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Dive into the research topics where Masataka Harada is active.

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Featured researches published by Masataka Harada.


Nature | 2003

Free fatty acids regulate insulin secretion from pancreatic beta cells through GPR40.

Yasuaki Itoh; Yuji Kawamata; Masataka Harada; Makoto Kobayashi; Ryo Fujii; Shoji Fukusumi; Kazuhiro Ogi; Masaki Hosoya; Yasuhiro Tanaka; Hiroshi Uejima; Minoru Maruyama; Rie Satoh; Shoichi Okubo; Hideki Kizawa; Hidetoshi Komatsu; Fumika Matsumura; Yuko Noguchi; Tokuyuki Shinohara; Shuji Hinuma; Yukio Fujisawa; Masahiko Fujino

Diabetes, a disease in which carbohydrate and lipid metabolism are regulated improperly by insulin, is a serious worldwide health issue. Insulin is secreted from pancreatic β cells in response to elevated plasma glucose, with various factors modifying its secretion. Free fatty acids (FFAs) provide an important energy source as nutrients, and they also act as signalling molecules in various cellular processes, including insulin secretion. Although FFAs are thought to promote insulin secretion in an acute phase, this mechanism is not clearly understood. Here we show that a G-protein-coupled receptor, GPR40, which is abundantly expressed in the pancreas, functions as a receptor for long-chain FFAs. Furthermore, we show that long-chain FFAs amplify glucose-stimulated insulin secretion from pancreatic β cells by activating GPR40. Our results indicate that GPR40 agonists and/or antagonists show potential for the development of new anti-diabetic drugs.


Regulatory Peptides | 2003

Production of recombinant human relaxin 3 in AtT20 cells

Hideki Kizawa; Kazunori Nishi; Yoshihiro Ishibashi; Masataka Harada; Tsuneo Asano; Yasuaki Ito; Nobuhiro Suzuki; Shuji Hinuma; Yukio Fujisawa; Haruo Onda; Osamu Nishimura; Masahiko Fujino

Relaxin 3 has been reported recently as a member of the insulin/IGF/relaxin family. To clarify the function of relaxin 3, we prepared recombinant human relaxin 3 using a mouse adrenocorticotrophic hormone (ACTH)-secreting cell line, AtT20. To detect a mature form of recombinant human relaxin 3, a competitive enzyme immunoassay (EIA) was developed using a monoclonal antibody (mAb; HK4-144-10), which was raised for the N-terminal peptide of human relaxin 3 A-chain. We detected immunoreactive (ir-) relaxin 3 in the culture supernatant of AtT20 cells stably transfected with human relaxin 3 cDNA. After treatment with 5 microM forskolin for 3 days, the concentration of the ir-relaxin 3 in the culture supernatant reached 12 nM. Ir-relaxin 3 was purified from the culture supernatant by a combination of various chromatographies. By analyses of N-terminal amino acid sequence and electrospray ionization mass spectrometry (ESI-MS), we confirmed that the purified material was a mature form of human relaxin 3. The recombinant human relaxin 3 thereby obtained increased intracellular cAMP production in THP-1 cells. Our results demonstrate that the expression of relaxin 3 cDNA in AtT20 cells is a useful tool to produce a bioactive and mature form of relaxin 3.


Bioorganic & Medicinal Chemistry Letters | 2002

A new class of potent nonpeptide luteinizing hormone-releasing hormone (LHRH) antagonists: design and synthesis of 2-phenylimidazo[1,2-a]pyrimidin-5-ones.

Satoshi Sasaki; Toshihiro Imaeda; Yoji Hayase; Yoshiaki Shimizu; Shizuo Kasai; Nobuo Cho; Masataka Harada; Nobuhiro Suzuki; Shuichi Furuya; Masahiko Fujino

The design and synthesis of a new class of nonpeptide luteinizing hormone-releasing hormone (LHRH) receptor antagonists, the 2-phenylimidazo[1,2-a]pyrimidin-5-ones, is reported. Among compounds described in this study, we identified the potent antagonist 15b with nanomolar in vitro functional antagonism. The result might suggest that the heterocyclic 5-6-ring system possessing a pendant phenyl group attached to the five-membered ring is the important structural feature for a scaffold of small molecule LHRH antagonists.


Journal of Biological Chemistry | 2003

A G Protein-coupled Receptor Responsive to Bile Acids

Yuji Kawamata; Ryo Fujii; Masaki Hosoya; Masataka Harada; Hiromi Yoshida; Masanori Miwa; Shoji Fukusumi; Yugo Habata; Takashi Itoh; Yasushi Shintani; Shuji Hinuma; Yukio Fujisawa; Masahiko Fujino


Journal of Medicinal Chemistry | 2003

Discovery of a Thieno[2,3-d]pyrimidine-2,4-dione Bearing a p-Methoxyureidophenyl Moiety at the 6-Position: A Highly Potent and Orally Bioavailable Non-Peptide Antagonist for the Human Luteinizing Hormone-Releasing Hormone Receptor

Satoshi Sasaki; Nobuo Cho; Yoshi Nara; Masataka Harada; Satoshi Endo; Nobuhiro Suzuki; Shuichi Furuya; Masahiko Fujino


Journal of Medicinal Chemistry | 1998

Discovery of a novel, potent, and orally active nonpeptide antagonist of the human luteinizing hormone-releasing hormone (LHRH) receptor

Nobuo Cho; Masataka Harada; Toshihiro Imaeda; Takashi Imada; Hirokazu Matsumoto; Yoji Hayase; Satoshi Sasaki; Shuichi Furuya; Nobuhiro Suzuki; Shoichi Okubo; Kazuhiro Ogi; Satoshi Endo; Haruo Onda; Masahiko Fujino


Journal of Biological Chemistry | 2004

Identification of a G Protein-coupled Receptor Specifically Responsive to β-Alanine

Tokuyuki Shinohara; Masataka Harada; Kazuhiro Ogi; Minoru Maruyama; Ryo Fujii; Hideyuki Tanaka; Shoji Fukusumi; Hidetoshi Komatsu; Masaki Hosoya; Yuko Noguchi; Takuya Watanabe; Takeo Moriya; Yasuaki Itoh; Shuji Hinuma


Archive | 2003

RECEPTOR FUNCTION CONTROLLING AGENT

Kohji Fukatsu; Shinobu Sasaki; Shuji Hinuma; Yasuaki Ito; Nobuhiro Suzuki; Masataka Harada; Tsuneo Yasuma


Biochemical and Biophysical Research Communications | 2004

N-Formylated humanin activates both formyl peptide receptor-like 1 and 2.

Masataka Harada; Yugo Habata; Masaki Hosoya; Kazunori Nishi; Ryo Fujii; Makoto Kobayashi; Shuji Hinuma


Journal of Medicinal Chemistry | 2011

Design, synthesis, and biological activity of potent and orally available G protein-coupled receptor 40 agonists.

Shinobu Sasaki; Shuji Kitamura; Nobuyuki Negoro; Masami Suzuki; Yoshiyuki Tsujihata; Nobuhiro Suzuki; Takashi Santou; Naoyuki Kanzaki; Masataka Harada; Yasuhiro Tanaka; Makoto Kobayashi; Norio Tada; Miyuki Funami; Toshimasa Tanaka; Yoshio Yamamoto; Kohji Fukatsu; Tsuneo Yasuma; Yu Momose

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Shuji Hinuma

Takeda Pharmaceutical Company

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Ryo Fujii

Takeda Pharmaceutical Company

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Kazunori Nishi

Takeda Pharmaceutical Company

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Masahiko Fujino

Takeda Pharmaceutical Company

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Masaki Hosoya

Takeda Pharmaceutical Company

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Yasuaki Ito

Takeda Pharmaceutical Company

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Yugo Habata

Takeda Pharmaceutical Company

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Makoto Kobayashi

Takeda Pharmaceutical Company

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Shuichi Furuya

Takeda Pharmaceutical Company

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