Using late larval stages of cichlid fish (Oreochromis mossambicus) we have shown earlier that the biomineralization of otoliths is adjusted towards gravity by means of a neurally guided feedback loop. Centrifuge experiments, e.g., revealed that increased gravity slows down otolith growth. Microgravity thus should yield an opposite effect, i.e., larger than normal otoliths. Consequently, late larval cichlids (stage 14, vestibular system operational) were subjected to real microgravity during the 12 days FOTON-M3 spaceflight mission (OMEGAHAB-hardware). Controls were kept at 1g on ground within an identical hardware. Animals of another batch were subsequently clinorotated within a submersed fast-rotating clinostat with one axis of rotation (...
This paper examines the detailed embryologic development of the otolith organs, part of the vestibul...
The vestibular system, which detects gravity and motion, is crucial to survival, but the neural circ...
Highly conserved neural systems have evolved to sense the inertial forces due to head translation an...
Stimulus dependence is a general feature of developing sensory systems. It has been shown earlier th...
For decades, research in altered gravitational environments has been undertaken to elucidate the imp...
Stimulus dependence is a general feature of developing sensory sytems. It has been shown earlier tha...
Most animals have organs that sense gravity. These organs use dense stones (called otoliths or stato...
Stimulus dependence is a general feature of developing animal sensory systems. In this respect, it h...
The inner ears of all vertebrates are designed to perceive auditory and vestibular inputs. Although ...
We can stand upright and walk smoothly without paying any particular attention to it. This is becaus...
Inertial acceleration and a change in head orientation with respect to gravity are sensed by mechano...
Gravity has remained constant during animal evolution and the neural sensory systems detecting accel...
Vertebrates sense gravito-inertial acceleration by mechanoreceptors (hair cells) in the otolith stru...
Gravity has remained constant during animal evolution and the neural sensory systems detecting accel...
Simulated weightlessness was used to study the different types of gravity responses in blind fish. I...
This paper examines the detailed embryologic development of the otolith organs, part of the vestibul...
The vestibular system, which detects gravity and motion, is crucial to survival, but the neural circ...
Highly conserved neural systems have evolved to sense the inertial forces due to head translation an...
Stimulus dependence is a general feature of developing sensory systems. It has been shown earlier th...
For decades, research in altered gravitational environments has been undertaken to elucidate the imp...
Stimulus dependence is a general feature of developing sensory sytems. It has been shown earlier tha...
Most animals have organs that sense gravity. These organs use dense stones (called otoliths or stato...
Stimulus dependence is a general feature of developing animal sensory systems. In this respect, it h...
The inner ears of all vertebrates are designed to perceive auditory and vestibular inputs. Although ...
We can stand upright and walk smoothly without paying any particular attention to it. This is becaus...
Inertial acceleration and a change in head orientation with respect to gravity are sensed by mechano...
Gravity has remained constant during animal evolution and the neural sensory systems detecting accel...
Vertebrates sense gravito-inertial acceleration by mechanoreceptors (hair cells) in the otolith stru...
Gravity has remained constant during animal evolution and the neural sensory systems detecting accel...
Simulated weightlessness was used to study the different types of gravity responses in blind fish. I...
This paper examines the detailed embryologic development of the otolith organs, part of the vestibul...
The vestibular system, which detects gravity and motion, is crucial to survival, but the neural circ...
Highly conserved neural systems have evolved to sense the inertial forces due to head translation an...