offline software programme cambridge electronic design spike 2 (Cambridge Electronic Design)
90
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Cambridge Electronic Design
offline software programme cambridge electronic design spike 2
Offline Software Programme Cambridge Electronic Design Spike 2, supplied by Cambridge Electronic Design, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/programmable+software+spike+2/electronic+design+spike+2+software/pm37742557-243-22-23
Average 90 stars, based on 1 article reviews
Offline Software Programme Cambridge Electronic Design Spike 2, supplied by Cambridge Electronic Design, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/programmable+software+spike+2/electronic+design+spike+2+software/pm37742557-243-22-23
Average 90 stars, based on 1 article reviews
offline software programme cambridge electronic design spike 2 - by Bioz Stars,
2026-09
90/100 stars
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Software:Article Title: Intrinsic plasticity complements LTP in parallel fiber input gain control in cerebellar Purkinje cells Article Snippet: .. Data obtained from the DCN neuron recordings were analyzed off-line using Article Title: Mechanisms supporting transfer of inhibitory signals into the spike output of spontaneously firing cerebellar nuclear neurons in vitro. Article Snippet: Cerebellar cortical signals are carried to their principal target, the deep cerebellar nuclear neurons (DCNs), via the inhibitory pathway formed by Purkinje cell (PC) axons.. Two different intrinsic properties of DCNs, rebound excitation and automatic firing, have been proposed to support ensuing mechanisms for information transfer via inhibitory synapses.. The efficacy of these mechanisms was investigated using whole-cell recordings of spontaneously firing DCNs in cerebellar slices. Article Title: BK and Kv3.1 potassium channels control different aspects of deep cerebellar nuclear neurons action potentials and spiking activity. Article Snippet: Deep cerebellar nuclear neurons (DCNs) display characteristic electrical properties, including spontaneous spiking and the ability to discharge narrow spikes at high frequency.. These properties are thought to be relevant to processing inhibitory Purkinje cell input and transferring well-timed signals to cerebellar targets.. Yet, the underlying ionic mechanisms are not completely understood. Article Title: Glycinergic synaptic currents in the deep cerebellar nuclei. Article Snippet: Despite evidence of local glycinergic circuits in the mature cerebellar nuclei the result of their activation remains unknown.. Here, using whole cell recordings in rat cerebellar slices we demonstrated that after postnatal day 17 (>P17) glycinergic IPSCs can be readily evoked in large deep cerebellar nuclear neurons (DCNs), in the same way as in neonatal DCNs (P7eP10).. Spontaneous glycinergic IPSCs were very rare but direct presynaptic depolarization by superfusion with elevated potassium concentration or application of 4-aminopyridine consistently evoked strychnine sensitive IPSCs. Article Title: Efficacy and short-term plasticity at GABAergic synapses between Purkinje and cerebellar nuclei neurons. Article Snippet: Pedroarena, Christine M. and Cornelius Schwarz.. Efficacy and short-term plasticity at GABAergic synapses between Purkinje and cerebellar nuclei neurons.. J Neurophysiol 89: 704–715, 2003; 10.1152/jn.00558.2002. Article Title: Intrinsic Plasticity Complements Long-Term Potentiation in Parallel Fiber Input Gain Control in Cerebellar Purkinje Cells Article Snippet: .. Data obtained from the DCN neuron recordings were analyzed off-line using Article Title: Intrinsic Plasticity Complements Long-Term Potentiation in Parallel Fiber Input Gain Control in Cerebellar Purkinje Cells Article Snippet: .. Recordings were digitized and stored using Injection:Article Title: Mechanisms supporting transfer of inhibitory signals into the spike output of spontaneously firing cerebellar nuclear neurons in vitro. Article Snippet: Cerebellar cortical signals are carried to their principal target, the deep cerebellar nuclear neurons (DCNs), via the inhibitory pathway formed by Purkinje cell (PC) axons.. Two different intrinsic properties of DCNs, rebound excitation and automatic firing, have been proposed to support ensuing mechanisms for information transfer via inhibitory synapses.. The efficacy of these mechanisms was investigated using whole-cell recordings of spontaneously firing DCNs in cerebellar slices. Construct:Article Title: Mechanisms supporting transfer of inhibitory signals into the spike output of spontaneously firing cerebellar nuclear neurons in vitro. Article Snippet: Cerebellar cortical signals are carried to their principal target, the deep cerebellar nuclear neurons (DCNs), via the inhibitory pathway formed by Purkinje cell (PC) axons.. Two different intrinsic properties of DCNs, rebound excitation and automatic firing, have been proposed to support ensuing mechanisms for information transfer via inhibitory synapses.. The efficacy of these mechanisms was investigated using whole-cell recordings of spontaneously firing DCNs in cerebellar slices. |