Fructose 1,6-Bisphosphate: A Summary of Its Cytoprotective Mechanism

被引:30
作者
Alva, Norma [1 ]
Alva, Ronald [2 ]
Carbonell, Teresa [1 ]
机构
[1] Univ Barcelona, Fac Biol, Dept Cellular Biol Physiol & Immunol, POB 08028, Barcelona, Spain
[2] Labs Hypatia SA, Dept Qual Control, Lima, Peru
关键词
Fructose 1,6-bisphosphate; calcium chelator; neuroprotection; anticonvulsant; immunoprotection; oxidative stress; antioxidant; osteoporosis; NITRIC-OXIDE SYNTHASE; STRONTIUM FRUCTOSE 1,6-DIPHOSPHATE; COLD-STORAGE SOLUTION; OXIDATIVE STRESS; EXOGENOUS FRUCTOSE-1,6-BISPHOSPHATE; LYMPHOCYTE-PROLIFERATION; ANTICONVULSANT ACTIVITY; ISCHEMIA-REPERFUSION; INTRACELLULAR CA2+; LIVER PRESERVATION;
D O I
10.2174/0929867323666161014144250
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
In clinical and experimental settings, a great deal of effort is being made to protect cells and tissues against harmful conditions and to facilitate metabolic recovery following these insults. Much of the recent attention has focused on the protective role of a natural form of sugar, fructose 1,6-bisphosphate (F16bP). F16bP is a high-energy glycolytic intermediate that has been shown to exert a protective action in different cell types and tissues (including the brain, kidney, intestine, liver and heart) against various harmful conditions. For example, there is much evidence that it prevents neuronal damage due to hypoxia and ischemia. Furthermore, the cytoprotective effects of F16bP have been documented in lesions caused by chemicals or cold storage, in a decrease in mortality during sepsis shock and even in the prevention of bone loss in experimental osteoporosis. Intriguingly, protection in such a variety of targets and animal models suggests that the mechanisms induced by F16bP are complex and involve different pathways. In this review we will discuss the most recent theories concerning the molecular model of action of F16bP inside cells. These include its incorporation as an energy substrate, the mechanism for the improvement of ATP availability, and for preservation of organelle membrane stability and functionality. In addition we will present new evidences regarding the capacity of F16bP to decrease oxidative stress by limiting free radical production and improving antioxidant systems, including the role of nitric oxide in the protective mechanism induced by F16bP. Finally we will review the proposed mechanisms for explaining its anti-inflammatory, immunomodulatory and neuroprotective properties.
引用
收藏
页码:4396 / 4417
页数:22
相关论文
共 129 条
  • [31] EFFECT OF GALACTOSAMINE ON HEPATIC CARBOHYDRATE-METABOLISM - PROTECTIVE ROLE OF FRUCTOSE-1,6-BISPHOSPHATE
    DEOLIVEIRA, JR
    ROSA, JL
    AMBROSIO, S
    BARTRONS, R
    [J]. HEPATOLOGY, 1992, 15 (06) : 1147 - 1153
  • [32] ATTENUATION OF ISCHEMIC RENAL INJURY WITH FRUCTOSE 1,6-DIPHOSPHATE
    DIDLAKE, R
    KIRCHNER, KA
    LEWIN, J
    BOWER, JD
    MARKOV, AK
    [J]. JOURNAL OF SURGICAL RESEARCH, 1989, 47 (03) : 220 - 226
  • [33] Fructose-1,6-diphosphate protects against epileptogenesis by modifying cation-chloride co-transporters in a model of amygdaloid-kindling temporal epilepticus
    Ding, Yao
    Wang, Shan
    Jiang, Yan
    Yang, Yi
    Zhang, Manman
    Guo, Yi
    Wang, Shuang
    Ding, Mei-ping
    [J]. BRAIN RESEARCH, 2013, 1539 : 87 - 94
  • [34] Fructose-1,6-diphosphate inhibits seizure acquisition in fast hippocampal kindling
    Ding, Yao
    Wang, Shuang
    Zhang, Man-man
    Guo, Yi
    Yang, Yi
    Weng, Shu-qun
    Wu, Ji-min
    Qiu, Xia
    Ding, Mei-ping
    [J]. NEUROSCIENCE LETTERS, 2010, 477 (01) : 33 - 36
  • [35] Neuroprotection and intracellular Ca2+ modulation with fructose-1,6-bisphosphate during in vitro hypoxia-ischemia involves phospholipase C-dependent signaling
    Donohoe, PH
    Fahlman, CS
    Bickler, PE
    Vexler, ZS
    Gregory, GA
    [J]. BRAIN RESEARCH, 2001, 917 (02) : 158 - 166
  • [36] Induction of nitric oxide synthase in macrophages: Inhibition by fructose-1,6-diphosphate
    Edde, L
    Zhou, XJ
    Eaten, JW
    Sherman, MP
    [J]. BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1998, 243 (03) : 683 - 687
  • [37] Membrane permeability of fructose-1,6-diphosphate in lipid vesicles and endothelial cells
    Ehringer, WD
    Niu, WY
    Chiang, B
    Wang, OL
    Gordon, L
    Chien, S
    [J]. MOLECULAR AND CELLULAR BIOCHEMISTRY, 2000, 210 (1-2) : 35 - 45
  • [38] The uptake and metabolism of fructose-1,6-diphosphate in rat cardiomyocytes
    Ehringer, WD
    Chiang, B
    Chien, S
    [J]. MOLECULAR AND CELLULAR BIOCHEMISTRY, 2001, 221 (1-2) : 33 - 40
  • [39] Fructose-1,6-bisphosphate preserves adenosine triphosphate but not intracellular pH during hypoxia in respiring neonatal rat brain slices
    Espanol, MT
    Litt, L
    Hasegawa, K
    Chang, LH
    Macdonald, JM
    Gregory, G
    James, TL
    Chan, PH
    [J]. ANESTHESIOLOGY, 1998, 88 (02) : 461 - 472
  • [40] Activation of the neuroprotective ERK signaling pathway by fructose-1,6-bisphosphate during hypoxia involves intracellular Ca2+ and phospholipase C
    Fahlman, CS
    Bickler, PE
    Sullivan, B
    Gregory, GA
    [J]. BRAIN RESEARCH, 2002, 958 (01) : 43 - 51