模拟微重力对烟草花叶病毒的影响

N. Sus, A. Orlovskyi, O. Boyko, V. Tsvigun, A. Boyko
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引用次数: 3

摘要

Сlinorotation是治疗某些植物病毒引起的疾病的有效方法。因此,我们研究了微重力对烟草花叶病毒(TMV)的影响。已知感染了TMV的植物细胞中含有病毒包涵体或病毒质,病毒包涵体的数量与TMV的危害性有关。因此,本研究的目的是研究模拟微重力对TMV包涵体的影响。本研究利用挪威枫(Acer platanoides L.)中分离的TMV对烟草进行接种。然后我们将这些植物分为两组,分别在正常和微重力条件下进行培养。微重力条件下,每天以2转/分的速度旋转4小时。试验期36 d。用荧光显微镜观察了在正常和微重力条件下培养的植物细胞中TMV包涵体数量的变化。我们发现,与正常条件下相比,微重力条件下TMV包涵体的形成首先减慢,然后其数量迅速减少。这些结果证明了TMV的重力敏感性。假设这种病毒质模式是由皮质微管相关内质网位点(C-MERS)的紊乱引起的,这些位点是细胞运输途径的节点,也是皮质微管和皮质微丝的成核中心。众所周知,在微重力条件下,皮层微管的组织和定向紊乱,从而稳定了TMV病毒质形成的C-MERS。因此,在微重力的影响下,皮层微管的紊乱和定向障碍可能导致C-MERS的紊乱,从而导致TMV病毒质数量的减少。在这种情况下,值得注意的是,一些植物病毒,如小麦条纹花叶病毒(WSMV),马铃薯病毒M (PVM)和马铃薯卷曲矮病毒(PCDV),是严重敏感的。这些病毒属于不同的分类群,如WSMV属于三头病毒属(potyvirridae), PVM属于卡拉病毒属(Betaflexiviridae), PCDV属于植物横纹肌病毒(分类位置不确定),并且在结构和功能上都存在差异。因此,这些病毒的重力敏感性可以通过其他机制发生。因此,基于TMV重敏感性的旋转抗病毒治疗效果可用于生产无病毒种子。为了证实这一假设,有必要进行系统综述,并通过实验确定C-MERS在微重力条件下的解体事实。
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Influence of modeled microgravity on tobacco mosaic virus
Сlinorotation is an effective method of treating diseases caused by some plant viruses. Therefore, we researched the influence of microgravity (modeled by сlinorotation) on a tobacco mosaic virus (TMV) that infects many agricultural crops. It is known that cells of plants (infected with TMV) contain viral inclusion bodies or viroplasms and amount of viral inclusion bodies correlates with harmfulness of TMV. Therefore, the purpose of this study was to find out the effect of influence of modeled microgravity on inclusion bodies of TMV. In this study, we cultivated Nicotiana tabacum L. and inoculated them with TMV that was isolated from Norway maple (Acer platanoides L.). Then we divided these plants into two groups and cultivated these plants under normal and microgravitation conditions. Microgravity conditions were modeled by сlinorotation at 2 rpm for 4 hours a day. This experiment lasted 36 days. Changes of the amount of TMV inclusion bodies in cells of plants that cultivated under normal and microgravitation conditions was investigated by luminescence microscopy. We found that formation of TMV inclusion bodies under microgravitation conditions is first slowed down compared to formation under normal conditions and then their amount quickly decreasing. These results demonstrate the gravisensitivity of TMV. It was suggested hypothesis that this viroplasm pattern caused by the disorganization of cortical microtubule-associated ER sites (C-MERS) that are nodes of cellular transport pathways and nucleation centers of cortical microtubules and cortical microfilaments. It is known that under microgravity conditions there is a disorganization and disorientation of cortical microtubules, which stabilize C-MERS on which TMV viroplasms are formed. Thus, the disorganization and disorientation of cortical microtubules probably causes the disorganization of C-MERS, which leads to a decrease in the number of TMV viroplasms under the influence of microgravity. In this context, it is worth noting that some plant viruses, such as a Wheat streak mosaic virus (WSMV), a Potato virus M (PVM) and Potato curly dwarf virus (PCDV), are gravisensitive. These viruses belong to different taxa, for example WSMV belong to genus Tritimovirus (family Potyviridae), PVM belong to genus Carlavirus (family Betaflexiviridae) and PCDV belong to plant rhabdoviruses (uncertain taxonomic position), and differ both structurally and functionally. Therefore, the gravisensitivity of these viruses can occur by other mechanisms. Thus, antiviral therapeutic effect of clinorotation based on gravisensitivity of TMV and can be used in the production of virus-free seeds. To confirm this hypothesis, it is necessary to conduct a systematic review, as well as experimentally establish the fact of the disorganization of the C-MERS under microgravity conditions.
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