{"id":{"repo_id":"loma-linda","oai_identifier":"oai:scholarsrepository.llu.edu:etd-2208"},"canonical_url":"https://search.dev.ndltd.org/etd/loma-linda/oai:scholarsrepository.llu.edu:etd-2208","repository":{"repo_id":"loma-linda","name":"Loma Linda University","base_url":"https://scholarsrepository.llu.edu/do/oai/"},"display":{"title":"Aerotaxis in HALOBACTERIUM HALOBIUM","abstract":"<p>Aerotaxis, previously studied in eubacteria was investigated in the archaebacterium <em>Halobacterium halobium.</em> A quantitative temporal assay for aerotaxis of <em>H. halobium</em> was developed using computer assisted motion analysis. Aerotaxis was most pronounced in early log phase cultures. Peak aerotaxis was found to coincide with peak respiration consistent with a model in which respiration is required for aerotaxis. In a spatial assay a mutant strain lacking the proton motive force (pmf)-generating pigments, bacteriorhodopsin (bR) and halorhodopsin (hR), exhibited enhanced aerotaxis bands relative to the bR<sup>+</sup>hR<sup>+</sup> parent. The enhanced aerotaxis in the mutant cells was not due solely to an enhanced respiration rate. Aerotaxis in the bR<sup>+</sup>hR<sup>+</sup> strain was stronger when cells were incubated in the dark than in illuminated cells in which proton motive force was enhanced by the light-activated pigments. These results suggest that in <em>H. halobium</em>, as in eubacteria, aerotaxis is mediated by oxygen-dependent changes in proton motive force. In<em> H. halobium</em> S9P, methionine starvation depleted S-adenosylmethionine (as shown by high performance liquid chromatography) thereby inhibiting protein methylation. Unexpectedly, aerotaxis was abolished by methionine starvation even though unstimulated behavior was unchanged. Using a modified flow assay to measure protein methylesterase activity <em>in vivo</em>, peaks of esterase activity were observed following positive and negative oxygen stimuli and these changes were absent in a protein methyltransferase mutant. The pattern of altered methylesterase activity in <em>H. halobium</em> was most similar to chemostimulus related changes seen in <em>Bacillus </em><em>subtilis. H. halobium</em> thus appears to be the first bacterium in which aerotaxis has been shown to be dependent on receptor methylation.</p>","abstract_html":"&lt;p&gt;Aerotaxis, previously studied in eubacteria was investigated in the archaebacterium &lt;em&gt;Halobacterium halobium.&lt;/em&gt; A quantitative temporal assay for aerotaxis of &lt;em&gt;H. halobium&lt;/em&gt; was developed using computer assisted motion analysis. Aerotaxis was most pronounced in early log phase cultures. Peak aerotaxis was found to coincide with peak respiration consistent with a model in which respiration is required for aerotaxis. In a spatial assay a mutant strain lacking the proton motive force (pmf)-generating pigments, bacteriorhodopsin (bR) and halorhodopsin (hR), exhibited enhanced aerotaxis bands relative to the bR&lt;sup&gt;+&lt;/sup&gt;hR&lt;sup&gt;+&lt;/sup&gt; parent. The enhanced aerotaxis in the mutant cells was not due solely to an enhanced respiration rate. Aerotaxis in the bR&lt;sup&gt;+&lt;/sup&gt;hR&lt;sup&gt;+&lt;/sup&gt; strain was stronger when cells were incubated in the dark than in illuminated cells in which proton motive force was enhanced by the light-activated pigments. These results suggest that in &lt;em&gt;H. halobium&lt;/em&gt;, as in eubacteria, aerotaxis is mediated by oxygen-dependent changes in proton motive force. In&lt;em&gt; H. halobium&lt;/em&gt; S9P, methionine starvation depleted S-adenosylmethionine (as shown by high performance liquid chromatography) thereby inhibiting protein methylation. Unexpectedly, aerotaxis was abolished by methionine starvation even though unstimulated behavior was unchanged. Using a modified flow assay to measure protein methylesterase activity &lt;em&gt;in vivo&lt;/em&gt;, peaks of esterase activity were observed following positive and negative oxygen stimuli and these changes were absent in a protein methyltransferase mutant. The pattern of altered methylesterase activity in &lt;em&gt;H. halobium&lt;/em&gt; was most similar to chemostimulus related changes seen in &lt;em&gt;Bacillus &lt;/em&gt;&lt;em&gt;subtilis. H. halobium&lt;/em&gt; thus appears to be the first bacterium in which aerotaxis has been shown to be dependent on receptor methylation.&lt;/p&gt;","abstract_has_math":false,"creators":["Lindbeck, Jemima Clara"],"institution":null,"degree_name":"Doctor of Philosophy (Medical Science)","degree_level":"Dissertation","degree_discipline":"Biochemistry","degree_department":null,"school":null,"contributors":["Barry L. Taylor","Eric A. Goulbourne, Jr.","Mark S. Johnson","W. Barton Rippon","R. Bruce Wilcox"],"advisors":[],"committee_chairs":[],"committee_members":[],"year":1991,"date_issued":"1991-06-01T07:00:00Z","date_published":"1991-06-01T07:00:00Z","updated_at":"2026-07-24T02:53:44Z","subjects":["Biochemistry","Microbiology","Halobacterium; Methylation; Transducers; Chemotaxis; Ethionine; Methionine"],"languages":["English"],"rights":["This title appears here courtesy of the author, who has granted Loma Linda University a limited, non-exclusive right to make this publication available to the public. The author retains all other copyrights."],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"https://scholarsrepository.llu.edu/etd/1436","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor","label":"Contributor","values":["Barry L. Taylor","Eric A. Goulbourne, Jr.","Mark S. Johnson","W. Barton Rippon","R. 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The author retains all other copyrights."]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier","label":"Identifier","values":["https://scholarsrepository.llu.edu/etd/1436"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["<p>Aerotaxis, previously studied in eubacteria was investigated in the archaebacterium <em>Halobacterium halobium.</em> A quantitative temporal assay for aerotaxis of <em>H. halobium</em> was developed using computer assisted motion analysis. Aerotaxis was most pronounced in early log phase cultures. Peak aerotaxis was found to coincide with peak respiration consistent with a model in which respiration is required for aerotaxis. In a spatial assay a mutant strain lacking the proton motive force (pmf)-generating pigments, bacteriorhodopsin (bR) and halorhodopsin (hR), exhibited enhanced aerotaxis bands relative to the bR<sup>+</sup>hR<sup>+</sup> parent. The enhanced aerotaxis in the mutant cells was not due solely to an enhanced respiration rate. Aerotaxis in the bR<sup>+</sup>hR<sup>+</sup> strain was stronger when cells were incubated in the dark than in illuminated cells in which proton motive force was enhanced by the light-activated pigments. These results suggest that in <em>H. halobium</em>, as in eubacteria, aerotaxis is mediated by oxygen-dependent changes in proton motive force. In<em> H. halobium</em> S9P, methionine starvation depleted S-adenosylmethionine (as shown by high performance liquid chromatography) thereby inhibiting protein methylation. Unexpectedly, aerotaxis was abolished by methionine starvation even though unstimulated behavior was unchanged. Using a modified flow assay to measure protein methylesterase activity <em>in vivo</em>, peaks of esterase activity were observed following positive and negative oxygen stimuli and these changes were absent in a protein methyltransferase mutant. The pattern of altered methylesterase activity in <em>H. halobium</em> was most similar to chemostimulus related changes seen in <em>Bacillus </em><em>subtilis. H. halobium</em> thus appears to be the first bacterium in which aerotaxis has been shown to be dependent on receptor methylation.</p>"]},{"key":"dc:title","label":"Title","values":["Aerotaxis in HALOBACTERIUM HALOBIUM"]}]}],"canonical_facts":{"dc:contributor":["Barry L. Taylor","Eric A. Goulbourne, Jr.","Mark S. Johnson","W. Barton Rippon","R. Bruce Wilcox"],"dc:creator":["Lindbeck, Jemima Clara"],"dc:description.abstract":["<p>Aerotaxis, previously studied in eubacteria was investigated in the archaebacterium <em>Halobacterium halobium.</em> A quantitative temporal assay for aerotaxis of <em>H. halobium</em> was developed using computer assisted motion analysis. Aerotaxis was most pronounced in early log phase cultures. Peak aerotaxis was found to coincide with peak respiration consistent with a model in which respiration is required for aerotaxis. In a spatial assay a mutant strain lacking the proton motive force (pmf)-generating pigments, bacteriorhodopsin (bR) and halorhodopsin (hR), exhibited enhanced aerotaxis bands relative to the bR<sup>+</sup>hR<sup>+</sup> parent. The enhanced aerotaxis in the mutant cells was not due solely to an enhanced respiration rate. Aerotaxis in the bR<sup>+</sup>hR<sup>+</sup> strain was stronger when cells were incubated in the dark than in illuminated cells in which proton motive force was enhanced by the light-activated pigments. These results suggest that in <em>H. halobium</em>, as in eubacteria, aerotaxis is mediated by oxygen-dependent changes in proton motive force. In<em> H. halobium</em> S9P, methionine starvation depleted S-adenosylmethionine (as shown by high performance liquid chromatography) thereby inhibiting protein methylation. Unexpectedly, aerotaxis was abolished by methionine starvation even though unstimulated behavior was unchanged. Using a modified flow assay to measure protein methylesterase activity <em>in vivo</em>, peaks of esterase activity were observed following positive and negative oxygen stimuli and these changes were absent in a protein methyltransferase mutant. The pattern of altered methylesterase activity in <em>H. halobium</em> was most similar to chemostimulus related changes seen in <em>Bacillus </em><em>subtilis. H. halobium</em> thus appears to be the first bacterium in which aerotaxis has been shown to be dependent on receptor methylation.</p>"],"dc:identifier":["https://scholarsrepository.llu.edu/etd/1436"],"dc:language":["English"],"dc:rights":["This title appears here courtesy of the author, who has granted Loma Linda University a limited, non-exclusive right to make this publication available to the public. The author retains all other copyrights."],"dc:subject":["Biochemistry","Microbiology","Halobacterium; Methylation; Transducers; Chemotaxis; Ethionine; Methionine"],"dc:title":["Aerotaxis in HALOBACTERIUM HALOBIUM"],"thesis:degree_discipline":["Biochemistry"],"thesis:degree_level":["Dissertation"],"thesis:degree_name":["Doctor of Philosophy (Medical Science)"]},"updated_at":"2026-07-24T02:53:44Z"}