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14:53, 6 June 2014 1213232.jpg (file) 41 KB Lxzlxz DNA binding assay. (A) Growth ability on Trp 󰠏 and Trp + plates for each case as sketch map. Trp 󰠏 , SD medium plus glucose, adenine, casein, but not tryptophan; Trp + , the same medium with tryptophan. (B) Colony-lift filter assay. The pictures w 1
15:01, 6 June 2014 Fig-6 zhoujujun.jpg (file) 23 KB Lvying   1
15:05, 6 June 2014 Fig-8 NCBI .jpg (file) 12 KB Lvying   1
15:22, 6 June 2014 GH3 gene family in rice.jpg (file) 753 KB Menghao big   1
15:28, 6 June 2014 Fig1-wyh.jpg (file) 71 KB Wangyh   1
15:30, 6 June 2014 Fig2-wyh.jpg (file) 52 KB Wangyh   1
15:30, 6 June 2014 Fig3-wyh.jpg (file) 38 KB Wangyh   1
15:30, 6 June 2014 Phylogenetic tree and homology analysis of SPL proteins..png (file) 110 KB Wangmin2013   1
15:34, 6 June 2014 Os01g08415001.jpg (file) 52 KB Cloud27 Figure 1. Identification of OsMYB3R-2 transgenic rice and its expression pattern. A, Northern-blot assay of rice transgenic plants. Total RNA isolated from wild-type (WT) or transformed plants underwent hybridization with a [a-32P]dCTP-labeled probe of Os 1
15:35, 6 June 2014 Phylogenetic tree and homology analysis of SPL proteins.jpg (file) 105 KB Wangmin2013   1
15:40, 6 June 2014 Os01g08415002.jpg (file) 60 KB Cloud27 Figure 2. Phenotype analysis of the T2 generation of OsMYB3R-2 transgenic rice. A, The germination and growth of OsMYB3R-2 transgenic rice at 30℃. Shelled seeds of rice at 0 d; germinating seeds at 1, 2, and 3 d; young seedlings transferred to light (12 1
15:44, 6 June 2014 Os01g08415003.jpg (file) 68 KB Cloud27 Figure 3. Tolerance response of the OsMYB3R-2 transgenic lines to cold stress. A, Wild-type and OsMYB3R-2 transgenic 2-week-old rice seedlings at the same stage before the 2℃ treatment. B, Seedlings were grown in the greenhouse for 2 weeks after 2℃ tr 1
15:45, 6 June 2014 Subcellular localization and transactivation analysis of OsSPL14 protein.jpg (file) 68 KB Wangmin2013   1
15:46, 6 June 2014 Os01g08415004.jpg (file) 37 KB Cloud27 Figure 4. Gene expression patterns and free Pro levels of transgenic rice plants in response to cold. A, Expression pattern of OsCPT1 in wild-type and OsMYB3R-2 transgenic rice at room temperature (25℃) or low temperature (4℃). Tubulin was used as an 1
15:46, 6 June 2014 Os01g08415005.jpg (file) 89 KB Cloud27 Figure 5. Transcription activation analysis of OsMYB3R-2 protein. A, Different pGBKT7-OsMYB3R-2 vector constructs. The truncated cDNA fragments of OsMYB3R-2 were sequenced and inserted into the NdeI-PstI sites, with ATG added at the end of the NdeI site i 1
15:47, 6 June 2014 Os01g08415006.jpg (file) 74 KB Cloud27 Figure 6. DNA binding affinity of OsMYB3R-2 protein. A, The alignment of MSA-like sequences shown in the promoters of type B cyclin genes: rice OsCycB1;1 and OsKNOLLE2, Arabidopsis cyc1bAt (Day et al., 1996) and cyc2aAt (Ferreira et al., 1994), and tobacc 1
15:48, 6 June 2014 Os01g08415007.jpg (file) 29 KB Cloud27 Figure 7. Expression patterns of cyclin genes in the OsMYB3R-2 transgenic rice, cold response and survival ratio, and cellular free Pro in the OsCycB1;1 transgenic rice lines. A, Expression patterns of cyclin-responsive genes in wild-type (WT) and OsMYB3R 1
15:49, 6 June 2014 Os01g08415008.jpg (file) 39 KB Cloud27 Figure 8. Cell cycle progression response to cold in flow cytometry assay in the OsMYB3R-2 transgenic lines. A, The wild type at 28℃. B, The wild type at 4℃. C, Overexpressing line 7 (OL7) of OsMYB3R-2 transgenic rice at 28℃. D, Overexpressing line 1
15:53, 6 June 2014 Lyy2.jpg (file) 494 KB Luyuanyuan   1
15:55, 6 June 2014 Exon–intron organization of rice GH3 genes.jpg (file) 93 KB Menghao big   1
15:56, 6 June 2014 Genomic distribution of GH3 genes on rice chromosomes.jpg (file) 101 KB Menghao big   1
16:07, 6 June 2014 Fig4-wyh.jpg (file) 63 KB Wangyh   1
16:32, 6 June 2014 Haolt-F1.large.jpg (file) 318 KB Haolt Fig. 1. Comparison of conserved regions in the SET‐domain between OsSET1 and selected representative proteins. A sequence alignment of SET‐N and SET‐C of the SET domain and the lengths of the variable insert regions (SET‐I) were indicated. Ident 1
16:33, 6 June 2014 Haolt-F2.large.jpg (file) 254 KB Haolt Fig. 2. Subcellular localization of the OsSET1 protein. The green florescence was observed in nuclei of transformed onion epidermis (arrow heads, A and B), but not at nuclei of negative controls (arrow heads, C and D). Bars: 60μm. 1
16:34, 6 June 2014 Haolt-F3.large.jpg (file) 319 KB Haolt Fig. 3. Abnormal shoot development of the transgenic plants over‐expressing the SET domain of OsSET1 in Arabidopsis. Seedlings of wild type and transgenic Arabidopsis on day 11 after germination were shown in (A) and (B) with the same magnification. T 1
16:35, 6 June 2014 Alignment of the basic helix–loop–helix (bHLH) domain of RAI1 with those of homologous rice proteins.png (file) 66 KB Yjhe2014 Identical amino acids in all and six of the sequences are highlighted in black and gray, respectively. The numbers at the right indicate positions of the amino acids. The alignment was performed using the ClustalX program and displayed using GeneDoc (Nich 1
16:36, 6 June 2014 1-s2.0-S0378111903007236-gr2r1.gif (file) 11 KB Haolt Fig. 4. (A) Based on the alignment of amino acid sequences of SET domain, a phylogenetic tree of SET domain-containing proteins from different organisms is shown. Sub-grouping of the proteins in I–IV subgroups is done according to a previous classifica 1
16:37, 6 June 2014 1-s2.0-S0378111903007236-gr2r2.gif (file) 79 KB Haolt Fig. 4. (B) Alignment of deduced amino acid sequence of OsiEZ1 with amino acid sequences of other plant SET domain-containing proteins belonging to subgroup I. Names of the domains are mentioned on the top. Fully and partially conserved amino acid residu 1
17:05, 6 June 2014 Mature transgenic rice plants overexpressing OsGH3.1.jpg (file) 244 KB Menghao big   1
00:50, 7 June 2014 B.png (file) 56 KB Sasniper Comparison of amino acid sequence between the PH domains of OsSWAP70A and human SWAP70. 1
00:52, 7 June 2014 C.png (file) 99 KB Sasniper   1
00:53, 7 June 2014 Sasniper D.png (file) 28 KB Sasniper   1
01:32, 7 June 2014 Conserved motifs.jpg (file) 99 KB Kathy   1
01:52, 7 June 2014 Sasniper E.jpg (file) 27 KB Sasniper Visualization of OsSWAP70A and OsRac1 using bimolecular fluorescence complementation (BiFC) in transiently transfected rice protoplasts. Vn-OsRac1 and Vc-OsSWAP70A contain the N-terminal and C-terminal fragments, respectively, of Venus. Venus fluorescence 1
01:54, 7 June 2014 Expression patterns.jpg (file) 49 KB Kathy   1
01:56, 7 June 2014 Differential expressions.jpg (file) 60 KB Kathy   1
02:37, 7 June 2014 Fig I.png (file) 283 KB Henikanxue Figure 1. Amino Acid Sequence Alignment of LYPs in Arabidopsis and Rice. Full-length amino acid sequences encoded by At-LYP1(At2g17120), At-LYP2(At1g77630), At-LYP3(At1g21880), Os-LYP1(CEBiP, Os03g04110), Os-LYP2(Os11g34570), Os-LYP3(Os09g37600), Os-LYP 1
02:52, 7 June 2014 Fig 2.png (file) 138 KB Henikanxue   3
02:59, 7 June 2014 Figure 1.LysM-Containing LYP4 and LYP6 Are Rice Plasma Membrane Proteins.png (file) 290 KB Henikanxue Figure 1.LysM-Containing LYP4 and LYP6 Are Rice Plasma Membrane Proteins. (A) Phylogenetic tree and domain structure diagram of LYPs in rice andArabidopsis. The phylogenetic tree was generated using MEGA4. Full-length amino acids sequences of plant LYPs w 1
03:03, 7 June 2014 Rice 123.jpg (file) 35 KB Hancychan   1
03:07, 7 June 2014 图片3.png (file) 464 KB Ricelove   3
03:33, 7 June 2014 图片4.png (file) 404 KB Ricelove   2
04:13, 7 June 2014 Figure(1).jpg (file) 64 KB Happinessforever   5
04:35, 7 June 2014 Fig11.jpg (file) 80 KB Amy   3
04:45, 7 June 2014 Jietu.jpg (file) 36 KB Happinessforever   1
04:46, 7 June 2014 Rice 111.jpg (file) 55 KB Hancychan   1
04:47, 7 June 2014 OsWRKY51.jpg (file) 57 KB Happinessforever   1
04:48, 7 June 2014 Fig9.png (file) 251 KB Amy   2
04:50, 7 June 2014 Rice 122.jpg (file) 64 KB Hancychan   1
04:50, 7 June 2014 Fig6I.png (file) 21 KB Amy   1
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