Action of internal pronase on the f‐channel kinetics in the rabbit SA node
Open Access
- 1 November 1999
- journal article
- Published by Wiley in The Journal of Physiology
- Vol. 520 (3), 737-744
- https://doi.org/10.1111/j.1469-7793.1999.00737.x
Abstract
1. The hyperpolarization-activated If current was recorded in inside-out macropatches from sino-atrial (SA) node myocytes during exposure of their intracellular side to pronase, in an attempt to verify if cytoplasmic f-channel domains are involved in both voltage- and cAMP-dependent gating. 2. Superfusion with pronase caused a quick, dramatic acceleration of channel opening upon hyperpolarization and slowing, rapidly progressing into full blockade, of channel closing upon depolarization; these changes persisted after wash off of pronase and were irreversible, indicating proteolytic cleavage of channel regions which contribute to gating. 3. If recorded from patches normally responding to cAMP became totally insensitive to cAMP following pronase treatment, indicating partial or total removal of channel regions involved in the cAMP-dependent activation. 4. The fully activated I-V relationship was not modified by pronase, indicating that internal proteolysis did not affect the f-channel conductance. 5. The changes in If kinetics induced by pronase were due to a large depolarizing shift of the f-channel open probability curve (56.5 +/- 1.1 mV, n = 7). 6. These results are consistent with the hypothesis that cytoplasmic f-channel regions are implicated in dual voltage- and cAMP-dependent gating; also, since pronase does not abolish hyperpolarization-activated opening, an intrinsic voltage-dependent gating mechanism must exist which is inaccessible to proteolytic cleavage. A model scheme able to account for these data thus includes an intrinsic gating mechanism operating at depolarized voltages, and a blocking mechanism coupled to cAMP binding to the channel.Keywords
This publication has 24 references indexed in Scilit:
- Dual allosteric modulation of pacemaker (f) channels by cAMP and voltage in rabbit SA nodeThe Journal of Physiology, 1999
- Not So Funny Anymore: Pacing Channels Are ClonedNeuron, 1998
- A mutation in the pore region of HERG K+ channels expressed in Xenopus oocytes reduces rectification by shifting the voltage dependence of inactivationThe Journal of Physiology, 1998
- Conversion of a Delayed Rectifier K+ Channel to a Voltage-Gated Inward Rectifier K+ Channel by Three Amino Acid SubstitutionsNeuron, 1996
- Modulation of K+ current by frequency and external [K+]: A tale of two inactivation mechanismsNeuron, 1995
- Pacemaker Mechanisms in Cardiac TissueAnnual Review of Physiology, 1993
- Shaker, Shal, Shab, and Shaw express independent K+ current systemsNeuron, 1991
- Voltage-sensing residues in the S4 region of a mammalian K+ channelNature, 1991
- Hydrophobic substitution mutations in the S4 sequence alter voltage-dependent gating in shaker K+ channelsNeuron, 1991
- Direct activation of cardiac pacemaker channels by intracellular cyclic AMPNature, 1991