Two Lactococcus lactis thioredoxin paralogues play different roles in responses to arsenate and oxidative stress

Research output: Contribution to journalJournal articleResearchpeer-review

Standard

Two Lactococcus lactis thioredoxin paralogues play different roles in responses to arsenate and oxidative stress. / Efler, Petr; Kilstrup, Mogens; Johnsen, Stig; Svensson, Birte; Hägglund, Per.

In: Microbiology (United Kingdom), Vol. 161, No. 3, 2015, p. 528-538.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Efler, P, Kilstrup, M, Johnsen, S, Svensson, B & Hägglund, P 2015, 'Two Lactococcus lactis thioredoxin paralogues play different roles in responses to arsenate and oxidative stress', Microbiology (United Kingdom), vol. 161, no. 3, pp. 528-538. https://doi.org/10.1099/mic.0.000029

APA

Efler, P., Kilstrup, M., Johnsen, S., Svensson, B., & Hägglund, P. (2015). Two Lactococcus lactis thioredoxin paralogues play different roles in responses to arsenate and oxidative stress. Microbiology (United Kingdom), 161(3), 528-538. https://doi.org/10.1099/mic.0.000029

Vancouver

Efler P, Kilstrup M, Johnsen S, Svensson B, Hägglund P. Two Lactococcus lactis thioredoxin paralogues play different roles in responses to arsenate and oxidative stress. Microbiology (United Kingdom). 2015;161(3):528-538. https://doi.org/10.1099/mic.0.000029

Author

Efler, Petr ; Kilstrup, Mogens ; Johnsen, Stig ; Svensson, Birte ; Hägglund, Per. / Two Lactococcus lactis thioredoxin paralogues play different roles in responses to arsenate and oxidative stress. In: Microbiology (United Kingdom). 2015 ; Vol. 161, No. 3. pp. 528-538.

Bibtex

@article{70fb59d6c1f74b39b121ea8c338013c7,
title = "Two Lactococcus lactis thioredoxin paralogues play different roles in responses to arsenate and oxidative stress",
abstract = "Thioredoxin (Trx) maintains intracellular thiol groups in a reduced state and is involved in a wide range of cellular processes, including ribonucleotide reduction, sulphur assimilation, oxidative stress responses and arsenate detoxification. The industrially important lactic acid bacterium Lactococcus lactis contains two Trxs. TrxA is similar to the well-characterized Trx homologue from Escherichia coli and contains the common WCGPC active site motif, while TrxD is atypical and contains an aspartate residue in the active site (WCGDC). To elucidate the physiological roles of the two Trx paralogues, deletion mutants ΔtrxA, ΔtrxD and ΔtrxAΔtrxD were constructed. In general, the ΔtrxAΔtrxD strain was significantly more sensitive than either of the ΔtrxA and ΔtrxD mutants. Upon exposure to oxidative stress, growth of the ΔtrxA strain was diminished while that of the ΔtrxD mutant was similar to the wild-type. The lack of TrxA also appears to impair methionine sulphoxide reduction. Both ΔtrxA and ΔtrxD strains displayed growth inhibition after treatment with sodium arsenate and tellurite as compared with the wild-type, suggesting partially overlapping functions of TrxA and TrxD. Overall the phenotype of the ΔtrxA mutant matches established functions of WCGPC-type Trx while TrxD appears to play a more restricted role in stress resistance of Lac. lactis.",
author = "Petr Efler and Mogens Kilstrup and Stig Johnsen and Birte Svensson and Per H{\"a}gglund",
year = "2015",
doi = "10.1099/mic.0.000029",
language = "English",
volume = "161",
pages = "528--538",
journal = "Microbiology",
issn = "1350-0872",
publisher = "Society for General Microbiology",
number = "3",

}

RIS

TY - JOUR

T1 - Two Lactococcus lactis thioredoxin paralogues play different roles in responses to arsenate and oxidative stress

AU - Efler, Petr

AU - Kilstrup, Mogens

AU - Johnsen, Stig

AU - Svensson, Birte

AU - Hägglund, Per

PY - 2015

Y1 - 2015

N2 - Thioredoxin (Trx) maintains intracellular thiol groups in a reduced state and is involved in a wide range of cellular processes, including ribonucleotide reduction, sulphur assimilation, oxidative stress responses and arsenate detoxification. The industrially important lactic acid bacterium Lactococcus lactis contains two Trxs. TrxA is similar to the well-characterized Trx homologue from Escherichia coli and contains the common WCGPC active site motif, while TrxD is atypical and contains an aspartate residue in the active site (WCGDC). To elucidate the physiological roles of the two Trx paralogues, deletion mutants ΔtrxA, ΔtrxD and ΔtrxAΔtrxD were constructed. In general, the ΔtrxAΔtrxD strain was significantly more sensitive than either of the ΔtrxA and ΔtrxD mutants. Upon exposure to oxidative stress, growth of the ΔtrxA strain was diminished while that of the ΔtrxD mutant was similar to the wild-type. The lack of TrxA also appears to impair methionine sulphoxide reduction. Both ΔtrxA and ΔtrxD strains displayed growth inhibition after treatment with sodium arsenate and tellurite as compared with the wild-type, suggesting partially overlapping functions of TrxA and TrxD. Overall the phenotype of the ΔtrxA mutant matches established functions of WCGPC-type Trx while TrxD appears to play a more restricted role in stress resistance of Lac. lactis.

AB - Thioredoxin (Trx) maintains intracellular thiol groups in a reduced state and is involved in a wide range of cellular processes, including ribonucleotide reduction, sulphur assimilation, oxidative stress responses and arsenate detoxification. The industrially important lactic acid bacterium Lactococcus lactis contains two Trxs. TrxA is similar to the well-characterized Trx homologue from Escherichia coli and contains the common WCGPC active site motif, while TrxD is atypical and contains an aspartate residue in the active site (WCGDC). To elucidate the physiological roles of the two Trx paralogues, deletion mutants ΔtrxA, ΔtrxD and ΔtrxAΔtrxD were constructed. In general, the ΔtrxAΔtrxD strain was significantly more sensitive than either of the ΔtrxA and ΔtrxD mutants. Upon exposure to oxidative stress, growth of the ΔtrxA strain was diminished while that of the ΔtrxD mutant was similar to the wild-type. The lack of TrxA also appears to impair methionine sulphoxide reduction. Both ΔtrxA and ΔtrxD strains displayed growth inhibition after treatment with sodium arsenate and tellurite as compared with the wild-type, suggesting partially overlapping functions of TrxA and TrxD. Overall the phenotype of the ΔtrxA mutant matches established functions of WCGPC-type Trx while TrxD appears to play a more restricted role in stress resistance of Lac. lactis.

U2 - 10.1099/mic.0.000029

DO - 10.1099/mic.0.000029

M3 - Journal article

C2 - 25564497

AN - SCOPUS:84923559704

VL - 161

SP - 528

EP - 538

JO - Microbiology

JF - Microbiology

SN - 1350-0872

IS - 3

ER -

ID: 240157909