Cryptobiosis - a peculiar state of biological organization

被引:331
作者
Clegg, JS [1 ]
机构
[1] Univ Calif Davis, Bodega Marine Lab Mol & Cellular Biol, Bodega Bay, CA 94923 USA
来源
COMPARATIVE BIOCHEMISTRY AND PHYSIOLOGY B-BIOCHEMISTRY & MOLECULAR BIOLOGY | 2001年 / 128卷 / 04期
基金
美国国家科学基金会;
关键词
anhydrobiosis; anoxybiosis; biochemical adaptation; trehalose; vitrification; water replacement hypothesis; metabolic rate depression; p26; molecular chaperone; small heat shock/alpha-crystallin protein;
D O I
10.1016/S1096-4959(01)00300-1
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
David Keilin (Proc. Roy. Sec. Lend. B, 150, 1959, 149-191) coined the term 'cryptobiosis' (hidden life) and defined it as 'the state of an organism when it shows no visible signs of life and when its metabolic activity becomes hardly measurable, or comes reversibly to a standstill.' I consider selected aspects of the 300 year history of research on this unusual state of biological organization. Clyptobiosis is peculiar in the sense that organisms capable of achieving it exhibit characteristics that differ dramatically from those of living ones, yet they are not dead either, so one may propose that cryptobiosis is a unique state of biological organization. I focus chiefly on animal anhydrobiosis, achieved by the reversible loss of almost all the organism's water. The adaptive biochemical and biophysical mechanisms allowing this to take place involve the participation of large concentrations of polyhydroxy compounds, chiefly the disaccharides trehalose or sucrose. Stress (heat shock) proteins might also be involved, although the details are poorly understood and seem to be organism-specific. Whether the removal of molecular oxygen (anoxybiosis) results in the reversible cessation of metabolism in adapted organisms is considered, with the result being 'yes and no', depending on how one defines metabolism. Basic research on cryptobiosis has resulted in unpredicted applications that are of substantial benefit to the human condition and a few of these are described briefly. (C) 2001 Elsevier Science Inc. All rights reserved.
引用
收藏
页码:613 / 624
页数:12
相关论文
共 108 条
  • [1] Preservation of biological materials under desiccation
    Aguilera, JM
    Karel, M
    [J]. CRITICAL REVIEWS IN FOOD SCIENCE AND NUTRITION, 1997, 37 (03) : 287 - 309
  • [2] Hydrogen bonding between sugar and protein is responsible for inhibition of dehydration-induced protein unfolding
    Allison, SD
    Chang, B
    Randolph, TW
    Carpenter, JF
    [J]. ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1999, 365 (02) : 289 - 298
  • [3] The discovery, scope, and puzzle of desiccation tolerance in plants
    Alpert, P
    [J]. PLANT ECOLOGY, 2000, 151 (01) : 5 - 17
  • [4] Phase transition temperature and chilling sensitivity of bovine oocytes
    Arav, A
    Zeron, Y
    Leslie, SB
    Behboodi, E
    Anderson, GB
    Crowe, JH
    [J]. CRYOBIOLOGY, 1996, 33 (06) : 589 - 599
  • [5] Trehalose: A cryoprotectant that enhances recovery and preserves function of human pancreatic islets after long-term storage
    Beattie, GM
    Crowe, JH
    Lopez, AD
    Cirulli, V
    Ricordi, C
    Hayek, A
    [J]. DIABETES, 1997, 46 (03) : 519 - 523
  • [6] The role of trehalose in the physiology of nematodes
    Behm, CA
    [J]. INTERNATIONAL JOURNAL FOR PARASITOLOGY, 1997, 27 (02) : 215 - 229
  • [7] BIRCH GG, 1963, ADV CARBOHYD CHEM, V18, P201
  • [8] Water content, raffinose, and dehydrins in the induction of desiccation tolerance in immature wheat embryos
    Black, M
    Corbineau, F
    Gee, H
    Côme, D
    [J]. PLANT PHYSIOLOGY, 1999, 120 (02) : 463 - 471
  • [9] Lipid-assisted protein folding
    Bogdanov, M
    Dowhan, W
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (52) : 36827 - 36830
  • [10] Broca P., 1860, MEM SOC BIOL PARIS, V2, P1