Literature DB >> 22734566

Fibroblast circadian rhythms of PER2 expression depend on membrane potential and intracellular calcium.

Takako Noguchi1, Connie W Wang, Haiyun Pan, David K Welsh.   

Abstract

The suprachiasmatic nucleus (SCN) of the hypothalamus synchronizes circadian rhythms of cells and tissues throughout the body. In SCN neurons, rhythms of clock gene expression are suppressed by manipulations that hyperpolarize the plasma membrane or lower intracellular Ca(2+). However, whether clocks in other cells also depend on membrane potential and calcium is unknown. In this study, the authors investigate the effects of membrane potential and intracellular calcium on circadian rhythms in mouse primary fibroblasts. Rhythms of clock gene expression were monitored using a PER2::LUC knockin reporter. Rhythms were lost or delayed at lower (hyperpolarizing) K(+) concentrations. Bioluminescence imaging revealed that this loss of rhythmicity in cultures was due to loss of rhythmicity of single cells rather than loss of synchrony among cells. In lower Ca(2+) concentrations, rhythms were advanced or had shorter periods. Buffering intracellular Ca(2+) by the calcium chelator 1,2-Bis(2-aminophenoxy)ethane-N,N,N',N'-tetraacetic acid tetrakis acetoxymethyl ester (BAPTA-AM) or manipulation of inositol triphosphate (IP(3))-sensitive intracellular calcium stores by thapsigargin delayed rhythms. These results suggest that the circadian clock in fibroblasts, as in SCN neurons, is regulated by membrane potential and Ca(2+). Changes in intracellular Ca(2+) may mediate the effects of membrane potential observed in this study.

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Year:  2012        PMID: 22734566      PMCID: PMC3491983          DOI: 10.3109/07420528.2012.679330

Source DB:  PubMed          Journal:  Chronobiol Int        ISSN: 0742-0528            Impact factor:   2.877


  37 in total

1.  A novel membrane potential-sensitive fluorescent dye improves cell-based assays for ion channels.

Authors:  Deborah F Baxter; Martin Kirk; Amy F Garcia; Alejandra Raimondi; Mats H Holmqvist; Kimberly K Flint; Dejan Bojanic; Peter S Distefano; Rory Curtis; Yu Xie
Journal:  J Biomol Screen       Date:  2002-02

2.  Circadian regulation of diverse gene products revealed by mRNA expression profiling of synchronized fibroblasts.

Authors:  C Grundschober; F Delaunay; A Pühlhofer; G Triqueneaux; V Laudet; T Bartfai; P Nef
Journal:  J Biol Chem       Date:  2001-10-11       Impact factor: 5.157

3.  Synchronization of cellular clocks in the suprachiasmatic nucleus.

Authors:  Shun Yamaguchi; Hiromi Isejima; Takuya Matsuo; Ryusuke Okura; Kazuhiro Yagita; Masaki Kobayashi; Hitoshi Okamura
Journal:  Science       Date:  2003-11-21       Impact factor: 47.728

4.  Rhythmic regulation of membrane potential and potassium current persists in SCN neurons in the absence of environmental input.

Authors:  Sandra J Kuhlman; Douglas G McMahon
Journal:  Eur J Neurosci       Date:  2004-08       Impact factor: 3.386

5.  Membrane potentials, electrolyte contents, cell pH, and some enzyme activities of fibroblasts.

Authors:  Y C Yen-Chow; S Y Chow; W S Jee; D M Woodbury
Journal:  In Vitro       Date:  1984-09

6.  Chemical and physiological characterization of fluo-4 Ca(2+)-indicator dyes.

Authors:  K R Gee; K A Brown; W N Chen; J Bishop-Stewart; D Gray; I Johnson
Journal:  Cell Calcium       Date:  2000-02       Impact factor: 6.817

7.  Circadian dynamics of cytosolic and nuclear Ca2+ in single suprachiasmatic nucleus neurons.

Authors:  Masayuki Ikeda; Takashi Sugiyama; Christopher S Wallace; Heinrich S Gompf; Tohru Yoshioka; Atsushi Miyawaki; Charles N Allen
Journal:  Neuron       Date:  2003-04-24       Impact factor: 17.173

8.  Electrical silencing of Drosophila pacemaker neurons stops the free-running circadian clock.

Authors:  Michael N Nitabach; Justin Blau; Todd C Holmes
Journal:  Cell       Date:  2002-05-17       Impact factor: 41.582

Review 9.  Cell autonomy and synchrony of suprachiasmatic nucleus circadian oscillators.

Authors:  Jennifer A Mohawk; Joseph S Takahashi
Journal:  Trends Neurosci       Date:  2011-06-12       Impact factor: 13.837

10.  PERIOD2::LUCIFERASE real-time reporting of circadian dynamics reveals persistent circadian oscillations in mouse peripheral tissues.

Authors:  Seung-Hee Yoo; Shin Yamazaki; Phillip L Lowrey; Kazuhiro Shimomura; Caroline H Ko; Ethan D Buhr; Sandra M Siepka; Hee-Kyung Hong; Won Jun Oh; Ook Joon Yoo; Michael Menaker; Joseph S Takahashi
Journal:  Proc Natl Acad Sci U S A       Date:  2004-02-12       Impact factor: 11.205

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  19 in total

1.  Calcium channel genes associated with bipolar disorder modulate lithium's amplification of circadian rhythms.

Authors:  Michael J McCarthy; Melissa J Le Roux; Heather Wei; Stephen Beesley; John R Kelsoe; David K Welsh
Journal:  Neuropharmacology       Date:  2015-10-22       Impact factor: 5.250

Review 2.  Communicating clocks shape circadian homeostasis.

Authors:  Kevin B Koronowski; Paolo Sassone-Corsi
Journal:  Science       Date:  2021-02-12       Impact factor: 47.728

3.  Maternal eating behavior is a major synchronizer of fetal and postnatal peripheral clocks in mice.

Authors:  Laurence Canaple; Aline Gréchez-Cassiau; Franck Delaunay; Ouria Dkhissi-Benyahya; Jacques Samarut
Journal:  Cell Mol Life Sci       Date:  2018-05-26       Impact factor: 9.261

4.  Lithium effects on circadian rhythms in fibroblasts and suprachiasmatic nucleus slices from Cry knockout mice.

Authors:  Takako Noguchi; Kevin Lo; Tanja Diemer; David K Welsh
Journal:  Neurosci Lett       Date:  2016-02-27       Impact factor: 3.046

5.  Fibroblast PER2 circadian rhythmicity depends on cell density.

Authors:  Takako Noguchi; Lexie L Wang; David K Welsh
Journal:  J Biol Rhythms       Date:  2013-06       Impact factor: 3.182

6.  Mis-expression of the BK K(+) channel disrupts suprachiasmatic nucleus circuit rhythmicity and alters clock-controlled behavior.

Authors:  Jenna R Montgomery; Joshua P Whitt; Breanne N Wright; Michael H Lai; Andrea L Meredith
Journal:  Am J Physiol Cell Physiol       Date:  2012-11-21       Impact factor: 4.249

7.  A Method for Culturing Mouse Whisker Follicles to Study Circadian Rhythms ex vivo.

Authors:  Atsuhiro Nishida; Yoshiki Miyawaki; Koichi Node; Makoto Akashi
Journal:  Bio Protoc       Date:  2019-01-20

8.  Ex vivo Culture Assay Using Human Hair Follicles to Study Circadian Characteristics.

Authors:  Atsuhiro Nishida; Yoshiki Miyawaki; Koichi Node; Makoto Akashi
Journal:  Bio Protoc       Date:  2020-06-05

9.  In vitro circadian period is associated with circadian/sleep preference.

Authors:  Akiko Hida; Shingo Kitamura; Yosuke Ohsawa; Minori Enomoto; Yasuko Katayose; Yuki Motomura; Yoshiya Moriguchi; Kentaro Nozaki; Makiko Watanabe; Sayaka Aritake; Shigekazu Higuchi; Mie Kato; Yuichi Kamei; Shin Yamazaki; Yu-Ichi Goto; Masaaki Ikeda; Kazuo Mishima
Journal:  Sci Rep       Date:  2013       Impact factor: 4.379

10.  Calcium and SOL Protease Mediate Temperature Resetting of Circadian Clocks.

Authors:  Ozgur Tataroglu; Xiaohu Zhao; Ania Busza; Jinli Ling; John S O'Neill; Patrick Emery
Journal:  Cell       Date:  2015-11-19       Impact factor: 41.582

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