Watching the Effects of Gravity. Vestibular Cortex and the Neural Representation of "Visual" Gravity

被引:17
|
作者
Delle Monache, Sergio [1 ,2 ]
Indovina, Iole [2 ,3 ]
Zago, Myrka [2 ,4 ,5 ]
Daprati, Elena [2 ,4 ,6 ]
Lacquaniti, Francesco [2 ,4 ,6 ]
Bosco, Gianfranco [2 ,4 ,6 ]
机构
[1] UniCamillus St Camillus Int Univ Hlth Sci, Rome, Italy
[2] IRCCS Santa Lucia Fdn, Lab Neuromotor Physiol, Rome, Italy
[3] Univ Messina, Dept Biomed & Dent Sci & Morphofunct Imaging, Messina, Italy
[4] Univ Roma Tor Vergata, Ctr Space Biomed, Rome, Italy
[5] Univ Roma Tor Vergata, Dept Civil & Comp Engn, Rome, Italy
[6] Univ Roma Tor Vergata, Dept Syst Med, Rome, Italy
来源
关键词
internal model; vestibular network; neuroimaging; TMS; connectomics; psychophysics; insula; temporo-parietal junction (TPJ); SIMULATED SELF-MOTION; ROOM TILT ILLUSION; OF-BODY EXPERIENCE; MULTIMODAL INTEGRATION; GRAVITATIONAL MOTION; INTERNAL-MODELS; TEMPOROPARIETAL JUNCTION; VERTICALITY PERCEPTION; BALLISTIC TRAJECTORIES; MANUAL INTERCEPTION;
D O I
10.3389/fnint.2021.793634
中图分类号
B84 [心理学]; C [社会科学总论]; Q98 [人类学];
学科分类号
03 ; 0303 ; 030303 ; 04 ; 0402 ;
摘要
Gravity is a physical constraint all terrestrial species have adapted to through evolution. Indeed, gravity effects are taken into account in many forms of interaction with the environment, from the seemingly simple task of maintaining balance to the complex motor skills performed by athletes and dancers. Graviceptors, primarily located in the vestibular otolith organs, feed the Central Nervous System with information related to the gravity acceleration vector. This information is integrated with signals from semicircular canals, vision, and proprioception in an ensemble of interconnected brain areas, including the vestibular nuclei, cerebellum, thalamus, insula, retroinsula, parietal operculum, and temporo-parietal junction, in the so-called vestibular network. Classical views consider this stage of multisensory integration as instrumental to sort out conflicting and/or ambiguous information from the incoming sensory signals. However, there is compelling evidence that it also contributes to an internal representation of gravity effects based on prior experience with the environment. This a priori knowledge could be engaged by various types of information, including sensory signals like the visual ones, which lack a direct correspondence with physical gravity. Indeed, the retinal accelerations elicited by gravitational motion in a visual scene are not invariant, but scale with viewing distance. Moreover, the "visual" gravity vector may not be aligned with physical gravity, as when we watch a scene on a tilted monitor or in weightlessness. This review will discuss experimental evidence from behavioral, neuroimaging (connectomics, fMRI, TMS), and patients' studies, supporting the idea that the internal model estimating the effects of gravity on visual objects is constructed by transforming the vestibular estimates of physical gravity, which are computed in the brainstem and cerebellum, into internalized estimates of virtual gravity, stored in the vestibular cortex. The integration of the internal model of gravity with visual and non-visual signals would take place at multiple levels in the cortex and might involve recurrent connections between early visual areas engaged in the analysis of spatio-temporal features of the visual stimuli and higher visual areas in temporo-parietal-insular regions.
引用
收藏
页数:17
相关论文
共 50 条
  • [31] LOCAL MOMENTUM-SPACE REPRESENTATION OF GRAVITON PROPAGATORS IN AN EXTERNAL GRAVITATIONAL FIELD AND ONE-LOOP COUNTERTERMS IN QUANTUM GRAVITY.
    Bukhbinder, I.L.
    Odintsov, S.D.
    Shapiro, I.L.
    Soviet physics journal, 1984, 27 (04): : 298 - 300
  • [32] Effects of Head Position on Perception of Gravity in Vestibular Neuritis and Lateral Medullary Infarction
    Kim, Sung-Hee
    Kim, Ji-Soo
    FRONTIERS IN NEUROLOGY, 2018, 9
  • [33] In monkey, visual cortex integration of visual information and direction of gravity begins in area V2
    Sauvan, X. M.
    Peterhans, E.
    PERCEPTION, 1996, 25 : 126 - 127
  • [34] Effects of visual motion consistent or inconsistent with gravity on postural sway
    Priscilla Balestrucci
    Elena Daprati
    Francesco Lacquaniti
    Vincenzo Maffei
    Experimental Brain Research, 2017, 235 : 1999 - 2010
  • [35] Effects of visual motion consistent or inconsistent with gravity on postural sway
    Balestrucci, Priscilla
    Daprati, Elena
    Lacquaniti, Francesco
    Maffei, Vincenzo
    EXPERIMENTAL BRAIN RESEARCH, 2017, 235 (07) : 1999 - 2010
  • [36] A neural representation of depth from motion parallax in macaque visual cortex
    Jacob W. Nadler
    Dora E. Angelaki
    Gregory C. DeAngelis
    Nature, 2008, 452 : 642 - 645
  • [37] NEURAL REPRESENTATION OF VISUAL SALIENCY IN THE MONKEY CEREBRAL CORTEX: AN fMRI STUDY
    Goda, Naokazu
    Harada, Takuya
    Ogawa, Tadashi
    Ito, Minami
    Toyoda, Hiroshi
    Sadato, Norihiro
    Komatsu, Hidehiko
    JOURNAL OF PHYSIOLOGICAL SCIENCES, 2009, 59 : 192 - 192
  • [38] Neural representation of gestalt grouping and attention effect in human visual cortex
    Wu, Hao
    Zuo, Zhentao
    Yuan, Zejian
    Zhou, Tiangang
    Zhuo, Yan
    Zheng, Nanning
    Chen, Badong
    JOURNAL OF NEUROSCIENCE METHODS, 2023, 399
  • [39] A neural representation of depth from motion parallax in macaque visual cortex
    Nadler, Jacob W.
    Angelaki, Dora E.
    DeAngelis, Gregory C.
    NATURE, 2008, 452 (7187) : 642 - U10
  • [40] Neural response in vestibular organ of Helix aspersa to centrifugation and re-adaptation to normal gravity
    Yekaterina Popova
    Richard Boyle
    Journal of Comparative Physiology A, 2015, 201 : 717 - 729