Developmental Mechanisms of Fleshy Fruit Diversity in Rosaceae

被引:54
作者
Liu, Zhongchi [1 ]
Ma, Hong [2 ,3 ]
Jung, Sook [4 ]
Main, Dorrie [4 ]
Guo, Lei [1 ]
机构
[1] Univ Maryland, Dept Cell Biol & Mol Genet, College Pk, MD 20742 USA
[2] Penn State Univ, Eberly Coll Sci, Dept Biol, University Pk, PA 16802 USA
[3] Penn State Univ, Huck Inst Life Sci, University Pk, PA 16802 USA
[4] Washington State Univ, Dept Hort, Pullman, WA 99164 USA
来源
ANNUAL REVIEW OF PLANT BIOLOGY, VOL 71, 2020 | 2020年 / 71卷
基金
美国食品与农业研究所; 美国国家科学基金会;
关键词
Rosaceae fruit type; Rosaceae phylogeny; fruit set; fruit identity; MADS box; genome resources; FACULTATIVE PARTHENOCARPY; TRANSCRIPTION FACTORS; ARABIDOPSIS FLOWER; SEED DEVELOPMENT; NUCLEAR GENES; TOMATO; GENOME; STRAWBERRY; GROWTH; APPLE;
D O I
10.1146/annurev-arplant-111119-021700
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Rosaceae (the rose family) is an economically important family that includes species prized for high-value fruits and ornamentals. The family also exhibits diverse fruit types, including drupe (peach), pome (apple), drupetum (raspberry), and achenetum (strawberry). Phylogenetic analysis and ancestral fruit-type reconstruction suggest independent evolutionary paths of multiple fleshy fruit types from dry fruits. A recent whole genome duplication in the Maleae/Pyreae tribe (with apple, pear, hawthorn, and close relatives; referred to as Maleae here) may have contributed to the evolution of pome fruit. MADS-box genes, known to regulate floral organ identity, are emerging as important regulators of fruit development. The differential competence of floral organs to respond to fertilization signals may explain the different abilities of floral organs to form fleshy fruit. Future comparative genomics and functional studies in closely related Rosaceae species with distinct fruit types will test hypotheses and provide insights into mechanisms of fleshy fruit diversity. These efforts will be facilitated by the wealth of genome data and resources in Rosaceae.
引用
收藏
页码:547 / 573
页数:27
相关论文
共 130 条
[71]   Effects of exogenous application of GA4+7 and N-(2-chloro-4-pyridyl)-N'-phenylurea on induced parthenocarpy and fruit quality in Pyrus pyrifolia 'Cuiguan' [J].
Niu, Qingfeng ;
Wang, Tao ;
Li, Jianzhao ;
Yang, Qianqian ;
Qian, Minjie ;
Teng, Yuanwen .
PLANT GROWTH REGULATION, 2015, 76 (03) :251-258
[72]   A mutation that allows endosperm development without fertilization [J].
Ohad, N ;
Margossian, L ;
Hsu, YC ;
Williams, C ;
Repetti, P ;
Fischer, RL .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1996, 93 (11) :5319-5324
[73]   Functional diversification of AGAMOUS lineage genes in regulating tomato flower and fruit development [J].
Pan, Irvin L. ;
McQuinn, Ryan ;
Giovannoni, James J. ;
Irish, Vivian F. .
JOURNAL OF EXPERIMENTAL BOTANY, 2010, 61 (06) :1795-1806
[74]   Molecular and phylogenetic analyses of the complete MADS-box transcription factor family in Arabidopsis:: New openings to the MADS world [J].
Parenicová, L ;
de Folter, S ;
Kieffer, M ;
Horner, DS ;
Favalli, C ;
Busscher, J ;
Cook, HE ;
Ingram, RM ;
Kater, MM ;
Davies, B ;
Angenent, GC ;
Colombo, L .
PLANT CELL, 2003, 15 (07) :1538-1551
[75]   Comprehensive Tissue-Specific Transcriptome Analysis Reveals Distinct Regulatory Programs during Early Tomato Fruit Development [J].
Pattison, Richard J. ;
Csukasi, Fabiana ;
Zheng, Yi ;
Fei, Zhangjun ;
van der Knaap, Esther ;
Catala, Carmen .
PLANT PHYSIOLOGY, 2015, 168 (04) :1684-U1002
[76]   Genetic and Physiological Characterization of the Arlequin Insertional Mutant Reveals a Key Regulator of Reproductive Development in Tomato [J].
Pineda, Benito ;
Gimenez-Caminero, Estela ;
Garcia-Sogo, Begona ;
Teresa Anton, Maria ;
Atares, Alejandro ;
Capel, Juan ;
Lozano, Rafael ;
Angosto, Trinidad ;
Moreno, Vicente .
PLANT AND CELL PHYSIOLOGY, 2010, 51 (03) :435-447
[77]   Phylogeny and classification of Rosaceae [J].
Potter, D. ;
Eriksson, T. ;
Evans, R. C. ;
Oh, S. ;
Smedmark, J. E. E. ;
Morgan, D. R. ;
Kerr, M. ;
Robertson, K. R. ;
Arsenault, M. ;
Dickinson, T. A. ;
Campbell, C. S. .
PLANT SYSTEMATICS AND EVOLUTION, 2007, 266 (1-2) :5-43
[78]  
Pratt C., 1988, Horticultural Reviews, V10, P273, DOI 10.1002/9781118060834.ch8
[79]   INDUCTION OF PARTHENOCARPY IN ROSA-ARVENSIS HUDS WITH GIBBERELLIC ACID [J].
PROSSER, MV ;
JACKSON, GAD .
NATURE, 1959, 184 (4680) :108-108
[80]   The Rosa genome provides new insights into the domestication of modern roses [J].
Raymond, Olivier ;
Gouzy, Jerome ;
Just, Jeremy ;
Badouin, Helene ;
Verdenaud, Marion ;
Lemainque, Arnaud ;
Vergne, Philippe ;
Moja, Sandrine ;
Choisne, Nathalie ;
Pont, Caroline ;
Carrere, Sebastien ;
Caissard, Jean-Claude ;
Couloux, Arnaud ;
Cottret, Ludovic ;
Aury, Jean-Marc ;
Szecsi, Judit ;
Latrasse, David ;
Madoui, Mohammed-Amin ;
Francois, Lea ;
Fu, Xiaopeng ;
Yang, Shu-Hua ;
Dubois, Annick ;
Piola, Florence ;
Larrieu, Antoine ;
Perez, Magali ;
Labadie, Karine ;
Perrier, Lauriane ;
Govetto, Benjamin ;
Labrousse, Yoan ;
Villand, Priscilla ;
Bardoux, Claudia ;
Boltz, Veronique ;
Lopez-Roques, Celine ;
Heitzler, Pascal ;
Vernoux, Teva ;
Vandenbussche, Michiel ;
Quesneville, Hadi ;
Boualem, Adnane ;
Bendahmane, Abdelhafid ;
Liu, Chang ;
Le Bris, Manuel ;
Salse, Jerome ;
Baudino, Sylvie ;
Benhamed, Moussa ;
Wincker, Patrick ;
Bendahmane, Mohammed .
NATURE GENETICS, 2018, 50 (06) :772-+