Serotonin‐induced bistability of turtle motoneurones caused by a nifedipine‐sensitive calcium plateau potential.

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Serotonin‐induced bistability of turtle motoneurones caused by a nifedipine‐sensitive calcium plateau potential. / Hounsgaard, J.; Kiehn, O.

In: The Journal of Physiology, Vol. 414, No. 1, 01.07.1989, p. 265-282.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Hounsgaard, J & Kiehn, O 1989, 'Serotonin‐induced bistability of turtle motoneurones caused by a nifedipine‐sensitive calcium plateau potential.', The Journal of Physiology, vol. 414, no. 1, pp. 265-282. https://doi.org/10.1113/jphysiol.1989.sp017687

APA

Hounsgaard, J., & Kiehn, O. (1989). Serotonin‐induced bistability of turtle motoneurones caused by a nifedipine‐sensitive calcium plateau potential. The Journal of Physiology, 414(1), 265-282. https://doi.org/10.1113/jphysiol.1989.sp017687

Vancouver

Hounsgaard J, Kiehn O. Serotonin‐induced bistability of turtle motoneurones caused by a nifedipine‐sensitive calcium plateau potential. The Journal of Physiology. 1989 Jul 1;414(1):265-282. https://doi.org/10.1113/jphysiol.1989.sp017687

Author

Hounsgaard, J. ; Kiehn, O. / Serotonin‐induced bistability of turtle motoneurones caused by a nifedipine‐sensitive calcium plateau potential. In: The Journal of Physiology. 1989 ; Vol. 414, No. 1. pp. 265-282.

Bibtex

@article{ed7cbf69ff2c43f7857e4417b1b53ea3,
title = "Serotonin‐induced bistability of turtle motoneurones caused by a nifedipine‐sensitive calcium plateau potential.",
abstract = "1. The effect of serotonin on the firing properties of motoneurones was studied in transverse sections of the adult turtle spinal cord in vitro with intracellular recording techniques. 2. In normal medium, turtle motoneurones adapt from an initial high frequency to a low steady firing during a depolarizing current pulse. In the presence of serotonin (4‐100 microM) motoneurones responded with accelerated firing and a frequency jump during a depolarizing current pulse followed by an after‐depolarization outlasting the stimulus. From a depolarized holding potential motoneuronal activity was shifted between two stable states by brief depolarizing and hyperpolarizing current pulses. As an expression of this bistable firing behaviour, the frequency‐current relation in response to a triangular current injection was counter‐clockwise in serotonin while clockwise in normal medium. 3. The delay to onset of the frequency jump was shortened as the amplitude of the activation pulse was increased. From a positive holding potential the after‐depolarization exceeded spike threshold and its duration increased with an increase in steady bias current. The effect of serotonin on turtle motoneurones could be blocked by methysergide (10 microM). 4. When action potentials were depressed by tetrodotoxin, a voltage‐dependent, non‐inactivating plateau potential, intrinsic to the motoneurone, was revealed. Activation of this voltage plateau provides the motoneurones with two stable states of firing. The apparent input resistance was 2‐4‐fold lower during the plateau than at rest. 5. The serotonin‐induced plateau potential was Ca2+‐dependent and was blocked when Ca2+ was replaced by either Co2+ (3 mM) or Mn2+ (3 mM). 6. The Ca2+ plateau was blocked by nifedipine (1‐15 microM). 7. Serotonin reduced the slow after‐hyperpolarization following action potentials. The change in balance between inward and outward currents seems to be sufficient to reveal the plateau response. 8. Although a small plateau response was induced by Bay K 8644 (1‐15 microM), this L‐channel agonist could not reproduce the pronounced effect of serotonin. 9. It is concluded that serotonin induces a Ca2+‐dependent and nifedipine‐sensitive plateau potential in turtle motoneurones primarily by reducing a K+‐current responsible for the slow after‐hyperpolarization.",
author = "J. Hounsgaard and O. Kiehn",
year = "1989",
month = jul,
day = "1",
doi = "10.1113/jphysiol.1989.sp017687",
language = "English",
volume = "414",
pages = "265--282",
journal = "The Journal of Physiology",
issn = "0022-3751",
publisher = "Wiley-Blackwell",
number = "1",

}

RIS

TY - JOUR

T1 - Serotonin‐induced bistability of turtle motoneurones caused by a nifedipine‐sensitive calcium plateau potential.

AU - Hounsgaard, J.

AU - Kiehn, O.

PY - 1989/7/1

Y1 - 1989/7/1

N2 - 1. The effect of serotonin on the firing properties of motoneurones was studied in transverse sections of the adult turtle spinal cord in vitro with intracellular recording techniques. 2. In normal medium, turtle motoneurones adapt from an initial high frequency to a low steady firing during a depolarizing current pulse. In the presence of serotonin (4‐100 microM) motoneurones responded with accelerated firing and a frequency jump during a depolarizing current pulse followed by an after‐depolarization outlasting the stimulus. From a depolarized holding potential motoneuronal activity was shifted between two stable states by brief depolarizing and hyperpolarizing current pulses. As an expression of this bistable firing behaviour, the frequency‐current relation in response to a triangular current injection was counter‐clockwise in serotonin while clockwise in normal medium. 3. The delay to onset of the frequency jump was shortened as the amplitude of the activation pulse was increased. From a positive holding potential the after‐depolarization exceeded spike threshold and its duration increased with an increase in steady bias current. The effect of serotonin on turtle motoneurones could be blocked by methysergide (10 microM). 4. When action potentials were depressed by tetrodotoxin, a voltage‐dependent, non‐inactivating plateau potential, intrinsic to the motoneurone, was revealed. Activation of this voltage plateau provides the motoneurones with two stable states of firing. The apparent input resistance was 2‐4‐fold lower during the plateau than at rest. 5. The serotonin‐induced plateau potential was Ca2+‐dependent and was blocked when Ca2+ was replaced by either Co2+ (3 mM) or Mn2+ (3 mM). 6. The Ca2+ plateau was blocked by nifedipine (1‐15 microM). 7. Serotonin reduced the slow after‐hyperpolarization following action potentials. The change in balance between inward and outward currents seems to be sufficient to reveal the plateau response. 8. Although a small plateau response was induced by Bay K 8644 (1‐15 microM), this L‐channel agonist could not reproduce the pronounced effect of serotonin. 9. It is concluded that serotonin induces a Ca2+‐dependent and nifedipine‐sensitive plateau potential in turtle motoneurones primarily by reducing a K+‐current responsible for the slow after‐hyperpolarization.

AB - 1. The effect of serotonin on the firing properties of motoneurones was studied in transverse sections of the adult turtle spinal cord in vitro with intracellular recording techniques. 2. In normal medium, turtle motoneurones adapt from an initial high frequency to a low steady firing during a depolarizing current pulse. In the presence of serotonin (4‐100 microM) motoneurones responded with accelerated firing and a frequency jump during a depolarizing current pulse followed by an after‐depolarization outlasting the stimulus. From a depolarized holding potential motoneuronal activity was shifted between two stable states by brief depolarizing and hyperpolarizing current pulses. As an expression of this bistable firing behaviour, the frequency‐current relation in response to a triangular current injection was counter‐clockwise in serotonin while clockwise in normal medium. 3. The delay to onset of the frequency jump was shortened as the amplitude of the activation pulse was increased. From a positive holding potential the after‐depolarization exceeded spike threshold and its duration increased with an increase in steady bias current. The effect of serotonin on turtle motoneurones could be blocked by methysergide (10 microM). 4. When action potentials were depressed by tetrodotoxin, a voltage‐dependent, non‐inactivating plateau potential, intrinsic to the motoneurone, was revealed. Activation of this voltage plateau provides the motoneurones with two stable states of firing. The apparent input resistance was 2‐4‐fold lower during the plateau than at rest. 5. The serotonin‐induced plateau potential was Ca2+‐dependent and was blocked when Ca2+ was replaced by either Co2+ (3 mM) or Mn2+ (3 mM). 6. The Ca2+ plateau was blocked by nifedipine (1‐15 microM). 7. Serotonin reduced the slow after‐hyperpolarization following action potentials. The change in balance between inward and outward currents seems to be sufficient to reveal the plateau response. 8. Although a small plateau response was induced by Bay K 8644 (1‐15 microM), this L‐channel agonist could not reproduce the pronounced effect of serotonin. 9. It is concluded that serotonin induces a Ca2+‐dependent and nifedipine‐sensitive plateau potential in turtle motoneurones primarily by reducing a K+‐current responsible for the slow after‐hyperpolarization.

UR - http://www.scopus.com/inward/record.url?scp=0024319735&partnerID=8YFLogxK

U2 - 10.1113/jphysiol.1989.sp017687

DO - 10.1113/jphysiol.1989.sp017687

M3 - Journal article

C2 - 2607432

AN - SCOPUS:0024319735

VL - 414

SP - 265

EP - 282

JO - The Journal of Physiology

JF - The Journal of Physiology

SN - 0022-3751

IS - 1

ER -

ID: 194980496