A neural circuit architecture for rapid learning in goal-directed navigation

被引:5
作者
Dan, Chuntao [1 ]
Hulse, Brad K. [1 ]
Kappagantula, Ramya [1 ]
Jayaraman, Vivek [1 ]
Hermundstad, Ann M. [1 ]
机构
[1] Howard Hughes Med Inst, Janelia Res Campus, Ashburn, VA 20147 USA
关键词
DROSOPHILA CENTRAL COMPLEX; VISUAL FLIGHT ORIENTATION; FAN-SHAPED BODY; MUSHROOM BODIES; DOPAMINERGIC-NEURONS; PATH-INTEGRATION; BEHAVIOR; MELANOGASTER; NETWORK; MEMORY;
D O I
10.1016/j.neuron.2024.04.036
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Anchoring goals to spatial representations enables flexible navigation but is challenging in novel environments when both representations must be acquired simultaneously. We propose a framework for how Drosophila uses internal representations of head direction (HD) to build goal representations upon selective thermal reinforcement. We show that flies use stochastically generated fixations and directed saccades to express heading preferences in an operant visual learning paradigm and that HD neurons are required to modify these preferences based on reinforcement. We used a symmetric visual setting to expose how flies' HD and goal representations co-evolve and how the reliability of these interacting representations impacts behavior. Finally, we describe how rapid learning of new goal headings may rest on a behavioral policy whose parameters are flexible but whose form is genetically encoded in circuit architecture. Such evolutionarily structured architectures, which enable rapidly adaptive behavior driven by internal representations, may be relevant across species.
引用
收藏
页码:2581 / 2599.e23
页数:43
相关论文
共 50 条
[31]   Goal-directed learning is multidimensional and accompanied by diverse and widespread changes in neocortical signaling [J].
Marrero, Krista ;
Aruljothi, Krithiga ;
Delgadillo, Christian ;
Kabbara, Sarah ;
Swatch, Lovleen ;
Zagha, Edward .
CEREBRAL CORTEX, 2024, 34 (08)
[32]   Recurrent network model for learning goal-directed sequences through reverse replay [J].
Haga, Tatsuya ;
Fukai, Tomoki .
ELIFE, 2018, 7
[33]   Spatial learning correlates with decreased hippocampal activity in the goal-directed behavior of pigeons [J].
Fan, Jiantao ;
Li, Mengmeng ;
Cheng, Shuguan ;
Shang, Zhigang ;
Wan, Hong .
2021 43RD ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE & BIOLOGY SOCIETY (EMBC), 2021, :558-561
[34]   Social Learning of Goal-Directed Actions in Dogs (Canis familiaris): Imitation or Emulation? [J].
Fugazza, Claudia ;
Petro, Eszter ;
Miklosi, Adam ;
Pogany, Akos .
JOURNAL OF COMPARATIVE PSYCHOLOGY, 2019, 133 (02) :244-251
[35]   Color constancy in a naturalistic, goal-directed task [J].
Radonjic, Ana ;
Cottaris, Nicolas P. ;
Brainard, David H. .
JOURNAL OF VISION, 2015, 15 (13)
[36]   The impact of verbal instructions on goal-directed behaviour [J].
Kirkham, Alexander James ;
Breeze, Julian Michael ;
Mari-Beffa, Paloma .
ACTA PSYCHOLOGICA, 2012, 139 (01) :212-219
[37]   Goal-Directed Actions and Early Experience With Crawling [J].
Zachry, Anne H. ;
Mitchell, Anita Witt .
OTJR-OCCUPATION PARTICIPATION AND HEALTH, 2012, 32 (02) :48-55
[38]   The Nature of Goal-Directed Action Representations in Infancy [J].
Sommerville, Jessica A. ;
Upshaw, Michaela B. ;
Loucks, Jeff .
RATIONAL CONSTRUCTIVISM IN COGNITIVE DEVELOPMENT, 2012, 43 :351-387
[39]   Driving Goal-Directed and Experiential Online Shopping [J].
Shih, Hung-Pin ;
Jin, Bih-Huang .
JOURNAL OF ORGANIZATIONAL COMPUTING AND ELECTRONIC COMMERCE, 2011, 21 (02) :136-157
[40]   Vector and position coding in goal-directed movements [J].
van der Graaff, Marieke C. W. ;
Brenner, Eli ;
Smeets, Jeroen B. J. .
EXPERIMENTAL BRAIN RESEARCH, 2017, 235 (03) :681-689