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Jiu-Lin Du

Publications and source records attributed to Jiu-Lin Du.

3 recordsLinked to original sources

Rapid BDNF-induced retrograde synaptic modification in a developing retinotectal system.

In cultures of hippocampal neurons, induction of long-term synaptic potentiation or depression by repetitive synaptic activity is accompanied by a retrograde spread of potentiation or depression, respectively, from the site of induction at the axonal outputs to the input synapses on the dendrites of the presynaptic neuron. We report here that rapid retrograde synaptic modification also exists in an intact developing retinotectal system. Local application of brain-derived neurotrophic factor (BDNF) to the Xenopus laevis optic tectum, which induced persistent potentiation of retinotectal synapses, led to a rapid modification of synaptic inputs at the dendrites of retinal ganglion cells (RGCs), as shown by a persistent enhancement of light-evoked excitatory synaptic currents and spiking activity of RGCs. This retrograde effect required TrkB receptor activation, phospholipase Cgamma activity and Ca2+ elevation in RGCs, and was accounted for by a selective increase in the number of postsynaptic AMPA-subtype glutamate receptors at RGC dendrites. Such retrograde information flow in the neuron allows rapid regulation of synaptic inputs at the dendrite in accordance to signals received at axon terminals, a process reminiscent of back-propagation algorithm for learning in neural networks.

Action Potentials↗

Glycine receptors and transporters on bullfrog retinal Müller cells.

Glycine is a principal inhibitory neurotransmitter in the vertebrate retina. We have characterized glycine-induced currents from Müller cells in the bullfrog retinal slice preparation using whole-cell recordings. The glycine-induced current was partially suppressed by strychnine, and the remaining strychnine-resistant component was sacrosine-sensititve, suggesting that these two components may be mediated by glycine receptors and glycine transporters, respectively. Furthermore, the two components were maximal at the inner nuclear layer (INL) and declined asymmetrically as the application site was moved away from the INL to either the external or internal limiting membranes. It is suggested that Müller cells may be involved in glycinergic transmission by communicating with retinal neurons through these receptors and transporters.

Amino Acid Transport Systems, Neutral↗

Bullfrog retinal bipolar cells may express heterogeneous glycine receptors at dendrites and axon terminals.

Subcellular localization and properties of glycine receptors on bipolar cells (BCs) were studied using whole-cell recordings and non-stationary noise analysis (NSNA) in bullfrog retinal slices. The currents elicited by focally applied glycine were of comparable amplitudes at the dendrites and axon terminals of both OFF and ON BCs. Moreover, glycine receptors were also expressed at the axons of some BCs. NSNA revealed that the weighted mean single-channel conductance of the glycine receptors at the dendrites (18.2 pS) was significantly larger than that of those at the axon terminals (8.1 pS), thus implying that the glycine receptors on bullfrog retinal BCs may be heterogeneous at these two sites.

Algorithms↗