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瑞鲍迪甙 B 对莴苣(Lactuca sativa L.)幼苗根细胞分裂和生长的调控。

Regulation of cell division and growth in roots of Lactuca sativa L. seedlings by the Ent-Kaurene diterpenoid rabdosin B.

机构信息

College of Life Sciences, Northwest Normal University, No. 967 Anning East Road, Lanzhou, 730070, People's Republic of China.

出版信息

J Chem Ecol. 2010 May;36(5):553-63. doi: 10.1007/s10886-010-9783-5. Epub 2010 Apr 8.

Abstract

Rabdosin B, an ent-kaurene diterpenoid purified from the air-dried aerial parts of Isodon japonica (Burm.f) Hara var. galaucocalyx (maxin) Hara, showed a biphasic, dose-dependent effect on root growth and a strong inhibitory effect on root hair development in lettuce seedlings (Lactuca sativa L.). Lower concentrations of rabdosin B (20-80 microM) significantly promoted root growth, but its higher levels at 120-200 microM, by contrast, had inhibitory effects. Additionally, all tested concentrations (10-40 microM) inhibited root hair development of seedlings in a dose-dependent manner. Further investigations on the underlying mechanism revealed that the promotion effect of rabdosin B at the lower concentrations resulted from increasing the cell length in the mature region and enhancing the mitotic activity of meristematic cells in seedlings' root tips. In contrast, rabdosin B at higher concentrations inhibited root growth by affecting both cell length in the mature region and division of meristematic cells. Comet assay and cell cycle analysis demonstrated that the decrease of mitotic activity of root meristematic cells was due to DNA damage induced cell cycle retardation of the G(2) phase and S phase at different times.

摘要

从 Isodon japonica (Burm.f) Hara var. galaucocalyx (maxin) Hara 的风干地上部分中分离得到的贝壳杉烯二萜 Rabdosin B 对生菜幼苗(Lactuca sativa L.)的根生长表现出双相、剂量依赖的影响,对根毛发育有强烈的抑制作用。较低浓度的 Rabdosin B(20-80 μM)显著促进根生长,但较高浓度(120-200 μM)则具有抑制作用。此外,所有测试浓度(10-40 μM)均以剂量依赖的方式抑制幼苗根毛的发育。对潜在机制的进一步研究表明,较低浓度的 Rabdosin B 的促进作用是通过增加成熟区的细胞长度和增强根尖分生细胞的有丝分裂活性来实现的。相比之下,较高浓度的 Rabdosin B 通过影响成熟区的细胞长度和分生细胞的分裂来抑制根的生长。彗星试验和细胞周期分析表明,根分生细胞有丝分裂活性的降低是由于 DNA 损伤导致 G2 期和 S 期的细胞周期阻滞,不同时间点的阻滞程度不同。

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