Literature DB >> 26483464

Synaptic circuits and their variations within different columns in the visual system of Drosophila.

Shin-ya Takemura1, C Shan Xu1, Zhiyuan Lu2, Patricia K Rivlin1, Toufiq Parag1, Donald J Olbris1, Stephen Plaza1, Ting Zhao1, William T Katz1, Lowell Umayam1, Charlotte Weaver1, Harald F Hess1, Jane Anne Horne3, Juan Nunez-Iglesias4, Roxanne Aniceto1, Lei-Ann Chang1, Shirley Lauchie1, Ashley Nasca1, Omotara Ogundeyi1, Christopher Sigmund1, Satoko Takemura1, Julie Tran1, Carlie Langille3, Kelsey Le Lacheur3, Sari McLin3, Aya Shinomiya3, Dmitri B Chklovskii5, Ian A Meinertzhagen2, Louis K Scheffer6.   

Abstract

We reconstructed the synaptic circuits of seven columns in the second neuropil or medulla behind the fly's compound eye. These neurons embody some of the most stereotyped circuits in one of the most miniaturized of animal brains. The reconstructions allow us, for the first time to our knowledge, to study variations between circuits in the medulla's neighboring columns. This variation in the number of synapses and the types of their synaptic partners has previously been little addressed because methods that visualize multiple circuits have not resolved detailed connections, and existing connectomic studies, which can see such connections, have not so far examined multiple reconstructions of the same circuit. Here, we address the omission by comparing the circuits common to all seven columns to assess variation in their connection strengths and the resultant rates of several different and distinct types of connection error. Error rates reveal that, overall, <1% of contacts are not part of a consensus circuit, and we classify those contacts that supplement (E+) or are missing from it (E-). Autapses, in which the same cell is both presynaptic and postsynaptic at the same synapse, are occasionally seen; two cells in particular, Dm9 and Mi1, form ≥ 20-fold more autapses than do other neurons. These results delimit the accuracy of developmental events that establish and normally maintain synaptic circuits with such precision, and thereby address the operation of such circuits. They also establish a precedent for error rates that will be required in the new science of connectomics.

Entities:  

Keywords:  biological error rates; neural circuits; reconstruction error rates; stereotypy

Mesh:

Year:  2015        PMID: 26483464      PMCID: PMC4640747          DOI: 10.1073/pnas.1509820112

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  41 in total

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