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Structure and Function of a Bacterial Gap Junction Analog
Author(s) -
Gregor L. Weiss,
Ann-Katrin Kieninger,
Iris Maldener,
Karl Forchhammer,
Martin Pilhofer
Publication year - 2019
Publication title -
cell
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 26.304
H-Index - 776
eISSN - 1097-4172
pISSN - 0092-8674
DOI - 10.1016/j.cell.2019.05.055
Subject(s) - biology , multicellular organism , fluorescence recovery after photobleaching , microbiology and biotechnology , cytoplasm , peptidoglycan , gap junction , intracellular , biophysics , cell junction , gating , cytokinesis , cell , cell division , cell wall , biochemistry , membrane
Multicellular lifestyle requires cell-cell connections. In multicellular cyanobacteria, septal junctions enable molecular exchange between sister cells and are required for cellular differentiation. The structure of septal junctions is poorly understood, and it is unknown whether they are capable of controlling intercellular communication. Here, we resolved the in situ architecture of septal junctions by electron cryotomography of cryo-focused ion beam-milled cyanobacterial filaments. Septal junctions consisted of a tube traversing the septal peptidoglycan. Each tube end comprised a FraD-containing plug, which was covered by a cytoplasmic cap. Fluorescence recovery after photobleaching showed that intercellular communication was blocked upon stress. Gating was accompanied by a reversible conformational change of the septal junction cap. We provide the mechanistic framework for a cell junction that predates eukaryotic gap junctions by a billion years. The conservation of a gated dynamic mechanism across different domains of life emphasizes the importance of controlling molecular exchange in multicellular organisms.

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