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太空飞行重塑植物的生长策略。

Plant growth strategies are remodeled by spaceflight.

机构信息

Department of Horticultural Sciences, University of Florida, Gainesville, FL 32611, USA.

出版信息

BMC Plant Biol. 2012 Dec 7;12:232. doi: 10.1186/1471-2229-12-232.

Abstract

BACKGROUND

Arabidopsis plants were grown on the International Space Station within specialized hardware that combined a plant growth habitat with a camera system that can capture images at regular intervals of growth. The Imaging hardware delivers telemetric data from the ISS, specifically images received in real-time from experiments on orbit, providing science without sample return. Comparable Ground Controls were grown in a sister unit that is maintained in the Orbital Environment Simulator at Kennedy Space Center. One of many types of biological data that can be analyzed in this fashion is root morphology. Arabidopsis seeds were geminated on orbit on nutrient gel Petri plates in a configuration that encouraged growth along the surface of the gel. Photos were taken every six hours for the 15 days of the experiment.

RESULTS

In the absence of gravity, but the presence of directional light, spaceflight roots remained strongly negatively phototropic and grew in the opposite direction of the shoot growth; however, cultivars WS and Col-0 displayed two distinct, marked differences in their growth patterns. First, cultivar WS skewed strongly to the right on orbit, while cultivar Col-0 grew with little deviation away from the light source. Second, the Spaceflight environment also impacted the rate of growth in Arabidopsis. The size of the Flight plants (as measured by primary root and hypocotyl length) was uniformly smaller than comparably aged Ground Control plants in both cultivars.

CONCLUSIONS

Skewing and waving, thought to be gravity dependent phenomena, occur in spaceflight plants. In the presence of an orienting light source, phenotypic trends in skewing are gravity independent, and the general patterns of directional root growth typified by a given genotype in unit gravity are recapitulated on orbit, although overall growth patterns on orbit are less uniform. Skewing appears independent of axial orientation on the ISS - suggesting that other tropisms (such as for oxygen and temperature) do not influence skewing. An aspect of the spaceflight environment also retards the rate of early Arabidopsis growth.

摘要

背景

拟南芥植物在国际空间站内的专用硬件中生长,该硬件将植物生长栖息地与可定期拍摄生长图像的摄像系统相结合。成像硬件提供来自国际空间站的遥测数据,特别是从轨道实验实时接收的图像,无需样本返回即可提供科学信息。在肯尼迪航天中心的轨道环境模拟器中维护的姊妹单元中进行了可比的地面控制。可以以这种方式分析的许多类型的生物数据之一是根系形态。在轨道上,拟南芥种子在营养凝胶 Petri 板上发芽,其配置鼓励在凝胶表面生长。在实验的 15 天中,每六小时拍摄一次照片。

结果

在没有重力但存在定向光的情况下,空间飞行根仍然强烈负向向光性,并向与芽生长相反的方向生长;然而,WS 和 Col-0 品种在其生长模式上表现出两个明显的差异。首先,在轨道上,WS 品种明显向右转,而 Col-0 品种生长时几乎没有偏离光源。其次,太空飞行环境也影响了拟南芥的生长速度。飞行植物(通过主根和下胚轴长度测量)的大小在两个品种中均小于同期的地面控制植物。

结论

摆动和弯曲,被认为是受重力影响的现象,在空间飞行植物中发生。在定向光源的存在下,倾斜的表型趋势与重力无关,并且在单位重力下特定基因型的定向根系生长的总体模式在轨道上重现,尽管轨道上的整体生长模式不太均匀。倾斜似乎独立于 ISS 上的轴向方向 - 表明其他向性(例如氧气和温度)不会影响倾斜。太空飞行环境的一个方面也会减缓早期拟南芥生长的速度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/74c2/3556330/7ec1a9b95ac4/1471-2229-12-232-1.jpg

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