Anja Groth

Anja Groth

Professor


  1. Published

    Genetic and functional insights into CDA-I prevalence and pathogenesis

    Olijnik, A-A., Roy, N. B. A., Scott, C., Marsh, J. A., Brown, J., Lauschke, K., Ask, K., Roberts, N., Downes, D. J., Brolih, S., Johnson, E., Xella, B., Proven, M., Hipkiss, R., Ryan, K., Frisk, P., Mäkk, J., Stattin, E-L. M., Sadasivam, N., McIlwaine, L. & 9 others, Hill, Q. A., Renella, R., Hughes, J. R., Gibbons, R. J., Groth, Anja, McHugh, P. J., Higgs, D. R., Buckle, V. J. & Babbs, C., 2021, In: Journal of Medical Genetics. 58, p. 185-195 11 p.

    Research output: Contribution to journalJournal articleResearchpeer-review

  2. Published

    Erratum: Codanin-1, mutated in the anaemic disease CDAI, regulates Asf1 function in S-phase histone supply (The EMBO Journal (2012) 31 (2013-2023) DOI: 10.1038/emboj.2012.55)

    Ask, K., Jasencakova, Zuzana, Ménard, Patrice, Feng, Y., Almouzni, G. & Groth, Anja, 18 Jul 2012, In: EMBO Journal. 31, 14, 1 p.

    Research output: Contribution to journalComment/debateCommunication

  3. Published
  4. Published

    Dynamic de novo heterochromatin assembly and disassembly at replication forks ensures fork stability

    Gaggioli, V., Lo, C. S. Y., Reverón-Gómez, N., Jasencakova, Z., Domenech, H., Nguyen, H., Sidoli, S., Tvardovskiy, A., Uruci, S., Slotman, J. A., Chai, Y., Gonçalves, J. G. S. C. S., Manolika, E. M., Jensen, O. N., Wheeler, D., Sridharan, S., Chakrabarty, S., Demmers, J., Kanaar, R., Groth, A. & 1 others, Taneja, N., 2023, In: Nature Cell Biology. 25, 7, p. 1017-1032 38 p.

    Research output: Contribution to journalJournal articleResearchpeer-review

  5. Published

    Domain Model Explains Propagation Dynamics and Stability of Histone H3K27 and H3K36 Methylation Landscapes

    Alabert, C., Loos, C., Voelker-Albert, M., Graziano, S., Forné, I., Reveron-Gomez, Nazaret, Schuh, L., Hasenauer, J., Marr, C., Imhof, A. & Groth, Anja, 2020, In: Cell Reports. 30, 4, p. 1223-1234.e8 21 p.

    Research output: Contribution to journalJournal articleResearchpeer-review

  6. Published

    Differential requirements for Tousled-like kinases 1 and 2 in mammalian development

    Segura-Bayona, S., Knobel, P. A., Gonzalez-Buron, H., Youssef, S. A., Peña-Blanco, A., Coyaud, E., Lopez-Rovira, T., Rein, K., Palenzuela, L., Colombelli, J., Forrow, S., Raught, B., Groth, Anja, De Bruin, A. & Stracker, T. H., 1 Nov 2017, In: Cell Death and Differentiation. 24, 11, p. 1872-1885 14 p.

    Research output: Contribution to journalJournal articleResearchpeer-review

  7. E-pub ahead of print

    DNAJC9 prevents CENP-A mislocalization and chromosomal instability by maintaining the fidelity of histone supply chains

    Balachandra, V., Shrestha, R. L., Hammond, Colin, Lin, S., Hendriks, Ivo Alexander, Sethi, S. C., Chen, L., Sevilla, S., Caplen, N. J., Chari, R., Karpova, T. S., McKinnon, K., Todd, Matthew, Koparde, V., Cheng, K. C., Nielsen, Michael Lund, Groth, Anja & Basrai, M. A., 2024, (E-pub ahead of print) In: The EMBO Journal.

    Research output: Contribution to journalJournal articleResearchpeer-review

  8. Published

    DNAJC9 integrates heat shock molecular chaperones into the histone chaperone network

    Hammond, Colin, Bao, H., Hendriks, Ivo Alexander, Carraro, Massimo, García-Nieto, A., Liu, Y., Reveron-Gomez, Nazaret, Spanos, C., Chen, L., Rappsilber, J., Nielsen, Michael Lund, Patel, D. J., Huang, H. & Groth, Anja, 2021, In: Molecular Cell. 81, 12, p. 2533-2548

    Research output: Contribution to journalJournal articleResearchpeer-review

  9. Published

    DAXX adds a de novo H3.3K9me3 deposition pathway to the histone chaperone network

    Carraro, Massimo, Hendriks, Ivo Alexander, Hammond, Colin, Solis-Mezarino, V., Völker-Albert, M., Elsborg, Jonas Damgaard, Weisser, Melanie, Spanos, C., Montoya, Guillermo, Rappsilber, J., Imhof, A., Nielsen, Michael Lund & Groth, Anja, 2023, In: Molecular Cell. 83, 7, p. 1075-1092.e9 28 p.

    Research output: Contribution to journalJournal articleResearchpeer-review

  10. Published

    Cyclin-dependent kinase suppression by WEE1 kinase protects the genome through control of replication initiation and nucleotide consumption

    Beck, H., Nähse-Kumpf, V., Larsen, Marie Sofie Yoo, O'Hanlon, K. A., Patzke, S., Holmberg, Christian, Mejlvang, J., Groth, Anja, Nielsen, Olaf, Syljuåsen, R. G. & Sørensen, Claus Storgaard, 2012, In: Molecular and Cellular Biology. 32, 20, p. 4226-4236 11 p.

    Research output: Contribution to journalJournal articleResearchpeer-review

ID: 4001980