Deoxynucleoside salvage in fission yeast allows rescue of ribonucleotide reductase deficiency but not Spd1-mediated inhibition of replication

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Standard

Deoxynucleoside salvage in fission yeast allows rescue of ribonucleotide reductase deficiency but not Spd1-mediated inhibition of replication. / Fleck, Oliver; Fahnøe, Ulrik; Løvschal, Katrine Vyff; Gasasira, Marie-Fabrice Uwamahoro; Marinova, Irina Nikolaeva; Kragelund, Birthe Brandt; Carr, Antony M.; Hartsuiker, Edgar; Holmberg, Christian; Nielsen, Olaf.

I: Genes, Bind 8, Nr. 5, 128, 25.04.2017.

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Harvard

Fleck, O, Fahnøe, U, Løvschal, KV, Gasasira, M-FU, Marinova, IN, Kragelund, BB, Carr, AM, Hartsuiker, E, Holmberg, C & Nielsen, O 2017, 'Deoxynucleoside salvage in fission yeast allows rescue of ribonucleotide reductase deficiency but not Spd1-mediated inhibition of replication', Genes, bind 8, nr. 5, 128. https://doi.org/10.3390/genes8050128

APA

Fleck, O., Fahnøe, U., Løvschal, K. V., Gasasira, M-F. U., Marinova, I. N., Kragelund, B. B., Carr, A. M., Hartsuiker, E., Holmberg, C., & Nielsen, O. (2017). Deoxynucleoside salvage in fission yeast allows rescue of ribonucleotide reductase deficiency but not Spd1-mediated inhibition of replication. Genes, 8(5), [128]. https://doi.org/10.3390/genes8050128

Vancouver

Fleck O, Fahnøe U, Løvschal KV, Gasasira M-FU, Marinova IN, Kragelund BB o.a. Deoxynucleoside salvage in fission yeast allows rescue of ribonucleotide reductase deficiency but not Spd1-mediated inhibition of replication. Genes. 2017 apr. 25;8(5). 128. https://doi.org/10.3390/genes8050128

Author

Fleck, Oliver ; Fahnøe, Ulrik ; Løvschal, Katrine Vyff ; Gasasira, Marie-Fabrice Uwamahoro ; Marinova, Irina Nikolaeva ; Kragelund, Birthe Brandt ; Carr, Antony M. ; Hartsuiker, Edgar ; Holmberg, Christian ; Nielsen, Olaf. / Deoxynucleoside salvage in fission yeast allows rescue of ribonucleotide reductase deficiency but not Spd1-mediated inhibition of replication. I: Genes. 2017 ; Bind 8, Nr. 5.

Bibtex

@article{6f2d39dab2e04c46a84c9a6159bf2d4f,
title = "Deoxynucleoside salvage in fission yeast allows rescue of ribonucleotide reductase deficiency but not Spd1-mediated inhibition of replication",
abstract = "In fission yeast, the small, intrinsically disordered protein S-phase delaying protein 1 (Spd1) blocks DNA replication and causes checkpoint activation at least in part, by inhibiting the enzyme ribonucleotide reductase, which is responsible for the synthesis of DNA. The CRL4(Cdt2) E3 ubiquitin ligase mediates degradation of Spd1 and the related protein Spd2 at S phase of the cell cycle. We have generated a conditional allele of CRL4(Cdt2), by expressing the highly unstable substrate-recruiting protein Cdt2 from a repressible promoter. Unlike Spd1, Spd2 does not regulate deoxynucleotide triphosphate (dNTP) pools; yet we find that Spd1 and Spd2 together inhibit DNA replication upon Cdt2 depletion. To directly test whether this block of replication was solely due to insufficient dNTP levels, we established a deoxy-nucleotide salvage pathway in fission yeast by expressing the human nucleoside transporter human equilibrative nucleoside transporter 1 (hENT1) and the Drosophila deoxynucleoside kinase. We present evidence that this salvage pathway is functional, as 2 µM of deoxynucleosides in the culture medium is able to rescue the growth of two different temperature-sensitive alleles controlling ribonucleotide reductase. However, salvage completely failed to rescue S phase delay, checkpoint activation, and damage sensitivity, which was caused by CRL4(Cdt2) inactivation, suggesting that Spd1-in addition to repressing dNTP synthesis-together with Spd2, can inhibit other replication functions. We propose that this inhibition works at the point of the replication clamp proliferating cell nuclear antigen, a co-factor for DNA replication.",
keywords = "Journal Article",
author = "Oliver Fleck and Ulrik Fahn{\o}e and L{\o}vschal, {Katrine Vyff} and Gasasira, {Marie-Fabrice Uwamahoro} and Marinova, {Irina Nikolaeva} and Kragelund, {Birthe Brandt} and Carr, {Antony M.} and Edgar Hartsuiker and Christian Holmberg and Olaf Nielsen",
year = "2017",
month = apr,
day = "25",
doi = "10.3390/genes8050128",
language = "English",
volume = "8",
journal = "Genes",
issn = "2073-4425",
publisher = "M D P I AG",
number = "5",

}

RIS

TY - JOUR

T1 - Deoxynucleoside salvage in fission yeast allows rescue of ribonucleotide reductase deficiency but not Spd1-mediated inhibition of replication

AU - Fleck, Oliver

AU - Fahnøe, Ulrik

AU - Løvschal, Katrine Vyff

AU - Gasasira, Marie-Fabrice Uwamahoro

AU - Marinova, Irina Nikolaeva

AU - Kragelund, Birthe Brandt

AU - Carr, Antony M.

AU - Hartsuiker, Edgar

AU - Holmberg, Christian

AU - Nielsen, Olaf

PY - 2017/4/25

Y1 - 2017/4/25

N2 - In fission yeast, the small, intrinsically disordered protein S-phase delaying protein 1 (Spd1) blocks DNA replication and causes checkpoint activation at least in part, by inhibiting the enzyme ribonucleotide reductase, which is responsible for the synthesis of DNA. The CRL4(Cdt2) E3 ubiquitin ligase mediates degradation of Spd1 and the related protein Spd2 at S phase of the cell cycle. We have generated a conditional allele of CRL4(Cdt2), by expressing the highly unstable substrate-recruiting protein Cdt2 from a repressible promoter. Unlike Spd1, Spd2 does not regulate deoxynucleotide triphosphate (dNTP) pools; yet we find that Spd1 and Spd2 together inhibit DNA replication upon Cdt2 depletion. To directly test whether this block of replication was solely due to insufficient dNTP levels, we established a deoxy-nucleotide salvage pathway in fission yeast by expressing the human nucleoside transporter human equilibrative nucleoside transporter 1 (hENT1) and the Drosophila deoxynucleoside kinase. We present evidence that this salvage pathway is functional, as 2 µM of deoxynucleosides in the culture medium is able to rescue the growth of two different temperature-sensitive alleles controlling ribonucleotide reductase. However, salvage completely failed to rescue S phase delay, checkpoint activation, and damage sensitivity, which was caused by CRL4(Cdt2) inactivation, suggesting that Spd1-in addition to repressing dNTP synthesis-together with Spd2, can inhibit other replication functions. We propose that this inhibition works at the point of the replication clamp proliferating cell nuclear antigen, a co-factor for DNA replication.

AB - In fission yeast, the small, intrinsically disordered protein S-phase delaying protein 1 (Spd1) blocks DNA replication and causes checkpoint activation at least in part, by inhibiting the enzyme ribonucleotide reductase, which is responsible for the synthesis of DNA. The CRL4(Cdt2) E3 ubiquitin ligase mediates degradation of Spd1 and the related protein Spd2 at S phase of the cell cycle. We have generated a conditional allele of CRL4(Cdt2), by expressing the highly unstable substrate-recruiting protein Cdt2 from a repressible promoter. Unlike Spd1, Spd2 does not regulate deoxynucleotide triphosphate (dNTP) pools; yet we find that Spd1 and Spd2 together inhibit DNA replication upon Cdt2 depletion. To directly test whether this block of replication was solely due to insufficient dNTP levels, we established a deoxy-nucleotide salvage pathway in fission yeast by expressing the human nucleoside transporter human equilibrative nucleoside transporter 1 (hENT1) and the Drosophila deoxynucleoside kinase. We present evidence that this salvage pathway is functional, as 2 µM of deoxynucleosides in the culture medium is able to rescue the growth of two different temperature-sensitive alleles controlling ribonucleotide reductase. However, salvage completely failed to rescue S phase delay, checkpoint activation, and damage sensitivity, which was caused by CRL4(Cdt2) inactivation, suggesting that Spd1-in addition to repressing dNTP synthesis-together with Spd2, can inhibit other replication functions. We propose that this inhibition works at the point of the replication clamp proliferating cell nuclear antigen, a co-factor for DNA replication.

KW - Journal Article

U2 - 10.3390/genes8050128

DO - 10.3390/genes8050128

M3 - Journal article

C2 - 28441348

VL - 8

JO - Genes

JF - Genes

SN - 2073-4425

IS - 5

M1 - 128

ER -

ID: 178794720