Comparative morphoanatomy and transcriptomic analyses reveal key factors controlling floral trichome development in Aristolochia (Aristolochiaceae)

被引:5
作者
Suarez-Baron, Harold [1 ,2 ]
Alzate, Juan F. [3 ]
Ambrose, Barbara A. [4 ]
Pelaz, Soraya [5 ,6 ]
Gonzalez, Favio [7 ]
Pabon-Mora, Natalia [2 ]
机构
[1] Pontificia Univ Javeriana Cali, Dept Nat Sci & Math, Cali, Colombia
[2] Univ Antioquia, Inst Biol, Medellin, Colombia
[3] Univ Antioquia, Fac Med, Ctr Nacl Secuenciac Genomica CNSG, Sede Investigac Univ, Medellin, Colombia
[4] New York Bot Garden, Bronx, NY USA
[5] Ctr Res Agr Genom CSIC IRTA UAB UB, Campus UAB, Barcelona, Spain
[6] ICREA Inst Catalana Recerca & Estudis Avancats, Barcelona, Spain
[7] Univ Nacl Colombia, Sede Bogota, Fac Ciencias, Inst Ciencias Nat, Bogota, Colombia
关键词
Aristolochia; cell fate; epidermis development; multicellular floral trichomes; perianth; RNA-seq; CELL MORPHOGENESIS; ARABIDOPSIS-THALIANA; EPIDERMAL DIFFERENTIATION; JASMONIC ACID; GENE; PROTEIN; ENCODES; INITIATION; FATE; BIOSYNTHESIS;
D O I
10.1093/jxb/erad345
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Trichomes are specialized epidermal cells in aerial plant parts. Trichome development proceeds in three stages, determination of cell fate, specification, and morphogenesis. Most genes responsible for these processes have been identified in the unicellular branched leaf trichomes from the model Arabidopsis thaliana. Less is known about the molecular basis of multicellular trichome formation across flowering plants, especially those formed in floral organs of early diverging angiosperms. Here, we aim to identify the genetic regulatory network (GRN) underlying multicellular trichome development in the kettle-shaped trap flowers of Aristolochia (Aristolochiaceae). We selected two taxa for comparison, A. fimbriata, with trichomes inside the perianth, which play critical roles in pollination, and A. macrophylla, lacking specialized trichomes in the perianth. A detailed morphoanatomical characterization of floral epidermis is presented for the two species. We compared transcriptomic profiling at two different developmental stages in the different perianth portions (limb, tube, and utricle) of the two species. Moreover, we present a comprehensive expression map for positive regulators and repressors of trichome development, as well as cell cycle regulators. Our data point to extensive modifications in gene composition, expression, and putative roles in all functional categories when compared with model species. We also record novel differentially expressed genes (DEGs) linked to epidermis patterning and trichome development. We thus propose the first hypothetical genetic regulatory network (GRN) underlying floral multicellular trichome development in Aristolochia, and pinpoint key factors responsible for the presence and specialization of floral trichomes in phylogenetically distant species of the genus. Comprehensive characterization of epidermal patterning and specialized perianth trichome development in dutchman & PRIME;s pipe (Aristolochia ) flowers identifies candidate genes for multicellular trichome patterning in distantly related angiosperms.
引用
收藏
页码:6588 / 6607
页数:20
相关论文
共 116 条
[1]   The functions of kinesin and kinesin-related proteins in eukaryotes [J].
Ali, Iftikhar ;
Yang, Wei-Cai .
CELL ADHESION & MIGRATION, 2020, 14 (01) :139-152
[2]   Progress on trichome development regulated by phytohormone signaling [J].
An, Lijun ;
Zhou, Zhongjing ;
Yan, An ;
Gan, Yinbo .
PLANT SIGNALING & BEHAVIOR, 2011, 6 (12) :1959-1962
[3]  
Babtie A.C., 2021, Systems Medicine, P86, DOI [10.1016/B978-0-12-801238-3.11346-7, DOI 10.1016/B978-0-12-801238-3.11346-7]
[4]   TRICHOME PATTERNING IN ARABIDOPSIS THALIANA: FROM GENETIC TO MOLECULAR MODELS [J].
Balkunde, Rachappa ;
Pesch, Martina ;
Huelskamp, Martin .
PLANT DEVELOPMENT, 2010, 91 :299-321
[5]   A SPIKE1 signaling complex controls actin-dependent cell morphogenesis through the heteromeric WAVE and ARP2/3 complexes [J].
Basu, Dipanwita ;
Le, Jie ;
Zakharova, Taya ;
Mallery, Eileen L. ;
Szymanski, Daniel B. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2008, 105 (10) :4044-4049
[6]   Control of cell and petal morphogenesis by R2R3 MYB transcription factors [J].
Baumann, Kim ;
Perez-Rodriguez, Maria ;
Bradley, Desmond ;
Venail, Julien ;
Bailey, Paul ;
Jin, Hailing ;
Koes, Ronald ;
Roberts, Keith ;
Martin, Cathie .
DEVELOPMENT, 2007, 134 (09) :1691-1701
[7]   The bHLH genes GL3 and EGL3 participate in an intercellular regulatory circuit that controls cell patterning in the Arabidopsis root epidermis [J].
Bernhardt, C ;
Zhao, MZ ;
Gonzalez, A ;
Lloyd, A ;
Schiefelbein, J .
DEVELOPMENT, 2005, 132 (02) :291-298
[8]   The bHLH genes GLABRA3 (GL3) and ENHANCER OF GLABRA3 (EGL3) specify epidermal cell fate in the Arabidopsis root [J].
Bernhardt, C ;
Lee, MM ;
Gonzalez, A ;
Zhang, F ;
Lloyd, A ;
Schiefelbein, J .
DEVELOPMENT, 2003, 130 (26) :6431-6439
[9]   Overexpression of Arabidopsis ECERIFERUM1 Promotes Wax Very-Long-Chain Alkane Biosynthesis and Influences Plant Response to Biotic and Abiotic Stresses [J].
Bourdenx, Brice ;
Bernard, Amelie ;
Domergue, Frederic ;
Pascal, Stephanie ;
Leger, Amandine ;
Roby, Dominique ;
Pervent, Marjorie ;
Vile, Denis ;
Haslam, Richard P. ;
Napier, Johnathan A. ;
Lessire, Rene ;
Joubes, Jerome .
PLANT PHYSIOLOGY, 2011, 156 (01) :29-45
[10]   Near-optimal probabilistic RNA-seq quantification (vol 34, pg 525, 2016) [J].
Bray, Nicolas L. ;
Pimentel, Harold ;
Melsted, Pall ;
Pachter, Lior .
NATURE BIOTECHNOLOGY, 2016, 34 (08) :888-888