Literature DB >> 31324630

Biopearling of Interconnected Outer Membrane Vesicle Chains by a Marine Flavobacterium.

Tanja Fischer1, Martin Schorb2, Greta Reintjes3, Androniki Kolovou2, Rachel Santarella-Mellwig2, Stephanie Markert4, Erhard Rhiel5, Sten Littmann6, Dörte Becher7, Thomas Schweder4, Jens Harder8.   

Abstract

Large surface-to-volume ratios provide optimal nutrient uptake conditions for small microorganisms in oligotrophic habitats. The surface area can be increased with appendages. Here, we describe chains of interconnecting vesicles protruding from cells of strain Hel3_A1_48, affiliating with Formosa spp. within the Flavobacteriia and originating from coastal free-living bacterioplankton. The chains were up to 10 μm long and had vesicles emanating from the outer membrane with a single membrane and a size of 80 to 100 nm by 50 to 80 nm. Cells extruded membrane tubes in the exponential phase, whereas vesicle chains dominated on cells in the stationary growth phase. This formation is known as pearling, a physical morphogenic process in which membrane tubes protrude from liposomes and transform into chains of interconnected vesicles. Proteomes of whole-cell membranes and of detached vesicles were dominated by outer membrane proteins, including the type IX secretion system and surface-attached peptidases, glycoside hydrolases, and endonucleases. Fluorescein-labeled laminarin stained the cells and the vesicle chains. Thus, the appendages provide binding domains and degradative enzymes on their surfaces and probably storage volume in the vesicle lumen. Both may contribute to the high abundance of these Formosa-affiliated bacteria during laminarin utilization shortly after spring algal blooms.IMPORTANCE Microorganisms produce membrane vesicles. One synthesis pathway seems to be pearling that describes the physical formation of vesicle chains from phospholipid vesicles via extended tubes. Bacteria with vesicle chains had been observed as well as bacteria with tubes, but pearling was so far not observed. Here, we report the observation of, initially, tubes and then vesicle chains during the growth of a flavobacterium, suggesting biopearling of vesicle chains. The flavobacterium is abundant during spring bacterioplankton blooms developing after algal blooms and has a special set of enzymes for laminarin, the major storage polysaccharide of microalgae. We demonstrated with fluorescently labeled laminarin that the vesicle chains bind laminarin or contain laminarin-derived compounds. Proteomic analyses revealed surface-attached degradative enzymes on the outer membrane vesicles. We conclude that the large surface area and the lumen of vesicle chains may contribute to the ecological success of this marine bacterium.
Copyright © 2019 American Society for Microbiology.

Entities:  

Keywords:  Flavobacteriiazzm321990; outer membrane; outer membrane proteins; vesicle

Year:  2019        PMID: 31324630      PMCID: PMC6752029          DOI: 10.1128/AEM.00829-19

Source DB:  PubMed          Journal:  Appl Environ Microbiol        ISSN: 0099-2240            Impact factor:   4.792


  55 in total

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Authors:  Jeannette D Møller; Andrew C Barnes; Inger Dalsgaard; Anthony E Ellis
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Authors:  I Tsafrir; D Sagi; T Arzi; M A Guedeau-Boudeville; V Frette; D Kandel; J Stavans
Journal:  Phys Rev Lett       Date:  2001-02-05       Impact factor: 9.161

9.  Muricauda ruestringensis gen. nov., sp. nov., a facultatively anaerobic, appendaged bacterium from German North Sea intertidal sediment.

Authors:  A Bruns; M Rohde; L Berthe-Corti
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10.  Genome streamlining in a cosmopolitan oceanic bacterium.

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