Headache Group, University of California, San Francisco, 1701 Divisadero St, San Francisco, CA 94115, USA.
Cephalalgia. 2011 Oct;31(13):1343-58. doi: 10.1177/0333102411418259. Epub 2011 Sep 5.
The development of new agents for the preventive treatment of migraine is the greatest unmet need in the therapeutics of primary headaches. Topiramate, an anticonvulsant drug, is an effective anti-migraine preventive whose mechanism of action is not fully elucidated. Since glutamate plays a major role in migraine pathophysiology, the potential action of topiramate through glutamatergic mechanisms is of considerable interest.
Recordings of neurons in the trigeminocervical complex (TCC) and the ventroposteromedial thalamic nucleus (VPM) of anesthetized rats were made using electrophysiological techniques. The effects of intravenous or microiontophorezed topiramate on trigeminovascular activation of second- and third-order neurons in the trigeminothalamic pathway were characterized. The potential interactions of topiramate with the ionotropic glutamate receptors were studied using microiontophoresis.
Both intravenous and microiontophorized topiramate significantly inhibited trigeminovascular activity in the TCC and VPM. In both nuclei microiontophoretic application of topiramate significantly attenuated kainate receptor-evoked firing but had no effect on N-methyl-d-aspartic acid or α-amino-3-hydroxyl-5-methyl-4-isoxazole-propionate receptor activation.
The data demonstrate for the first time that topiramate modulates trigeminovascular transmission within the trigeminothalamic pathway with the kainate receptor being a potential target. Understanding the mechanism of action of topiramate may help in the design of new medications for migraine prevention, with the data pointing to glutamate-kainate receptors as a fruitful target to pursue.
开发新的偏头痛预防治疗药物是原发性头痛治疗中最大的未满足需求。托吡酯是一种抗惊厥药物,是一种有效的抗偏头痛预防药物,但其作用机制尚未完全阐明。由于谷氨酸在偏头痛病理生理学中起主要作用,因此托吡酯通过谷氨酸能机制的潜在作用引起了相当大的兴趣。
使用电生理技术记录麻醉大鼠三叉神经根颈复合体(TCC)和腹后内侧丘脑核(VPM)中的神经元。描述了静脉内或微电泳给予托吡酯对三叉神经血管激活的第二级和第三级神经元在三叉神经丘脑通路中的作用。使用微电泳研究了托吡酯与离子型谷氨酸受体的潜在相互作用。
静脉内和微电泳给予的托吡酯均显著抑制了 TCC 和 VPM 中的三叉血管活性。在这两个核中,微电泳应用托吡酯显著减弱了红藻氨酸受体诱发的放电,但对 N-甲基-D-天冬氨酸或α-氨基-3-羟基-5-甲基-4-异恶唑丙酸受体的激活没有影响。
数据首次表明,托吡酯调节三叉神经血管传递在三叉神经丘脑通路内,红藻氨酸受体是一个潜在的靶点。了解托吡酯的作用机制可能有助于设计新的偏头痛预防药物,数据表明谷氨酸-红藻氨酸受体是一个有前途的研究目标。