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Structural and functional classes of multipolar cells in the ventral cochlear nucleus

机译:腹侧耳蜗核中多极细胞的结构和功能类别

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Multipolar cells in the ventral cochlear nucleus (VCN) are a structurally and functionally diverse group of projection neurons. Understanding their role in the ascending pathway involves partitioning multipolar cells into distinct populations and determining where in the brain each sends its coded messages. In this study, we used retrograde labeling techniques in rats to identify multipolar neurons that project their axons to the ipsilateral dorsal cochlear nucleus (DCN), the contralateral CN, or both structures. Three rats received injections of biotinylated dextran amine in the ipsilateral DCN and diamidino yellow in the contralateral CN. Several radiate multipolar neurons (defined by their axonal projections to the ipsilateral DCN and their dendrites that traverse VCN isofrequency sheets) were double-labeled but over 70% were not. This result suggests two distinct populations: (1) radiate-commissural (RC) multipolar cells that project to the ipsilateral DCN and the contralateral CN, and (2) radiate multipolar cells that project exclusively (in this context) to the ipsilateral DCN. In a different group of animals, we retrogradely labeled multipolar neurons that project their axons to the contralateral CN and measured the size of their cell bodies. The mean size of this population (266 +/- 156 mu m(2)) was significantly smaller than those of RC-multipolar cells (418 +/- 140 mu m(2)). We conclude that the CN commissural pathway is composed of at least two components: (1) RC multipolar cells and (2) commissural multipolar cells that are small- and medium-sized neurons that project exclusively (in this context) to the contralateral CN. These results identify separate structural groups of multipolar cells that may correspond to physiological unit types described in the literature. They also provide protocols for isolating and studying different populations of multipolar cells to determine the neural mechanisms that govern their responses to sound.
机译:腹侧耳蜗核(VCN)中的多极细胞是结构和功能各异的投射神经元组。要了解它们在上升途径中的作用,需要将多极细胞划分为不同的种群,并确定大脑中每个人发送其编码信息的位置。在这项研究中,我们在大鼠中使用了逆行标记技术来识别将其轴突投射到同侧背侧耳蜗核(DCN),对侧CN或两个结构的多极神经元。三只大鼠在同侧DCN中注射了生物素化的葡聚糖胺,对侧CN则注射了二mid黄。几个放射状多极神经元(由它们到同侧DCN的轴突投影和穿过VCN等频率表的树突定义)被双重标记,但超过70%未被标记。该结果表明存在两个不同的种群:(1)放射至同侧DCN和对侧CN的放射-合子(RC)多极细胞,以及(2)放射(仅在此情况下)投射至同侧DCN的多极细胞。在另一组动物中,我们逆行标记了多极神经元,这些神经元将其轴突投射到对侧CN并测量其细胞体的大小。该群体的平均大小(266 +/- 156μm(2))显着小于RC多极细胞(418 +/- 140μm(2))。我们得出的结论是,CN连合途径至少由两个部分组成:(1)RC多极细胞和(2)是专门(在此情况下)投射到对侧CN的中小型神经元的连合多极细胞。这些结果确定了多极细胞的独立结构组,其可能对应于文献中描述的生理单位类型。他们还提供了用于隔离和研究不同多极细胞种群的协议,以确定决定其对声音反应的神经机制。

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