戻る
「早戻しボタン」を押すと検索画面に戻ります。 [閉じる]

コーパス検索結果 (1語後でソート)

通し番号をクリックするとPubMedの該当ページを表示します
1 aseolus vulgaris), contained differentiating tracheary elements.
2 interrupted the differentiation of the xylem tracheary elements.
3 expression of XND1 blocks differentiation of tracheary elements.
4 M NAC DOMAIN1 (XND1) is upregulated in xylem tracheary elements.
5                  The secondary cell walls of tracheary elements and fibers are rich in cellulose micr
6 re synthesized in specialized cells, such as tracheary elements and fibers, and their remarkable stre
7 cells can contribute to the lignification of tracheary elements and fibers.
8  characteristics with the secondary walls of tracheary elements and fibers.
9  wall modifications lead to the formation of tracheary elements and sieve tubes.
10 e key structural event in forming functional tracheary elements and we have identified over 50 partia
11  determine whether XCP1 could be involved in tracheary element autolysis, promoter activity and local
12                Secondary walls in fibers and tracheary elements constitute the most abundant biomass
13 ession of PrCCoAOMT expression in P. radiata tracheary element cultures affected lignin content and c
14 tand eudicot evolution, the genetic basis of tracheary element development, and the genetic diversity
15 ablish a tight linkage between the timing of tracheary element differentiation and rising SPS activit
16                                        Here, TRACHEARY ELEMENT DIFFERENTIATION FACTOR (TDIF) peptide
17 s as in other grasses, CLAVATA3-like but not TRACHEARY ELEMENT DIFFERENTIATION FACTOR (TDIF)-like pep
18 s regulated by a peptide signaling involving Tracheary Element Differentiation Inhibitory Factor (TDI
19 ule characterized by a peptide ligand called TRACHEARY ELEMENT DIFFERENTIATION INHIBITORY FACTOR (TDI
20                            Here we show that TRACHEARY ELEMENT DIFFERENTIATION INHIBITORY FACTOR (TDI
21 scriptomic analysis showed that genes of the tracheary element differentiation inhibitory factor-phlo
22                                              Tracheary element differentiation requires strict coordi
23 ammed cell death during organ senescence and tracheary element differentiation.
24                                            A tracheary element expression pattern was detected for XC
25 reds of the genes involved in the process of tracheary element formation.
26 er, these findings suggest that XND1 affects tracheary element growth through regulation of secondary
27 uction in the Golgi of developing protoxylem tracheary elements in Arabidopsis (Arabidopsis thaliana)
28 ressed by mesophyll cells differentiating as tracheary elements in vitro.
29 ncluded a reduction in both plant height and tracheary element length and an increase in metaxylem re
30 xylem vessels and little or no expression of tracheary element marker genes.
31 three new ones identified in differentiating tracheary elements of Zinnia elegans.
32 not detected in the cytoplasm or vacuoles of tracheary elements or neighbors.
33  reveals that atao1 expression in developing tracheary elements precedes and overlaps with lignificat
34 raulic conductivity (Ks ), wood density, and tracheary element size from natural populations.
35  whether proteasome activity is required for tracheary element (TE) differentiation, the proteasome i
36          Using a transformable Pinus radiata tracheary element (TE) system as an experimental platfor
37 oyl-CoA reductase (CCR) in the Pinus radiata tracheary element (TE) system impacted both the metaboli
38 in, to reproducibly trans-differentiate into tracheary elements (TE) after 96 h, while in the presenc
39 sociated with lignification in both in vitro tracheary elements (TEs) and organs of zinnia (Zinnia el
40                                        Xylem tracheary elements (TEs) form hollow, sap-conducting tub
41            Postmortem lignification of xylem tracheary elements (TEs) has been debated for decades.
42 es, ZRNaseI and ZRNaseII, in differentiating tracheary elements (TEs) induced from isolated mesophyll
43 mechanisms regulating the autolysis of xylem tracheary elements (TEs) is important for understanding
44 , we characterize p48h-17 cDNA from in vitro tracheary elements (TEs) of Zinnia elegans which encodes
45                                        Xylem tracheary elements (TEs) synthesize patterned secondary
46 h ASL19 and ASL20 were expressed in immature tracheary elements (TEs), and the expression was depende
47                     Plant vascular cells, or tracheary elements (TEs), rely on circumferential second
48 ant cell wall was examined in Zinnia elegans tracheary elements (TEs), which specialize by developing
49  Pits are regions in the cell walls of plant tracheary elements that lack secondary walls.
50  patterning, we developed a method to induce tracheary element transdifferentiation of isolated proto
51 ell culture of synchronously differentiating tracheary elements was used to identify three new expans
52 f Zinnia elegans L. cv Envy differentiate to tracheary elements when cultured in inductive medium con
53 nveiling details about local interactions of tracheary elements with surrounding material, which vari