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Dendritic calcium plateau potentials modulate input-output properties of juxtaglomerular cells in the rat olfactory bulb

Zhou, Zhishang; Xiong, Wenhui; Masurkar, Arjun V; Chen, Wei R; Shepherd, Gordon M
Understanding the intrinsic membrane properties of juxtaglomerular (JG) cells is a necessary step toward understanding the neural basis of olfactory signal processing within the glomeruli. We used patch-clamp recordings and two-photon Ca(2+) imaging in rat olfactory bulb slices to analyze a long-lasting plateau potential generated in JG cells and characterize its functional input-output roles in the glomerular network. The plateau potentials were initially generated by dendritic calcium channels. Bath application of Ni(2+) (250 microM to 1 mM) totally blocked the plateau potential. A local puff of Ni(2+) on JG cell dendrites, but not on the soma, blocked the plateau potentials, indicating the critical contribution of dendritic Ca(2+) channels. Imaging studies with two-photon microscopy showed that a dendritic Ca(2+) increase was always correlated with a dendritic but not a somatic plateau potential. The dendritic Ca(2+) conductance contributed to boosting the initial excitatory postsynaptic potentials (EPSPs) to produce the plateau potential that shunted and reduced the amplitudes of the following EPSPs. This enables the JG cells to act as low-pass filters to convert high-frequency inputs to low-frequency outputs. The low frequency (2.6 +/- 0.8 Hz) of rhythmic plateau potentials appeared to be determined by the intrinsic membrane properties of the JG cell. These properties of the plateau potential may enable JG cells to serve as pacemaker neurons in the synchronization and oscillation of the glomerular network.
PMID: 16855116
ISSN: 0022-3077
CID: 2128962

Viral tracing identifies distributed columnar organization in the olfactory bulb

Willhite, David C; Nguyen, Katherine T; Masurkar, Arjun V; Greer, Charles A; Shepherd, Gordon M; Chen, Wei R
Olfactory sensory neurons converge onto glomeruli in the olfactory bulb (OB) to form modular information processing units. Similar input modules are organized in translaminar columns for other sensory modalities. It has been less clear in the OB whether the initial modular organization relates to a columnar structure in the deeper layers involved in local circuit processing. To probe synaptic connectivity in the OB, we injected a retrograde-specific strain of the pseudorabies virus into the rat OB and piriform cortex. The viral-staining patterns revealed a striking columnar organization that extended across all layers of the OB from the glomeruli to the deep granule cell layer. We hypothesize that the columns represent an extension of the glomerular unit. Specific patterning was observed, suggesting selective, rather than distance-dependent, center-surround connectivity. The results provide a previously undescribed basis for interpreting the synaptic connections between mitral and granule cells within the context of a columnar organization in the OB and have implications for olfactory coding and network organization.
PMCID:1567923
PMID: 16895993
ISSN: 0027-8424
CID: 2128952

Non-Orthogonal Non-Fourier Spatial Encoding for Dynamic MRI

Zientara, Gary P; Masurkar, Arjun V; Mitsouras, Dimitrios; Panych, Lawrence P; Jolesz, Frenec A
ORIGINAL:0014739
ISSN: 1524-6965
CID: 4563452

Implementation of Hybrid Basis Non-Fourier Spatial Encoding for Dynamic Adaptive MRI

Mitsouras, D; Masurkar, Arjun V; Zhao L; Panych, LP; Edleman, A; Jolesz, FA; Zientara, GP
ORIGINAL:0014740
ISSN: 1524-6965
CID: 4563462