TY - JOUR
T1 - The role played by transcription factor e3 in modulating cardiac hypertrophy
AU - Rishiq, Ahmed
AU - Islam, Omedul
AU - Golomb, Eliahu
AU - Gilon, Dan
AU - Smith, Yoav
AU - Savchenko, Ilya
AU - Eliaz, Ran
AU - Foo, Roger S.Y.
AU - Razin, Ehud
AU - Tshori, Sagi
N1 - Publisher Copyright:
© 2021, International Heart Journal Association. All rights reserved.
PY - 2021
Y1 - 2021
N2 - Transcription factor E3 (TFE3), which is a key regulator of cellular adaptation, is expressed in most tis-sues, including the heart, and is reportedly overexpressed during cardiac hypertrophy. In this study, TFE3’s role in cardiac hypertrophy was investigated. To understand TFE3’s physiological importance in cardiac hypertrophy, pressure-overload cardiac hypertrophy was induced through transverse aortic constriction (TAC) in both wild-type (WT) and TFE3 knockout mice (TFE3−/−). Eleven weeks after TAC induction, cardiac hypertrophy was observed in both WT and TFE3−/− mice. However, significant reductions in ejection fraction and fractional shorten-ing were observed in WT mice compared to TFE3−/− mice. To understand the mechanism, we found that myosin heavy chain (Myh7), which increases during hemodynamic overload, was lower in TFE3−/− TAC mice than in WT TAC mice, whereas extracellular signal-regulated protein kinases (ERK) phosphorylation, which confers cardioprotection, was lower in the left ventricles of WT mice than in TFE3−/− mice. We also found high expres-sions of TFE3, histone, and MYH7 and low expression of pERK in the normal human heart compared to the hypertensive heart. In the H9c2 cell line, we found that ERK inhibition caused TFE3 nuclear localization. In addition, we found that MYH7 was associated with TFE3, and during TFE3 knockdown, MYH7 and histone were downregulated. Therefore, we showed that TFE3 expression was increased in the mouse model of cardiac hypertrophy and tissues from human hypertensive hearts, whereas pERK was decreased reversibly, which sug-gested that TFE3 is involved in cardiac hypertrophy through TFE3-histone-MYH7-pERK signaling.
AB - Transcription factor E3 (TFE3), which is a key regulator of cellular adaptation, is expressed in most tis-sues, including the heart, and is reportedly overexpressed during cardiac hypertrophy. In this study, TFE3’s role in cardiac hypertrophy was investigated. To understand TFE3’s physiological importance in cardiac hypertrophy, pressure-overload cardiac hypertrophy was induced through transverse aortic constriction (TAC) in both wild-type (WT) and TFE3 knockout mice (TFE3−/−). Eleven weeks after TAC induction, cardiac hypertrophy was observed in both WT and TFE3−/− mice. However, significant reductions in ejection fraction and fractional shorten-ing were observed in WT mice compared to TFE3−/− mice. To understand the mechanism, we found that myosin heavy chain (Myh7), which increases during hemodynamic overload, was lower in TFE3−/− TAC mice than in WT TAC mice, whereas extracellular signal-regulated protein kinases (ERK) phosphorylation, which confers cardioprotection, was lower in the left ventricles of WT mice than in TFE3−/− mice. We also found high expres-sions of TFE3, histone, and MYH7 and low expression of pERK in the normal human heart compared to the hypertensive heart. In the H9c2 cell line, we found that ERK inhibition caused TFE3 nuclear localization. In addition, we found that MYH7 was associated with TFE3, and during TFE3 knockdown, MYH7 and histone were downregulated. Therefore, we showed that TFE3 expression was increased in the mouse model of cardiac hypertrophy and tissues from human hypertensive hearts, whereas pERK was decreased reversibly, which sug-gested that TFE3 is involved in cardiac hypertrophy through TFE3-histone-MYH7-pERK signaling.
KW - Cardioprotection
KW - ERK signaling
KW - Mice
KW - Transverse aortic constriction
UR - http://www.scopus.com/inward/record.url?scp=85120410177&partnerID=8YFLogxK
U2 - 10.1536/ihj.21-088
DO - 10.1536/ihj.21-088
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C2 - 34744144
AN - SCOPUS:85120410177
SN - 1349-2365
VL - 62
SP - 1358
EP - 1368
JO - International Heart Journal
JF - International Heart Journal
IS - 6
ER -