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Dive into the research topics where Yutaka Nakachi is active.

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Featured researches published by Yutaka Nakachi.


PLOS Genetics | 2016

A Comprehensive Genomic Analysis Reveals the Genetic Landscape of Mitochondrial Respiratory Chain Complex Deficiencies

Masakazu Kohda; Yoshimi Tokuzawa; Yoshihito Kishita; Hiromi Nyuzuki; Yohsuke Moriyama; Yosuke Mizuno; Tomoko Hirata; Yukiko Yatsuka; Yzumi Yamashita-Sugahara; Yutaka Nakachi; Hidemasa Kato; Akihiko Okuda; Shunsuke Tamaru; Nurun Nahar Borna; Kengo Banshoya; Toshiro Aigaki; Yukiko Sato-Miyata; Kohei Ohnuma; Tsutomu Suzuki; Asuteka Nagao; Hazuki Maehata; Fumihiko Matsuda; Koichiro Higasa; Masao Nagasaki; Jun Yasuda; Masayuki Yamamoto; Takuya Fushimi; Masaru Shimura; Keiko Kaiho-Ichimoto; Hiroko Harashima

Mitochondrial disorders have the highest incidence among congenital metabolic disorders characterized by biochemical respiratory chain complex deficiencies. It occurs at a rate of 1 in 5,000 births, and has phenotypic and genetic heterogeneity. Mutations in about 1,500 nuclear encoded mitochondrial proteins may cause mitochondrial dysfunction of energy production and mitochondrial disorders. More than 250 genes that cause mitochondrial disorders have been reported to date. However exact genetic diagnosis for patients still remained largely unknown. To reveal this heterogeneity, we performed comprehensive genomic analyses for 142 patients with childhood-onset mitochondrial respiratory chain complex deficiencies. The approach includes whole mtDNA and exome analyses using high-throughput sequencing, and chromosomal aberration analyses using high-density oligonucleotide arrays. We identified 37 novel mutations in known mitochondrial disease genes and 3 mitochondria-related genes (MRPS23, QRSL1, and PNPLA4) as novel causative genes. We also identified 2 genes known to cause monogenic diseases (MECP2 and TNNI3) and 3 chromosomal aberrations (6q24.3-q25.1, 17p12, and 22q11.21) as causes in this cohort. Our approaches enhance the ability to identify pathogenic gene mutations in patients with biochemically defined mitochondrial respiratory chain complex deficiencies in clinical settings. They also underscore clinical and genetic heterogeneity and will improve patient care of this complex disorder.


PLOS Genetics | 2010

Id4, a New Candidate Gene for Senile Osteoporosis, Acts as a Molecular Switch Promoting Osteoblast Differentiation

Yoshimi Tokuzawa; Ken Yagi; Yzumi Yamashita; Yutaka Nakachi; Itoshi Nikaido; Hidemasa Bono; Yuichi Ninomiya; Yukiko Kanesaki-Yatsuka; Masumi Akita; Hiromi Motegi; Shigeharu Wakana; Tetsuo Noda; Fred Sablitzky; Shigeki Arai; Riki Kurokawa; Toru Fukuda; Takenobu Katagiri; Christian Schönbach; Tatsuo Suda; Yosuke Mizuno; Yasushi Okazaki

Excessive accumulation of bone marrow adipocytes observed in senile osteoporosis or age-related osteopenia is caused by the unbalanced differentiation of MSCs into bone marrow adipocytes or osteoblasts. Several transcription factors are known to regulate the balance between adipocyte and osteoblast differentiation. However, the molecular mechanisms that regulate the balance between adipocyte and osteoblast differentiation in the bone marrow have yet to be elucidated. To identify candidate genes associated with senile osteoporosis, we performed genome-wide expression analyses of differentiating osteoblasts and adipocytes. Among transcription factors that were enriched in the early phase of differentiation, Id4 was identified as a key molecule affecting the differentiation of both cell types. Experiments using bone marrow-derived stromal cell line ST2 and Id4-deficient mice showed that lack of Id4 drastically reduces osteoblast differentiation and drives differentiation toward adipocytes. On the other hand knockdown of Id4 in adipogenic-induced ST2 cells increased the expression of Pparγ2, a master regulator of adipocyte differentiation. Similar results were observed in bone marrow cells of femur and tibia of Id4-deficient mice. However the effect of Id4 on Pparγ2 and adipocyte differentiation is unlikely to be of direct nature. The mechanism of Id4 promoting osteoblast differentiation is associated with the Id4-mediated release of Hes1 from Hes1-Hey2 complexes. Hes1 increases the stability and transcriptional activity of Runx2, a key molecule of osteoblast differentiation, which results in an enhanced osteoblast-specific gene expression. The new role of Id4 in promoting osteoblast differentiation renders it a target for preventing the onset of senile osteoporosis.


Cell Stem Cell | 2011

Indefinite Self-Renewal of ESCs through Myc/Max Transcriptional Complex-Independent Mechanisms

Tomoaki Hishida; Yuriko Nozaki; Yutaka Nakachi; Yosuke Mizuno; Yasushi Okazaki; Masatsugu Ema; Satoru Takahashi; Masazumi Nishimoto; Akihiko Okuda

Embryonic stem cells (ESCs) can self-renew indefinitely under the governance of ESC-specific transcriptional circuitries in which each transcriptional factor regulates distinct or overlapping sets of genes with other factors. c-Myc is a key player that is crucially involved in maintaining the undifferentiated state and the self-renewal of ESCs. However, the mechanism by which c-Myc helps preserve the ESC status is still poorly understood. Here we addressed this question by performing loss-of-function studies with the Max gene, which encodes the best-characterized partner protein for all Myc family proteins. Although Myc/Max complexes are widely regarded as crucial regulators of the ESC status, our data revealed that ESCs do not absolutely require these complexes in certain contexts and that this requirement is restricted to empirical ESC culture conditions without a MAPK inhibitor.


Biochemical and Biophysical Research Communications | 2008

Identification of novel PPARγ target genes by integrated analysis of ChIP-on-chip and microarray expression data during adipocyte differentiation

Yutaka Nakachi; Ken Yagi; Itoshi Nikaido; Hidemasa Bono; Mio Tonouchi; Christian Schönbach; Yasushi Okazaki

PPARgamma (peroxisome proliferator-activated receptor gamma) acts as a key molecule of adipocyte differentiation, and transactivates multiple target genes involved in lipid metabolic pathways. Identification of PPARgamma target genes will facilitate to predict the extent to which the drugs can affect and also to understand the molecular basis of lipid metabolism. Here, we have identified five target genes regulated directly by PPARgamma during adipocyte differentiation in 3T3-L1 cells using integrated analyses of ChIP-on-chip and expression microarray. We have confirmed the direct PPARgamma regulation of five genes by luciferase reporter assay in NIH-3T3 cells. Of these five genes Hp, Tmem143 and 1100001G20Rik are novel PPARgamma targets. We have also detected PPREs (PPAR response elements) sequences in the promoter region of the five genes computationally. Unexpectedly, most of the PPREs detected proved to be atypical, suggesting the existence of more atypical PPREs than previously thought in the promoter region of PPARgamma regulated genes.


Biochemical and Biophysical Research Communications | 2008

4-Hydroxydocosahexaenoic acid, a potent peroxisome proliferator-activated receptor γ agonist alleviates the symptoms of DSS-induced colitis

Keiko Yamamoto; Yuichi Ninomiya; Mioko Iseki; Yutaka Nakachi; Yukiko Kanesaki-Yatsuka; Yu Yamanoue; Toshimasa Itoh; Yasuho Nishii; Nikolai Petrovsky; Yasushi Okazaki

(5E,7Z,10Z,13Z,16Z,19Z)-4-Hydroxy-5,7,10,13,16,19-docosahexaenoic acid (4-OHDHA) is a potential agonist of peroxisome proliferator-activated receptor-gamma (PPARgamma) and antidiabetic agent as has been previously reported. As PPARgamma agonists may also have anti-inflammatory functions, in this study, we investigated whether 4-OHDHA has an inhibitory effect on expression of inflammatory genes in vitro and whether 4-OHDHA could relieve the symptoms of dextran sodium sulfate (DSS)-induced colitis in a murine model of inflammatory bowel disease. 4-OHDHA inhibited production of nitric oxide and expression of a subset of inflammatory genes including inducible nitric oxide synthase (Nos2/iNOS) and interleukin 6 (Il6) by lipopolysaccharide (LPS)-activated macrophages. In addition, 4-OHDHA-treated mice when compared to control mice not receiving treatment recovered better from the weight loss caused by DSS-induced colitis. Changes in disease activity index (DAI) of 4-OHDHA-treated mice were also more favorable than for control mice and were comparable with mice treated with a typical anti-inflammatory-drug, 5-aminosalichylic acid (5-ASA). These results suggest that 4-OHDHA has potentially clinically useful anti-inflammatory effects mediated by suppression of inflammatory gene expression.


Biochemical and Biophysical Research Communications | 2010

Development of a rapid culture method to induce adipocyte differentiation of human bone marrow-derived mesenchymal stem cells.

Yuichi Ninomiya; Yzumi Sugahara-Yamashita; Yutaka Nakachi; Yoshimi Tokuzawa; Yasushi Okazaki; Masahiko Nishiyama

Human mesenchymal stem cells (hMSCs) derived from bone marrow are multipotent stem cells that can regenerate mesenchymal tissues such as adipose, bone or muscle. It is thought that hMSCs can be utilized as a cell resource for tissue engineering and as human models to study cell differentiation mechanisms, such as adipogenesis, osteoblastogenesis and so on. Since it takes 2-3weeks for hMSCs to differentiate into adipocytes using conventional culture methods, the development of methods to induce faster differentiation into adipocytes is required. In this study we optimized the culture conditions for adipocyte induction to achieve a shorter cultivation time for the induction of adipocyte differentiation in bone marrow-derived hMSCs. Briefly, we used a cocktail of dexamethasone, insulin, methylisobutylxanthine (DIM) plus a peroxisome proliferator-activated receptor gamma agonist, rosiglitazone (DIMRo) as a new adipogenic differentiation medium. We successfully shortened the period of cultivation to 7-8days from 2-3weeks. We also found that rosiglitazone alone was unable to induce adipocyte differentiation from hMSCs in vitro. However, rosiglitazone appears to enhance hMSC adipogenesis in the presence of other hormones and/or compounds, such as DIM. Furthermore, the inhibitory activity of TGF-beta1 on adipogenesis could be investigated using DIMRo-treated hMSCs. We conclude that our rapid new culture method is very useful in measuring the effect of molecules that affect adipogenesis in hMSCs.


Nature Communications | 2016

Loss of MAX results in meiotic entry in mouse embryonic and germline stem cells

Ayumu Suzuki; Masataka Hirasaki; Tomoaki Hishida; Jun Wu; Daiji Okamura; Atsushi Ueda; Masazumi Nishimoto; Yutaka Nakachi; Yosuke Mizuno; Yasushi Okazaki; Yasuhisa Matsui; Juan Carlos Izpisua Belmonte; Akihiko Okuda

Meiosis is a unique process that allows the generation of reproductive cells. It remains largely unknown how meiosis is initiated in germ cells and why non-germline cells do not undergo meiosis. We previously demonstrated that knockdown of Max expression, a gene encoding a partner of MYC family proteins, strongly activates expression of germ cell-related genes in ESCs. Here we find that complete ablation of Max expression in ESCs results in profound cytological changes reminiscent of cells undergoing meiotic cell division. Furthermore, our analyses uncovers that Max expression is transiently attenuated in germ cells undergoing meiosis in vivo and its forced reduction induces meiosis-like cytological changes in cultured germline stem cells. Mechanistically, Max depletion alterations are, in part, due to impairment of the function of an atypical PRC1 complex (PRC1.6), in which MAX is one of the components. Our data highlight MAX as a new regulator of meiotic onset.


Biochimica et Biophysica Acta | 2014

Diagnosis and molecular basis of mitochondrial respiratory chain disorders: Exome sequencing for disease gene identification

Akira Ohtake; Kei Murayama; Masato Mori; Hiroko Harashima; Taro Yamazaki; Shunsuke Tamaru; Y. Yamashita; Yoshihito Kishita; Yutaka Nakachi; Masakazu Kohda; Yoshimi Tokuzawa; Yumi Mizuno; Yohsuke Moriyama; Hidemasa Kato; Yasushi Okazaki

Mitochondrial disorders have the highest incidence among congenital metabolic diseases, and are thought to occur at a rate of 1 in 5000 births. About 25% of the diseases diagnosed as mitochondrial disorders in the field of pediatrics have mitochondrial DNA abnormalities, while the rest occur due to defects in genes encoded in the nucleus. The most important function of the mitochondria is biosynthesis of ATP. Mitochondrial disorders are nearly synonymous with mitochondrial respiratory chain disorder, as respiratory chain complexes serve a central role in ATP biosynthesis. By next-generation sequencing of the exome, we analyzed 104 patients with mitochondrial respiratory chain disorders. The results of analysis to date were 18 patients with novel variants in genes previously reported to be disease-causing, and 27 patients with mutations in genes suggested to be associated in some way with mitochondria, and it is likely that they are new disease-causing genes in mitochondrial disorders. This article is part of a Special Issue entitled Frontiers of Mitochondrial Research.


PLOS Genetics | 2013

Tysnd1 Deficiency in Mice Interferes with the Peroxisomal Localization of PTS2 Enzymes, Causing Lipid Metabolic Abnormalities and Male Infertility

Yumi Mizuno; Yuichi Ninomiya; Yutaka Nakachi; Mioko Iseki; Hiroyasu Iwasa; Masumi Akita; Tohru Tsukui; Nobuyuki Shimozawa; Chizuru Ito; Kiyotaka Toshimori; Megumi Nishimukai; Hiroshi Hara; Ryouta Maeba; Tomoki Okazaki; Ali Al-Odaib; Mohammed Al Amoudi; Minnie Jacob; Fowzan S. Alkuraya; Yasushi Horai; Mitsuhiro Watanabe; Hiromi Motegi; Shigeharu Wakana; Tetsuo Noda; Igor V. Kurochkin; Yosuke Mizuno; Christian Schönbach; Yasushi Okazaki

Peroxisomes are subcellular organelles involved in lipid metabolic processes, including those of very-long-chain fatty acids and branched-chain fatty acids, among others. Peroxisome matrix proteins are synthesized in the cytoplasm. Targeting signals (PTS or peroxisomal targeting signal) at the C-terminus (PTS1) or N-terminus (PTS2) of peroxisomal matrix proteins mediate their import into the organelle. In the case of PTS2-containing proteins, the PTS2 signal is cleaved from the protein when transported into peroxisomes. The functional mechanism of PTS2 processing, however, is poorly understood. Previously we identified Tysnd1 (Trypsin domain containing 1) and biochemically characterized it as a peroxisomal cysteine endopeptidase that directly processes PTS2-containing prethiolase Acaa1 and PTS1-containing Acox1, Hsd17b4, and ScpX. The latter three enzymes are crucial components of the very-long-chain fatty acids β-oxidation pathway. To clarify the in vivo functions and physiological role of Tysnd1, we analyzed the phenotype of Tysnd1−/− mice. Male Tysnd1−/− mice are infertile, and the epididymal sperms lack the acrosomal cap. These phenotypic features are most likely the result of changes in the molecular species composition of choline and ethanolamine plasmalogens. Tysnd1−/− mice also developed liver dysfunctions when the phytanic acid precursor phytol was orally administered. Phyh and Agps are known PTS2-containing proteins, but were identified as novel Tysnd1 substrates. Loss of Tysnd1 interferes with the peroxisomal localization of Acaa1, Phyh, and Agps, which might cause the mild Zellweger syndrome spectrum-resembling phenotypes. Our data established that peroxisomal processing protease Tysnd1 is necessary to mediate the physiological functions of PTS2-containing substrates.


Stem Cells | 2012

Sirt1, p53, and p38MAPK Are Crucial Regulators of Detrimental Phenotypes of Embryonic Stem Cells with Max Expression Ablation†‡§

Tomoaki Hishida; Yuriko Nozaki; Yutaka Nakachi; Yosuke Mizuno; Hiroyoshi Iseki; Miyuki Katano; Masayoshi Kamon; Masataka Hirasaki; Masazumi Nishimoto; Yasushi Okazaki; Akihiko Okuda

c‐Myc participates in diverse cellular processes including cell cycle control, tumorigenic transformation, and reprogramming of somatic cells to induced pluripotent cells. c‐Myc is also an important regulator of self‐renewal and pluripotency of embryonic stem cells (ESCs). We recently demonstrated that loss of the Max gene, encoding the best characterized partner for all Myc family proteins, causes loss of the pluripotent state and extensive cell death in ESCs strictly in this order. However, the mechanisms and molecules that are responsible for these phenotypes remain largely obscure. Here, we show that Sirt1, p53, and p38MAPK are crucially involved in the detrimental phenotype of Max‐null ESCs. Moreover, our analyses revealed that these proteins are involved at varying levels to one another in the hierarchy of the pathway leading to cell death in Max‐null ESCs. STEM CELLS2012;30:1634–1644

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Yasushi Okazaki

Saitama Medical University

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Yosuke Mizuno

Tokyo Institute of Technology

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Akihiko Okuda

Saitama Medical University

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Yoshimi Tokuzawa

Saitama Medical University

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Tomoaki Hishida

Salk Institute for Biological Studies

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Masataka Hirasaki

Saitama Medical University

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Atsushi Ueda

Saitama Medical University

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Shigeharu Wakana

Central Institute for Experimental Animals

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