New dimensions of connectomics and network plasticity in the central nervous system

Author:

Guidolin Diego1,Marcoli Manuela2,Maura Guido2,Agnati Luigi F.34

Affiliation:

1. 1Department of Neuroscience, University of Padova, via Gabelli, 65, I-35121 Padova, Italy

2. 2Department of Pharmacy and Center of Excellence for Biomedical Research, University of Genova, Genova, Italy

3. 3Department of Biomedical Sciences and Department of Diagnostic, Clinical Medicine and Public Health, University of Modena and Reggio Emilia, via G. Campi, 287, I-41125 Modena, Italy

4. 4Department of Neuroscience, Karolinska Institutet, Stockholm, Sweden

Abstract

AbstractCellular network architecture plays a crucial role as the structural substrate for the brain functions. Therefore, it represents the main rationale for the emerging field of connectomics, defined as the comprehensive study of all aspects of central nervous system connectivity. Accordingly, in the present paper the main emphasis will be on the communication processes in the brain, namely wiring transmission (WT), i.e. the mapping of the communication channels made by cell components such as axons and synapses, and volume transmission (VT), i.e. the chemical signal diffusion along the interstitial brain fluid pathways. Considering both processes can further expand the connectomics concept, since both WT-connectomics and VT-connectomics contribute to the structure of the brain connectome. A consensus exists that such a structure follows a hierarchical or nested architecture, and macro-, meso- and microscales have been defined. In this respect, however, several lines of evidence indicate that a nanoscale (nano-connectomics) should also be considered to capture direct protein-protein allosteric interactions such as those occurring, for example, in receptor-receptor interactions at the plasma membrane level. In addition, emerging evidence points to novel mechanisms likely playing a significant role in the modulation of intercellular connectivity, increasing the plasticity of the system and adding complexity to its structure. In particular, the roamer type of VT (i.e. the intercellular transfer of RNA, proteins and receptors by extracellular vesicles) will be discussed since it allowed us to introduce a new concept of ‘transient changes of cell phenotype’, that is the transient acquisition of new signal release capabilities and/or new recognition/decoding apparatuses.

Publisher

Walter de Gruyter GmbH

Subject

General Neuroscience

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