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Yusuke Z Tanaka

Publications and source records attributed to Yusuke Z Tanaka.

2 recordsLinked to original sources

Genomic organization and transcripts of the zebrafish Protocadherin genes.

We have examined the protocadherin (Pcdh) gene clusters of the zebrafish (Danio rerio). At least three sets of the Pcdh gene cluster were found in the zebrafish genome. Here, we describe the complete organization of the DrPcdh2 gene clusters. Classification by phylogenetic and transcript analyses revealed 7 DrPcdh2omicron, 20 DrPcdh2alphaa, 12 DrPcdh2alphab, and 1 DrPcdh2alphac variable exons upstream of the DrPcdh2alpha constant region exons in the DrPcdh2 gene cluster. The constant regions of the DrPcdh1alpha and DrPcdh2alpha genes in zebrafish were orthologs of those of the mammalian Pcdhalpha. These exons all encoded plural PXXP motifs in their cytoplasmic tails. The sequences of the variable exons were highly conserved within each family: DrPcdh2omicron, DrPcdh2alphaa, and DrPcdh2alphab. Transcript analysis revealed that zebrafish Pcdhs had alternatively spliced variants in the constant region that were not found in mammals. More gene clusters, more variable exons, and more alternative splicing variants were found in zebrafish than in mammals. Thus, although the Pcdhalpha families were common to diverse vertebrates, their gene number, structure, and transcripts were different between teleosts and mammals.

Alternative Splicing↗

Visual responses in the temporal cortex to moving objects with invariant contours.

We were interested in how the visual attributes of motion and shape are integrated in the temporal cortex of monkeys. We recorded neural activity in the middle portion of the superior temporal sulcus (STS) of monkeys during a sequential visual discrimination task while the animals maintained fixation. We used images of objects with invariant outlines rotating in 3D space either clockwise or counterclockwise as visual stimuli. In the sequential discrimination task, after the fixation pattern was presented for 1.0 s, the sample stimulus (S1) appeared at the center of the monitor screen for 0.8 s. After a delay period of 0.5-2.0 s, the same stimulus or a new response stimulus appeared on the screen for 0.8 s. In each block, the response stimulus was either a new direction of rotation or a new shape. Of 425 responding neurons isolated in the STS, 202 (48%) showed significant activity when S1 stimuli were presented. Of these visual neurons, 27 (13%) were categorized as motion and shape selective (MS), 69 (34%) as shape selective (S), and 6 (3%) as motion selective (M). Briefer than for MS or S neurons, the latency of the remaining non-selective neurons was 80 ms. Latencies of visual response (110 ms) of both MS and S neurons were similar. On the other hand, MS neurons started responding later (180 ms) to changes in direction. Our findings show that neurons in the STS, responding selectively to changes in shape, do respond to relatively simple motion and that variable contouring is not essential to elicit motion response. The results may also suggest the functional segregation of selective versus non-selective neurons and the later arrival of directional response to MS neurons in the STS.

Action Potentials↗