探讨注射器浸渍对烟草的影响。

IF 2.3 Q1 AGRICULTURE, MULTIDISCIPLINARY
ACS agricultural science & technology Pub Date : 2024-12-21 eCollection Date: 2025-01-20 DOI:10.1021/acsagscitech.4c00170
Cyril Routier, Carmen Hermida-Carrera, Eleni Stavrinidou
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引用次数: 0

摘要

植物渗透技术,特别是农业渗透技术,通过使植物基因工程或基因组研究的瞬时基因表达成为可能,已经改变了植物科学和生物技术。最近,渗透的使用已经扩展到在植物中引入纳米材料和聚合物来实现非原生功能。尽管它的广泛应用,渗透过程本身对植物生理的影响需要更好地了解。本研究使用典型的渗透缓冲溶液,研究了植物中常用的注射器渗透技术的效果。采用高分辨率热成像和孔隙度/荧光仪等非侵入性实时监测方法研究侵染植物的生理反应和胁迫水平。我们的研究结果显示,由于注射器压迫,浸润部位的局部细胞损伤,但整体细胞活力和组织完整性在很大程度上未受影响。入渗后叶片温度暂时升高,气孔导度发生变化,叶片在3 ~ 6 d内恢复。此外,荧光测量显示,最大量子效率(F v/F m)下降6%,光系统II (ΦPSII)量子产率下降34%,渗透后持续5天,表明持续的光系统效率变化。我们的工作强调了在进行生物学研究时考虑渗透影响的必要性,并旨在促进植物科学和生物技术常用方案的优化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigating the Effect of Syringe Infiltration on Nicotiana tabacum (Tobacco).

Plant infiltration techniques, particularly agroinfiltration, have transformed plant science and biotechnology by enabling transient gene expression for genetic engineering of plants or genomic studies. Recently, the use of infiltration has expanded to introduce nanomaterials and polymers in plants to enable nonnative functionalities. Despite its wide use, the impact of the infiltration process per se on plant physiology needs to be better understood. This study investigates the effect of syringe infiltration, a commonly employed technique in plants, using a typical infiltration buffer solution. Noninvasive and real-time monitoring methods, including high-resolution thermal imaging and a porometer/fluorometer, were used to study the physiological responses and stress levels of the infiltrated plants. Our results revealed localized cell damage at the infiltration site due to syringe compression, but the overall cell viability and tissue integrity were largely unaffected. Thermography showed a temporary temperature increase of the leaves and stomatal conductance alterations postinfiltration, with leaf recovery in 3-6 days. Additionally, fluorescence measurements indicated a 6% decrease in maximum quantum efficiency (F v/F m) and a 34% decrease in photosystem II (ΦPSII) quantum yield, persisting for 5 days after infiltration, suggesting sustained photosystem efficiency changes. Our work highlights the need to consider the effect of infiltration when performing biological studies and aims to facilitate the optimization of protocols commonly used in plant science and biotechnology.

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CiteScore
2.80
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