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BDNF but not NT-4 is required for normal flexion reflex plasticity and function

机译:正常的屈曲反射可塑性和功能需要BDNF而非NT-4

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摘要

Neurotrophins can directly modulate the function of diverse types of central nervous system synapses. Brain-derived neurotrophic factor (BDNF) might be released by nociceptors onto spinal neurons and mediate central sensitization associated with chronic pain. We have studied the role of BDNF and neurotrophin-4 (NT-4), both ligands of the trkB tyrosine kinase receptor, in synaptic transmission and reflex plasticity in the mouse spinal cord. We used an in vitro spinal cord preparation to measure monosynaptic and polysynaptic reflexes evoked by primary afferents in BDNF- and NT-4-deficient mice. In situ hybridization studies show that both these neurotrophins are synthesized by sensory neurons, and NT-4, but not BDNF, also is expressed by spinal neurons. BDNF null mutants display selective deficits in the ventral root potential (VRP) evoked by stimulating nociceptive primary afferents whereas the non-nociceptive portion of the VRP remained unaltered. In addition, activity-dependent plasticity of the VRP evoked by repetitive (1 Hz) stimulation of nociceptive primary afferents (termed wind-up) was substantially reduced in BDNF-deficient mice. This plasticity also was reduced in a reversible manner by the protein kinase inhibitor K252a. Although the trkB ligand NT-4 is normally present, reflex properties in NT-4 null mutant mice were normal. Pharmacological studies also indicated that spinal N-methyl-d-aspartate receptor function was unaltered in BDNF-deficient mice. Using immunocytochemistry for markers of nociceptive neurons we found no evidence that their number or connectivity was substantially altered in BDNF-deficient mice. Our data therefore are consistent with a direct role for presynaptic BDNF release from sensory neurons in the modulation of pain-related neurotransmission.
机译:神经营养蛋白可以直接调节多种类型的中枢神经系统突触的功能。伤害感受器可能将脑源性神经营养因子(BDNF)释放到脊髓神经元上,并介导与慢性疼痛相关的中枢敏化。我们已经研究了BDNF和神经营养蛋白4(NT-4),trkB酪氨酸激酶受体的两个配体,在小鼠脊髓的突触传递和反射可塑性中的作用。我们使用了体外脊髓制剂来测量BDNF-和NT-4缺陷小鼠的初级传入诱发的单突触和多突触反射。原位杂交研究表明,这两种神经营养蛋白都是由感觉神经元合成的,而脊髓神经元表达的是NT-4,但不是BDNF。 BDNF空突变体通过刺激伤害性原发传入引起腹侧根电位(VRP)选择性缺陷,而VRP的非伤害性部分保持不变。此外,在缺乏BDNF的小鼠中,通过重复性(1 Hz)刺激伤害性初级传入刺激(称为缠绕)诱发的VRP的活动依赖可塑性。蛋白激酶抑制剂K252a也以可逆的方式降低了这种可塑性。尽管通常存在trkB配体NT-4,但在NT-4无效突变小鼠中的反射特性却是正常的。药理学研究还表明,在BDNF缺陷型小鼠中,脊髓N-甲基-d-天冬氨酸受体功能未改变。使用免疫细胞化学作为伤害性神经元的标记,我们没有发现证据表明在BDNF缺陷小鼠中它们的数量或连通性发生了实质性改变。因此,我们的数据与在疼痛相关的神经传递的调节中从感觉神经元释放突触前BDNF的直接作用是一致的。

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