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Biology subjects

Shemesh, T.

Publications and source records attributed to Shemesh, T..

2 recordsLinked to original sources

Neuron tracing and quantitative analyses of dendritic architecture reveal symmetrical three-way-junctions and phenotypes of git-1 in C. elegans

Complex dendritic trees are a distinctive feature of neurons. Alterations to dendritic morphology are associated with developmental, behavioral and neurodegenerative changes. The highly-arborized PVD neuron of C. elegans serves as a model to study dendritic patterning; however, quantitative, objective and automated analyses of PVD morphology are missing. Here, we present a method for neuronal feature extraction, based on deep-learning and fitting algorithms. The extracted neuronal architecture is represented by a database of structural elements for abstracted analysis. We obtain excellent automatic tracing of PVD trees and uncover that dendritic junctions are unevenly distributed. Surprisingly, these junctions are three-way-symmetrical on average, while dendritic processes are arranged orthogonally. We quantify the effect of mutation in git-1, a regulator of dendritic spine formation, on PVD morphology and discover a localized reduction in junctions. Our findings shed new light on PVD architecture, demonstrating the effectiveness of our objective analyses of dendritic morphology and suggest molecular control mechanisms. Author SummaryNerve cells (neurons) collect input signals via branched cellular projections called dendrites. A major aspect of the study of neurons, dating back over a century, involves the characterization of neuronal shapes and of their dendritic processes. Here, we present an algorithmic approach for detection and classification of the tree-like dendrites of the PVD neuron in C. elegans worms. A key feature of our approach is to represent dendritic trees by a set of fundamental shapes, such as junctions and linear elements. By analyzing this dataset, we discovered several novel structural features. We have found that the junctions connecting branched dendrites have a three-way-symmetry, although the dendrites are arranged in a crosshatch pattern; and that the distribution of junctions varies across distinct sub-classes of the PVDs dendritic tree. We further quantified subtle morphological effects due to mutation in the git-1 gene, a known regulator of dendritic spines. Our findings suggest molecular mechanisms for dendritic shape regulation and may help direct new avenues of research.

systems biology

Cytoplasmic self-organization established by internal lipid membranes in the interplay with either actin or microtubules

Cells harbor an intrinsic organization of their components. Specific protein structures, as the centrosome, have been described master regulators of cell organization. In the absence of these key elements, however, cytoplasmic selforganization has nevertheless been observed. Cytoplasmic self-organization was postulated to arise from the interaction of microtubules with molecular motors on lipid membrane surfaces.\n\nHere, we show that lipid membranes are capable of organizing both major cytoskeletal systems, microtubules and actin, even if one or the other cytoskeletal system is completely paralyzed. A microfluidic droplet system and Xenopus oocyte extracts enabled us to build an artificial cell and study minimal requirements for cellular self-organization. Mathematical modeling reveals the interaction of lipid membranes with any filament system through molecular motors as a universal principle of cytoplasmic self-organization. Both cytoskeletal systems form mechanisms to establish robust 2-dimensional selforganization and self-centering. Pharmacologic inhibition of the cytoskeletal network systems helps dissect specific contributions of each network in the interplay with lipid membranes with regards to 2- and 3-dimensional organization, time and length scale of cytoplasmic organization and the degree of concentration of the centered elements. While microtubules provide 3-dimensional polarity, actin filaments ensure fast and dense compaction and long-range organization.

cell biology