Genetic control of temperature preference in the nematode Caenorhabditis elegans

被引:110
作者
Mohri, A
Kodama, E
Kimura, KD
Koike, M
Mizuno, T
Mori, I [1 ]
机构
[1] Nagoya Univ, Inst Adv Res, Grad Sch Sci, Grp Mol Neurobiol,Chikusa Ku, Nagoya, Aichi 4648602, Japan
[2] Japan Sci & Technol Corp, PRESTO, Kawaguchi 3320012, Japan
关键词
D O I
10.1534/genetics.104.036111
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Animals modify behavioral outputs in response to environmental changes. C. elegans exhibits thermotaxis, where well-fed animals show attraction to their cultivation temperature on a thermal gradient without food. We show here that feeding-state-clependent modulation of thermotaxis is a powerful behavioral paradigm for elucidating the mechanism underlying neural plasticity, learning, and memory in higher animals. Starved experience alone could induce aversive response to cultivation temperature. Changing both cultivation temperature and feeding state Simultaneously evoked transient attraction to or aversion to the previous cultivation temperature: recultivation of starved animals with food immediately induced attraction to the temperature associated with starvation, although the animals eventually exhibited thermotaxis to the new temperature associated with food. These results suggest that the change in feeding state quickly stimulates the switch between attraction and aversion for the temperature in memory and that the acquisition of new temperature memory establishes more slowly. We isolated aho (abnormal hunger orientation) mutants that are defective in starvation-induced cultivation-temperature avoidance. Some aho mutants responded normally to changes in feeding state with respect to locomotory activity, implying that the primary thermosensation followed by temperature memory formation remains normal and the modulatory aspect of thermotaxis is specificaily impaired in these mutants.
引用
收藏
页码:1437 / 1450
页数:14
相关论文
共 33 条
[1]   EFFECTS OF STARVATION AND NEUROACTIVE DRUGS ON FEEDING IN CAENORHABDITIS-ELEGANS [J].
AVERY, L ;
HORVITZ, HR .
JOURNAL OF EXPERIMENTAL ZOOLOGY, 1990, 253 (03) :263-270
[2]   Neurobiology of the Caenorhabditis elegans genome [J].
Bargmann, CI .
SCIENCE, 1998, 282 (5396) :2028-2033
[3]  
BRENNER S, 1974, GENETICS, V77, P71
[4]   MOLECULAR ANALYSIS OF CDNA CLONES AND THE CORRESPONDING GENOMIC CODING SEQUENCES OF THE DROSOPHILA DUNCE+ GENE, THE STRUCTURAL GENE FOR CAMP PHOSPHODIESTERASE [J].
CHEN, CN ;
DENOME, S ;
DAVIS, RL .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1986, 83 (24) :9313-9317
[5]   Environmental signals modulate olfactory acuity, discrimination, and memory in Caenorhabditis elegans [J].
Colbert, HA ;
Bargmann, CI .
LEARNING & MEMORY, 1997, 4 (02) :179-191
[6]   ODORANT-SPECIFIC ADAPTATION PATHWAYS GENERATE OLFACTORY PLASTICITY IN C-ELEGANS [J].
COLBERT, HA ;
BARGMANN, CI .
NEURON, 1995, 14 (04) :803-812
[7]  
CULOTTI JG, 1978, GENETICS, V90, P243
[8]   A GENETIC PATHWAY FOR THE DEVELOPMENT OF THE CAENORHABDITIS-ELEGANS HSN MOTOR NEURONS [J].
DESAI, C ;
GARRIGA, G ;
MCINTIRE, SL ;
HORVITZ, HR .
NATURE, 1988, 336 (6200) :638-646
[9]   The cat-1 gene of Caenorhabditis elegans encodes a vesicular monoamine transporter required for specific monoamine-dependent behaviors [J].
Duerr, JS ;
Frisby, DL ;
Gaskin, J ;
Duke, A ;
Asermely, K ;
Huddleston, D ;
Eiden, LE ;
Rand, JB .
JOURNAL OF NEUROSCIENCE, 1999, 19 (01) :72-84
[10]   NORMAL AND MUTANT THERMOTAXIS IN NEMATODE CAENORHABDITIS-ELEGANS [J].
HEDGECOCK, EM ;
RUSSELL, RL .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1975, 72 (10) :4061-4065