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1 tinct synaptic outputs: classical axonal and dendrodendritic.
2 ained response in mitral cells resulted from dendrodendritic amplification in mitral cells, which was
4 depression, the balance of axodendritic and dendrodendritic circuitry in external tufted cells and m
5 RN synapse shows strong synaptic depression, dendrodendritic circuitry in mitral cells produces robus
6 teract with granule cells through reciprocal dendrodendritic connections that are poorly understood.
7 and right IO are electronically coupled via dendrodendritic connections was investigated by examinin
9 contain small clusters of vesicles and form dendrodendritic contacts in the extraglomerular neuropil
11 pal olive and dorsal accessory olive and (2) dendrodendritic electrotonic coupling between neurons of
12 ptor-specific network can be synchronized by dendrodendritic excitatory interactions in a glomerulus,
14 cate selective mGluR-dependent modulation of dendrodendritic GABA release from F2-type terminals on i
15 ause TRN neurons signal electrically through dendrodendritic gap junctions and possibly via chemical
16 because of the electrotonic distance between dendrodendritic gap junctions and the somatic recording
18 both NMDA and non-NMDA glutamate receptors, dendrodendritic inhibition (DDI) relies on the activatio
19 cularly effective in driving this reciprocal dendrodendritic inhibition (DDI), raising the possibilit
20 anule cells, which in turn mediate GABAergic dendrodendritic inhibition back onto mitral dendrites.
23 eceptors also seem to have a central role in dendrodendritic inhibition in vivo, because intraperiton
24 aptic circuit forms the basis for reciprocal dendrodendritic inhibition mediated by ionotropic GABA(A
25 o dynamically modulate recurrent and lateral dendrodendritic inhibition of MTCs and to selective enga
28 ings suggest that GABA(B) receptors modulate dendrodendritic inhibition primarily by inhibiting granu
30 at endogenous GABA regulates the strength of dendrodendritic inhibition via the activation of GABA(B)
31 ry synaptic input to mitral cells as well as dendrodendritic inhibition was unaffected in the knockou
36 us the relative strength of axodendritic and dendrodendritic input determines the postsynaptic respon
38 sing synaptic inputs: an already established dendrodendritic input to the distal apical dendrite and
40 tassium current (IA) specifically attenuated dendrodendritic inputs mediated by fast-acting AMPA rece
42 or coactivation of a smaller subset of local dendrodendritic inputs with coincidence excitation from
47 cal features governing synaptic signaling in dendrodendritic microcircuits of olfactory bulb glomerul
48 ulb; here, these two classes of neurons form dendrodendritic reciprocal synapses with each other.
51 nal tufted cells could be attributed to slow dendrodendritic responses in mitral cells, as blocking t
52 ther metabotropic GABA(B) receptors modulate dendrodendritic signaling between mitral and granule cel
54 -1.5Hz in molluscs), engaging the reciprocal dendrodendritic synapse between excitatory principle neu
57 quite a different role for NMDA receptors at dendrodendritic synapses between mitral and granule cell
58 ion is imbedded in the local connectivity at dendrodendritic synapses between mitral cells and intern
60 robust frequency-dependent depression of the dendrodendritic synapses but facilitation of the axodend
61 ordings from pairs of mitral cells show that dendrodendritic synapses can mediate lateral inhibition
63 oordinate GABA release at relatively distant dendrodendritic synapses formed throughout the dendritic
65 ith paired-pulse stimulation, whereas distal dendrodendritic synapses generate EPSCs with slower kine
66 interneurons in addition to the specialized dendrodendritic synapses located on distal dendrites.
68 del suggests functional significance for the dendrodendritic synapses mediating interactions between
69 th selectively at the GABAergic component of dendrodendritic synapses of granule and mitral cells in
71 tinct types of monosynaptic connections: (1) dendrodendritic synapses onto GC distal dendrites via th
72 mary afferent axodendritic and local-circuit dendrodendritic synapses segregated within the glomerulu
75 rom the vomeronasal sensory neurons and form dendrodendritic synapses with each other and with mitral
77 these inhibitory inputs, including numerous dendrodendritic synapses with GABAergic granule cells, i
80 amatergic mitral cells (MCs) form reciprocal dendrodendritic synapses with large spines on GABAergic
84 principal neurons, the mitral cells, through dendrodendritic synapses, shaping the olfactory bulb out
91 s (M/T), is modulated by pairs of reciprocal dendrodendritic synaptic circuits in the external plexif
92 Our computational simulations suggest that dendrodendritic synaptic properties prevent individual p
93 mediated PSCs are produced by a rare form of dendrodendritic synaptic transmission between dopamine n
94 ayers of the main olfactory bulb, as well as dendrodendritic synaptic transmission between olfactory
95 eptors in MCs mediate late components of the dendrodendritic TC->MC transmission to significantly boo
96 (2+) spikes in periglomerular cells underlie dendrodendritic transmission by depolarizing periglomeru