Department of Neurobiology, Bielefeld University, Bielefeld, Germany.
BMC Biol. 2010 Apr 12;8:36. doi: 10.1186/1741-7007-8-36.
The various tasks of visual systems, including course control, collision avoidance and the detection of small objects, require at the neuronal level the dendritic integration and subsequent processing of many spatially distributed visual motion inputs. While much is known about the pooled output in these systems, as in the medial superior temporal cortex of monkeys or in the lobula plate of the insect visual system, the motion tuning of the elements that provide the input has yet received little attention. In order to visualize the motion tuning of these inputs we examined the dendritic activation patterns of neurons that are selective for the characteristic patterns of wide-field motion, the lobula-plate tangential cells (LPTCs) of the blowfly. These neurons are known to sample direction-selective motion information from large parts of the visual field and combine these signals into axonal and dendro-dendritic outputs.
Fluorescence imaging of intracellular calcium concentration allowed us to take a direct look at the local dendritic activity and the resulting local preferred directions in LPTC dendrites during activation by wide-field motion in different directions. These 'calcium response fields' resembled a retinotopic dendritic map of local preferred directions in the receptive field, the layout of which is a distinguishing feature of different LPTCs.
Our study reveals how neurons acquire selectivity for distinct visual motion patterns by dendritic integration of the local inputs with different preferred directions. With their spatial layout of directional responses, the dendrites of the LPTCs we investigated thus served as matched filters for wide-field motion patterns.
视觉系统的各种任务,包括路径控制、避免碰撞和小物体检测,都需要在神经元水平上对许多空间分布的视觉运动输入进行树突整合和后续处理。虽然人们对这些系统中的聚合输出(如猴子的内侧上颞叶皮层或昆虫视觉系统的小叶板)了解很多,但提供输入的元素的运动调谐却很少受到关注。为了可视化这些输入的运动调谐,我们研究了对宽场运动特征模式具有选择性的神经元的树突激活模式,即蕈形体板切向细胞(LPTCs)。已知这些神经元从视野的大部分区域采样方向选择性运动信息,并将这些信号组合成轴突和树突-树突输出。
利用细胞内钙离子浓度的荧光成像,我们可以直接观察到 LPTC 树突在不同方向的宽场运动激活时的局部树突活动和由此产生的局部最优方向。这些“钙反应场”类似于感受野中局部最优方向的视网膜图,其布局是不同 LPTC 的区别特征。
我们的研究揭示了神经元如何通过局部输入的树突整合来获得对不同视觉运动模式的选择性。我们研究的 LPTC 树突的方向响应的空间布局因此作为宽场运动模式的匹配滤波器。