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大鼠腰段脊髓运动神经元中类固醇积累的个体发生:对突触消除过程中雄激素作用位点的启示。

Ontogeny of steroid accumulation in spinal lumbar motoneurons of the rat: implications for androgen's site of action during synapse elimination.

作者信息

Jordan C L, Breedlove S M, Arnold A P

机构信息

Department of Psychology, University of California, Berkeley 94720.

出版信息

J Comp Neurol. 1991 Nov 15;313(3):441-8. doi: 10.1002/cne.903130304.

Abstract

Androgens influence the postnatal development of motoneurons in the spinal nucleus of the bulbocavernosus (SNB) by regulating neuromuscular synapse elimination, the process through which multiple axonal inputs are retracted from each muscle fiber until single innervation is established. In the rat levator ani (LA), one of the target muscles for SNB motoneurons, much of this loss of multiple innervation can be prevented by prepubertal androgen treatment. We used steroid autoradiography to measure the ontogeny of steroid accumulation in the SNB and the retrodorsolateral nucleus (RDLN), two motoneuronal groups thought to differ in their sensitivity to androgens. Spinal cord tissue was analyzed from castrated male rats at 7, 14, 21, and 60 days of age after injection of radiolabelled testosterone. SNB and RDLN motoneurons differ in the ontogeny of androgen accumulation. Over 80% of SNB motoneurons develop the capacity to accumulate androgen during the second week after birth, during the period when androgen regulates synapse elimination in the LA. In contrast, androgen accumulation in RDLN motoneurons develops much later (after 21 days). These data suggest that androgen may act directly on SNB motoneurons to influence synapse elimination.

摘要

雄激素通过调节神经肌肉突触消除来影响球海绵体肌核(SNB)中运动神经元的出生后发育,神经肌肉突触消除是指多个轴突输入从每个肌纤维上缩回直至建立单一神经支配的过程。在大鼠提肛肌(LA)中,这是SNB运动神经元的靶肌肉之一,青春期前雄激素治疗可预防大部分这种多重神经支配的丧失。我们使用类固醇放射自显影术来测量SNB和后外侧背核(RDLN)中类固醇积累的个体发生情况,这两个运动神经元组被认为对雄激素的敏感性不同。在注射放射性标记的睾酮后,对7、14、21和60日龄去势雄性大鼠的脊髓组织进行分析。SNB和RDLN运动神经元在雄激素积累的个体发生上存在差异。超过80%的SNB运动神经元在出生后的第二周获得积累雄激素的能力,这正是雄激素调节LA中突触消除的时期。相比之下,RDLN运动神经元中的雄激素积累要晚得多(21天后)。这些数据表明,雄激素可能直接作用于SNB运动神经元以影响突触消除。

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