98%
921
2 minutes
20
MADS-box genes have a wide range of functions in plant reproductive development and grain production. The ABCDE model of floral organ development shows that MADS-box genes are central players in these events in dicotyledonous plants but the applicability of this model remains largely unknown in many grass crops. Here, we show that transcript analysis of all MIKCc MADS-box genes through barley ( L.) inflorescence development reveals co-expression groups that can be linked to developmental events. Thirty-four MIKCc MADS-box genes were identified in the barley genome and single-nucleotide polymorphism (SNP) scanning of 22,626 barley varieties revealed that the natural variation in the coding regions of these genes is low and the sequences have been extremely conserved during barley domestication. More detailed transcript analysis showed that MADS-box genes are generally expressed at key inflorescence developmental phases and across various floral organs in barley, as predicted by the ABCDE model. However, expression patterns of some genes, for example (AGAMOUS subfamily) and (SEPALLATA subfamily), clearly deviate from predicted patterns. This places them outside the scope of the classical ABCDE model of floral development and demonstrates that the central tenet of antagonism between A- and C-class gene expression in the ABC model of other plants does not occur in barley. Co-expression across three correlation sets showed that specifically grouped members of the barley MIKCc MADS-box genes are likely to be involved in developmental events driving inflorescence meristem initiation, floral meristem identity and floral organ determination. Based on these observations, we propose a potential floral ABCDE working model in barley, where the classic model is generally upheld, but that also provides new insights into the role of MIKCc MADS-box genes in the developing barley inflorescence.
Download full-text PDF |
Source |
---|---|
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8442994 | PMC |
http://dx.doi.org/10.3389/fpls.2021.705286 | DOI Listing |
Plant Cell Environ
September 2025
Shanghai Key Laboratory of Plant Molecular Sciences, College of Life Sciences, Shanghai Normal University, Shanghai, China.
MicroRNAs (miRNAs) are critical regulators of root development, further impacting plant growth and environmental adaptability. As an important miRNA family, the role of MIR444 in the root development of rice remains largely unknown. Here, we observed that loss of miR444f, which belongs to the MIR444 family, exhibited significant developmental defects in primary and lateral roots during early growth stages.
View Article and Find Full Text PDFBMC Plant Biol
August 2025
College of Artificial Intelligence, Guangxi University for Nationalities, Nanning, Guangxi, 530007, China.
Background: Bama Huoma is a high-value cash crop because its seeds are known as the "holy seeds of longevity". However, its seed yield is restricted by dioecism, and information about flower sex differentiation in this plant is lacking.
Results: In this study, anatomical analysis and dynamic transcriptome profiling were performed to explore the mechanism of sex differentiation in Bama Huoma.
J Plant Physiol
September 2025
Key Laboratory of Plant Resource Conservation and Germplasm Innovation in Mountainous Region (Ministry of Education), College of Life Sciences/Institute of Agro-bioengineering, Guizhou University, Guiyang, 550025, Guizhou Province, China. Electronic address:
The Chinese cherry (Cerasus pseudocerasus Lindl.) cv. 'Manaohong', a distinctive cultivar indigenous to Guizhou Province, China, possesses significant nutritional and economic value.
View Article and Find Full Text PDFNew Phytol
August 2025
Business Unit Bioscience, Wageningen University & Research, Droevendaalsesteeg 1, 6708 PB, Wageningen, The Netherlands.
AP1/FUL-clade transcription factors (TFs) are essential for the initiation and regulation of flowering and have clearly separated functions in Arabidopsis. However, how these functions have diverged across eudicots remains unclear. Here, we performed a detailed analysis to unravel the distinct and overlapping functions of the tomato AP1-ortholog MACROCALYX (MC) and the FUL-like genes FRUITFULL2 (FUL2) and MADS-BOX PROTEIN 20 (MBP20) through integrated molecular, genetic, and genomic approaches.
View Article and Find Full Text PDFPlanta
August 2025
Horticulture and Product Physiology, Department of Plant Sciences, Wageningen University & Research, PO Box 16, Wageningen, 6700AA, the Netherlands.
Dormancy-Associated MADS-BOX (DAM)3 and DAM4 have been described as potential regulators of winter dormancy in cultivated strawberry (Fragaria x ananassa Duch.). These genes are upregulated under short-day conditions and downregulated under chilling conditions.
View Article and Find Full Text PDF