Amphibians as animal models for laboratory research in physiology

被引:76
作者
Burggren, Warren W.
Warburton, Stephen
机构
[1] Univ N Texas, Dept Biol Sci, Denton, TX 76203 USA
[2] No Arizona Univ, Dept Biol Sci, Flagstaff, AZ 86011 USA
关键词
amphibians; animal model; genomics; physiology; physiomics; systems biology;
D O I
10.1093/ilar.48.3.260
中图分类号
S85 [动物医学(兽医学)];
学科分类号
0906 ;
摘要
The concept of animal models is well honored, and amphibians have played a prominent part in the success of using key species to discover new information about all animals. As animal models, amphibians offer several advantages that include a well-understood basic physiology, a taxonomic diversity well suited to comparative studies, tolerance to temperature and oxygen variation, and a greater similarity to humans than many other currently popular animal models. Amphibians now account for similar to 1/4 to 1/3 of lower vertebrate and invertebrate research, and this proportion is especially true in physiological research, as evident from the high profile of amphibians as animal models in Nobel Prize research. Currently, amphibians play prominent roles in research in the physiology of musculoskeletal, cardiovascular, renal, respiratory, reproductive, and sensory systems. Amphibians are also used extensively in physiological studies aimed at generating new insights in evolutionary biology, especially in the investigation of the evolution of air breathing and terrestriality. Environmental physiology also utilizes amphibians, ranging from studies of cryoprotectants for tissue preservation to physiological reactions to hypergravity and space exploration. Amphibians are also playing a key role in studies of environmental endocrine disruptors that are having disproportionately large effects on amphibian populations and where specific species can serve as sentinel species for environmental pollution. Finally, amphibian genera such as Xenopus, a genus relatively well understood metabolically and physiologically, will continue to contribute increasingly in this new era of systems biology and "X-omics."
引用
收藏
页码:260 / 269
页数:10
相关论文
共 110 条
[1]   Zebrafish: A genetic model for vertebrate organogenesis and human disorders [J].
Ackermann, GE ;
Paw, BH .
FRONTIERS IN BIOSCIENCE-LANDMARK, 2003, 8 :D1227-D1253
[2]   The transformation of the model organism: a decade of developmental genetics [J].
Anderson, KV ;
Ingham, PW .
NATURE GENETICS, 2003, 33 (Suppl 3) :285-293
[3]  
[Anonymous], [No title captured]
[4]   Super models [J].
Barr, MM .
PHYSIOLOGICAL GENOMICS, 2003, 13 (01) :15-24
[5]   Calcium sparks in skeletal muscle fibers [J].
Baylor, SM .
CELL CALCIUM, 2005, 37 (06) :513-530
[6]  
Becak Maria Luiza, 2004, Genetics and Molecular Research, V3, P195
[7]   Long-term in vivo modulation of synaptic efficacy at the neuromuscular junction of Rana pipiens frogs [J].
Bélair, EL ;
Vallée, J ;
Robitaille, R .
JOURNAL OF PHYSIOLOGY-LONDON, 2005, 569 (01) :163-178
[8]   Experimental evolution and the Krogh principle: Generating biological novelty for functional and genetic analyses [J].
Bennett, AF .
PHYSIOLOGICAL AND BIOCHEMICAL ZOOLOGY, 2003, 76 (01) :1-11
[9]   The early history of the synapse: From Plato to Sherrington [J].
Bennett, MR .
BRAIN RESEARCH BULLETIN, 1999, 50 (02) :95-118
[10]   Heterogeneous proliferative potential in regenerative adult newt cardiomyocytes [J].
Bettencourt-Dias, M ;
Mittnacht, S ;
Brockes, JP .
JOURNAL OF CELL SCIENCE, 2003, 116 (19) :4001-4009