倒置对角毛龙原体质体位置和向地性的影响。

J. Schwuchow, F. Sack
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引用次数: 17

摘要

当紫角藓原丝体的深色顶端细胞转向水平方向时,质体首先在特定区域向重力方向沉积,然后顶端向上弯曲。为了确定是否在其他方向上发生倾斜和质体沉积,原体重新定向到90度以外的角度。定性和定量光镜观察表明,在直立和倒立的细胞中均发生沿细胞轴的质体沉降。然而,只有部分质体下降,沉积不完全;质体仍然分布在细胞的整个长度上,而那些沉淀下来的质体不会一直落到细胞的底部。不管刺激的角度如何,尖端细胞都是向地性的,正如在高等植物中一样,初始曲率的最大速率是对120度重新定向的响应。红外视频显微镜,对活的、倒置的原体的延时研究表明,淀粉体沉积先于向上弯曲。总之,这些数据进一步支持(i)淀粉体沉积在这些细胞的向地感应中起作用的假设,以及(ii)重力影响细胞组织进化的观点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of inversion on plastid position and gravitropism in Ceratodon protonemata.
When dark-grown tip cells of protonemata of the moss Ceratodon purpureus are turned to the horizontal, plastids first sediment towards gravity in a specific zone and then the tip curves upward. To determine whether gravitropism and plastid sedimentation occur in other orientations, protonemata were reoriented to angles other than 90 degrees. Qualitative and quantitative light microscopic observations show that plastid sedimentation along the cell axis occurs in both upright and inverted cells. However, only some plastids fall and sedimentation is incomplete; plastids remain distributed throughout the length of the cell, and those plastids that sediment do not fall all the way to the bottom of the cell. Tip cells are gravitropic regardless of stimulation angle, and as in higher plants, the maximal rate of initial curvature is in response to a 120 degrees reorientation. Infrared videomicroscopy, time-lapse studies of living, inverted protonemata indicate that amyloplast sedimentation precedes upward curvature. Together, these data further support (i) the hypothesis that amyloplast sedimentation functions in gravitropic sensing in these cells, and (ii) the idea that gravity affected the evolution of cell organization.
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