The proximate architecture for decision-making in fish

被引:18
作者
Andersen, Bjorn Snorre
Jorgensen, Christian
Eliassen, Sigrunn
Giske, Jarl [1 ]
机构
[1] Univ Bergen, Dept Biol, Postboks 7803, N-5020 Bergen, Norway
关键词
Architecture; brain anatomy; decision-making; fish welfare; personality; survival circuit; STICKLEBACKS GASTEROSTEUS-ACULEATUS; HEART-RATE RESPONSES; LONG-TERM SENSITIZATION; 3-SPINED STICKLEBACKS; PREDATION RISK; MESOPELAGIC FISH; VERTICAL-DISTRIBUTION; TROPHIC INTERACTIONS; BEHAVIORAL SYNDROMES; MAUROLICUS-MUELLERI;
D O I
10.1111/faf.12139
中图分类号
S9 [水产、渔业];
学科分类号
0908 ;
摘要
Evolution has since the very beginning resulted in organisms which can sort fitness-related information from noise, evaluate it and respond to it. In animals, the architecture for proximate control of behaviour and physiology has been gradually evolving since before the Cambrian explosion of animal phyla. It integrates many different survival circuits, for example for danger, feeding and reproduction, and operates through reflexes, instincts, homeostatic drives and precursors to human emotions. Although teleost brains differ substantially from the much better understood brains of terrestrial vertebrates, their anatomy, physiology and neurochemistry all point towards a common and malleable architectural template with strong and flexible effects on fish behaviour and elements of personality. We describe the main components of this architecture and its role in fish behaviour from the perspectives of adaptation, evolutionary history and gene pools. Much research is needed, as several of the basic assumptions for architectural control of behaviour and physiology in teleosts are not thoroughly investigated. We think the architecture for behavioural control can be used to change ecosystem models from a bottom-up perspective to also include behaviourally mediated trophic cascades and trait-mediated indirect effects. We also discuss the utility of modelling based on proximate architectural control for fish welfare studies.
引用
收藏
页码:680 / 695
页数:16
相关论文
共 178 条
[31]   The ecology of fear:: Optimal foraging, game theory, and trophic interactions [J].
Brown, JS ;
Laundré, JW ;
Gurung, M .
JOURNAL OF MAMMALOGY, 1999, 80 (02) :385-399
[32]  
Budaev S., 2011, Fish Cognition and Behavior, V2nd, P135, DOI DOI 10.1002/9781444342536.CH7
[33]   Alternative styles in the European wrasse, Symphodus ocellatus: Boldness-related schooling tendency [J].
Budaev, SV .
ENVIRONMENTAL BIOLOGY OF FISHES, 1997, 49 (01) :71-78
[34]   Personality in the guppy (Poecilia reticulata):: A correlational study of exploratory behavior and social tendency [J].
Budaev, SV .
JOURNAL OF COMPARATIVE PSYCHOLOGY, 1997, 111 (04) :399-411
[35]   The origin and evolution of synaptic proteins - choanoflagellates lead the way [J].
Burkhardt, Pawel .
JOURNAL OF EXPERIMENTAL BIOLOGY, 2015, 218 (04) :506-514
[36]  
Carlotti F., 2000, P571, DOI 10.1016/B978-012327645-2/50013-X
[37]   Stress responses to chemical alarm cues in Nile tilapia [J].
Carretero Sanches, Fabio Henrique ;
Miyai, Caio Akira ;
Pinho-Neto, Candido Ferreira ;
Barreto, Rodrigo Egydio .
PHYSIOLOGY & BEHAVIOR, 2015, 149 :8-13
[38]   IBSEM: An Individual-Based Atlantic Salmon Population Model [J].
Castellani, Marco ;
Heino, Mikko ;
Gilbey, John ;
Araki, Hitoshi ;
Svasand, Terje ;
Glover, Kevin A. .
PLOS ONE, 2015, 10 (09)
[39]   Can fish suffer?: perspectives on sentience, pain, fear and stress [J].
Chandroo, KP ;
Duncan, IJH ;
Moccia, RD .
APPLIED ANIMAL BEHAVIOUR SCIENCE, 2004, 86 (3-4) :225-250
[40]   Zebrafish forebrain and temporal conditioning [J].
Cheng, Ruey-Kuang ;
Jesuthasan, Suresh J. ;
Penney, Trevor B. .
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2014, 369 (1637)