Hand-preference training in the mouse reveals key elements of its learning and memory process and resolves the phenotypic complexity in the behaviour

被引:12
作者
Biddle, Fred G. [1 ]
Eales, Brenda A. [1 ]
机构
[1] Univ Calgary, Hlth Sci Ctr, Dept Med Genet,Fac Med, Populat Genom Res Grp,Inst Maternal & Child Hlth, Calgary, AB T2N 4N1, Canada
关键词
mouse; hand-preference; behavioural genetics; learning; memory; complexity; kinetics; capacity; ability; memory regulator gene;
D O I
10.1139/G06-026
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Handedness in the mouse comprises 2 different behaviours. Some strains have a conditional behaviour, in that the mice learn a direction of hand preference in response to reaching for food, whereas other strains have an innate or constitutive behaviour, and prior experience has no measurable effect on their hand preference. However, hybrids from different strains have revealed both recessive and dominant forms of constitutive hand preference. We proposed that kinetic parameters of the learning process would resolve this genetic heterogeneity as well as the phenotypic complexity in the behaviour. We conducted and report here a detailed kinetic analysis of hand-preference training in the C57BL/6J strain. It revealed elements of the fundamental process of learning and long-term memory that underlies the behaviour by documenting consolidation of memory, blocking of this consolidation by an inhibitor of protein synthesis, retention of memory, and speed of learning in response to training reaches. Furthermore, speed of learning is clearly described by 2 parameters that we call "capacity" (or maximum amount of learned preference) and "ability" (or number of training reaches to achieve half the capacity). These 2 kinetic parameters can vary independently among genetically different strains that learn a preference, and we used them to demonstrate that the respective recessive and dominant forms of constitutive hand-preference may be the consequence of a true null or loss of function and a gain of function, possibly a memory regulator, in the learning process. The quantitative measures provide a sensitive and selective method to establish the fundamental learning process underlying mouse hand preference and to demonstrate empirically how genes and contextual environment shape its phenotypic complexity.
引用
收藏
页码:666 / 677
页数:12
相关论文
共 35 条
[1]   Genetic demonstration of a role for PKA in the late phase of LTP and in hippocampus-based long-term memory [J].
Abel, T ;
Nguyen, PV ;
Barad, M ;
Deuel, TAS ;
Kandel, ER .
CELL, 1997, 88 (05) :615-626
[2]   Memory suppressor genes: Inhibitory constraints on the storage of long-term memory [J].
Abel, T ;
Martin, KC ;
Bartsch, D ;
Kandel, ER .
SCIENCE, 1998, 279 (5349) :338-341
[3]   Positive and negative regulatory mechanisms that mediate long-term memory storage [J].
Abel, T ;
Kandel, E .
BRAIN RESEARCH REVIEWS, 1998, 26 (2-3) :360-378
[4]  
ANNETT M, 1995, CAH PSYCHOL COGN, V14, P427
[5]  
[Anonymous], 2000, What's Wrong with my Mouse?
[6]   The degree of lateralization of paw usage (handedness) in the mouse is defined by three major phenotypes [J].
Biddle, FG ;
Eales, BA .
BEHAVIOR GENETICS, 1996, 26 (04) :391-406
[7]   GENETIC-VARIATION IN PAW PREFERENCE (HANDEDNESS) IN THE MOUSE [J].
BIDDLE, FG ;
COFFARO, CM ;
ZIEHR, JE ;
EALES, BA .
GENOME, 1993, 36 (05) :935-943
[8]   A two-locus model for experience-conditioned direction of paw usage in the mouse is suggested by dominant and recessive constitutive paw usage behaviours [J].
Biddle, FG ;
Jones, DA ;
Eales, BA .
GENOME, 2001, 44 (05) :872-882
[9]   Lateral asymmetry of paw usage: phenotypic survey of constitutive and experience-conditioned paw-usage behaviours among common strains of the mouse [J].
Biddle, FG ;
Eales, BA .
GENOME, 2001, 44 (04) :539-548
[10]   Mouse genetic model for left-right hand usage: Context, direction, norms of reaction, and memory [J].
Biddle, FG ;
Eales, BA .
GENOME, 1999, 42 (06) :1150-1166