Activation of estrogen response elements is mediated both via estrogen and muscle contractions in rat skeletal muscle myotubes

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Activation of estrogen response elements is mediated both via estrogen and muscle contractions in rat skeletal muscle myotubes. / Wiik, A.; Hellsten, Ylva; Berthelson, P.; Lundholm, L.; Fischer, H.; Jansson, E.

I: American Journal of Physiology: Cell Physiology, Bind 296, Nr. 1, 2009, s. C215-C220.

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Harvard

Wiik, A, Hellsten, Y, Berthelson, P, Lundholm, L, Fischer, H & Jansson, E 2009, 'Activation of estrogen response elements is mediated both via estrogen and muscle contractions in rat skeletal muscle myotubes', American Journal of Physiology: Cell Physiology, bind 296, nr. 1, s. C215-C220. https://doi.org/10.1152/ajpcell.00148.2008

APA

Wiik, A., Hellsten, Y., Berthelson, P., Lundholm, L., Fischer, H., & Jansson, E. (2009). Activation of estrogen response elements is mediated both via estrogen and muscle contractions in rat skeletal muscle myotubes. American Journal of Physiology: Cell Physiology, 296(1), C215-C220. https://doi.org/10.1152/ajpcell.00148.2008

Vancouver

Wiik A, Hellsten Y, Berthelson P, Lundholm L, Fischer H, Jansson E. Activation of estrogen response elements is mediated both via estrogen and muscle contractions in rat skeletal muscle myotubes. American Journal of Physiology: Cell Physiology. 2009;296(1):C215-C220. https://doi.org/10.1152/ajpcell.00148.2008

Author

Wiik, A. ; Hellsten, Ylva ; Berthelson, P. ; Lundholm, L. ; Fischer, H. ; Jansson, E. / Activation of estrogen response elements is mediated both via estrogen and muscle contractions in rat skeletal muscle myotubes. I: American Journal of Physiology: Cell Physiology. 2009 ; Bind 296, Nr. 1. s. C215-C220.

Bibtex

@article{d347f7d0dc0111dd9473000ea68e967b,
title = "Activation of estrogen response elements is mediated both via estrogen and muscle contractions in rat skeletal muscle myotubes",
abstract = "The aim of the present study was to investigate the activation of estrogen response elements (EREs) by estrogen and muscle contractions in rat myotubes in culture and to assess whether the activation is dependent on the estrogen receptors (ERs). In addition, the effect of estrogen and contraction on the mRNA levels of ERalpha and ERbeta was studied to determine the functional consequence of the transactivation. Myoblasts were isolated from rat skeletal muscle and transfected with a vector consisting of sequences of EREs coupled to the gene for luciferase. The transfected myoblasts were then differentiated into myotubes and subjected to either estrogen or electrical stimulation. Activation of the ERE sequence was determined by measurement of luciferase activity. The results show that both ERalpha and ERbeta are expressed in myotubes from rats. Both estrogen stimulation and muscle contraction increased (P < 0.05) transactivation of the ERE sequence and enhanced ERbeta mRNA, whereas ERalpha was unaffected by estrogen and attenuated (P < 0.05) by muscle contraction. Use of ER antagonists showed that, whereas the estrogen-induced transactivation is mediated via ERs, the effect of muscle contraction is ER independent. The muscle contraction-induced transactivation of ERE and increase in ERbeta mRNA were instead found to be MAP kinase (MAPK) dependent. This study demonstrates for the first time that muscle contractions have a similar functional effect as estrogen in skeletal muscle myotubes, causing ERE activation and an enhancement in ERbeta mRNA. However, in contrast to estrogen, the effect is independent of ERs and dependent on MAPK, suggesting activation via the estrogen related receptor (ERR).",
author = "A. Wiik and Ylva Hellsten and P. Berthelson and L. Lundholm and H. Fischer and E. Jansson",
note = "CURIS 2009 5200 001",
year = "2009",
doi = "10.1152/ajpcell.00148.2008",
language = "English",
volume = "296",
pages = "C215--C220",
journal = "American Journal of Physiology: Cell Physiology",
issn = "0363-6143",
publisher = "American Physiological Society",
number = "1",

}

RIS

TY - JOUR

T1 - Activation of estrogen response elements is mediated both via estrogen and muscle contractions in rat skeletal muscle myotubes

AU - Wiik, A.

AU - Hellsten, Ylva

AU - Berthelson, P.

AU - Lundholm, L.

AU - Fischer, H.

AU - Jansson, E.

N1 - CURIS 2009 5200 001

PY - 2009

Y1 - 2009

N2 - The aim of the present study was to investigate the activation of estrogen response elements (EREs) by estrogen and muscle contractions in rat myotubes in culture and to assess whether the activation is dependent on the estrogen receptors (ERs). In addition, the effect of estrogen and contraction on the mRNA levels of ERalpha and ERbeta was studied to determine the functional consequence of the transactivation. Myoblasts were isolated from rat skeletal muscle and transfected with a vector consisting of sequences of EREs coupled to the gene for luciferase. The transfected myoblasts were then differentiated into myotubes and subjected to either estrogen or electrical stimulation. Activation of the ERE sequence was determined by measurement of luciferase activity. The results show that both ERalpha and ERbeta are expressed in myotubes from rats. Both estrogen stimulation and muscle contraction increased (P < 0.05) transactivation of the ERE sequence and enhanced ERbeta mRNA, whereas ERalpha was unaffected by estrogen and attenuated (P < 0.05) by muscle contraction. Use of ER antagonists showed that, whereas the estrogen-induced transactivation is mediated via ERs, the effect of muscle contraction is ER independent. The muscle contraction-induced transactivation of ERE and increase in ERbeta mRNA were instead found to be MAP kinase (MAPK) dependent. This study demonstrates for the first time that muscle contractions have a similar functional effect as estrogen in skeletal muscle myotubes, causing ERE activation and an enhancement in ERbeta mRNA. However, in contrast to estrogen, the effect is independent of ERs and dependent on MAPK, suggesting activation via the estrogen related receptor (ERR).

AB - The aim of the present study was to investigate the activation of estrogen response elements (EREs) by estrogen and muscle contractions in rat myotubes in culture and to assess whether the activation is dependent on the estrogen receptors (ERs). In addition, the effect of estrogen and contraction on the mRNA levels of ERalpha and ERbeta was studied to determine the functional consequence of the transactivation. Myoblasts were isolated from rat skeletal muscle and transfected with a vector consisting of sequences of EREs coupled to the gene for luciferase. The transfected myoblasts were then differentiated into myotubes and subjected to either estrogen or electrical stimulation. Activation of the ERE sequence was determined by measurement of luciferase activity. The results show that both ERalpha and ERbeta are expressed in myotubes from rats. Both estrogen stimulation and muscle contraction increased (P < 0.05) transactivation of the ERE sequence and enhanced ERbeta mRNA, whereas ERalpha was unaffected by estrogen and attenuated (P < 0.05) by muscle contraction. Use of ER antagonists showed that, whereas the estrogen-induced transactivation is mediated via ERs, the effect of muscle contraction is ER independent. The muscle contraction-induced transactivation of ERE and increase in ERbeta mRNA were instead found to be MAP kinase (MAPK) dependent. This study demonstrates for the first time that muscle contractions have a similar functional effect as estrogen in skeletal muscle myotubes, causing ERE activation and an enhancement in ERbeta mRNA. However, in contrast to estrogen, the effect is independent of ERs and dependent on MAPK, suggesting activation via the estrogen related receptor (ERR).

U2 - 10.1152/ajpcell.00148.2008

DO - 10.1152/ajpcell.00148.2008

M3 - Journal article

C2 - 19020053

VL - 296

SP - C215-C220

JO - American Journal of Physiology: Cell Physiology

JF - American Journal of Physiology: Cell Physiology

SN - 0363-6143

IS - 1

ER -

ID: 9541606