Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Keisuke Okabe is active.

Publication


Featured researches published by Keisuke Okabe.


Diabetes | 2016

HIF-1α in Myeloid Cells Promotes Adipose Tissue Remodeling Toward Insulin Resistance.

Akiko Takikawa; Arshad Mahmood; Allah Nawaz; Tomonobu Kado; Keisuke Okabe; Seiji Yamamoto; Aminuddin Aminuddin; Satoko Senda; Koichi Tsuneyama; Masashi Ikutani; Yasuharu Watanabe; Yoshiko Igarashi; Yoshinori Nagai; Kiyoshi Takatsu; Keiichi Koizumi; Johji Imura; Nobuhito Goda; Masakiyo Sasahara; Michihiro Matsumoto; Kumiko Saeki; Takashi Nakagawa; Shiho Fujisaka; Isao Usui; Kazuyuki Tobe

Adipose tissue hypoxia is an important feature of pathological adipose tissue expansion. Hypoxia-inducible factor-1α (HIF-1α) in adipocytes reportedly induces oxidative stress and fibrosis, rather than neoangiogenesis via vascular endothelial growth factor (VEGF)-A. We previously reported that macrophages in crown-like structures (CLSs) are both hypoxic and inflammatory. In the current study, we examined how macrophage HIF-1α is involved in high-fat diet (HFD)–induced inflammation, neovascularization, hypoxia, and insulin resistance using mice with myeloid cell–specific HIF-1α deletion that were fed an HFD. Myeloid cell–specific HIF-1α gene deletion protected against HFD-induced inflammation, CLS formation, poor vasculature development in the adipose tissue, and systemic insulin resistance. Despite a reduced expression of Vegfa in epididymal white adipose tissue (eWAT), the preadipocytes and endothelial cells of HIF-1α–deficient mice expressed higher levels of angiogenic factors, including Vegfa, Angpt1, Fgf1, and Fgf10 in accordance with preferable eWAT remodeling. Our in vitro study revealed that lipopolysaccharide-treated bone marrow–derived macrophages directly inhibited the expression of angiogenic factors in 3T3-L1 preadipocytes. Thus, macrophage HIF-1α is involved not only in the formation of CLSs, further enhancing the inflammatory responses, but also in the inhibition of neoangiogenesis in preadipocytes. We concluded that these two pathways contribute to the obesity-related physiology of pathological adipose tissue expansion, thus causing systemic insulin resistance.


Journal of Diabetes Investigation | 2014

Secretory units of islets in transplantation index is a useful predictor of insulin requirement in Japanese type 2 diabetic patients

Minoru Iwata; Yumi Matsushita; Kazuhito Fukuda; Tatsurou Wakura; Keisuke Okabe; Yukiko Koshimizu; Yasuo Fukushima; Chikaaki Kobashi; Yu Yamazaki; Hisae Honoki; Hikari Suzuki; Mika Kigawa; Kazuyuki Tobe

The objective of the present study was to clarify the validity of β‐cell function‐related parameters for predicting the insulin requirement of Japanese type 2 diabetic patients.


Biomedical Chromatography | 2018

Simultaneous measurement of NAD metabolome in aged mice tissue using liquid chromatography tandem-mass spectrometry

Keisuke Yaku; Keisuke Okabe; Takashi Nakagawa

Nicotinamide adenine dinucleotide (NAD) is a major co-factor that mediates multiple biological processes including redox reaction and gene expression. Recently, NAD metabolism has received considerable attention because administration of NAD precursors exhibited beneficial effects against aging-related metabolic disorders in animals. Although numerous studies have reported that NAD levels decline with aging in multiple animal tissues, the pathway and kinetics of NAD metabolism in aged organs are not completely understood. To determine the NAD metabolism upon aging, we developed targeted metabolomics based on an LC/MS/MS system. Our method is simple and applicable to crude biological samples, including culture cells and animal tissues. Unlike a conventional enzymatic cycling assay, our approach can determine NAD and NADH (reduced form of NAD) by performing a single sample preparation. Further, we validated our method using biological samples and investigated the alteration of the NAD metabolome during aging. Consistent with previous reports, the NAD levels in the liver and skeletal muscle decreased with aging. Further, we detected a significant increase in nicotinamide mononucleotide and nicotinamide riboside in the kidney upon aging. The LC/MS/MS-based NAD metabolomics that we have developed is extensively applicable to biomedical studies, and the results will present innovative ideas for the aging studies, especially for that of NAD metabolism.


Scientific Reports | 2018

Sirt1 activator induces proangiogenic genes in preadipocytes to rescue insulin resistance in diet-induced obese mice

Allah Nawaz; Arshad Mehmood; Yukiko Kanatani; Tomonobu Kado; Yoshiko Igarashi; Akiko Takikawa; Seiji Yamamoto; Keisuke Okabe; Takashi Nakagawa; Kunimasa Yagi; Shiho Fujisaka; Kazuyuki Tobe

Sirt1 plays an important role in regulating glucose and lipid metabolism in obese animal models. Impaired adipose tissue angiogenesis in the obese state decreases adipogenesis and thereby contributes to glucose intolerance and lipid metabolism. However, the mechanism by which Sirt1 activation affects obesity-associated impairments in angiogenesis in the adipose tissue is not fully understood. Here, we show that SRT1720 treatment induces angiogenic genes in cultured 3T3-L1 preadipocytes and ex vivo preadipocytes. siRNA-mediated knockdown of Sirt1 in 3T3-L1 preadipocytes downregulated angiogenic genes in the preadipocytes. SRT1720 treatment upregulated metabolically favorable genes and reduced inflammatory gene expressions in the adipose tissue of diet-induced obese (DIO) mice. Collectively, these findings suggest a novel role of SRT1720-induced Sirt1 activation in the induction of angiogenic genes in preadipocytes, thereby reducing inflammation and fibrosis in white adipose tissue (WAT) and promoting insulin sensitivity.


Aging Cell | 2018

Overexpression of Nmnat3 efficiently increases NAD and NGD levels and ameliorates age-associated insulin resistance

Maryam Gulshan; Keisuke Yaku; Keisuke Okabe; Arshad Mahmood; Tsutomu Sasaki; Masashi Yamamoto; Keisuke Hikosaka; Isao Usui; Tadahiro Kitamura; Kazuyuki Tobe; Takashi Nakagawa

Nicotinamide adenine dinucleotide (NAD) is an important cofactor that regulates various biological processes, including metabolism and gene expression. As a coenzyme, NAD controls mitochondrial respiration through enzymes of the tricarboxylic acid (TCA) cycle, β‐oxidation, and oxidative phosphorylation and also serves as a substrate for posttranslational protein modifications, such as deacetylation and ADP‐ribosylation by sirtuins and poly(ADP‐ribose) polymerase (PARP), respectively. Many studies have demonstrated that NAD levels decrease with aging and that these declines cause various aging‐associated diseases. In contrast, activation of NAD metabolism prevents declines in NAD levels during aging. In particular, dietary supplementation with NAD precursors has been associated with protection against age‐associated insulin resistance. However, it remains unclear which NAD synthesis pathway is important and/or efficient at increasing NAD levels in vivo. In this study, Nmnat3 overexpression in mice efficiently increased NAD levels in various tissues and prevented aging‐related declines in NAD levels. We also demonstrated that Nmnat3‐overexpressing (Nmnat3 Tg) mice were protected against diet‐induced and aging‐associated insulin resistance. Moreover, in skeletal muscles of Nmnat3 Tg mice, TCA cycle activity was significantly enhanced, and the energy source for oxidative phosphorylation was shifted toward fatty acid oxidation. Furthermore, reactive oxygen species (ROS) generation was significantly suppressed in aged Nmnat3 Tg mice. Interestingly, we also found that concentrations of the NAD analog nicotinamide guanine dinucleotide (NGD) were dramatically increased in Nmnat3 Tg mice. These results suggest that Nmnat3 overexpression improves metabolic health and that Nmnat3 is an attractive therapeutic target for metabolic disorders that are caused by aging.


Ageing Research Reviews | 2018

NAD metabolism: Implications in aging and longevity

Keisuke Yaku; Keisuke Okabe; Takashi Nakagawa

Nicotinamide adenine dinucleotide (NAD) is an important co-factor involved in numerous physiological processes, including metabolism, post-translational protein modification, and DNA repair. In living organisms, a careful balance between NAD production and degradation serves to regulate NAD levels. Recently, a number of studies have demonstrated that NAD levels decrease with age, and the deterioration of NAD metabolism promotes several aging-associated diseases, including metabolic and neurodegenerative diseases and various cancers. Conversely, the upregulation of NAD metabolism, including dietary supplementation with NAD precursors, has been shown to prevent the decline of NAD and exhibits beneficial effects against aging and aging-associated diseases. In addition, many studies have demonstrated that genetic and/or nutritional activation of NAD metabolism can extend the lifespan of diverse organisms. Collectively, it is clear that NAD metabolism plays important roles in aging and longevity. In this review, we summarize the basic functions of the enzymes involved in NAD synthesis and degradation, as well as the outcomes of their dysregulation in various aging processes. In addition, a particular focus is given on the role of NAD metabolism in the longevity of various organisms, with a discussion of the remaining obstacles in this research field.


Scientific Reports | 2018

Publisher Correction: Sirt1 activator induces proangiogenic genes in preadipocytes to rescue insulin resistance in diet-induced obese mice

Allah Nawaz; Arshad Mehmood; Yukiko Kanatani; Tomonobu Kado; Yoshiko Igarashi; Akiko Takikawa; Seiji Yamamoto; Keisuke Okabe; Takashi Nakagawa; Kunimasa Yagi; Shiho Fujisaka; Kazuyuki Tobe

A correction to this article has been published and is linked from the HTML and PDF versions of this paper. The error has not been fixed in the paper.


Diabetes | 2018

NAD-Mediated Metabolic Reprogramming Epigenetically Regulates Gene Expression to Promote Preadipocyte Differentiation

Keisuke Okabe; Isao Usui; Allah Nawaz; Shiho Fujisaka; Tomonobu Kado; Yoshiko Igarashi; Kunimasa Yagi; Kazuyuki Tobe; Takashi Nakagawa


Diabetes | 2018

Depletion of CD2M2-Like Macrophages Promotes the Browning of the White Adipose Tissue

Allah Nawaz; Shiho Fujisaka; Isao Usui; Kunimasa Yagi; Takashi Nakagawa; Tomonobu Kado; Kazuyuki Tobe; Yoshiko Igarashi; Keisuke Okabe; Kumiko Saeki


Diabetes | 2018

Bofutsushosan Improves Gut Barrier Function with a Bloom of Akkermansia Muciniphila and Improves Glucose Metabolism in Diet-Induced Obese Mice

Shiho Fujisaka; Isao Usui; Allah Nawaz; Yoshiko Igarashi; Tomonobu Kado; Keisuke Okabe; Kunimasa Yagi; Takashi Nakagawa; Kazuyuki Tobe

Collaboration


Dive into the Keisuke Okabe's collaboration.

Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge