Signaling Mechanisms of Adaptation to Hypoxia and Its Role in Systemic Regulation

被引:0
|
作者
Lukyanova, L. D. [1 ]
Kirova, Yu. I. [1 ]
Sukoyan, G. V. [1 ]
机构
[1] Russian Acad Med Sci, Inst Gen Pathol & Pathophysiol, Moscow 125315, Russia
来源
BIOLOGICHESKIE MEMBRANY | 2012年 / 29卷 / 04期
关键词
INDUCIBLE FACTOR-1; NITRIC-OXIDE; MITOCHONDRIAL RESPIRATION; FACTOR-I; OXYGEN; EXPRESSION; HIF-1; HIF-1-ALPHA; PROTEIN; ISCHEMIA;
D O I
暂无
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
The role of specific hypoxic factor HIF-1 alpha in the urgent and long-term mechanisms of adaptation to hypoxia and its interaction with other signaling pathways, such as free radical processes, cytokines, and NO, have been studied in rats with high and low resistance to hypoxia. It has been shown that this process is genetically determined, occurs only in animals with low resistance to hypoxia and is coupled with biphasic expression of HIF-1 alpha. In animals with high resistance to hypoxia that have no ability to adapt to hypoxic conditions, the expression of HIF-1 alpha is absent or weak. Neither free radical processes, nor cytokines and NO participated in the induction of urgent adaptation and did not interact in this period with changes in the expression of HIF-1 alpha. However, these factors could be important in the formation of long-term adaptation in the animals with low resistance to hypxia. It is assumed that the inducer of urgent adaptation responsible for the formation of the urgent resistance and early posthypoxic HIF-1 alpha accumulation is the succinate-dependent signaling regulatory system controlled by the receptor GPR-91.
引用
收藏
页码:238 / 252
页数:15
相关论文
共 50 条
  • [31] Mechanisms of hemoglobin adaptation to high altitude hypoxia
    Storz, Jay F.
    Moriyama, Hideaki
    HIGH ALTITUDE MEDICINE & BIOLOGY, 2008, 9 (02) : 148 - 157
  • [32] Mechanisms of anti-inflammatory adaptation to hypoxia
    Colgan, Sean
    Khoury, Joseph
    Ibla, Juan
    Neish, Andrew
    INFLAMMATION RESEARCH, 2007, 56 : S86 - S86
  • [33] Role of hypoxia on lipid signaling
    Schoenberger, T.
    Glaser, U.
    Prost-Fingerle, K.
    Fandrey, J.
    ACTA PHYSIOLOGICA, 2019, 227
  • [34] Role of TET2 in the Regulation of Uterine Arterial Adaptation to Gestational Hypoxia.
    Hu, Xiang-Qun
    Dasgupta, Chiranjib
    Song, Rui
    Zhang, Lubo
    REPRODUCTIVE SCIENCES, 2020, 27 (SUPPL 1) : 353A - 353A
  • [35] NOVEL MECHANISMS OF GENE REGULATION BY HYPOXIA
    Prickaerts, P.
    Adriaens, M.
    Chan-Seng-Yue, M.
    Beck, T.
    Koritzinsky, M.
    Voncken, W.
    Wouters, B.
    RADIOTHERAPY AND ONCOLOGY, 2012, 102 : S182 - S182
  • [36] The role of mitochondria in tumor adaptation to hypoxia
    Salloum, N
    Allalunis-Turner, J
    RADIOTHERAPY AND ONCOLOGY, 2004, 72 : S8 - S8
  • [37] Regulation of cells of the arterial wall by hypoxia and its role in the development of atherosclerosis
    Norda, Stephen
    Papadantonaki, Rosa
    VASA-EUROPEAN JOURNAL OF VASCULAR MEDICINE, 2023, 52 (01) : 6 - 21
  • [38] Role of nitric oxide in capillary perfusion and oxygen delivery regulation during systemic hypoxia
    Bertuglia, S
    Giusti, A
    AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2005, 288 (02): : H525 - H531
  • [39] Vasoconstrictor Mechanisms in Chronic Hypoxia-Induced Pulmonary Hypertension: Role of Oxidant Signaling
    Yan, Simin
    Resta, Thomas C.
    Jernigan, Nikki L.
    ANTIOXIDANTS, 2020, 9 (10) : 1 - 36
  • [40] The Role of Hypoxia and Hypoxia Signaling in Skeletal Muscle Physiology
    Endo, Yori
    Zhu, Christina
    Giunta, Elena
    Guo, Cynthia
    Koh, Danial J.
    Sinha, Indranil
    ADVANCED BIOLOGY, 2024, 8 (01):