A slow outward current activated by FMRFamide in heart interneurons of the medicinal leech.
نویسندگان
چکیده
The endogenous neuropeptide FMRFamide (Phe-Met-Arg-Phe-NH2) can accelerate the oscillation of reciprocally inhibitory pairs of interneurons that pace heartbeat in the medicinal leech. A model based on all available biophysical data of a two-cell heart interneuron oscillator provides a theoretical basis for understanding this modulation. Previously observed modulation of K+ currents by FMRFamide cannot account for this acceleratory effect in the model. This observation prompted the present reexamination of K+ currents in heart interneurons. We devised better methods for separation of the various components of K+ current and more accurately measured their activation and deactivation kinetics. Moreover, we demonstrated that FMRFamide activates a previously undetected K+ current (IKF), which has very slow activation and deactivation kinetics. Addition of physiologically measured amounts of IKF to the model two-cell oscillator can account for the acceleratory effect of FMRFamide.
منابع مشابه
FlMRFamide Effects on Membrane Properties of Heart Cells Isolated From the Leech, Himdo medicinalis
1. The effects of the cardioactive peptide FMRFamide were tested on enzymatically dissociated muscle cells isolated from hearts of the leech. These cells were normally quiescent, with resting potentials near -60 mV. 2. Superfusion of FMRFamide induced a strong depolarization in isolated heart cells (e.g., >40 mV with 10v6 M FMRFamide). The depolarization was maintained in the continued presence...
متن کاملSegment-specific effects of FMRFamide on membrane properties of heart interneurons in the leech.
1. The effects of Phe-Met-Arg-Phe (FMRF)amide (10(-6) M) on membrane properties of heart interneurons in the third, fourth, and fifth segmental ganglia [HN(3), HN(4), and HN(5) cells, respectively] of the leech were studied using discontinuous current-clamp and single-electrode voltage-clamp techniques. FMRFamide was focally applied onto the soma of the cell under investigation. 2. Application ...
متن کاملOscillatory behaviors in pharmacologically isolated heart interneurons from the medicinal leech
The central motor pattern for heartbeat in the medicinal leech is based upon the alternating bursting activity of mutually inhibitory pairs of heart interneurons (HNs). When pharmacologically isolated, these neurons spike tonically. Using a canonical model of an HN cell (Nadim et al., J. Comput. Neurosci. 2 (1995) 215}235) as a starting point, we generated three models, possessing di!erent subs...
متن کاملModulatory effects of FMRF-NH2 on outward currents and oscillatory activity in heart interneurons of the medicinal leech.
Using single-electrode voltage clamp, heart interneurons of the medicinal leech were shown to possess both a rapidly inactivating outward current, IA, and a more slowly inactivating outward current, IK. IA and IK could be separated by their voltage sensitivity and kinetic properties. FMRF-NH2 (Phe-Met-Arg-Phe-NH2) modulates IK by shifting both steady state activation and inactivation to more hy...
متن کاملHeartbeat control in the medicinal leech: a model system for understanding the origin, coordination, and modulation of rhythmic motor patterns.
We have analyzed in detail the neuronal network that generates heartbeat in the leech. Reciprocally inhibitory pairs of heart interneurons form oscillators that pace the heartbeat rhythm. Other heart interneurons coordinate these oscillators. These coordinating interneurons, along with the oscillators interneurons, form an eight-cell timing oscillator network for heartbeat. Still other interneu...
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ورودعنوان ژورنال:
- The Journal of neuroscience : the official journal of the Society for Neuroscience
دوره 17 11 شماره
صفحات -
تاریخ انتشار 1997