可见光诱导活果蝇产生自由基

IF 3.9 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Ekin Daplan, Luca Turin
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引用次数: 0

摘要

可见光会在活体和完整的黑腹果蝇体内引发自由基的产生。我们将果蝇暴露在红光(613-631 纳米)、绿光(515-535 纳米)和蓝光(455-475 纳米)下,同时用电子自旋共振光谱仪(ESR/EPR)监测非配对电子含量的变化。对光的直接反应是自旋含量迅速增加,持续约 10 秒钟,然后是较慢的线性增加,持续约 170 秒钟。自旋产生的大小和时间进程取决于光的波长。起初,我们推测乌梅素可能是自旋变化的原因,因为它具有吸收可见光的能力和高度稳定的自由基含量。为了探讨这个问题,我们使用了不同黑色素含量的果蝇品系,并阐明了黑色素类型与自旋反应的关系。我们的研究结果表明,与黄色角质层的果蝇相比,深色角质层的果蝇的非配对电子至少多三倍。然而,出乎我们意料的是,不同基因型的苍蝇在光照下增加的非配对电子数量并无太大差异。这表明,光诱导自由基的产生可能并不完全依赖于黑色素的存在,而是取决于光对以醌为基础的角质层聚合物的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Free radical production induced by visible light in live fruit flies

Visible light triggers free radical production in alive and intact Drosophila melanogaster. We exposed fruit flies to red (613–631 nm), green (515–535 nm), and blue (455–475 nm) light while we monitored changes in unpaired electron content with an electron spin resonance spectrometer (ESR/EPR). The immediate response to light is a rapid increase in spin content lasting approximately 10 s followed by a slower, linear increase for approximately 170 s. When the light is turned off, the spin population promptly decays with a similar time course, though never fully returning to baseline. The magnitude and time course of the spin production depends on the wavelength of the light. Initially, we surmised that eumelanin might be responsible for the spin change because of its documented ability for visible light absorption and its highly stable free radical content. To explore this, we utilized different fruit fly strains with varying eumelanin content and clarified the relation of melanin types with the spin response. Our findings revealed that flies with darker cuticle have at least three-fold more unpaired electrons than flies with yellow cuticle. However, to our surprise, the increase in unpaired electron population by light was not drastically different amongst the genotypes. This suggests that light-induced free radical production may not exclusively rely on the presence of black melanin, but may instead be dependent on light effects on quinone-based cuticular polymers.

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来源期刊
CiteScore
12.10
自引率
1.90%
发文量
161
审稿时长
37 days
期刊介绍: The Journal of Photochemistry and Photobiology B: Biology provides a forum for the publication of papers relating to the various aspects of photobiology, as well as a means for communication in this multidisciplinary field. The scope includes: - Bioluminescence - Chronobiology - DNA repair - Environmental photobiology - Nanotechnology in photobiology - Photocarcinogenesis - Photochemistry of biomolecules - Photodynamic therapy - Photomedicine - Photomorphogenesis - Photomovement - Photoreception - Photosensitization - Photosynthesis - Phototechnology - Spectroscopy of biological systems - UV and visible radiation effects and vision.
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