ReptiLearn: An automated home cage system for behavioral experiments in reptiles without human intervention

被引:3
|
作者
Eisenberg, Tal [1 ]
Shein-Idelson, Mark [1 ,2 ]
机构
[1] Tel Aviv Univ, Sch Neurobiol Biochem & Biophys, Tel Aviv, Israel
[2] Tel Aviv Univ, Sagol Sch Neurosci, Tel Aviv, Israel
基金
以色列科学基金会; 欧洲研究理事会;
关键词
THERMOREGULATION; LIZARDS; MODELS; ADAPTATIONS; GENE;
D O I
10.1371/journal.pbio.3002411
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Understanding behavior and its evolutionary underpinnings is crucial for unraveling the complexities of brain function. Traditional approaches strive to reduce behavioral complexity by designing short-term, highly constrained behavioral tasks with dichotomous choices in which animals respond to defined external perturbation. In contrast, natural behaviors evolve over multiple time scales during which actions are selected through bidirectional interactions with the environment and without human intervention. Recent technological advancements have opened up new possibilities for experimental designs that more closely mirror natural behaviors by replacing stringent experimental control with accurate multidimensional behavioral analysis. However, these approaches have been tailored to fit only a small number of species. This specificity limits the experimental opportunities offered by species diversity. Further, it hampers comparative analyses that are essential for extracting overarching behavioral principles and for examining behavior from an evolutionary perspective. To address this limitation, we developed ReptiLearn-a versatile, low-cost, Python-based solution, optimized for conducting automated long-term experiments in the home cage of reptiles, without human intervention. In addition, this system offers unique features such as precise temperature measurement and control, live prey reward dispensers, engagement with touch screens, and remote control through a user-friendly web interface. Finally, ReptiLearn incorporates low-latency closed-loop feedback allowing bidirectional interactions between animals and their environments. Thus, ReptiLearn provides a comprehensive solution for researchers studying behavior in ectotherms and beyond, bridging the gap between constrained laboratory settings and natural behavior in nonconventional model systems. We demonstrate the capabilities of ReptiLearn by automatically training the lizard Pogona vitticeps on a complex spatial learning task requiring association learning, displaced reward learning, and reversal learning. Methods used for quantitative behavioral research are geared towards traditional model systems, hindering comparative research and limiting diversity. This study describes a versatile platform for studying natural behaviors in reptiles across multiple time scales and with minimally constrained conditions.
引用
收藏
页数:27
相关论文
共 35 条
  • [1] A robust automated system elucidates mouse home cage behavioral structure
    Goulding, Evan H.
    Schenk, A. Katrin
    Juneja, Punita
    MacKay, Adrienne W.
    Wade, Jennifer M.
    Tecott, Laurence H.
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2008, 105 (52) : 20575 - 20582
  • [2] Fully autonomous mouse behavioral and optogenetic experiments in home-cage
    Hao, Yaoyao
    Thomas, Alyse Marian
    Li, Nuo
    ELIFE, 2021, 10
  • [3] An automated cage for optogenetic experiments with electromagnetic positioning system
    Kasprowicz, Grzegorz
    Mankiewicz, Lech
    Jarosinski, Jakub
    Sowinski, Mikolaj
    Krawczyk, Rafal D.
    Czajkowski, Rafal
    Knapska, Ewelina
    Puscian, Alicja
    Kowalski, Jakub
    Rasinski, Pawel
    Kasprowicz, Pawel
    PHOTONICS APPLICATIONS IN ASTRONOMY, COMMUNICATIONS, INDUSTRY, AND HIGH ENERGY PHYSICS EXPERIMENTS 2017, 2017, 10445
  • [4] A sorting system with automated gates permits individual operant experiments with mice from a social home cage
    Winter, York
    Schaefers, Andrea T. U.
    JOURNAL OF NEUROSCIENCE METHODS, 2011, 196 (02) : 276 - 280
  • [5] Automated Home-Cage Testing as a Tool to Improve Reproducibility of Behavioral Research?
    Richter, Sophie Helene
    FRONTIERS IN NEUROSCIENCE, 2020, 14
  • [6] Development of automated cage for optogenetic experiments with electromagnetic positioning system
    Jarosinski, Jakub
    Sowinski, Mikolaj
    Kasprowicz, Grzegorz
    Mankiewicz, Lech
    Krawczyk, Rafal D.
    Gaska, Michal
    Kondrakiewicz, Kacper
    Knapska, Ewelina
    PHOTONICS APPLICATIONS IN ASTRONOMY, COMMUNICATIONS, INDUSTRY, AND HIGH-ENERGY PHYSICS EXPERIMENTS 2018, 2018, 10808
  • [7] Further pharmacological validation of an automated home cage monitoring system in rats
    Redfern, Will S.
    Tse, Karen K. -Y.
    Collier, Rachel
    Grant, Claire
    Pilling, Mark
    Sillito, Rowland
    Vickers, Cathy
    Armstrong, Douglas
    JOURNAL OF PHARMACOLOGICAL AND TOXICOLOGICAL METHODS, 2018, 93 : 110 - 110
  • [8] BEHAVIOURAL EVALUATION OF HUNTINGTON'S DISEASE MOUSE MODELS WITH AN AUTOMATED HOME CAGE SYSTEM
    Magg, J.
    Portal, E.
    Kelp, A.
    Ehrismann, J.
    Pahnke, G.
    Riess, O.
    Nguyen, H. P.
    JOURNAL OF NEUROLOGY NEUROSURGERY AND PSYCHIATRY, 2010, 81 : A11 - A11
  • [9] Automated home cage assessment shows behavioral changes in a transgenic mouse model of spinocerebellar ataxia type 17
    Portal, Esteban
    Riess, Olaf
    Huu Phuc Nguyen
    BEHAVIOURAL BRAIN RESEARCH, 2013, 250 : 157 - 165
  • [10] Evaluation of an automated system for in-home behavioral treatment of chronic insomnia: Part II
    Kaplan, R. F.
    Wang, Y.
    Bootzin, R. R.
    Loparo, K. A.
    SLEEP, 2006, 29 : A349 - A349