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激肽对脊髓网络的调节和可塑性作用。

Modulatory and plastic effects of kinins on spinal cord networks.

作者信息

Mandadi S, Leduc-Pessah H, Hong P, Ejdrygiewicz J, Sharples S A, Trang T, Whelan P J

机构信息

Hotchkiss Brain Institute, University of Calgary, Calgary, Alberta, Canada.

Department of Physiology and Pharmacology, University of Calgary, Calgary, Alberta, Canada.

出版信息

J Physiol. 2016 Feb 15;594(4):1017-36. doi: 10.1113/JP271152.

Abstract

KEY POINTS

Inflammatory kinins are released following spinal cord injury or neurotrauma. The effects of these kinins on ongoing locomotor activity of central pattern generator networks are unknown. In the present study, kinins were shown to have short- and long-term effects on motor networks. The short-term effects included direct depolarization of interneurons and motoneurons in the ventral horn accompanied by modulation of transient receptor potential vanilloid 1-sensitive nociceptors in the dorsal horn. Over the long-term, we observed a bradykinin-mediated effect on promoting plasticity in the spinal cord. In a model of spinal cord injury, we observed an increase in microglia numbers in both the dorsal and ventral horn and, in a microglia cell culture model, we observed bradykinin-induced expression of glial-derived neurotrophic factor.

ABSTRACT

The expression and function of inflammatory mediators in the developing spinal cord remain poorly characterized. We discovered novel, short and long-term roles for the inflammatory nonapeptide bradykinin (BK) and its receptor bradykinin receptor B2 (B2R) in the neuromodulation of developing sensorimotor networks following a spinal cord injury (SCI), suggesting that BK participates in an excitotoxic cascade. Functional expression of B2R was confirmed by a transient disruptive action of BK on fictive locomotion generated by a combination of NMDA, 5-HT and dopamine. The role of BK in the dorsal horn nociceptive afferents was tested using spinal cord attached to one-hind-limb (HL) preparations. In the HL preparations, BK at a subthreshold concentration induced transient disruption of fictive locomotion only in the presence of: (1) noxious heat applied to the hind paw and (2) the heat sensing ion channel transient receptor potential vanilloid 1 (TRPV1), known to be restricted to nociceptors in the superficial dorsal horn. BK directly depolarized motoneurons and ascending interneurons in the ventrolateral funiculus. We found a key mechanism for BK in promoting long-term plasticity within the spinal cord. Using a model of neonatal SCI and a microglial cell culture model, we examined the role of BK in inducing activation of microglia and expression of glial-derived neurotrophic factor (GDNF). In the neonatal SCI model, we observed an increase in microglia numbers and increased GDNF expression restricted to microglia. In the microglia cell culture model, we observed a BK-induced increased expression of GDNF via B2R, suggesting a novel mechanism for BK spinal-mediated plasticity.

摘要

关键点

脊髓损伤或神经创伤后会释放炎性激肽。这些激肽对中枢模式发生器网络正在进行的运动活动的影响尚不清楚。在本研究中,激肽被证明对运动网络有短期和长期影响。短期影响包括腹角中间神经元和运动神经元的直接去极化,同时伴有背角中瞬时受体电位香草酸受体1敏感伤害感受器的调节。长期来看,我们观察到缓激肽介导的对脊髓可塑性促进的影响。在脊髓损伤模型中,我们观察到背角和腹角的小胶质细胞数量增加,并且在小胶质细胞培养模型中,我们观察到缓激肽诱导的胶质细胞源性神经营养因子的表达。

摘要

发育中的脊髓中炎症介质的表达和功能仍未得到充分表征。我们发现了炎症性九肽缓激肽(BK)及其受体缓激肽受体B2(B2R)在脊髓损伤(SCI)后对发育中的感觉运动网络进行神经调节中的新的短期和长期作用,这表明BK参与了兴奋性毒性级联反应。BK对由NMDA、5-羟色胺和多巴胺联合产生的虚构运动的瞬时破坏作用证实了B2R的功能性表达。使用连接到单后肢(HL)制剂的脊髓来测试BK在背角伤害性传入神经中的作用。在HL制剂中,阈下浓度的BK仅在以下情况下诱导虚构运动的瞬时破坏:(1)对后爪施加有害热刺激,以及(2)热敏感离子通道瞬时受体电位香草酸受体1(TRPV1),已知其仅限于浅背角的伤害感受器。BK使腹外侧索中的运动神经元和上行中间神经元直接去极化。我们发现了BK促进脊髓内长期可塑性的关键机制。使用新生大鼠脊髓损伤模型和小胶质细胞培养模型,我们研究了BK在诱导小胶质细胞活化和胶质细胞源性神经营养因子(GDNF)表达中的作用。在新生大鼠脊髓损伤模型中,我们观察到小胶质细胞数量增加以及仅限于小胶质细胞的GDNF表达增加。在小胶质细胞培养模型中,我们观察到BK通过B2R诱导GDNF表达增加,这表明BK脊髓介导可塑性的新机制。

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