Kohn Florian P M, Ritzmann Ramona
Department of Membrane Physiology (230b), Institute of Physiology (230), University of Hohenheim, Garbenstr. 30, 70599, Stuttgart, Germany.
Institute of Sport and Sport Science, University of Freiburg, Freiburg, Germany.
Eur Biophys J. 2018 Mar;47(2):97-107. doi: 10.1007/s00249-017-1233-7. Epub 2017 Jun 27.
For decades it has been shown that acute changes in gravity have an effect on neuronal systems of human and animals on different levels, from the molecular level to the whole nervous system. The functional properties and gravity-dependent adaptations of these system levels have been investigated with no or barely any interconnection. This review summarizes the gravity-dependent adaptation processes in human and animal organisms from the in vitro cellular level with its biophysical properties to the in vivo motor responses and underlying sensorimotor functions of human subjects. Subsequently, a first model for short-term adaptation of neuronal transmission is presented and discussed for the first time, which integrates the responses of the different levels of organization to changes in gravity.
几十年来,研究表明,重力的急剧变化会在不同层面上对人类和动物的神经系统产生影响,从分子层面到整个神经系统。这些系统层面的功能特性和重力依赖性适应过程已被研究,但彼此之间几乎没有或完全没有相互联系。本综述总结了人类和动物机体中重力依赖性适应过程,从具有生物物理特性的体外细胞层面,到人类受试者的体内运动反应及潜在的感觉运动功能。随后,首次提出并讨论了神经元传递短期适应的首个模型,该模型整合了不同组织层面在重力变化时的反应。