Oestrogenic Regulation of Mitochondrial Dynamics

被引:26
|
作者
Beikoghli Kalkhoran, Siavash [1 ]
Kararigas, Georgios [1 ]
机构
[1] Univ Iceland, Fac Med, Dept Physiol, IS-101 Reykjavik, Iceland
关键词
17; beta-oestradiol; biological sex; cardiovascular; heart-brain axis; neuronal; ISCHEMIA-REPERFUSION INJURY; RECEPTOR-BETA ATTENUATE; SEX-DIFFERENCES; PERMEABILITY TRANSITION; DEPENDENT REGULATION; SKELETAL-MUSCLE; CARDIAC GROWTH; CELL-DEATH; FUSION; HEART;
D O I
10.3390/ijms23031118
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Biological sex influences disease development and progression. The steroid hormone 17 beta-oestradiol (E2), along with its receptors, is expected to play a major role in the manifestation of sex differences. E2 exerts pleiotropic effects in a system-specific manner. Mitochondria are one of the central targets of E2, and their biogenesis and respiration are known to be modulated by E2. More recently, it has become apparent that E2 also regulates mitochondrial fusion-fission dynamics, thereby affecting cellular metabolism. The aim of this article is to discuss the regulatory pathways by which E2 orchestrates the activity of several components of mitochondrial dynamics in the cardiovascular and nervous systems in health and disease. We conclude that E2 regulates mitochondrial dynamics to maintain the mitochondrial network promoting mitochondrial fusion and attenuating mitochondrial fission in both the cardiovascular and nervous systems.
引用
收藏
页数:19
相关论文
共 50 条
  • [31] Regulation of Mitoflash Biogenesis and Signaling by Mitochondrial Dynamics
    Wenwen Li
    Tao Sun
    Beibei Liu
    Di Wu
    Wenfeng Qi
    Xianhua Wang
    Qi Ma
    Heping Cheng
    Scientific Reports, 6
  • [32] Mitochondrial Dynamics Regulation in Skin Fibroblasts from Mitochondrial Disease Patients
    Tokuyama, Takeshi
    Hirai, Asei
    Shiiba, Isshin
    Ito, Naoki
    Matsuno, Keigo
    Takeda, Keisuke
    Saito, Kanata
    Mii, Koki
    Matsushita, Nobuko
    Fukuda, Toshifumi
    Inatome, Ryoko
    Yanagi, Shigeru
    BIOMOLECULES, 2020, 10 (03)
  • [33] Non-conventional mitochondrial permeability transition: Its regulation by mitochondrial dynamics
    Yoon, Yisang
    Lee, Hakjoo
    Federico, Marilen
    Sheu, Shey-Shing
    BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 2023, 1864 (01):
  • [34] Mitochondrial Dynamics in the Regulation of Nutrient Utilization and Energy Expenditure
    Liesa, Marc
    Shirihai, Orian S.
    CELL METABOLISM, 2013, 17 (04) : 491 - 506
  • [35] Regulation of mitochondrial dynamics in astrocytes: Mechanisms, consequences, and unknowns
    Jackson, Joshua G.
    Robinson, Michael B.
    GLIA, 2018, 66 (06) : 1213 - 1234
  • [36] Exercise Training Induced Regulation of Muscle Mitochondrial Dynamics
    Fix, Dennis K.
    Hardee, Justin P.
    Gao, Song
    Hetzler, Kimbell L.
    Carson, James A.
    FASEB JOURNAL, 2016, 30
  • [37] Regulation of Mitochondrial Dynamics by Proteolytic Processing and Protein Turnover
    Ali, Sumaira
    McStay, Gavin P.
    ANTIOXIDANTS, 2018, 7 (01)
  • [38] Regulation of activity-depenedent mitochondrial dynamics in astrocytes
    Kittler, J.
    JOURNAL OF NEUROCHEMISTRY, 2017, 142 : 36 - 36
  • [39] Targeting mitochondrial dynamics and redox regulation in cardiovascular diseases
    Beg, Mirza Ahmar
    Huang, Minqi
    Vick, Lance
    Rao, K. N. Shashanka
    Zhang, Jue
    Chen, Yiliang
    TRENDS IN PHARMACOLOGICAL SCIENCES, 2024, 45 (04) : 290 - 303
  • [40] Research progress on ncRNAs regulation of mitochondrial dynamics in diabetes
    Wu, Yifan
    Lan, Huixin
    Zhang, Deju
    Hu, Ziyan
    Zhang, Jing
    Li, Zhangwang
    Xia, Panpan
    Tang, Xiaoyi
    Cai, Xia
    Yu, Peng
    JOURNAL OF CELLULAR PHYSIOLOGY, 2022, 237 (11) : 4112 - 4131