Flower form alteration by genetic transformation with the class B MADS-box genes of Agapanthus praecox spp. orientalis in transgenic dicot and monocot plants

2007 ◽  
Vol 20 (4) ◽  
pp. 425-429 ◽  
Author(s):  
Masaru Nakano ◽  
Hiroto Umehara ◽  
Yoshihiro Hara ◽  
Motohide Makino ◽  
Mika Igarashi ◽  
...  
2014 ◽  
pp. 93-98
Author(s):  
N. Okuzumi ◽  
M. Otani ◽  
H. Otsubo ◽  
S. Meguro ◽  
Y. Hara ◽  
...  

2019 ◽  
Author(s):  
Jiuxing Lu ◽  
Yun Zheng ◽  
Haoning Wang ◽  
Zheng Wang ◽  
Yonghua Li ◽  
...  

Abstract Background: Tree peony (Paeonia suffruticasa) is an economically, medicinally ornamentally important woody flowering woody plants in East Asia and is a common also ornamental shrub in Europe and North America. It is well known and prized for their beautiful flowers in many different forms. Samen petalody has been shown to be the most effective way to modify flower forms. However, there is limited information on the molecular mechanisms of stamen petalody and flower form formation in tree peony.Results: In this study, RNA sequencing was used to assemble and annotate the unigenes in the tree peony to identify the critical genes related to flower parts formation and verify the key genes in different flower forms of tree peony cultivar. A total of 76,007 high quality unigenes were assembled and 30,505 were successfully annotated. A total of 1,833 TFs were identified in our study, among them 16 MADS-box genes were found and characterized. Six key genes were selected to verity their functions in stamen petalody. AG and SEP showed high expression level in carpals and sepals separately both in stamen petalody group and non-stamen petalody groups. PI and AP3 showed high expression levels in inter-petals in stamen petalody groups than in staments in non-stamen petalody.Conclusion: Sixteen MADS-box genes were identified for the first time in tree peony through RNA-seq method. We identified six key genes based on their differential expression levels in different flower parts. These six key genes represented all categories in the ABCDE model to verify the functions in stamen petalody. PI and AP3 were verified to likely play important roles in regulating stamen petalody in tree peony. Our study has helped establish the flower development model in tree peony, identified key molecular mechanisms in the development of different flower forms, and provided valuable information in improving genetic diversity of tree peony and many other woody plants.


Plant Science ◽  
2001 ◽  
Vol 161 (3) ◽  
pp. 549-557 ◽  
Author(s):  
Kentaro Kitahara ◽  
Sayaka Hirai ◽  
Hirokazu Fukui ◽  
Shogo Matsumoto
Keyword(s):  
Mads Box ◽  

2004 ◽  
Vol 73 (3) ◽  
pp. 208-215 ◽  
Author(s):  
Kentaro Kitahara ◽  
Tomomi Ohtsubo ◽  
Junichi Soejima ◽  
Shogo Matsumoto
Keyword(s):  
Mads Box ◽  

2010 ◽  
Vol 284 (5) ◽  
pp. 399-414 ◽  
Author(s):  
Katsutomo Sasaki ◽  
Ryutaro Aida ◽  
Hiroyasu Yamaguchi ◽  
Masahito Shikata ◽  
Tomoya Niki ◽  
...  

2021 ◽  
Vol 22 (13) ◽  
pp. 7025
Author(s):  
Francesca Lucibelli ◽  
Maria Carmen Valoroso ◽  
Günter Theißen ◽  
Susanne Nolden ◽  
Mariana Mondragon-Palomino ◽  
...  

The molecular basis of orchid flower development is accomplished through a specific regulatory program in which the class B MADS-box AP3/DEF genes play a central role. In particular, the differential expression of four class B AP3/DEF genes is responsible for specification of organ identities in the orchid perianth. Other MADS-box genes (AGL6 and SEP-like) enrich the molecular program underpinning the orchid perianth development, resulting in the expansion of the original “orchid code” in an even more complex gene regulatory network. To identify candidates that could interact with the AP3/DEF genes in orchids, we conducted an in silico differential expression analysis in wild-type and peloric Phalaenopsis. The results suggest that a YABBY DL-like gene could be involved in the molecular program leading to the development of the orchid perianth, particularly the labellum. Two YABBY DL/CRC homologs are present in the genome of Phalaenopsis equestris, PeDL1 and PeDL2, and both express two alternative isoforms. Quantitative real-time PCR analyses revealed that both genes are expressed in column and ovary. In addition, PeDL2 is more strongly expressed the labellum than in the other tepals of wild-type flowers. This pattern is similar to that of the AP3/DEF genes PeMADS3/4 and opposite to that of PeMADS2/5. In peloric mutant Phalaenopsis, where labellum-like structures substitute the lateral inner tepals, PeDL2 is expressed at similar levels of the PeMADS2-5 genes, suggesting the involvement of PeDL2 in the development of the labellum, together with the PeMADS2-PeMADS5 genes. Although the yeast two-hybrid analysis did not reveal the ability of PeDL2 to bind the PeMADS2-PeMADS5 proteins directly, the existence of regulatory interactions is suggested by the presence of CArG-boxes and other MADS-box transcription factor binding sites within the putative promoter of the orchid DL2 gene.


2020 ◽  
Author(s):  
Jiuxing Lu ◽  
Yun Zheng ◽  
Haoning Wang ◽  
Zheng Wang ◽  
Yonghua Li ◽  
...  

Abstract Background: Tree peony ( Paeonia suffruticasa ) is an economically, medicinally and ornamentally important woody flowering plant in East Asia. It is also a common ornamental shrub in Europe and North America. They are well known and prized for their beautiful flowers in many different shapes. Stamen petalody has been shown to be the most effective way to modify flower shapes. However, there is limited information on the molecular mechanisms of stamen petalody and flower shape formation in tree peony. Results: In this study, RNA sequencing was used to assemble and annotate the unigenes in tree peony to identify the critical genes related to flower parts formation and verify the key genes in different flower shapes of tree peony cultivars. A total of 76,007 high quality unigenes were assembled and 30,505 were successfully annotated. A total of 1,833 transcription factors (TFs) were identified in our study, among them 16 MADS-box genes were found and characterized. Six key genes were selected to verify their functions in stamen petalody. AG and SEP showed high expression level in carpels and sepals separately both in stamen petalody and non-stamen petalody groups. PI and AP3 s howed higher expression levels of inter-petals in the stamen petalody group, compared to stamens of non-stamen petalody. Conclusion: S ixteen MADS-box genes were identified in tree peony through RNA-seq. We identified six key genes based on their differential expression levels in different flower parts. These six key genes represented all categories in the ABCDE model to verify the functions in stamen petalody. We speculate that PI and AP3 may trigger the stamen petalody in tree peony. Our study has helped establish the flower development model in tree peony, to identify key molecular mechanisms in the development of different flower shapes, and to provide valuable information for improving the genetic diversity of tree peony and many other woody plants.


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