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Root-TRAPR:一种模块化植物生长装置,用于可视化根系发育并监测生长参数,应用于大麻的诱导子反应。

Root-TRAPR: a modular plant growth device to visualize root development and monitor growth parameters, as applied to an elicitor response of Cannabis sativa.

作者信息

Suwanchaikasem Pipob, Idnurm Alexander, Selby-Pham Jamie, Walker Robert, Boughton Berin A

机构信息

School of BioSciences, University of Melbourne, Melbourne, VIC, 3010, Australia.

Nutrifield Pty Ltd, Melbourne, VIC, 3020, Australia.

出版信息

Plant Methods. 2022 Apr 9;18(1):46. doi: 10.1186/s13007-022-00875-1.

Abstract

BACKGROUND

Plant growth devices, for example, rhizoponics, rhizoboxes, and ecosystem fabrication (EcoFAB), have been developed to facilitate studies of plant root morphology and plant-microbe interactions in controlled laboratory settings. However, several of these designs are suitable only for studying small model plants such as Arabidopsis thaliana and Brachypodium distachyon and therefore require modification to be extended to larger plant species like crop plants. In addition, specific tools and technical skills needed for fabricating these devices may not be available to researchers. Hence, this study aimed to establish an alternative protocol to generate a larger, modular and reusable plant growth device based on different available resources.

RESULTS

Root-TRAPR (Root-Transparent, Reusable, Affordable three-dimensional Printed Rhizo-hydroponic) system was successfully developed. It consists of two main parts, an internal root growth chamber and an external structural frame. The internal root growth chamber comprises a polydimethylsiloxane (PDMS) gasket, microscope slide and acrylic sheet, while the external frame is printed from a three-dimensional (3D) printer and secured with nylon screws. To test the efficiency and applicability of the system, industrial hemp (Cannabis sativa) was grown with or without exposure to chitosan, a well-known plant elicitor used for stimulating plant defense. Plant root morphology was detected in the system, and plant tissues were easily collected and processed to examine plant biological responses. Upon chitosan treatment, chitinase and peroxidase activities increased in root tissues (1.7- and 2.3-fold, respectively) and exudates (7.2- and 21.6-fold, respectively). In addition, root to shoot ratio of phytohormone contents were increased in response to chitosan. Within 2 weeks of observation, hemp plants exhibited dwarf growth in the Root-TRAPR system, easing plant handling and allowing increased replication under limited growing space.

CONCLUSION

The Root-TRAPR system facilitates the exploration of root morphology and root exudate of C. sativa under controlled conditions and at a smaller scale. The device is easy to fabricate and applicable for investigating plant responses toward elicitor challenge. In addition, this fabrication protocol is adaptable to study other plants and can be applied to investigate plant physiology in different biological contexts, such as plant responses against biotic and abiotic stresses.

摘要

背景

已经开发出植物生长装置,例如水培根系培养系统、根箱和生态系统构建装置(EcoFAB),以促进在可控实验室环境中对植物根系形态和植物-微生物相互作用的研究。然而,这些设计中的几种仅适用于研究拟南芥和短柄草等小型模式植物,因此需要进行修改才能扩展到农作物等更大的植物物种。此外,研究人员可能无法获得制造这些装置所需的特定工具和技术技能。因此,本研究旨在基于不同的可用资源建立一种替代方案,以生成更大、模块化且可重复使用的植物生长装置。

结果

成功开发了Root-TRAPR(根系透明、可重复使用、价格合理的三维打印根际水培)系统。它由两个主要部分组成,一个内部根系生长室和一个外部结构框架。内部根系生长室包括聚二甲基硅氧烷(PDMS)垫片、显微镜载玻片和丙烯酸板,而外部框架由三维(3D)打印机打印并用尼龙螺丝固定。为了测试该系统的效率和适用性,将工业大麻(大麻)在有或没有壳聚糖(一种用于刺激植物防御的著名植物激发子)的情况下种植。在该系统中检测了植物根系形态,并且易于收集和处理植物组织以检查植物的生物学反应。壳聚糖处理后,根组织中的几丁质酶和过氧化物酶活性分别增加了1.7倍和2.3倍,分泌物中的活性分别增加了7.2倍和21.6倍。此外,响应壳聚糖,植物激素含量的根冠比增加。在观察的2周内,大麻植株在Root-TRAPR系统中表现出生长矮小,便于植物处理,并允许在有限的生长空间内增加重复次数。

结论

Root-TRAPR系统有助于在可控条件下和较小规模上探索大麻的根系形态和根系分泌物。该装置易于制造,适用于研究植物对激发子挑战的反应。此外,这种制造方案适用于研究其他植物,并可应用于研究不同生物学背景下的植物生理学,例如植物对生物和非生物胁迫的反应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/22e3/8994333/5a009df9a21f/13007_2022_875_Fig1_HTML.jpg

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