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Petal Development in Lotus japonicus 被引量:1

Petal Development in Lotus japonicus
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摘要 Previous studies have demonstrated that petal shape and size in legume flowers are determined by two separate mechanisms, dorsoventral (DV) and organ internal (IN) asymmetric mechanisms, respectively. However, little is known about the molecular mechanisms controlling petal development in legumes. To address this question, we investigated petal development along the floral DV axis in Lotus japonicus with respect to cell and developmental biology by comparing wild-type legumes to mutants. Based on morphological markers, the entire course of petal development, from initiation to maturity, was grouped to define 3 phases or 13 stages. In terms of epidermal micromorphology from adaxial surface, mature petals were divided into several distinct domains, and characteristic epidermal cells of each petal differentiated at stage 9, while epidermal cells of all domains were observed until stage 12. TCP and MIXTA-like genes were found to be differentially expressed in various domains of petals at stages 9 and 12. Our results suggest that DV and IN mechanisms interplay at different stages of petal development, and their interaction at the cellular and molecular level guides the elaboration of domains within petals to achieve their ideal shape, and further suggest that TCP genes determine petal identity along the DV axis by regulatincl MIXTA-like clene expression. Previous studies have demonstrated that petal shape and size in legume flowers are determined by two separate mechanisms, dorsoventral (DV) and organ internal (IN) asymmetric mechanisms, respectively. However, little is known about the molecular mechanisms controlling petal development in legumes. To address this question, we investigated petal development along the floral DV axis in Lotus japonicus with respect to cell and developmental biology by comparing wild-type legumes to mutants. Based on morphological markers, the entire course of petal development, from initiation to maturity, was grouped to define 3 phases or 13 stages. In terms of epidermal micromorphology from adaxial surface, mature petals were divided into several distinct domains, and characteristic epidermal cells of each petal differentiated at stage 9, while epidermal cells of all domains were observed until stage 12. TCP and MIXTA-like genes were found to be differentially expressed in various domains of petals at stages 9 and 12. Our results suggest that DV and IN mechanisms interplay at different stages of petal development, and their interaction at the cellular and molecular level guides the elaboration of domains within petals to achieve their ideal shape, and further suggest that TCP genes determine petal identity along the DV axis by regulatincl MIXTA-like clene expression.
出处 《Journal of Integrative Plant Biology》 SCIE CAS CSCD 2011年第10期770-782,共13页 植物学报(英文版)
基金 supported by the Ministry of Agriculture of China for Transgenic Research(2011ZX08009003and2009ZX08009-112B) the National Natural Science Foundation of China(30930009and30528016) the Instituteof Plant Physiology and Ecology,SIBS
关键词 CYC-like TCP genes epidermal cell Lotusjaponicus MIXTA-like genes petal. CYC-like TCP genes epidermal cell Lotusjaponicus MIXTA-like genes petal.
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  • 1Jiang Hua Chen,Ji Liang Pang,Li Lin Wang,Yong Hai Luo,Xin Li,Xiang Ling Cao,Kui Lin,Wei Ma,Xiao He Hu,Da Luo.Wrinkled petals and stamens 1,is required for the morphogenesis of petals and stamens in Lotus japonicus[J].Cell Research,2006,16(5):499-506. 被引量:4
  • 2Aubert G,Morin J,Jacquin F,Lorldon K,Quillet MC,Petit A,Rameau C,Lejeune-Hénaut I,Huguet T,Burstin J (2006) Functional mapping in pea,as an aid to the candidate gene selection and for investigating synteny with the model legume Medicago truncatula.Theor.Appl.Genet.112,1024-1241. 被引量:1
  • 3Broholm SK,T(a)htiharju S,Laitinen RA,Albert VA,Teeri TH,Elomaa P (2008) A TCP transcription factor controls flowers type specification along the radial axis of the Gerbera (Asteraceae) inflorescence.Proc.Natl.Acad.Sci.USA 105,9117-9122. 被引量:1
  • 4Busch A,Zachgo S (2007) Control of corolla monosymmetry in the Brassicaceae Iberis amara.Proc.Natl.Acad.Sci.USA 104,16714-16719. 被引量:1
  • 5Cannon SB,Sterck L,Rombauts S,Sato S,Cheung F,Gouzy J,Wang X,Mudge J,Vasdewani J,Schiex T,Spannagl M,Monaghan E,Nicholson C,Humphrey SJ,Schoof H,Mayer KF,Rogers J,Quetier F,Oldroyd GE,Debellé F,Cook DR,Retzel EF,Roe BA,Town CD,Tabata S,Van de Peer Y,Young ND (2006) Legume genome evolution viewed through the Medicago truncatula and Lotus japonicus genomes.Proc.Natl.Acad.Sci.USA 103,14959-14964. 被引量:1
  • 6Choi HK,Mun JH,Kim DJ,Zhu H,Baek JM,Mudge J,Roe B,Ellis N,Doyle J,Kiss GB,Young ND,Cook DR (2004) Estimating genome conservation between crop and model legume species.Proc.Natl.Acad.Sci.USA 101,15289-15294. 被引量:1
  • 7Citerne HL,Pennington RT,Cronk QC (2006) An apparent reversal in floral symmetry in the legume Cadia is a homeotic transformation.Proc.Natl.Acad.Sci.USA 103,12017-12020. 被引量:1
  • 8Constantin GD,Krath BN,MacFarlane SA,Nicolaisen M,Johansen IE,Lund OS (2004) Virus-induced gene silencing as a tool for functional genomics in a legume species.Plant J.40,622-631. 被引量:1
  • 9Corley SB,Carpenter R,Copsey L,Coen E (2005) Floral asymmetry involves an interplay between TCP and MYB transcription factors in Antirrhinum.Proc.Natl.Acad.Sci.USA 102,5068-5073. 被引量:1
  • 10Cronk Q,Ojeda I,Pennington RT (2006) Legume comparative ge-nomics:progress in phylogenetics and phylogenomics.Curr.Opin.Plant Biol.9,99-103. 被引量:1

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