Elevated N a + and pH influence the production and transport of saxitoxin in the cyanobacteria A nabaena circinalis AWQC131C and C ylindrospermopsis raciborskii T 3
Saxitoxins ( STX ), neurotoxic alkaloids, fall under the umbrella of paralytic shellfish toxins produced by marine dinoflagellates and freshwater cyanobacteria. The genes responsible for the production of STX have been proposed, but factors that influence their expression and induce toxin efflux rem...
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Veröffentlicht in: | Environmental microbiology 2016-02, Vol.18 (2), p.427-438 |
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Sprache: | eng |
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Zusammenfassung: | Saxitoxins (
STX
), neurotoxic alkaloids, fall under the umbrella of paralytic shellfish toxins produced by marine dinoflagellates and freshwater cyanobacteria. The genes responsible for the production of
STX
have been proposed, but factors that influence their expression and induce toxin efflux remain unclear. Here we characterize the putative
STX NorM
‐like
MATE
transporters
SxtF
and
SxtM
. Complementation of the antibiotic‐sensitive strain
E
scherichia coli
KAM32
with these transporters decreased fluoroquinolone sensitivity, indicating that while becoming evolutionary specialized for
STX
transport these transporters retain relaxed specificity typical of this class. The transcriptional response of
STX
biosynthesis (
sxtA
) along with that of the
STX
transporters (
sxtM
and
sxtF
from
C
ylindrospermopsis raciborskii
T3, and
sxtM
from
A
nabaena circinalis
AWQC131C
) were assessed in response to ionic stress. These data, coupled with a measure of toxin intracellular to extracellular ratios, provide an insight into the physiology of
STX
export.
C
ylindrospermopsis raciborskii
and
Anabaena
circinalis
exhibited opposing responses under conditions of ionic stress. High
N
a
+
(10 mM) induced moderate alterations of transcription and
STX
localization, whereas high
pH
(
pH
9) stimulated the greatest physiological response. Saxitoxin production and cellular localization are responsive to ionic strength, indicating a role of this molecule in the maintenance of cellular homeostasis. |
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ISSN: | 1462-2912 1462-2920 |
DOI: | 10.1111/1462-2920.13048 |