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silique    
长角果

长角果

silique
n 1: narrow elongated seed capsule peculiar to the family
Cruciferae [synonym: {silique}, {siliqua}]


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  • Silique - an overview | ScienceDirect Topics
    The Arabidopsis silique is composed of three major tissues: the replum with its attached seeds, the carpel valves that form the protective ovary walls, and the valve margins that are sandwiched between the replum and the valves (Figure 1) The valve margin is made up of a separation layer and an adjacent layer of lignified cells
  • Key genes and mechanisms underlying natural variation of silique length . . .
    The silique lengths of the 331 accessions in 10 environments varied from 29 0 mm to 108 4 mm (3 73 fold), with the coefficient of variation ranging from 0 13 to 0 20 (Table S3) As expected, the silique lengths of the 331 accessions showed normal or near-normal distributions in all 10 environments (Fig 1 A)
  • Identification of miRNAs that regulate silique development in
    In general, silique length (SL) has a significant positive relationship with SPS and SW, where longer siliques produce more seeds and seeds of greater weight than short siliques [3, 5] Therefore, long silique is a desirable trait in rapeseed breeding for high seed yield
  • Major changes in the cell wall during silique development in . . .
    The seeds were not separated from the siliques Silique development was classified into nine stages (1–2 DAF (Days after flowering), 3–4 DAF, 5–6 DAF, 7–8 DAF, 9–11 DAF, 12–14 DAF, 15–17 DAF and 18–20 DAF) as shown in Fig 1 Development of siliques was preceded by floral bud initiation which was named FB, corresponding to 0 DAF
  • Silique - an overview | ScienceDirect Topics
    The fruit is a specialized capsule, called a silique (>3x longer than broad) or silicle (<3x longer than broad), that usually dehisces by the two valves falling entire (rarely transversely dehiscent or indeshiscent) and leaving a persistent cross-wall consisting of a peripheral rim, termed the replum, and membranous intervening tissue spanning
  • Ethylene involvement in silique and seed development of canola . . .
    Silique weights and lengths, and seed numbers and diameters for WT (cv Westar) and ACC-deaminase transgenic canola lines treated with “water alone” (Control), or with a 10 −3 M ethephon solution at the floral bud stage, one day before pollination (−1 DAP) Measurements were made at day 20 after pollination (20 DAP)
  • NAC100 regulates silique growth during the initial phase of fruit . . .
    D Silique length at 6 and 9 DPA in Col-0, nac100–1 and nac100–2 lines (11 >n < 25, Scale bars 2 mm) E Silique length at 6 DPA in 35S-L1 and 35S-L2 lines compared to the Col-0 control (Scale bars 2 mm) Each experiment was repeated at least twice Data is represented as mean ± SD
  • Identification of a candidate QTG for seed number per silique by . . .
    (a) Silique performances of the parents and their reciprocal crossing F 1 hybrids Scale bar, 5 mm (b) Observation for seed number per silique at 7 DAP (up) and 14 DAP (down) between parental line 6Q006 (left) and 6W26 (right) Scale bars, 1 mm (c–f) Frequency distribution of seed number per silique at maturity in DH population across 4 years
  • A backlight and deep learning based method for calculating the number . . .
    The silique maturity of the internal seeds of an image also has some impact, and with the silique matures, the colour of the carpel changes gradually from green to yellow Hence, the percentage of the falling water content of dry matter weight reduces, and the silique lignifies, gradually increasing the light transmittance of the silique
  • Phenotyping of Silique Morphology in Oilseed Rape Using Skeletonization . . .
    Currently, the traditional measurement of silique development parameters such as silique length (SL) and silique number (SN) depends largely on manual work, which is invasive, time-consuming, and inaccurate [8] With the development of computer vision technologies, effective and image-based approaches have emerged to cope with the above problems





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