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1 of the genome of the most studied ascidian, Ciona intestinalis.
2 mbe, Drosophila melanogaster, zebrafish, and Ciona intestinalis.
3 gene, CiVegTR, was isolated in the ascidian Ciona intestinalis.
4 al tube closure in the invertebrate chordate Ciona intestinalis.
5 ng dynamics using the invertebrate chordate, Ciona intestinalis.
6 mechanism for zippering in a basal chordate, Ciona intestinalis.
7 n the CNS of a simple chordate, the ascidian Ciona intestinalis.
8 anded breaks in the genome of the sea squirt Ciona intestinalis.
9 nset of gastrulation to swimming tadpoles-in Ciona intestinalis.
10 PNS development of the invertebrate chordate Ciona intestinalis.
11 e larva of a sibling chordate, the ascidian, Ciona intestinalis.
12 ence to investigate cilia in the urochordate Ciona intestinalis.
13 latory network in the invertebrate chordate, Ciona intestinalis.
14 or of ectodermal development in the ascidian Ciona intestinalis.
15 -bp notochord-specific CRM from the ascidian Ciona intestinalis.
16 expression patterns of NCLC in the ascidian Ciona intestinalis.
17 alyze cardiac cell migration in the ascidian Ciona intestinalis.
18 C. savignyi to its divergent sister species, Ciona intestinalis.
19 es was performed by using the basal chordate Ciona intestinalis.
20 ervous system of the ascidian tadpole larva, Ciona intestinalis.
21 fied in the genome sequences of the ascidian Ciona intestinalis.
22 regions in the ascidians Ciona savignyi and Ciona intestinalis.
23 or tissue-specific enhancers in the ascidian Ciona intestinalis.
24 -3beta and snail homologues in the ascidian, Ciona intestinalis, a member of the subphylum Urochordat
25 We have examined ASICs from the ascidian Ciona intestinalis, a simple chordate organism whose ner
26 eart progenitor cells of the simple chordate Ciona intestinalis also generate precursors of the atria
28 enotype was rescued by ectopic expression of Ciona intestinalis alternative oxidase (AOX)(12), which
29 yces cerevisiae NADH dehydrogenase (NDI1) or Ciona intestinalis alternative oxidase, which can comple
30 ting the ARNTL gene family in the genomes of Ciona intestinalis, amphioxus, zebrafish, and human.
31 the zebrafish (Danio rerio) and the ascidian Ciona intestinalis, an invertebrate chordate belonging t
34 D family gene was identified in the ascidian Ciona intestinalis and designated CiMDF (Ciona intestina
35 lated organisms that make cellulose, such as Ciona intestinalis and Dictyostelium discoideum, reveale
36 sms, Drosophila melanogaster, Daphnia pulex, Ciona intestinalis and Strongylocentrotus purpuratus.
37 erived pharyngeal epithelium of the ascidian Ciona intestinalis and the amphioxus Branchiostoma lance
38 macaque and Opossum, the chordate genome of Ciona intestinalis and the import and integration of the
39 t absent from the genomes of the urochordate Ciona intestinalis and the lower eukaryotes D. melanogas
40 using a simple method to introduce DNA into Ciona intestinalis and the several available tissue-spec
45 ique phylogenetic position of the sea squirt Ciona intestinalis as part of the sister group to the ve
46 nderlying basis of enhancer activity for the Ciona intestinalis betagamma-crystallin gene, which driv
48 subsequently identified in human, mouse, and Ciona intestinalis, but their existence in dinoflagellat
49 mo sapiens, Mus musculus, Takifugu rubripes, Ciona intestinalis, Caenorhabditis elegans, Drosophila m
51 Caenorhabditis elegans (Ce), the sea squirt Ciona intestinalis (Ci) and amphioxus Branchiostoma flor
53 he voltage sensor of the prototypic VSP from Ciona intestinalis, Ci-VSP, we generated chimeric protei
58 the genome of a urochordate, the sea squirt, Ciona intestinalis, did not turn up any genuine ortholog
59 sed to improve and enrich the description of Ciona intestinalis embryonic development, based on an im
63 POUIV gene families to examine the tunicate Ciona intestinalis for evidence of structures homologous
66 we estimated that the invertebrate chordate Ciona intestinalis has 15,500 protein-coding genes (+/-3
68 anglion development and that in the tunicate Ciona intestinalis, Hmx is necessary and sufficient to d
72 t specification in the invertebrate chordate Ciona intestinalis is similar to that of vertebrates but
73 nt evidence that the embryo of the ascidian, Ciona intestinalis, is an easily manipulated system for
75 e demonstrate that, in the chordate ascidian Ciona intestinalis, miR-124 plays an extensive role in p
80 estigate this process in the simple chordate Ciona intestinalis Previous studies have implicated Noda
81 s trunk ventral cells, TVCs) of the ascidian Ciona intestinalis provide a simple chordate model with
82 the CNS of the tadpole larva of the ascidian Ciona intestinalis provides us with a chordate nervous s
83 of the gene for the FlgCK from the tunicate Ciona intestinalis, providing support for the linkage of
84 ans and even a highly divergent invertebrate Ciona intestinalis qualitatively and quantitatively supp
85 rithm on simulated next-generation data from Ciona intestinalis, real next-generation data from Droso
86 motivated by our experiments in the ascidian Ciona intestinalis showing that the peripheral sensory n
90 ed several cDNAs derived from the sea squirt Ciona intestinalis that encode vitamin K-dependent prote
91 -induced short-tailed mutant in the ascidian Ciona intestinalis that is the product of a premature st
92 identified in the primitive ascidian species Ciona intestinalis that possesses the characteristic fea
93 euterostomian invertebrate - the urochordate Ciona intestinalis - that is orthologous to vertebrate c
94 ll type in the tadpole larva of the tunicate Ciona intestinalis, the bipolar tail neuron, shares a se
97 Here, we employ the invertebrate chordate Ciona intestinalis to delineate an essential in vivo rol
98 rphological simplicity of the basal chordate Ciona intestinalis to elucidate Mesp regulation and func
99 loit wild populations of the marine chordate Ciona intestinalis to show that levels of buffering are
100 tic manipulability, we chose the sea squirt, Ciona intestinalis, to explore intraspecies sequence com
101 tion and streamlined genome of the ascidian, Ciona intestinalis, to investigate heart development in
102 invasive tunicates, Ciona robusta (formerly Ciona intestinalis type A) and C. intestinalis (formerly
103 inalis type A) and C. intestinalis (formerly Ciona intestinalis type B), globally distributed and sym
105 reduced the sensitivity of Kv7.5 channels to Ciona intestinalis voltage-sensing phosphatase (Ci-VSP)-
106 results suggest that the native S4 from the Ciona intestinalis voltage-sensitive phosphatase (Ci-VSP
108 voltage-sensing membrane proteins using the Ciona intestinalis voltage-sensitive phosphatase (CiVSP)
109 ht consists of the voltage-sensing domain of Ciona intestinalis voltage-sensitive phosphatase and sup
110 2 K(+) channel and the voltage sensor of the Ciona intestinalis voltage-sensitive phosphatase, agains
112 The genome of the invertebrate chordate Ciona intestinalis was found to be a stable mosaic of me
113 on pattern of CiMDF, the MyoD-family gene of Ciona intestinalis, was analyzed in unmanipulated and mi
116 ogs transcribed in eggs of Xenopus laevis or Ciona intestinalis were found, pinpointing evolutionary
118 anogaster and in the non-vertebrate chordate Ciona intestinalis, which each have only one talin gene,
120 identified ABC proteins from the sea squirt (Ciona intestinalis), zebrafish (Danio rerio), and chicke