Abstract
The effects of nigericin, valinomycin and some lipophilic cations on the motile behavior of non-starved and methionine-straved Bacillus subtilis cells were studied. For valinomycin and nigericin a quantitative relationship between the flux in the proton-motive force and the duration of the twiddle response was found. Lipophilic cations bind to the ion gate controlling the twiddle frequency and thereby cause the cells to swim smoothly. To explain the transmission of the chemotactic signal a model is given in which receptors, a hyperpolarizing wave, an ion gate and two methylation sites, viz. methyl-accepting chemotaxis proteins and a further methylation site (MT), play a role. For the transmission of the signal caused by an attractant both the hyperpolarizing wave and an interaction between receptor and methylation site (MT) are needed. The methyl-accepting chemotaxis proteins are involved in the adaptation/deadaptation to altered levels of attractant. Artificial changes in the proton-motive force act directly on the ion gate, which finally controlls the twiddle frequency of the cells.
MeSH Terms
Anti-Bacterial Agents/pharmacology
Arsenicals/pharmacology
Bacillus subtilis/metabolism,physiology
Chemotaxis/drug effects
Culture Media
Hydrogen-Ion Concentration
Methionine/metabolism
Models, Biological
Nigericin/pharmacology
Potassium/pharmacology
Valinomycin/pharmacology
Chemicals
Anti-Bacterial Agents
Arsenicals
Culture Media
Valinomycin
Methionine
Nigericin
Potassium
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
de Jong M H
van der Drift C
References (15)
15 references, click to expand
-
A protonmotive force drives bacterial flagella.
Proc Natl Acad Sci U S A. 1977 Jul;74(7):3060-4
PMID: 19741
-
Optical probes of membrane potential.
J Membr Biol. 1976 Jun 30;27(4):317-34
PMID: 787526
-
Identification of a protein methyltransferase as the cheR gene product in the bacterial sensing system.
Proc Natl Acad Sci U S A. 1977 Feb;74(2):533-7
PMID: 322131
-
Change in membrane potential during bacterial chemotaxis.
Proc Natl Acad Sci U S A. 1976 Dec;73(12):4387-91
PMID: 794876
-
Sensory transduction in Escherichia coli: a requirement for methionine in sensory adaptation.
Proc Natl Acad Sci U S A. 1977 Jan;74(1):183-7
PMID: 319456
-
Protonmotive force in fermenting Streptococcus lactis 7962 in relation to sugar accumulation.
Biochem Biophys Res Commun. 1974 Aug 5;59(3):879-86
PMID: 4137900
-
Characterization of lambda Escherichia coli hybrids carrying chemotaxis genes.
J Bacteriol. 1977 May;130(2):877-87
PMID: 233725
-
The proton electrochemical gradient in Escherichia coli cells.
Eur J Biochem. 1976 Apr 1;63(2):533-41
PMID: 4325
-
The electrochemical gradient of protons and its relationship to active transport in Escherichia coli membrane vesicles.
Proc Natl Acad Sci U S A. 1976 Jun;73(6):1892-6
PMID: 6961
-
Studies on the mechanism by which cyanine dyes measure membrane potential in red blood cells and phosphatidylcholine vesicles.
Biochemistry. 1974 Jul 30;13(16):3315-30
PMID: 4842277
-
Control of tumbling in bacterial chemotaxis by divalent cation.
J Bacteriol. 1976 May;126(2):706-11
PMID: 816789
-
The effect of amino acids on the motile behavior of Bacillus subtilis.
Arch Microbiol. 1977 May 13;113(1-2):153-8
PMID: 407881
-
Proton-motive force and the motile behavior of Bacillus subtilis.
Arch Microbiol. 1976 Dec 1;111(1-2):7-11
PMID: 13758
-
Methylation of a membrane protein involved in bacterial chemotaxis.
Proc Natl Acad Sci U S A. 1975 Oct;72(10):3939-43
PMID: 1105570
-
ATP synthesis driven by a protonmotive force in Streptococcus lactis.
J Membr Biol. 1975-1976;25(3-4):285-310
PMID: 3650