Ana Martin-Villalba - Publications

Affiliations: 
Molecular Neurobiology German Cancer Research Center (DKFZ), Germany 

12 high-probability publications. We are testing a new system for linking publications to authors. You can help! If you notice any inaccuracies, please sign in and mark papers as correct or incorrect matches. If you identify any major omissions or other inaccuracies in the publication list, please let us know.

Year Citation  Score
2023 Carvajal Ibañez D, Skabkin M, Hooli J, Cerrizuela S, Göpferich M, Jolly A, Volk K, Zumwinkel M, Bertolini M, Figlia G, Höfer T, Kramer G, Anders S, Teleman AA, Marciniak-Czochra A, ... Martin-Villalba A, et al. Interferon regulates neural stem cell function at all ages by orchestrating mTOR and cell cycle. Embo Molecular Medicine. e16434. PMID 36636818 DOI: 10.15252/emmm.202216434  0.421
2021 Kremer LPM, Cerrizuela S, Dehler S, Stiehl T, Weinmann J, Abendroth H, Kleber S, Laure A, El Andari J, Anders S, Marciniak-Czochra A, Grimm D, Martin-Villalba A. High throughput screening of novel AAV capsids identifies variants for transduction of adult NSCs within the subventricular zone. Molecular Therapy. Methods & Clinical Development. 23: 33-50. PMID 34553001 DOI: 10.1016/j.omtm.2021.07.001  0.309
2019 Bakula D, Ablasser A, Aguzzi A, Antebi A, Barzilai N, Bittner MI, Jensen MB, Calkhoven CF, Chen D, Grey ADNJ, Feige JN, Georgievskaya A, Gladyshev VN, Golato T, Gudkov AV, ... ... Martin-Villalba A, et al. Latest advances in aging research and drug discovery. Aging. 11. PMID 31770722 DOI: 10.18632/Aging.102487  0.419
2019 Kalamakis G, Brüne D, Ravichandran S, Bolz J, Fan W, Ziebell F, Stiehl T, Catalá-Martinez F, Kupke J, Zhao S, Llorens-Bobadilla E, Bauer K, Limpert S, Berger B, Christen U, ... ... Martin-Villalba A, et al. Quiescence Modulates Stem Cell Maintenance and Regenerative Capacity in the Aging Brain. Cell. PMID 30827680 DOI: 10.1016/J.Cell.2019.01.040  0.53
2018 Dehler S, Lou WP, Gao L, Skabkin M, Dällenbach S, Neumann A, Martin-Villalba A. An Immune-CNS Axis Activates Remote Hippocampal Stem Cells Following Spinal Transection Injury. Frontiers in Molecular Neuroscience. 11: 443. PMID 30618602 DOI: 10.3389/fnmol.2018.00443  0.315
2018 Ziebell F, Dehler S, Martin-Villalba A, Marciniak-Czochra A. Revealing age-related changes of adult hippocampal neurogenesis using mathematical models Development. 145. PMID 29229768 DOI: 10.1242/Dev.153544  0.631
2016 Bifari F, Decimo I, Pino A, Llorens-Bobadilla E, Zhao S, Lange C, Panuccio G, Boeckx B, Thienpont B, Vinckier S, Wyns S, Bouché A, Lambrechts D, Giugliano M, Dewerchin M, ... Martin-Villalba A, et al. Neurogenic Radial Glia-like Cells in Meninges Migrate and Differentiate into Functionally Integrated Neurons in the Neonatal Cortex. Cell Stem Cell. PMID 27889318 DOI: 10.1016/j.stem.2016.10.020  0.333
2015 Llorens-Bobadilla E, Zhao S, Baser A, Saiz-Castro G, Zwadlo K, Martin-Villalba A. Single-Cell Transcriptomics Reveals a Population of Dormant Neural Stem Cells that Become Activated upon Brain Injury. Cell Stem Cell. PMID 26235341 DOI: 10.1016/j.stem.2015.07.002  0.343
2015 Seib DR, Martin-Villalba A. Neurogenesis in the Normal Ageing Hippocampus: A Mini-Review. Gerontology. 61: 327-35. PMID 25471300 DOI: 10.1159/000368575  0.492
2013 Seib DR, Corsini NS, Ellwanger K, Plaas C, Mateos A, Pitzer C, Niehrs C, Celikel T, Martin-Villalba A. Loss of Dickkopf-1 restores neurogenesis in old age and counteracts cognitive decline. Cell Stem Cell. 12: 204-14. PMID 23395445 DOI: 10.1016/J.Stem.2012.11.010  0.493
2009 Corsini NS, Sancho-Martinez I, Laudenklos S, Glagow D, Kumar S, Letellier E, Koch P, Teodorczyk M, Kleber S, Klussmann S, Wiestler B, Brüstle O, Mueller W, Gieffers C, Hill O, ... ... Martin-Villalba A, et al. The death receptor CD95 activates adult neural stem cells for working memory formation and brain repair. Cell Stem Cell. 5: 178-90. PMID 19664992 DOI: 10.1016/J.Stem.2009.05.004  0.407
2005 Jennemann R, Sandhoff R, Wang S, Kiss E, Gretz N, Zuliani C, Martin-Villalba A, Jäger R, Schorle H, Kenzelmann M, Bonrouhi M, Wiegandt H, Gröne HJ. Cell-specific deletion of glucosylceramide synthase in brain leads to severe neural defects after birth. Proceedings of the National Academy of Sciences of the United States of America. 102: 12459-64. PMID 16109770 DOI: 10.1073/pnas.0500893102  0.305
Show low-probability matches.