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Loss of Endogenous HMGB2 Promotes Cardiac Dysfunction and Pressure Overload-Induced Heart Failure in Mice.
Sato, Michio; Miyata, Keishi; Tian, Zhe; Kadomatsu, Tsuyoshi; Ujihara, Yoshihiro; Morinaga, Jun; Horiguchi, Haruki; Endo, Motoyoshi; Zhao, Jiabin; Zhu, Shunshun; Sugizaki, Taichi; Igata, Kimihiro; Muramatsu, Masashi; Minami, Takashi; Ito, Takashi; Bianchi, Marco E; Mohri, Satoshi; Araki, Kimi; Node, Koichi; Oike, Yuichi.
Afiliação
  • Sato M; Department of Molecular Genetics, Graduate School of Medical Sciences, Kumamoto University.
  • Miyata K; Department of Cardiovascular Medicine, Saga University.
  • Tian Z; Department of Molecular Genetics, Graduate School of Medical Sciences, Kumamoto University.
  • Kadomatsu T; Department of Immunology, Allergy and Vascular Medicine, Graduate School of Medical Sciences, Kumamoto University.
  • Ujihara Y; Department of Molecular Genetics, Graduate School of Medical Sciences, Kumamoto University.
  • Morinaga J; Department of Molecular Genetics, Graduate School of Medical Sciences, Kumamoto University.
  • Horiguchi H; First Department of Physiology, Kawasaki Medical School.
  • Endo M; Department of Molecular Genetics, Graduate School of Medical Sciences, Kumamoto University.
  • Zhao J; Department of Molecular Genetics, Graduate School of Medical Sciences, Kumamoto University.
  • Zhu S; Department of Molecular Genetics, Graduate School of Medical Sciences, Kumamoto University.
  • Sugizaki T; Department of Molecular Genetics, Graduate School of Medical Sciences, Kumamoto University.
  • Igata K; Department of Molecular Genetics, Graduate School of Medical Sciences, Kumamoto University.
  • Muramatsu M; Department of Molecular Genetics, Graduate School of Medical Sciences, Kumamoto University.
  • Minami T; Department of Molecular Genetics, Graduate School of Medical Sciences, Kumamoto University.
  • Ito T; Division of Molecular and Vascular Biology, Institute of Resource Development and Analysis, Kumamoto University.
  • Bianchi ME; Division of Molecular and Vascular Biology, Institute of Resource Development and Analysis, Kumamoto University.
  • Mohri S; Department of Systems Biology in Thromboregulation, Kagoshima University Graduate School of Medical and Dental Science.
  • Araki K; Chromatin Dynamics Unit, San Raffaele University and Scientific Institute.
  • Node K; First Department of Physiology, Kawasaki Medical School.
  • Oike Y; Center for Metabolic Regulation of Healthy Aging, Graduate School of Medical Sciences, Kumamoto University.
Circ J ; 83(2): 368-378, 2019 01 25.
Article em En | MEDLINE | ID: mdl-30487376
ABSTRACT

BACKGROUND:

The rapid increase in the number of heart failure (HF) patients in parallel with the increase in the number of older people is receiving attention worldwide. HF not only increases mortality but decreases quality of life, creating medical and social problems. Thus, it is necessary to define molecular mechanisms underlying HF development and progression. HMGB2 is a member of the high-mobility group superfamily characterized as nuclear proteins that bind DNA to stabilize nucleosomes and promote transcription. A recent in vitro study revealed that HMGB2 loss in cardiomyocytes causes hypertrophy and increases HF-associated gene expression. However, it's in vivo function in the heart has not been assessed. Methods and 

Results:

Western blotting analysis revealed increased HMGB2 expression in heart tissues undergoing pressure overload by transverse aorta constriction (TAC) in mice. Hmgb2 homozygous knockout (Hmgb2-/-) mice showed cardiac dysfunction due to AKT inactivation and decreased sarco(endo)plasmic reticulum Ca2+-ATPase (SERCA)2a activity. Compared to wild-type mice, Hmgb2-/- mice had worsened cardiac dysfunction after TAC surgery, predisposing mice to HF development and progression.

CONCLUSIONS:

This study demonstrates that upregulation of cardiac HMGB2 is an adaptive response to cardiac stress, and that loss of this response could accelerate cardiac dysfunction, suggesting that HMGB2 plays a cardioprotective role.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Contexto em Saúde: 1_ASSA2030 / 6_ODS3_enfermedades_notrasmisibles Problema de saúde: 1_doencas_nao_transmissiveis / 6_cardiovascular_diseases / 6_other_circulatory_diseases Assunto principal: Proteína HMGB2 / Insuficiência Cardíaca Aspecto: Patient_preference Limite: Animals Idioma: En Revista: Circ J Assunto da revista: ANGIOLOGIA / CARDIOLOGIA Ano de publicação: 2019 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Contexto em Saúde: 1_ASSA2030 / 6_ODS3_enfermedades_notrasmisibles Problema de saúde: 1_doencas_nao_transmissiveis / 6_cardiovascular_diseases / 6_other_circulatory_diseases Assunto principal: Proteína HMGB2 / Insuficiência Cardíaca Aspecto: Patient_preference Limite: Animals Idioma: En Revista: Circ J Assunto da revista: ANGIOLOGIA / CARDIOLOGIA Ano de publicação: 2019 Tipo de documento: Article
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