Temperature regulation of gliding motility in filamentous sulfur bacteria, Beggiatoa spp.

The response of gliding motility to changing temperatures was studied in filaments of the large sulfur bacteria Beggiatoa from arctic, temperate and tropical marine environments. The general shape of the gliding speed vs. temperature curves from all three locations was similar, but differed in the m...

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Main Authors: Dunker, R., Roy, H., Jorgensen, B.
Format: Article in Journal/Newspaper
Language:English
Published: 2010
Subjects:
Online Access:http://hdl.handle.net/21.11116/0000-0001-CB48-A
http://hdl.handle.net/21.11116/0000-0007-7591-1
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spelling ftpubman:oai:pure.mpg.de:item_2485090 2023-08-20T04:03:59+02:00 Temperature regulation of gliding motility in filamentous sulfur bacteria, Beggiatoa spp. Dunker, R. Roy, H. Jorgensen, B. 2010-05-17 application/pdf http://hdl.handle.net/21.11116/0000-0001-CB48-A http://hdl.handle.net/21.11116/0000-0007-7591-1 eng eng http://hdl.handle.net/21.11116/0000-0001-CB48-A http://hdl.handle.net/21.11116/0000-0007-7591-1 info:eu-repo/semantics/openAccess FEMS Microbiology Ecology info:eu-repo/semantics/article 2010 ftpubman 2023-08-01T23:20:41Z The response of gliding motility to changing temperatures was studied in filaments of the large sulfur bacteria Beggiatoa from arctic, temperate and tropical marine environments. The general shape of the gliding speed vs. temperature curves from all three locations was similar, but differed in the maximal gliding speed of the filaments, optimum temperature and the temperature range of motility. The optimum temperature and the overall temperature range of gliding motility accorded to the climatic origin of the filaments with a high temperature range for tropical, an intermediate range for temperate, and a low temperature range for arctic filaments. The temperature-controlled decrease in gliding speed at low temperatures was reversible while the decline in speed at high temperatures was due to irreversible thermal damage in individual filaments. Filaments from the Arctic and cold-acclimatized filaments from the temperate zone were unaffected by transient freezing of the surrounding seawater. At in situ temperatures, filaments glided at 17–55% of the gliding speed at the optimum temperatures, indicating that they were well adapted to the temperature regime of their origin. Our results point towards an enzymatic control of temperature-dependent gliding motility. Article in Journal/Newspaper Arctic Max Planck Society: MPG.PuRe Arctic
institution Open Polar
collection Max Planck Society: MPG.PuRe
op_collection_id ftpubman
language English
description The response of gliding motility to changing temperatures was studied in filaments of the large sulfur bacteria Beggiatoa from arctic, temperate and tropical marine environments. The general shape of the gliding speed vs. temperature curves from all three locations was similar, but differed in the maximal gliding speed of the filaments, optimum temperature and the temperature range of motility. The optimum temperature and the overall temperature range of gliding motility accorded to the climatic origin of the filaments with a high temperature range for tropical, an intermediate range for temperate, and a low temperature range for arctic filaments. The temperature-controlled decrease in gliding speed at low temperatures was reversible while the decline in speed at high temperatures was due to irreversible thermal damage in individual filaments. Filaments from the Arctic and cold-acclimatized filaments from the temperate zone were unaffected by transient freezing of the surrounding seawater. At in situ temperatures, filaments glided at 17–55% of the gliding speed at the optimum temperatures, indicating that they were well adapted to the temperature regime of their origin. Our results point towards an enzymatic control of temperature-dependent gliding motility.
format Article in Journal/Newspaper
author Dunker, R.
Roy, H.
Jorgensen, B.
spellingShingle Dunker, R.
Roy, H.
Jorgensen, B.
Temperature regulation of gliding motility in filamentous sulfur bacteria, Beggiatoa spp.
author_facet Dunker, R.
Roy, H.
Jorgensen, B.
author_sort Dunker, R.
title Temperature regulation of gliding motility in filamentous sulfur bacteria, Beggiatoa spp.
title_short Temperature regulation of gliding motility in filamentous sulfur bacteria, Beggiatoa spp.
title_full Temperature regulation of gliding motility in filamentous sulfur bacteria, Beggiatoa spp.
title_fullStr Temperature regulation of gliding motility in filamentous sulfur bacteria, Beggiatoa spp.
title_full_unstemmed Temperature regulation of gliding motility in filamentous sulfur bacteria, Beggiatoa spp.
title_sort temperature regulation of gliding motility in filamentous sulfur bacteria, beggiatoa spp.
publishDate 2010
url http://hdl.handle.net/21.11116/0000-0001-CB48-A
http://hdl.handle.net/21.11116/0000-0007-7591-1
geographic Arctic
geographic_facet Arctic
genre Arctic
genre_facet Arctic
op_source FEMS Microbiology Ecology
op_relation http://hdl.handle.net/21.11116/0000-0001-CB48-A
http://hdl.handle.net/21.11116/0000-0007-7591-1
op_rights info:eu-repo/semantics/openAccess
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