Lacquaniti F, Maioli C, Borghese N A, Bianchi L
Istituto Scientifico S. Lucia I.N.B.-C.N.R., Roma.
Arch Ital Biol. 1997 Sep;135(4):353-67.
Studies are reviewed that address the problem of the variables controlled in the maintenance of body posture and generation of limb movement. Vestibulospinal and neck reflexes cancel each other in response to roll, but not in response to pitch of the animal. In pitch trunk orientation is not effectively stabilized in space. Instead, limb length and orientation relative to the vertical are accurately controlled in normal cats pitched statically and dynamically by variable angles. Control of limb geometry may even take precedence over the control of the projected centre of mass. Coordinate transformation results in a constraint of planar covariation of the elevation angles at all limb segments in cat posture. Because the same constraint applies also to human locomotion, we suggest that sharing the same laws of intersegmental coordination for the control of posture and locomotion helps to assure the maintenance of dynamic equilibrium during movement. Moreover, because several neural sites encode posture and movement in gravity-based reference frames, alignment in register of spatial information derived from multiple sensors and directed to multiple effectors is made possible.
本文回顾了一些研究,这些研究探讨了在维持身体姿势和产生肢体运动过程中所控制的变量问题。前庭脊髓反射和颈部反射在动物翻滚时相互抵消,但在动物俯仰时则不然。在俯仰时,躯干在空间中的方向无法有效稳定。相反,在正常猫处于静态和动态俯仰时,肢体长度以及相对于垂直方向的方向会通过可变角度得到精确控制。肢体几何形状的控制甚至可能优先于质心投影的控制。坐标变换导致猫姿势中所有肢体节段的仰角在平面上协同变化受到约束。由于同样的约束也适用于人类运动,我们认为,在控制姿势和运动方面共享相同的节段间协调规律,有助于确保运动过程中动态平衡的维持。此外,由于多个神经位点在基于重力参考系中编码姿势和运动,使得源自多个传感器并导向多个效应器的空间信息在空间上对齐成为可能。