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氦氖激光通过调节茄子中的生长激素和重编程代谢来加速种子发芽。

He-Ne laser accelerates seed germination by modulating growth hormones and reprogramming metabolism in brinjal.

机构信息

Department of Plant Sciences, Manipal School of Life Sciences, Manipal Academy of Higher Education, Manipal, Karnataka, 576104, India.

Department of Ageing Research, Manipal School of Life Sciences, Manipal Academy of Higher Education, Manipal, Karnataka, 576104, India.

出版信息

Sci Rep. 2021 Apr 12;11(1):7948. doi: 10.1038/s41598-021-86984-8.

Abstract

A plant's ability to maximize seed germination, growth, and photosynthetic productivity depends on its aptitude to sense, evaluate, and respond to the quality, quantity, and direction of the light. Among diverse colors of light possessing different wavelengths and red light shown to have a high impact on the photosynthetic and growth responses of the plants. The use of artificial light sources where the quality, intensity, and duration of exposure can be controlled would be an efficient method to increase the efficiency of the crop plants. The coherent, collimated, and monochromatic properties of laser light sources enabled as biostimulator compared to the normal light. The present study was attempted to use the potential role of the He-Ne laser as a bio-stimulator device to improve the germination and growth of brinjal and to investigate the possible interactions of plant and laser photons. A substantial enhancement was observed in germination index, germination time and seed vigor index of laser-irradiated than control groups. The enhanced germination rate was correlated with higher GA content and its biosynthetic genes whereas decreased ABA content and its catabolic genes and GA/ABA ratio were noted in laser-irradiated groups during seed germination than control groups. Further the expression of phytochrome gene transcripts, PhyA and PhyB1 were upregulated in laser-irradiated seedlings which correlate with enhanced seed germination than control. Elevated levels of primary metabolites were noted in the early stages of germination whereas modulation of secondary metabolites was observed in later growth. Consequently, significantly increased photosynthetic rate, stomatal conductance, and transpiration rate was perceived in laser-irradiated seedlings compare with control. The current study showed hormone and phytochrome-mediated mechanisms of seed germination in laser-irradiated groups along with the enhanced photosynthetic rate, primary and secondary metabolites.

摘要

植物最大限度地促进种子发芽、生长和光合作用生产力的能力取决于其感知、评估和响应光的质量、数量和方向的能力。在具有不同波长的各种颜色的光中,红光被证明对植物的光合作用和生长反应有很大的影响。使用可以控制质量、强度和暴露时间的人工光源将是提高作物效率的有效方法。与普通光相比,激光光源具有相干性、准直性和单色性的特性,可作为生物刺激剂。本研究试图利用氦氖激光作为生物刺激器设备的潜力来提高茄子的发芽和生长,并研究植物和激光光子之间的可能相互作用。与对照组相比,激光处理组的发芽指数、发芽时间和种子活力指数都有显著提高。增强的发芽率与较高的 GA 含量及其生物合成基因相关,而在激光处理组中,ABA 含量及其分解代谢基因和 GA/ABA 比值在种子发芽期间均低于对照组。此外,激光处理的幼苗中,光敏色素基因转录本 PhyA 和 PhyB1 的表达上调,与对照相比,发芽率提高。在发芽的早期阶段观察到初级代谢物水平升高,而在后期生长中观察到次生代谢物的调节。因此,与对照组相比,激光处理的幼苗中观察到显著增加的光合速率、气孔导度和蒸腾速率。本研究表明,在激光处理组中,激素和光敏色素介导的种子发芽机制与增强的光合速率、初级和次级代谢物有关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f68f/8042036/e9f85ae8754c/41598_2021_86984_Fig1_HTML.jpg

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