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The chalcone synthase (CHS) gene families are known to be conserved in plants and have been well-studied in many plants, and they have an important role in the physiological and biological processes of plants. One of the studied CHS gene families is the CHS1 gene. CHS1 gene is known for its function in the flavonoid biosynthetic pathway.
Shahrizim Zulkifly +2 more
exaly +4 more sources
Chromosome numbers and polyploidy events in Korean non-commelinids monocots: A contribution to plant systematics [PDF]
The evolution of chromosome numbers and the karyotype structure is a prominent feature of plant genomes contributing to or at least accompanying plant diversification and eventually leading to speciation. Polyploidy, the multiplication of whole chromosome sets, is widespread and ploidy-level variation is frequent at all taxonomic levels, including ...
Tae-Soo Jang, Hanna Weiss-Schneeweiss
exaly +2 more sources
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A sucrose ferulate cycle linchpin for feruloylation of arabinoxylans in plant commelinids
Nature PlantsA transformation in plant cell wall evolution marked the emergence of grasses, grains and related species that now cover much of the globe. Their tough, less digestible cell walls arose from a new pattern of cross-linking between arabinoxylan polymers with distinctive ferulic acid residues.
Donald R Mccarty +2 more
exaly +3 more sources
Plant Systematics and Evolution, 2004
Floral anatomy is described in ten genera of Bromeliaceae, including three members of subfamily Bromelioideae, three Tillandsioideae, and four genera of the polyphyletic subfamily Pitcairnioideae (including Brocchinia, the putatively basal genus of Bromeliaceae).
Sajo, M. G. +2 more
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Floral anatomy is described in ten genera of Bromeliaceae, including three members of subfamily Bromelioideae, three Tillandsioideae, and four genera of the polyphyletic subfamily Pitcairnioideae (including Brocchinia, the putatively basal genus of Bromeliaceae).
Sajo, M. G. +2 more
openaire +2 more sources
Plant Physiology and Biochemistry, 2017
The polysaccharide compositions of primary and secondary cell walls of members of the family Arecaceae in the commelinid clade of monocotyledonous plants have previously been found to be distinguishable from other commelinid families, and to be more similar to those of non-commelinids. However, few studies have been conducted.
Thaisa Moro, Cantu-Jungles +3 more
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The polysaccharide compositions of primary and secondary cell walls of members of the family Arecaceae in the commelinid clade of monocotyledonous plants have previously been found to be distinguishable from other commelinid families, and to be more similar to those of non-commelinids. However, few studies have been conducted.
Thaisa Moro, Cantu-Jungles +3 more
openaire +2 more sources
Molecular systematic studies in commelinid monocots
2011To clarify phylogenetic relationships among the major commelinid monocot lineages, among families in the orders Commelinales and Poales, and among grass subfamilies (Poaceae), I surveyed multiple plastid protein-coding regions and associated noncoding regions from exemplar taxa sampled broadly across these lineages.
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“Exclusive” update:p-coumaroylation of lignin not restricted to commelinid monocots
Plant Physiology, 2022Priya Ramakrishna, Igor Cesarino
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Monocotyledonous plants graft at the embryonic root–shoot interface
Nature, 2021Alison Bentley +2 more
exaly
Assembling the Tree of the Monocotyledons: Plastome Sequence Phylogeny and Evolution of Poales1
Annals of the Missouri Botanical Garden, 2010Sean W Graham +2 more
exaly
Phylogenetic Relationships of Monocots Based on the Highly Informative Plastid Gene ndhF
Aliso, 2006Eric Roalson
exaly

