| Literature DB >> 28955199 |
Dmitry I Osmakov1,2, Sergey G Koshelev1, Yaroslav A Andreev1,2, Sergey A Kozlov1.
Abstract
Acid-sensing ion channels (ASICs) ASIC3 expressed mainly in peripheral sensory neurons play an important role in pain perception and inflammation development. In response to acidic stimuli, they can generate a unique biphasic current. At physiological pH 7.4, human ASIC3 isoform (hASIC3) is desensitized and able to generate only a sustained current. We found endogenous isoquinoline alkaloids (EIAs), which restore hASIC3 from desensitization and recover the transient component of the current. Similarly, rat ASIC3 isoform (rASIC3) can also be restored from desensitization (at pH < 7.0) by EIAs with the same potency. At physiological pH and above, EIAs at high concentrations were able to effectively activate hASIC3 and rASIC3. Thus, we found first endogenous agonists of ASIC3 channels that could both activate and prevent or reverse desensitization of the channel. The decrease of EIA levels could be suggested as a novel therapeutic strategy for treatment of pain and inflammation.Entities:
Keywords: acid sensing ion channel (ASIC); endogenous opioid; neuroscience; oocyte; signaling
Year: 2017 PMID: 28955199 PMCID: PMC5602355 DOI: 10.3389/fnmol.2017.00282
Source DB: PubMed Journal: Front Mol Neurosci ISSN: 1662-5099 Impact factor: 5.639
Figure 1Activating effect of endogenous isoquinoline alkaloids (EIAs) on Acid-sensing ion channels (ASIC3) channels. Action of tetrahydropapaveroline (THP; A,C) and reticuline (B,D) shown together with response to control stimulus for human (A,B) and rat (C,D) channels expressed in oocytes using whole cell configuration. Currents were measured at a holding pH 7.8 and were compared to control currents (H+ induced response by pH drop to 5.5) on the same cell. (E) Chemical structure of THP and reticuline. (F) Dose-response curves for the EIAs’ activation effect on human and rat ASIC3 (rASIC3) channels. Data were fitted by the logistic equation. Imax is a maximal amplitude predicted by the logistic equation fitting of EIAs’ induced currents data. (G) Activation effect of THP (10 mM) on human ASIC3 (hASIC3) channels at conditioning pH 7.8 (gray column) and 7.3 (red column). (H) Activation effect of THP (10 mM) on rASIC3 channels at conditioning pH 7.8 (gray column) and 6.8 (red column). Each point is presented as mean ± SE of 4–5 measurements.
Figure 2Transient current recovering effect of EIAs on ASIC3 channels. (A,B) Dual effect of THP preincubation reflected in sustained current generation together with inhibition of steady-state desensitization. Whole-cell currents recorded from human (A) or rat (B) ASIC3 channels held at pH 7.3 and 6.8, respectively were measured with pH 5.5 stimulus at different THP concentrations. (C) ASIC3 steady-state desensitization of human and rat channels by increasing proton concentrations in the conditioning period. Each point is presented as mean ± SE of seven measurements. (D,E) Traces for human (D) and rat (E) ASIC3 currents measured for non-desensitized channel state at resting pH 7.8 (left) and for desensitized channel state in the presence of reticuline (in the center) and THP (on the right). (F) Dose-response curve for THPs’ transient current recovering effect on hASIC3 and rASIC3. Imax was predicted by the fitting of dose dependences by a logistic equation independently for each cell. Each point is presented as mean ± SE of 4–5 measurements. (G) Comparative chart for calculated maximal amplitude of transient currents (recovered by THP from desensitization) to measured transient currents in the control by a pH drop of 7.8–5.5. Data for rASIC3 (n = 4) and hASIC3 (n = 5) are presented as mean ± SE.
Figure 3The simple representation for the endogenous pathway of morphine biosynthesis in mammals. Pain relief could be induced by inhibition of the reticuline/THP biosynthesis or by enhancement of their conversion to the morphine.