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result(s) for
"Nagasawa, Masahiro"
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Sweet Taste Receptor Expressed in Pancreatic β-Cells Activates the Calcium and Cyclic AMP Signaling Systems and Stimulates Insulin Secretion
2009
Sweet taste receptor is expressed in the taste buds and enteroendocrine cells acting as a sugar sensor. We investigated the expression and function of the sweet taste receptor in MIN6 cells and mouse islets.
The expression of the sweet taste receptor was determined by RT-PCR and immunohistochemistry. Changes in cytoplasmic Ca(2+) ([Ca(2+)](c)) and cAMP ([cAMP](c)) were monitored in MIN6 cells using fura-2 and Epac1-camps. Activation of protein kinase C was monitored by measuring translocation of MARCKS-GFP. Insulin was measured by radioimmunoassay. mRNA for T1R2, T1R3, and gustducin was expressed in MIN6 cells. In these cells, artificial sweeteners such as sucralose, succharin, and acesulfame-K increased insulin secretion and augmented secretion induced by glucose. Sucralose increased biphasic increase in [Ca(2+)](c). The second sustained phase was blocked by removal of extracellular calcium and addition of nifedipine. An inhibitor of inositol(1, 4, 5)-trisphophate receptor, 2-aminoethoxydiphenyl borate, blocked both phases of [Ca(2+)](c) response. The effect of sucralose on [Ca(2+)](c) was inhibited by gurmarin, an inhibitor of the sweet taste receptor, but not affected by a G(q) inhibitor. Sucralose also induced sustained elevation of [cAMP](c), which was only partially inhibited by removal of extracellular calcium and nifedipine. Finally, mouse islets expressed T1R2 and T1R3, and artificial sweeteners stimulated insulin secretion.
Sweet taste receptor is expressed in beta-cells, and activation of this receptor induces insulin secretion by Ca(2+) and cAMP-dependent mechanisms.
Journal Article
Glucose Evokes Rapid Ca2+ and Cyclic AMP Signals by Activating the Cell-Surface Glucose-Sensing Receptor in Pancreatic β-Cells
2015
Glucose is a primary stimulator of insulin secretion in pancreatic β-cells. High concentration of glucose has been thought to exert its action solely through its metabolism. In this regard, we have recently reported that glucose also activates a cell-surface glucose-sensing receptor and facilitates its own metabolism. In the present study, we investigated whether glucose activates the glucose-sensing receptor and elicits receptor-mediated rapid actions. In MIN6 cells and isolated mouse β-cells, glucose induced triphasic changes in cytoplasmic Ca(2+) concentration ([Ca(2+)]c); glucose evoked an immediate elevation of [Ca(2+)]c, which was followed by a decrease in [Ca(2+)]c, and after a certain lag period it induced large oscillatory elevations of [Ca(2+)]c. Initial rapid peak and subsequent reduction of [Ca(2+)]c were independent of glucose metabolism and reproduced by a nonmetabolizable glucose analogue. These signals were also blocked by an inhibitor of T1R3, a subunit of the glucose-sensing receptor, and by deletion of the T1R3 gene. Besides Ca(2+), glucose also induced an immediate and sustained elevation of intracellular cAMP ([cAMP]c). The elevation of [cAMP]c was blocked by transduction of the dominant-negative Gs, and deletion of the T1R3 gene. These results indicate that glucose induces rapid changes in [Ca(2+)]c and [cAMP]c by activating the cell-surface glucose-sensing receptor. Hence, glucose generates rapid intracellular signals by activating the cell-surface receptor.
Journal Article
T1R3 homomeric sweet taste receptor regulates adipogenesis through Gαs-mediated microtubules disassembly and Rho activation in 3T3-L1 cells
by
Inagaki, Takeshi
,
Shibata, Hiroshi
,
Nagasawa, Masahiro
in
1-Phosphatidylinositol 3-kinase
,
3T3-L1 Cells
,
Actin
2017
We previously reported that 3T3-L1 cells express a functional sweet taste receptor possibly as a T1R3 homomer that is coupled to Gs and negatively regulates adipogenesis by a Gαs-mediated but cAMP-independent mechanism. Here, we show that stimulation of this receptor with sucralose or saccharin induced disassembly of the microtubules in 3T3-L1 preadipocytes, which was attenuated by overexpression of the dominant-negative mutant of Gαs (Gαs-G226A). In contrast, overexpression of the constitutively active mutant of Gαs (Gαs-Q227L) as well as treatment with cholera toxin or isoproterenol but not with forskolin caused disassembly of the microtubules. Sweetener-induced microtubule disassembly was accompanied by activation of RhoA and Rho-associated kinase (ROCK). This was attenuated with by knockdown of GEF-H1, a microtubule-localized guanine nucleotide exchange factor for Rho GTPase. Furthermore, overexpression of the dominant-negative mutant of RhoA (RhoA-T19N) blocked sweetener-induced dephosphorylation of Akt and repression of PPARγ and C/EBPα in the early phase of adipogenic differentiation. These results suggest that the T1R3 homomeric sweet taste receptor negatively regulates adipogenesis through Gαs-mediated microtubule disassembly and consequent activation of the Rho/ROCK pathway.
Journal Article
Regulation of Calcium-Permeable TRPV2 Channel by Insulin in Pancreatic β-Cells
by
Rohit N. Kulkarni
,
Etsuko Hisanaga
,
Kohjiro Ueki
in
Adenoviridae - genetics
,
Animals
,
Biological and medical sciences
2009
Regulation of Calcium-Permeable TRPV2 Channel by Insulin in Pancreatic β-Cells
Etsuko Hisanaga 1 2 ,
Masahiro Nagasawa 1 ,
Kohjiro Ueki 1 3 ,
Rohit N. Kulkarni 4 ,
Masatomo Mori 2 and
Itaru Kojima 1
1 Institute for Molecular and Cellular Regulation, Gunma University, Maebashi, Japan
2 Department of Medicine and Molecular Science, Gunma University Graduate School of Medicine, Maebashi, Japan
3 Department of Metabolic Diseases, Graduate School of Medicine, University of Tokyo, Tokyo, Japan
4 Department of Medicine, Joslin Diabetic Center, Harvard Medical School, Boston, Massachusetts
Corresponding author: Itaru Kojima, ikojima{at}showa.gunma-u.ac.jp
Abstract
OBJECTIVE— Calcium-permeable cation channel TRPV2 is expressed in pancreatic β-cells. We investigated regulation and function of TRPV2
in β-cells.
RESEARCH DESIGN AND METHODS— Translocation of TRPV2 was assessed in MIN6 cells and cultured mouse β-cells by transfecting TRPV2 fused to green fluorescent
protein or TRPV2 containing c-Myc tag in the extracellular domain. Calcium entry was assessed by monitoring fura-2 fluorescence.
RESULTS— In MIN6 cells, TRPV2 was observed mainly in cytoplasm in an unstimulated condition. Addition of exogenous insulin induced
translocation and insertion of TRPV2 to the plasma membrane. Consistent with these observations, insulin increased calcium
entry, which was inhibited by tranilast, an inhibitor of TRPV2, or by knockdown of TRPV2 using shRNA. A high concentration
of glucose also induced translocation of TRPV2, which was blocked by nefedipine, diazoxide, and somatostatin, agents blocking
glucose-induced insulin secretion. Knockdown of the insulin receptor attenuated insulin-induced translocation of TRPV2. Similarly,
the effect of insulin on TRPV2 translocation was not observed in a β-cell line derived from islets obtained from a β-cell–specific
insulin receptor knockout mouse. Knockdown of TRPV2 or addition of tranilast significantly inhibited insulin secretion induced
by a high concentration of glucose. Likewise, cell growth induced by serum and glucose was inhibited by tranilast or by knockdown
of TRPV2. Finally, insulin-induced translocation of TRPV2 was observed in cultured mouse β-cells, and knockdown of TRPV2 reduced
insulin secretion induced by glucose.
CONCLUSIONS— TRPV2 is regulated by insulin and is involved in the autocrine action of this hormone on β-cells.
Footnotes
Published ahead of print at http://diabetes.diabetesjournals.org on 4 November 2008.
Readers may use this article as long as the work is properly cited, the use is educational and not for profit, and the work
is not altered. See http://creativecommons.org/licenses/by-nc-nd/3.0/ for details.
The costs of publication of this article were defrayed in part by the payment of page charges. This article must therefore
be hereby marked “advertisement” in accordance with 18 U.S.C. Section 1734 solely to indicate this fact.
Accepted October 10, 2008.
Received June 6, 2008.
DIABETES
Journal Article
Translocation of TRPV2 channel induced by focal administration of mechanical stress
2015
The effect of focal mechanical stress on the localization of TRPV2 was investigated in HT1080 cells, where only mRNA for TRPV2 was detected among members of the TRPV channel family. Mechanical stress was applied by adding negative pressure using a glass pipette. When focal mechanical stress was applied, subplasma membrane Ca2+ concentration ([Ca2+]s) was increased beneath the pipette, which propagated throughout the cell. The increase in [Ca2+]s was blocked by ruthenium red or by knocking down TRPV2. Elevation of [Ca2+]s was not observed by removal of extracellular Ca2+, by an addition of a phosphatidylinositol 3‐kinase inhibitor LY29034, and by transfection of dominant‐negative Rac. In cells expressing GFP‐TRPV2 and RFP‐Akt, administration of focal mechanical stress induced accumulation of GFP‐TRPV2 beneath the pipette. RFP‐Akt was also accumulated to the same site. Gadolinium blocked the elevation of [Ca2+]s induced by focal mechanical stress and also attenuated accumulation of TRPV2. When GFP‐TRPV1, GFP‐TRPV3, GFP‐TRPV4, GFP‐TRPV5, or GFP‐TRPV6 was transfected ectopically in HT1080 cells, only GFP‐TRPV4 was accumulated beneath the pipette in response to the focal mechanical stress. These results indicate that TRPV2 translocates to the site receiving a focal mechanical stress and increases [Ca2+]s. e12296 TRPV2 accumulates to the site receiving mechanical stress and elevates subplasma membrane Ca2+ concentration.
Journal Article
Return of the glucoreceptor: Glucose activates the glucose‐sensing receptor T1R3 and facilitates metabolism in pancreatic β‐cells
by
Ohtsu, Yoshiaki
,
Kojima, Itaru
,
Nagasawa, Masahiro
in
Adenosine triphosphate
,
Cell surface
,
Chemoreception
2015
Subunits of the sweet taste receptor, namely T1R2 and T1R3, are expressed in mouse pancreatic islets. Quantitatively, the expression of messenger ribonucleic acid for T1R2 is much lower than that of T1R3, and immunoreactive T1R2 is in fact undetectable. Presumably, a homodimer of T1R3 could function as a signaling receptor. Activation of this receptor by adding an artificial sweetener, sucralose, leads to an increase in intracellular adenosine triphosphate ([ATP]c). This increase in [ATP]c is observed in the absence of ambient glucose. Sucralose also augments elevation of [ATP]c induced by methylsuccinate, a substrate for mitochondria. Consequently, activation of T1R3 promotes metabolism in mitochondria and increases [ATP]c. 3‐O‐Methylglucose, a non‐metabolizable analog of glucose, also increases [ATP]c. Conversely, knockdown of T1R3 attenuates elevation of [ATP]c induced by glucose. Hence, glucose promotes its own metabolism by activating T1R3 and augmenting ATP production. Collectively, a homodimer of T1R3 functions as a cell surface glucose‐sensing receptor and participates in the action of glucose on insulin secretion. The glucose‐sensing receptor T1R3 might be the putative glucoreceptor proposed decades ago by Niki et al. The glucose‐sensing receptor is involved in the action of glucose and modulates glucose metabolism in pancreatic β‐cells. A homodimer of T1R3 functions as the glucose‐sensing receptor in pancreatic beta‐cells. This receptor facilitates glucose metabolism and promotes insulin secretion induced by glucose.
Journal Article
Reduced transient receptor potential vanilloid 2 expression in alveolar macrophages causes COPD in mice through impaired phagocytic activity
by
Yamaguchi, Koichi
,
Masubuchi, Hiroaki
,
Ueno, Manabu
in
Airway management
,
Alveolar macrophage
,
Alveoli
2019
Background
Defective phagocytosis in alveolar macrophages is associated with chronic obstructive pulmonary disease (COPD). Transient receptor potential cation channel subfamily V member 2 (TRPV2), a type of nonselective cation channel pertinent to diverse physiological functions, regulates macrophage phagocytosis. However, the role of TRPV2 in COPD remains poorly understood. Here, we explored the role of TRPV2 in the development of COPD.
Methods
Macrophage TRPV2 expression and phagocytosis function were measured in MH-S cells (a murine alveolar macrophage cell line) and a cigarette smoke exposure mouse model.
Results
TRPV2 expression and phagocytosis function were reduced when MH-S cells were exposed to cigarette smoke extract (CSE). TRPV2 knockdown by siRNA decreased phagocytosis in MH-S cells. Consistently, TRPV2 expression was reduced in alveolar macrophages prepared from bronchoalveolar lavage samples of mice which were exposed to cigarette smoke for 2 months. In addition, the alveolar space was progressively enlarged during development in TRPV2 knockout (TRPV2KO) mice. Moreover, exposure to cigarette smoke for 2 months significantly induced alveolar space enlargement in TRPV2KO mice, but not in wild-type (WT) mice. The phagocytic function of alveolar macrophages from TRPV2KO mice was reduced, compared with macrophages from WT mice.
Conclusions
TRPV2 expression is profoundly downregulated in alveolar macrophages at early time points of cigarette smoke exposure. Reduced TRPV2-mediated phagocytic function renders the lung susceptible to cigarette smoke-induced alveolar space enlargement. TRPV2 may provide a therapeutic target for COPD induced by cigarette smoke.
Journal Article
Correction: T1R3 homomeric sweet taste receptor regulates adipogenesis through Gαs-mediated microtubules disassembly and Rho activation in 3T3-L1 cells
by
Inagaki, Takeshi
,
Shibata, Hiroshi
,
Nagasawa, Masahiro
in
Adipogenesis
,
Dismantling
,
Microtubules
2017
[This corrects the article DOI: 10.1371/journal.pone.0176841.].
Journal Article
Molecular identification of a eukaryotic, stretch-activated nonselective cation channel
Calcium-permeable, stretch-activated nonselective cation (SA Cat) channels mediate cellular responses to mechanical stimuli. However, genes encoding such channels have not been identified in eukaryotes. The yeast MID1 gene product (Mid1) is required for calcium influx in the yeast Saccharomyces cerevisiae. Functional expression of Mid1 in Chinese hamster ovary cells conferred sensitivity to mechanical stress that resulted in increases in both calcium conductance and the concentration of cytosolic free calcium. These increases were dependent on the presence of extracellular calcium and were reduced by gadolinium, a blocker of SA Cat channels. Single-channel analyses with cell-attached patches revealed that Mid1 acts as a calcium-permeable, cation-selective stretch-activated channel with a conductance of 32 picosiemens at 150 millimolar cesium chloride in the pipette. Thus, Mid1 appears to be a eukaryotic, SA Cat channel.
Journal Article
Glucose Evokes Rapid Ca.sup.2+ and Cyclic AMP Signals by Activating the Cell-Surface Glucose-Sensing Receptor in Pancreatic beta-Cells
by
Nagasawa, Masahiro
,
Kojima, Itaru
,
Medina, Johan
in
Glucose metabolism
,
Pancreatic beta cells
,
Physiological aspects
2015
Glucose is a primary stimulator of insulin secretion in pancreatic [beta]-cells. High concentration of glucose has been thought to exert its action solely through its metabolism. In this regard, we have recently reported that glucose also activates a cell-surface glucose-sensing receptor and facilitates its own metabolism. In the present study, we investigated whether glucose activates the glucose-sensing receptor and elicits receptor-mediated rapid actions. In MIN6 cells and isolated mouse [beta]-cells, glucose induced triphasic changes in cytoplasmic Ca.sup.2+ concentration ([Ca.sup.2+ ].sub.c ); glucose evoked an immediate elevation of [Ca.sup.2+ ].sub.c, which was followed by a decrease in [Ca.sup.2+ ].sub.c, and after a certain lag period it induced large oscillatory elevations of [Ca.sup.2+ ].sub.c . Initial rapid peak and subsequent reduction of [Ca.sup.2+ ].sub.c were independent of glucose metabolism and reproduced by a nonmetabolizable glucose analogue. These signals were also blocked by an inhibitor of T1R3, a subunit of the glucose-sensing receptor, and by deletion of the T1R3 gene. Besides Ca.sup.2+, glucose also induced an immediate and sustained elevation of intracellular cAMP ([cAMP].sub.c). The elevation of [cAMP].sub.c was blocked by transduction of the dominant-negative G.sub.s, and deletion of the T1R3 gene. These results indicate that glucose induces rapid changes in [Ca.sup.2+ ].sub.c and [cAMP].sub.c by activating the cell-surface glucose-sensing receptor. Hence, glucose generates rapid intracellular signals by activating the cell-surface receptor.
Journal Article