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Plant, Spikelet and seeds morphology of CS and CS-n.
And the flowers, siliques and seeds morphology were examined using a Leica dissecting microscope.
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(A) Seed morphology of transgenic plants.
The seed morphology of the transgenic lines was investigated (Figure 6B).
Low phytic acid phenotypes are often associated with downstream impacts on seed morphology and germination.
(c) Seed morphology of O. barthii showing grains and spikelets with awns.
Additionally, unique plant and seed morphology were observed at certain developmental stages.
Seed morphology alone gives good support to three of the six sections of the genus.
This raises a possibility that a relationship between altered seed morphology and overexpression of Tos17 might exist.
Despite their tiny size, a considerable variation of seed morphology could be observed among orchid species (Arditti and Ghani [2000]).
Based on similarities in seed morphology, it is proposed that the somewhat isolated C. lineolata should be included in sect.
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