Rohacs Tibor, Thyagarajan Baskaran, Lukacs Viktor
Department of Pharmacology and Physiology, UMDNJ-New Jersey Medical School, Newark, NJ, USA.
Mol Neurobiol. 2008 Apr-Jun;37(2-3):153-63. doi: 10.1007/s12035-008-8027-y. Epub 2008 Jun 5.
The transient receptor potential vanilloid type 1 (TRPV1) channels are involved in both thermosensation and nociception. They are activated by heat, protons, and capsaicin and modulated by a plethora of other agents. This review will focus on the consequences of phospholipase C (PLC) activation, with special emphasis on the effects of phosphatidylinositol 4,5-bisphosphate (PIP2) on these channels. Two opposing effects of PIP2 have been reported on TRPV1. PIP2 has been proposed to inhibit TRPV1, and relief from this inhibition was suggested to be involved in sensitization of these channels by pro-inflammatory agents. In excised patches, however, PIP2 was shown to activate TRPV1. Calcium flowing through TRPV1 activates PLC and the resulting depletion of PIP2 was proposed to play a role in capsaicin-induced desensitization of these channels. We will describe the data indicating involvement of PLC and PIP2 in sensitization and desensitization of TRPV1 and will also discuss other pathways potentially contributing to these two phenomena. We attempt to resolve the seemingly contradictory data by proposing that PIP2 can both activate and inhibit TRPV1 depending on the experimental conditions, more specifically on the level of stimulation of these channels. Finally, we also discuss data in the literature indicating that other TRP channels, TRPA1 and some members of the TRPC subfamily, may also be under a similar dual control by PIP2.
瞬时受体电位香草酸亚型1(TRPV1)通道参与热感觉和伤害性感受。它们可被热、质子和辣椒素激活,并受到大量其他因子的调节。本综述将聚焦于磷脂酶C(PLC)激活的后果,特别强调磷脂酰肌醇4,5-二磷酸(PIP2)对这些通道的影响。关于TRPV1,已报道PIP2有两种相反的作用。有人提出PIP2可抑制TRPV1,且认为促炎因子使这些通道致敏的过程涉及对这种抑制的解除。然而,在膜片钳实验中,PIP2被证明可激活TRPV1。经TRPV1内流的钙激活PLC,由此导致的PIP2耗竭被认为在辣椒素诱导的这些通道脱敏中起作用。我们将描述表明PLC和PIP2参与TRPV1致敏和脱敏的数据,并讨论可能导致这两种现象的其他途径。我们通过提出PIP2可根据实验条件,更具体地说是根据这些通道的刺激水平,既能激活又能抑制TRPV1,来尝试解决这些看似矛盾的数据。最后,我们还将讨论文献中的数据,这些数据表明其他瞬时受体电位(TRP)通道,即TRPA1和TRPC亚家族的一些成员,可能也受到PIP2类似的双重调控。