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Dive into the research topics where Fumiyuki Hattori is active.

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Featured researches published by Fumiyuki Hattori.


Nature Methods | 2010

Nongenetic method for purifying stem cell-derived cardiomyocytes.

Fumiyuki Hattori; Hao Chen; Hiromi Yamashita; Shugo Tohyama; Yu Suke Satoh; Shinsuke Yuasa; Weizhen Li; Hiroyuki Yamakawa; Tomofumi Tanaka; Takeshi Onitsuka; Kenichiro Shimoji; Yohei Ohno; Toru Egashira; Ruri Kaneda; Mitsushige Murata; Kyoko Hidaka; Takayuki Morisaki; Erika Sasaki; Takeshi Suzuki; Motoaki Sano; Shinji Makino; Shinzo Oikawa; Keiichi Fukuda

Several applications of pluripotent stem cell (PSC)-derived cardiomyocytes require elimination of undifferentiated cells. A major limitation for cardiomyocyte purification is the lack of easy and specific cell marking techniques. We found that a fluorescent dye that labels mitochondria, tetramethylrhodamine methyl ester perchlorate, could be used to selectively mark embryonic and neonatal rat cardiomyocytes, as well as mouse, marmoset and human PSC-derived cardiomyocytes, and that the cells could subsequently be enriched (>99% purity) by fluorescence-activated cell sorting. Purified cardiomyocytes transplanted into testes did not induce teratoma formation. Moreover, aggregate formation of PSC-derived cardiomyocytes through homophilic cell-cell adhesion improved their survival in the immunodeficient mouse heart. Our approaches will aid in the future success of using PSC-derived cardiomyocytes for basic and clinical applications.


Nature Biotechnology | 2005

Transient inhibition of BMP signaling by Noggin induces cardiomyocyte differentiation of mouse embryonic stem cells.

Shinsuke Yuasa; Yuji Itabashi; Uichi Koshimizu; Tomofumi Tanaka; Keijiro Sugimura; Masayoshi Kinoshita; Fumiyuki Hattori; Shin Ichi Fukami; Takuya Shimazaki; Hideyuki Okano; Satoshi Ogawa; Keiichi Fukuda

Embryonic stem (ES) cells are a promising source of cardiomyocytes, but clinical application of ES cells has been hindered by the lack of reliable selective differentiation methods. Differentiation into any lineage is partly dependent on the regulatory mechanisms of normal early development. Although several signals, including bone morphogenetic protein (BMP), Wnt and FGF, are involved in heart development, scarce evidence is available about the exact signals that mediate cardiomyocyte differentiation. While investigating the involvement of BMP signaling in early heart formation in the mouse, we found that the BMP antagonist Noggin is transiently but strongly expressed in the heart-forming region during gastrulation and acts at the level of induction of mesendoderm to establish conditions conducive to cardiogenesis. We applied this finding to develop an effective protocol for obtaining cardiomyocytes from mouse ES cells by inhibition of BMP signaling.


Cell Stem Cell | 2013

Distinct Metabolic Flow Enables Large-Scale Purification of Mouse and Human Pluripotent Stem Cell-Derived Cardiomyocytes

Shugo Tohyama; Fumiyuki Hattori; Motoaki Sano; Takako Hishiki; Yoshiko Nagahata; Tomomi Matsuura; Hisayuki Hashimoto; Tomoyuki Suzuki; Hiromi Yamashita; Yusuke Satoh; Toru Egashira; Tomohisa Seki; Naoto Muraoka; Hiroyuki Yamakawa; Yasuyuki Ohgino; Tomofumi Tanaka; Masatoshi Yoichi; Shinsuke Yuasa; Mitsushige Murata; Makoto Suematsu; Keiichi Fukuda

Heart disease remains a major cause of death despite advances in medical technology. Heart-regenerative therapy that uses pluripotent stem cells (PSCs) is a potentially promising strategy for patients with heart disease, but the inability to generate highly purified cardiomyocytes in sufficient quantities has been a barrier to realizing this potential. Here, we report a nongenetic method for mass-producing cardiomyocytes from mouse and human PSC derivatives that is based on the marked biochemical differences in glucose and lactate metabolism between cardiomyocytes and noncardiomyocytes, including undifferentiated cells. We cultured PSC derivatives with glucose-depleted culture medium containing abundant lactate and found that only cardiomyocytes survived. Using this approach, we obtained cardiomyocytes of up to 99% purity that did not form tumors after transplantation. We believe that our technological method broadens the range of potential applications for purified PSC-derived cardiomyocytes and could facilitate progress toward PSC-based cardiac regenerative therapy.


Biochemical and Biophysical Research Communications | 2009

In vitro pharmacologic testing using human induced pluripotent stem cell-derived cardiomyocytes

Tomofumi Tanaka; Shugo Tohyama; Mitsushige Murata; Fumimasa Nomura; Tomoyuki Kaneko; Hao Chen; Fumiyuki Hattori; Toru Egashira; Tomohisa Seki; Yohei Ohno; Uichi Koshimizu; Shinsuke Yuasa; Satoshi Ogawa; Shinya Yamanaka; Kenji Yasuda; Keiichi Fukuda

The lethal ventricular arrhythmia Torsade de pointes (TdP) is the most common reason for the withdrawal or restricted use of many cardiovascular and non-cardiovascular drugs. The lack of an in vitro model to detect pro-arrhythmic effects on human heart cells hinders the development of new drugs. We hypothesized that recently established human induced pluripotent stem (hiPS) cells could be used in an in vitro drug screening model. In this study, hiPS cells were driven to differentiate into functional cardiomyocytes, which expressed cardiac markers including Nkx2.5, GATA4, and atrial natriuretic peptide. The hiPS-derived cardiomyocytes (hiPS-CMs) were analyzed using a multi electrode assay. The application of ion channel inhibitors resulted in dose-dependent changes to the field potential waveform, and these changes were identical to those induced in the native cardiomyocytes. This study shows that hiPS-CMs represent a promising in vitro model for cardiac electrophysiologic studies and drug screening.


Nature Medicine | 2007

Sema3a maintains normal heart rhythm through sympathetic innervation patterning

Masaki Ieda; Hideaki Kanazawa; Kensuke Kimura; Fumiyuki Hattori; Yasuyo Ieda; Masahiko Taniguchi; Jong-Kook Lee; Keisuke Matsumura; Yuichi Tomita; Shunichiro Miyoshi; Kouji Shimoda; Shinji Makino; Motoaki Sano; Itsuo Kodama; Satoshi Ogawa; Keiichi Fukuda

Sympathetic innervation is critical for effective cardiac function. However, the developmental and regulatory mechanisms determining the density and patterning of cardiac sympathetic innervation remain unclear, as does the role of this innervation in arrhythmogenesis. Here we show that a neural chemorepellent, Sema3a, establishes cardiac sympathetic innervation patterning. Sema3a is abundantly expressed in the trabecular layer in early-stage embryos but is restricted to Purkinje fibers after birth, forming an epicardial-to-endocardial transmural sympathetic innervation patterning. Sema3a−/− mice lacked a cardiac sympathetic innervation gradient and exhibited stellate ganglia malformation, which led to marked sinus bradycardia due to sympathetic dysfunction. Cardiac-specific overexpression of Sema3a in transgenic mice (SemaTG) was associated with reduced sympathetic innervation and attenuation of the epicardial-to-endocardial innervation gradient. SemaTG mice demonstrated sudden death and susceptibility to ventricular tachycardia, due to catecholamine supersensitivity and prolongation of the action potential duration. We conclude that appropriate cardiac Sema3a expression is needed for sympathetic innervation patterning and is critical for heart rate control.


Cardiovascular Research | 2012

Disease characterization using LQTS-specific induced pluripotent stem cells

Toru Egashira; Shinsuke Yuasa; Tomoyuki Suzuki; Yoshiyasu Aizawa; Hiroyuki Yamakawa; Tomohiro Matsuhashi; Yohei Ohno; Shugo Tohyama; Shinichiro Okata; Tomohisa Seki; Yusuke Kuroda; Kojiro Yae; Hisayuki Hashimoto; Tomofumi Tanaka; Fumiyuki Hattori; Toshiaki Sato; Shunichiro Miyoshi; Seiji Takatsuki; Mitsushige Murata; Junko Kurokawa; Tetsushi Furukawa; Naomasa Makita; Takeshi Aiba; Wataru Shimizu; Minoru Horie; Kaichiro Kamiya; Itsuo Kodama; Satoshi Ogawa; Keiichi Fukuda

AIMS Long QT syndrome (LQTS) is an inheritable and life-threatening disease; however, it is often difficult to determine disease characteristics in sporadic cases with novel mutations, and more precise analysis is necessary for the successful development of evidence-based clinical therapies. This study thus sought to better characterize ion channel cardiac disorders using induced pluripotent stem cells (iPSCs). METHODS AND RESULTS We reprogrammed somatic cells from a patient with sporadic LQTS and from controls, and differentiated them into cardiomyocytes through embryoid body (EB) formation. Electrophysiological analysis of the LQTS-iPSC-derived EBs using a multi-electrode array (MEA) system revealed a markedly prolonged field potential duration (FPD). The IKr blocker E4031 significantly prolonged FPD in control- and LQTS-iPSC-derived EBs and induced frequent severe arrhythmia only in LQTS-iPSC-derived EBs. The IKs blocker chromanol 293B did not prolong FPD in the LQTS-iPSC-derived EBs, but significantly prolonged FPD in the control EBs, suggesting the involvement of IKs disturbance in the patient. Patch-clamp analysis and immunostaining confirmed a dominant-negative role for 1893delC in IKs channels due to a trafficking deficiency in iPSC-derived cardiomyocytes and human embryonic kidney (HEK) cells. CONCLUSIONS This study demonstrated that iPSCs could be useful to characterize LQTS disease as well as drug responses in the LQTS patient with a novel mutation. Such analyses may in turn lead to future progress in personalized medicine.


Journal of Neurochemistry | 2003

Mitochondrial peroxiredoxin‐3 protects hippocampal neurons from excitotoxic injury in vivo

Fumiyuki Hattori; Norihito Murayama; Takafumi Noshita; Shinzo Oikawa

Mitochondria are involved in excitotoxic damage of nerve cells. Following the breakdown of the calcium‐buffering ability of mitochondria, mitochondrial calcium overload induces reactive oxygen species (ROS) bursts that produce free radicals and open permeability transition pores, ultimately leading to neuronal cell death. In the present study, we focused on a mitochondrial antioxidant protein, peroxiredoxin‐3 (Prx‐3), to investigate the mechanism by which toxic properties of ROS were up‐regulated in mitochondria of damaged nerve cells. Immunohistochemical analysis revealed that Prx‐3 protein exists in mitochondria of rat hippocampus, whereas we found a significant decrease in Prx‐3 mRNA and protein levels associated with an increase in nitrated proteins in the rat hippocampus injured by microinjection of ibotenic acid. Furthermore, in vivo adenoviral gene transfer of Prx‐3 completely inhibited protein nitration and markedly reduced gliosis, a post‐neuronal cell death event. Since mitochondrial Prx‐3 seems to be neuroprotective against oxidative insults, our findings suggest that Prx‐3 up‐regulation might be a useful novel approach for the management of neurodegenerative diseases.


Circulation Research | 2009

Metabolic Remodeling Induced by Mitochondrial Aldehyde Stress Stimulates Tolerance to Oxidative Stress in the Heart

Jin Endo; Motoaki Sano; Takaharu Katayama; Takako Hishiki; Ken Shinmura; Shintaro Morizane; Tomohiro Matsuhashi; Yoshinori Katsumata; Yan Zhang; Hideyuki Ito; Yoshiko Nagahata; Satori A. Marchitti; Kiyomi Nishimaki; Alexander M. Wolf; Hiroki Nakanishi; Fumiyuki Hattori; Vasilis Vasiliou; Takeshi Adachi; Ikuroh Ohsawa; Ryo Taguchi; Yoshio Hirabayashi; Shigeo Ohta; Makoto Suematsu; Satoshi Ogawa; Keiichi Fukuda

Rationale: Aldehyde accumulation is regarded as a pathognomonic feature of oxidative stress–associated cardiovascular disease. Objective: We investigated how the heart compensates for the accelerated accumulation of aldehydes. Methods and Results: Aldehyde dehydrogenase 2 (ALDH2) has a major role in aldehyde detoxification in the mitochondria, a major source of aldehydes. Transgenic (Tg) mice carrying an Aldh2 gene with a single nucleotide polymorphism (Aldh2*2) were developed. This polymorphism has a dominant-negative effect and the Tg mice exhibited impaired ALDH activity against a broad range of aldehydes. Despite a shift toward the oxidative state in mitochondrial matrices, Aldh2*2 Tg hearts displayed normal left ventricular function by echocardiography and, because of metabolic remodeling, an unexpected tolerance to oxidative stress induced by ischemia/reperfusion injury. Mitochondrial aldehyde stress stimulated eukaryotic translation initiation factor 2&agr; phosphorylation. Subsequent translational and transcriptional activation of activating transcription factor-4 promoted the expression of enzymes involved in amino acid biosynthesis and transport, ultimately providing precursor amino acids for glutathione biosynthesis. Intracellular glutathione levels were increased 1.37-fold in Aldh2*2 Tg hearts compared with wild-type controls. Heterozygous knockout of Atf4 blunted the increase in intracellular glutathione levels in Aldh2*2 Tg hearts, thereby attenuating the oxidative stress–resistant phenotype. Furthermore, glycolysis and NADPH generation via the pentose phosphate pathway were activated in Aldh2*2 Tg hearts. (NADPH is required for the recycling of oxidized glutathione.) Conclusions: The findings of the present study indicate that mitochondrial aldehyde stress in the heart induces metabolic remodeling, leading to activation of the glutathione–redox cycle, which confers resistance against acute oxidative stress induced by ischemia/reperfusion.


Cell Stem Cell | 2010

G-CSF Promotes the Proliferation of Developing Cardiomyocytes In Vivo and in Derivation from ESCs and iPSCs

Kenichiro Shimoji; Shinsuke Yuasa; Takeshi Onizuka; Fumiyuki Hattori; Tomofumi Tanaka; Mie Hara; Yohei Ohno; Hao Chen; Toru Egasgira; Tomohisa Seki; Kojiro Yae; Uichi Koshimizu; Satoshi Ogawa; Keiichi Fukuda

During a screen for humoral factors that promote cardiomyocyte differentiation from embryonic stem cells (ESCs), we found marked elevation of granulocyte colony-stimulating factor receptor (G-CSFR) mRNA in developing cardiomyocytes. We confirmed that both G-CSFR and G-CSF were specifically expressed in embryonic mouse heart at the midgestational stage, and expression levels were maintained throughout embryogenesis. Intrauterine G-CSF administration induced embryonic cardiomyocyte proliferation and caused hyperplasia. In contrast, approximately 50% of csf3r(-/-) mice died during late embryogenesis because of the thinning of atrioventricular walls. ESC-derived developing cardiomyocytes also strongly expressed G-CSFR. When extrinsic G-CSF was administered to the ESC- and human iPSC-derived cardiomyocytes, it markedly augmented their proliferation. Moreover, G-CSF-neutralizing antibody inhibited their proliferation. These findings indicated that G-CSF is critically involved in cardiomyocyte proliferation during development, and may be used to boost the yield of cardiomyocytes from ESCs for their potential application to regenerative medicine.


Journal of Biological Chemistry | 2007

Intramolecular control of protein stability, subnuclear compartmentalization, and coactivator function of peroxisome proliferator-activated receptor γ coactivator 1α

Motoaki Sano; Satori Tokudome; Noriaki Shimizu; Noritada Yoshikawa; Chie Ogawa; Kousuke Shirakawa; Jin Endo; Takaharu Katayama; Shinsuke Yuasa; Masaki Ieda; Shinji Makino; Fumiyuki Hattori; Hirotoshi Tanaka; Keiichi Fukuda

Peroxisome proliferator-activated receptor γ coactivator (PGC)-1 is a critical transcriptional regulator of energy metabolism. Here we found that PGC-1α is a short lived and aggregation-prone protein. PGC-1α localized throughout the nucleoplasm and was rapidly destroyed via the ubiquitin-proteasome pathway. Upon proteasome inhibition, PGC-1α formed insoluble polyubiquitinated aggregates. Ubiquitination of PGC-1α depended on the integrity of the C terminus-containing arginine-serine-rich domains and an RNA recognition motif. Interestingly, ectopically expressed C-terminal fragment of PGC-1α was autonomously ubiquitinated and aggregated with promyelocytic leukemia protein. Cooperation of the N-terminal region containing two PEST-like motifs was required for prevention of aggregation and targeting of the polyubiquitinated PGC-1α for degradation. This region thereby negatively controlled the aggregation properties of the C-terminal region to regulate protein turnover and intranuclear compartmentalization of PGC-1α. Exogenous expression of the PGC-1α C-terminal fragment interfered with degradation of full-length PGC-1α and enhanced its coactivation properties. We concluded that PGC-1α function is critically regulated at multiple steps via intramolecular cooperation among several distinct structural domains of the protein.

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