@ARTICLE{TreeBASE2Ref17826,
author = {Mikael Thollesson and Jon L. Norenburg},
title = {Ribbon worm relationships: a phylogeny of the phylum Nemertea},
year = {2003},
keywords = {},
doi = {10.1098/rspb.2002.2254},
url = {},
pmid = {},
journal = {Proceedings of the Royal Society B},
volume = {270},
number = {},
pages = {407--415},
abstract = {We present the most extensive phylogenetic analysis to date of higher-level nemertean relationships, based on sequence data from four different genes (the nuclear genes for 28S rRNA and histone H3, and the mitochondrial genes for 16S rRNA and cytochrome c oxidase subunit I, COI). Well-supported clades are in general compatible with earlier, more limited, analyses, and current classification is largely in agreement with our results, although there are some notable exceptions. Bdellonemertea (represented by Malacobdella) is found to be a part of Monostilifera, and Polystilifera is the monophyletic sister group to Monostilifera. Cratenemertidae is the sister group to the remaining monostiliferan (including Malacobdella), a group for which we apply the new name Distromatonemertea. Heteronemertea is monophyletic and forms a clade with Hubrechtella; for this clade we introduce the name Pilidiophora. Finally, Pilidiophora and Hoplonemertea (with Malacobdella) form a monophyletic group and we introduce the name Neonemertea to refer to this group. Palaeonemertea is found to be non-monophyletic and basal among nemerteans.}
}
Matrices for Study 955

Citation title:
"Ribbon worm relationships: a phylogeny of the phylum Nemertea".

This study was previously identified under the legacy study ID S837
(Status: Published).
Matrices
ID |
Matrix Title |
Description |
Data type |
NTAX |
NCHAR |
Taxa |
|
|
|
|
M57891
|
Fig. S9C Pseudofusicoccum TUB2 alignment |
|
Nucleic Acid |
23 |
427 |
View Taxa
|
|
|
|
|
M57820
|
Fig. 9 Pseudofusicoccum TEF1 TUB2 ITS alignment |
|
Nucleic Acid |
30 |
1256 |
View Taxa
|
|
|
|
|
M57890
|
Fig. S9B Pseudofusicoccum TEF1 alignment |
|
Nucleic Acid |
30 |
295 |
View Taxa
|
|
|
|
|
M57889
|
Fig. S9A Pseudofusicoccum ITS alignment |
|
Nucleic Acid |
30 |
493 |
View Taxa
|
|
|
|
|
M57893
|
Fig. S10B Saccharata RPB2 alignment |
|
Nucleic Acid |
32 |
627 |
View Taxa
|
|
|
|
|
M57896
|
Fig. S10C Saccharata TEF1 alignment |
|
Nucleic Acid |
39 |
302 |
View Taxa
|
|
|
|
|
M57821
|
Fig. 10 Saccharata ITS TEF1 RPB2 alignment |
|
Nucleic Acid |
41 |
1529 |
View Taxa
|
|
|
|
|
M57892
|
Fig. S10A Saccharata ITS alignment |
|
Nucleic Acid |
41 |
550 |
View Taxa
|
|
|
|
|
M57887
|
Fig. S8B Phaeobotryon LSU alignment |
|
Nucleic Acid |
44 |
556 |
View Taxa
|
|
|
|
|
M57824
|
Fig. S1C Botryosphaeria TUB2 alignment |
|
Nucleic Acid |
44 |
387 |
View Taxa
|
|
|
|
|
M57888
|
Fig. S8C Phaeobotryon TEF1 alignment |
|
Nucleic Acid |
45 |
339 |
View Taxa
|
|
|
|
|
M57823
|
Fig. S1B Botryosphaeria TEF1 alignment |
|
Nucleic Acid |
50 |
263 |
View Taxa
|
|
|
|
|
M57822
|
Fig. S1A Botryosphaeria ITS alignment |
|
Nucleic Acid |
51 |
461 |
View Taxa
|
|
|
|
|
M57812
|
Fig. 1. Botryosphaeria ITS TEF1 TUB2 alignment |
|
Nucleic Acid |
51 |
1206 |
View Taxa
|
|
|
|
|
M57819
|
Fig. 8 Phaeobotryon ITS LSU TEF1 alignment |
|
Nucleic Acid |
54 |
1726 |
View Taxa
|
|
|
|
|
M57886
|
Fig. S8A Phaeobotryon ITS alignment |
|
Nucleic Acid |
54 |
500 |
View Taxa
|
|
|
|
|
M57879
|
Fig. S6B Neofusicoccum parvum complex RPB2 alignment |
|
Nucleic Acid |
61 |
535 |
View Taxa
|
|
|
|
|
M57885
|
Fig. S7C Neoscytalidium TUB2 alignment |
|
Nucleic Acid |
65 |
358 |
View Taxa
|
|
|
|
|
M57884
|
Fig. S7B Neoscytalidium TEF1 alignment |
|
Nucleic Acid |
65 |
187 |
View Taxa
|
|
|
|
|
M57883
|
Fig. S7A Neoscytalidium ITS alignment |
|
Nucleic Acid |
66 |
499 |
View Taxa
|
|
|
|
|
M57818
|
Fig. 7 Neoscytalidium ITS TEF1 TUB2 alignment |
|
Nucleic Acid |
66 |
1133 |
View Taxa
|
|
|
|
|
M57880
|
Fig. S6C Neofusicoccum parvum complex TEF1 alignment |
|
Nucleic Acid |
71 |
281 |
View Taxa
|
|
|
|
|
M57881
|
Fig. S6D Neofusicoccum parvum complex TUB2 alignment |
|
Nucleic Acid |
72 |
394 |
View Taxa
|
|
|
|
|
M57877
|
Fig. S6A Neofusicoccum parvum complex ITS alignment |
|
Nucleic Acid |
75 |
481 |
View Taxa
|
|
|
|
|
M57817
|
Fig. 6 Neofusicoccum parvum ITS TEF1 TUB2 RPB2 alignment |
|
Nucleic Acid |
75 |
1805 |
View Taxa
|
|
|
|
|
M57865
|
Fig. S3C Dothiorella TUB2 alignment |
|
Nucleic Acid |
109 |
415 |
View Taxa
|
|
|
|
|
M57868
|
Fig. S4B Lasiodiplodia RPB2 alignment |
|
Nucleic Acid |
112 |
520 |
View Taxa
|
|
|
|
|
M57864
|
Fig. S3B Dothiorella TEF1 alignment |
|
Nucleic Acid |
121 |
269 |
View Taxa
|
|
|
|
|
M57863
|
Fig. S3A Dothiorella ITS alignment |
|
Nucleic Acid |
123 |
479 |
View Taxa
|
|
|
|
|
M57814
|
Fig. 3 Dothiorella ITS TEF1 TUB2 alignment |
|
Nucleic Acid |
123 |
1272 |
View Taxa
|
|
|
|
|
M57871
|
Fig. S4D Lasiodiplodia TUB2 alignment |
|
Nucleic Acid |
130 |
402 |
View Taxa
|
|
|
|
|
M57869
|
Fig. S4C Lasiodiplodia TEF1 alignment |
|
Nucleic Acid |
146 |
258 |
View Taxa
|
|
|
|
|
M57866
|
Fig. S4A Lasiodiplodia ITS alignment |
|
Nucleic Acid |
147 |
368 |
View Taxa
|
|
|
|
|
M57815
|
Fig. 4 Lasiodiplodia ITS TEF1 TUB2 RPB2 alignment |
|
Nucleic Acid |
148 |
1612 |
View Taxa
|
|
|
|
|
M57862
|
Fig. S2C Diplodia TUB2 alignment |
|
Nucleic Acid |
167 |
389 |
View Taxa
|
|
|
|
|
M57826
|
Fig. S2B Diplodia TEF1 alignment |
|
Nucleic Acid |
174 |
276 |
View Taxa
|
|
|
|
|
M57874
|
Fig. S5B Neofusicoccum RPB2 alignment |
|
Nucleic Acid |
176 |
539 |
View Taxa
|
|
|
|
|
M57825
|
Fig. S2A Diplodia ITS alignment |
|
Nucleic Acid |
179 |
522 |
View Taxa
|
|
|
|
|
M57813
|
Fig. 2. Diplodia ITS TEF1 TUB2 alignment |
|
Nucleic Acid |
180 |
1291 |
View Taxa
|
|
|
|
|
M57875
|
Fig. S5C Neofusicoccum TEF1 alignment |
|
Nucleic Acid |
200 |
275 |
View Taxa
|
|
|
|
|
M57876
|
Fig. S5D Neofusicoccum TUB2 alignment |
|
Nucleic Acid |
203 |
381 |
View Taxa
|
|
|
|
|
M57816
|
Fig. 5 Neofusicoccum ITS TEF1 TUB2 RPB2 alignment |
|
Nucleic Acid |
208 |
1840 |
View Taxa
|
|
|
|
|
M57872
|
Fig. S5A Neofusicoccum ITS alignment |
|
Nucleic Acid |
208 |
510 |
View Taxa
|
|
|
|
|