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Items: 18

1.

Array of MADS-Box Genes: Facilitator for Rapid Adaptation?

Theißen G, Rümpler F, Gramzow L.

Trends Plant Sci. 2018 May 22. pii: S1360-1385(18)30094-3. doi: 10.1016/j.tplants.2018.04.008. [Epub ahead of print] Review.

PMID:
29802068
2.

Non-canonical structure, function and phylogeny of the Bsister MADS-box gene OsMADS30 of rice (Oryza sativa).

Schilling S, Gramzow L, Lobbes D, Kirbis A, Weilandt L, Hoffmeier A, Junker A, Weigelt-Fischer K, Klukas C, Wu F, Meng Z, Altmann T, Theißen G.

Plant J. 2015 Dec;84(6):1059-72. doi: 10.1111/tpj.13055. Epub 2015 Dec 7.

3.

Did Convergent Protein Evolution Enable Phytoplasmas to Generate 'Zombie Plants'?

Rümpler F, Gramzow L, Theißen G, Melzer R.

Trends Plant Sci. 2015 Dec;20(12):798-806. doi: 10.1016/j.tplants.2015.08.004. Epub 2015 Oct 10. Review.

PMID:
26463218
4.

Phylogenomics reveals surprising sets of essential and dispensable clades of MIKC(c)-group MADS-box genes in flowering plants.

Gramzow L, Theißen G.

J Exp Zool B Mol Dev Evol. 2015 Jun;324(4):353-62. doi: 10.1002/jez.b.22598. Epub 2015 Feb 11.

PMID:
25678468
5.

Horizontal gene transfer and functional diversification of plant cell wall degrading polygalacturonases: Key events in the evolution of herbivory in beetles.

Kirsch R, Gramzow L, Theißen G, Siegfried BD, Ffrench-Constant RH, Heckel DG, Pauchet Y.

Insect Biochem Mol Biol. 2014 Sep;52:33-50. doi: 10.1016/j.ibmb.2014.06.008. Epub 2014 Jun 28.

PMID:
24978610
6.

MADS goes genomic in conifers: towards determining the ancestral set of MADS-box genes in seed plants.

Gramzow L, Weilandt L, Theißen G.

Ann Bot. 2014 Nov;114(7):1407-29. doi: 10.1093/aob/mcu066. Epub 2014 May 22.

7.

The molecular evolution of cytochrome P450 genes within and between drosophila species.

Good RT, Gramzow L, Battlay P, Sztal T, Batterham P, Robin C.

Genome Biol Evol. 2014 Apr 20;6(5):1118-34. doi: 10.1093/gbe/evu083.

8.

The Norway spruce genome sequence and conifer genome evolution.

Nystedt B, Street NR, Wetterbom A, Zuccolo A, Lin YC, Scofield DG, Vezzi F, Delhomme N, Giacomello S, Alexeyenko A, Vicedomini R, Sahlin K, Sherwood E, Elfstrand M, Gramzow L, Holmberg K, Hällman J, Keech O, Klasson L, Koriabine M, Kucukoglu M, Käller M, Luthman J, Lysholm F, Niittylä T, Olson A, Rilakovic N, Ritland C, Rosselló JA, Sena J, Svensson T, Talavera-López C, Theißen G, Tuominen H, Vanneste K, Wu ZQ, Zhang B, Zerbe P, Arvestad L, Bhalerao R, Bohlmann J, Bousquet J, Garcia Gil R, Hvidsten TR, de Jong P, MacKay J, Morgante M, Ritland K, Sundberg B, Thompson SL, Van de Peer Y, Andersson B, Nilsson O, Ingvarsson PK, Lundeberg J, Jansson S.

Nature. 2013 May 30;497(7451):579-84. doi: 10.1038/nature12211. Epub 2013 May 22.

PMID:
23698360
9.

Phylogenomics of MADS-Box Genes in Plants - Two Opposing Life Styles in One Gene Family.

Gramzow L, Theißen G.

Biology (Basel). 2013 Sep 12;2(3):1150-64. doi: 10.3390/biology2031150.

10.

Live and let die - the B(sister) MADS-box gene OsMADS29 controls the degeneration of cells in maternal tissues during seed development of rice (Oryza sativa).

Yang X, Wu F, Lin X, Du X, Chong K, Gramzow L, Schilling S, Becker A, Theißen G, Meng Z.

PLoS One. 2012;7(12):e51435. doi: 10.1371/journal.pone.0051435. Epub 2012 Dec 12.

11.

Selaginella Genome Analysis - Entering the "Homoplasy Heaven" of the MADS World.

Gramzow L, Barker E, Schulz C, Ambrose B, Ashton N, Theißen G, Litt A.

Front Plant Sci. 2012 Sep 14;3:214. doi: 10.3389/fpls.2012.00214. eCollection 2012.

12.

SR1--a small RNA with two remarkably conserved functions.

Gimpel M, Preis H, Barth E, Gramzow L, Brantl S.

Nucleic Acids Res. 2012 Dec;40(22):11659-72. doi: 10.1093/nar/gks895. Epub 2012 Oct 2.

13.

The Selaginella genome identifies genetic changes associated with the evolution of vascular plants.

Banks JA, Nishiyama T, Hasebe M, Bowman JL, Gribskov M, dePamphilis C, Albert VA, Aono N, Aoyama T, Ambrose BA, Ashton NW, Axtell MJ, Barker E, Barker MS, Bennetzen JL, Bonawitz ND, Chapple C, Cheng C, Correa LG, Dacre M, DeBarry J, Dreyer I, Elias M, Engstrom EM, Estelle M, Feng L, Finet C, Floyd SK, Frommer WB, Fujita T, Gramzow L, Gutensohn M, Harholt J, Hattori M, Heyl A, Hirai T, Hiwatashi Y, Ishikawa M, Iwata M, Karol KG, Koehler B, Kolukisaoglu U, Kubo M, Kurata T, Lalonde S, Li K, Li Y, Litt A, Lyons E, Manning G, Maruyama T, Michael TP, Mikami K, Miyazaki S, Morinaga S, Murata T, Mueller-Roeber B, Nelson DR, Obara M, Oguri Y, Olmstead RG, Onodera N, Petersen BL, Pils B, Prigge M, Rensing SA, Riaño-Pachón DM, Roberts AW, Sato Y, Scheller HV, Schulz B, Schulz C, Shakirov EV, Shibagaki N, Shinohara N, Shippen DE, Sørensen I, Sotooka R, Sugimoto N, Sugita M, Sumikawa N, Tanurdzic M, Theissen G, Ulvskov P, Wakazuki S, Weng JK, Willats WW, Wipf D, Wolf PG, Yang L, Zimmer AD, Zhu Q, Mitros T, Hellsten U, Loqué D, Otillar R, Salamov A, Schmutz J, Shapiro H, Lindquist E, Lucas S, Rokhsar D, Grigoriev IV.

Science. 2011 May 20;332(6032):960-3. doi: 10.1126/science.1203810. Epub 2011 May 5.

14.

SplamiR--prediction of spliced miRNAs in plants.

Thieme CJ, Gramzow L, Lobbes D, Theissen G.

Bioinformatics. 2011 May 1;27(9):1215-23. doi: 10.1093/bioinformatics/btr132. Epub 2011 Mar 17.

PMID:
21421552
15.

GORDITA (AGL63) is a young paralog of the Arabidopsis thaliana B(sister) MADS box gene ABS (TT16) that has undergone neofunctionalization.

Erdmann R, Gramzow L, Melzer R, Theissen G, Becker A.

Plant J. 2010 Sep;63(6):914-24. doi: 10.1111/j.1365-313X.2010.04290.x.

16.

A hitchhiker's guide to the MADS world of plants.

Gramzow L, Theissen G.

Genome Biol. 2010;11(6):214. doi: 10.1186/gb-2010-11-6-214. Epub 2010 Jun 28. Review.

17.

On the origin of MADS-domain transcription factors.

Gramzow L, Ritz MS, Theissen G.

Trends Genet. 2010 Apr;26(4):149-53. doi: 10.1016/j.tig.2010.01.004. Epub 2010 Mar 10.

PMID:
20219261
18.

Two independent duplications forming the Cyp307a genes in Drosophila.

Sztal T, Chung H, Gramzow L, Daborn PJ, Batterham P, Robin C.

Insect Biochem Mol Biol. 2007 Oct;37(10):1044-53. Epub 2007 Jun 7.

PMID:
17785192

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