S, Segawa H, Morita K, Nii T, Fujioka A, Kitano M, Inoue Y, Takeda E., Nephrol Dial Transplant. January 1, 1999; 14 Suppl 1 73-5.


Identification of three isoforms for the Na+-dependent phosphate cotransporter (NaPi-2) in rat kidney., Tatsumi S, Miyamoto K, Kouda T, Motonaga K, Katai K, Ohkido I, Morita K, Segawa H, Tani Y, Yamamoto H, Taketani Y, Takeda E., J Biol Chem. October 30, 1998; 273 (44): 28568-75.


Expression cloning and characterization of a transporter for large neutral amino acids activated by the heavy chain of 4F2 antigen (CD98)., Kanai Y, Segawa H, Miyamoto K, Uchino H, Takeda E, Endou H., J Biol Chem. September 11, 1998; 273 (37): 23629-32.


Hepatic sinusoidal membrane transport of anionic drugs mediated by anion transporter Npt1., Yabuuchi H, Tamai I, Morita K, Kouda T, Miyamoto K, Takeda E, Tsuji A., J Pharmacol Exp Ther. September 1, 1998; 286 (3): 1391-6.


Molecular cloning and hormonal regulation of PiT-1, a sodium-dependent phosphate cotransporter from rat parathyroid glands., Tatsumi S, Segawa H, Morita K, Haga H, Kouda T, Yamamoto H, Inoue Y, Nii T, Katai K, Taketani Y, Miyamoto KI, Takeda E., Endocrinology. April 1, 1998; 139 (4): 1692-9.


Cloning, functional expression and dietary regulation of the mouse neutral and basic amino acid transporter (NBAT)., Segawa H, Miyamoto K, Ogura Y, Haga H, Morita K, Katai K, Tatsumi S, Nii T, Taketani Y, Takeda E., Biochem J. December 1, 1997; 328 ( Pt 2) 657-64.


Relative contributions of Na+-dependent phosphate co-transporters to phosphate transport in mouse kidney: RNase H-mediated hybrid depletion analysis., Miyamoto K, Segawa H, Morita K, Nii T, Tatsumi S, Taketani Y, Takeda E., Biochem J. November 1, 1997; 327 ( Pt 3) 735-9.


The predominant contribution of oligopeptide transporter PepT1 to intestinal absorption of beta-lactam antibiotics in the rat small intestine., Tamai I, Nakanishi T, Hayashi K, Terao T, Sai Y, Shiraga T, Miyamoto K, Takeda E, Higashida H, Tsuji A., J Pharm Pharmacol. August 1, 1997; 49 (8): 796-801.


Effects of truncation of the COOH-terminal region of a Na+-independent neutral and basic amino acid transporter on amino acid transport in Xenopus oocytes., Miyamoto K, Segawa H, Tatsumi S, Katai K, Yamamoto H, Taketani Y, Haga H, Morita K, Takeda E., J Biol Chem. July 12, 1996; 271 (28): 16758-63.


Role of rBAT gene products in cystinuria., Miyamoto K, Katai K, Tatsumi S, Sone K, Segawa H, Takada K, Yamamoto H, Taketani Y, Morita K, Kanayama H, Kagawa S, Takeda E., Int J Urol. January 1, 1996; 3 (1 Suppl): S92-4.


Mutations of the basic amino acid transporter gene associated with cystinuria., Miyamoto K, Katai K, Tatsumi S, Sone K, Segawa H, Yamamoto H, Taketani Y, Takada K, Morita K, Kanayama H., Biochem J. September 15, 1995; 310 ( Pt 3) 951-5.


Cloning and functional expression of a Na(+)-dependent phosphate co-transporter from human kidney: cDNA cloning and functional expression., Miyamoto K, Tatsumi S, Sonoda T, Yamamoto H, Minami H, Taketani Y, Takeda E., Biochem J. January 1, 1995; 305 ( Pt 1) 81-5.


Characterization of the rabbit intestinal fructose transporter (GLUT5)., Miyamoto K, Tatsumi S, Morimoto A, Minami H, Yamamoto H, Sone K, Taketani Y, Nakabou Y, Oka T, Takeda E., Biochem J. November 1, 1994; 303 ( Pt 3) 877-83.

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