Green light

  • 文章类型: Journal Article
    世界上约有7%的男性人口与相当大的情况纠缠在一起,这被称为男性不育。光生物调节疗法(PBMT)是低水平激光辐射的应用,最近用于增加或促进各种细胞功能,包括,扩散,分化,ATP生产,基因表达,调节活性氧香料(ROS),并促进组织愈合和减少炎症。本系统综述的主要思想是对PBMT在四个光范围波长(蓝色,绿色,红色,近红外(NIR)对精子细胞特性的影响,在体外和体内。在这项研究中,PubMed,谷歌学者,和Scopus数据库用于2003-2023年发表的摘要和全文科学论文,这些论文报道了PBM在精子细胞上的应用。适用纳入和排除审查的标准。最后,包括了与我们的目标相匹配的研究,机密,并详细报道。此外,搜索的研究被细分为四个范围的光照射的影响,包括蓝光范围(400-500nm),绿光范围(500-600nm),红光范围(600-780nm),以及对人类或动物精子细胞进行激光照射的NIR光范围(780-3000nm),在体外或体内的情况下。搜索我们的关键词会产生137篇论文。经过初步分析,一些文章被排除在外,因为它们是综述文章或不完整且不相关的研究.最后,我们使用63篇文章进行本系统综述。我们的分类表是基于照射的光线范围,精子细胞(人或动物细胞)的来源,并且在体外或体内。6%的出版物报道了蓝色的影响,10%绿色,53%红色和31%近红外,光在精子细胞上。总的来说,大多数研究表明PBMT对精子细胞运动有积极作用。PBMT在不同波长范围内的各种效应,正如这篇评论中提到的,为其在改善精子特性方面的潜在应用提供更多见解。PBMT作为一种治疗方法,对于治疗不同的医学问题具有显著的有效性。由于该领域缺乏报告数据,需要未来的研究来评估PBMT对精子细胞的生化和分子效应,以便在ART过程之前将这种治疗应用于人类精子细胞.
    Around 7% of the male population in the world are entangle with considerable situation which is known as male infertility. Photobiomodulation therapy (PBMT) is the application of low-level laser radiation, that recently used to increase or promote the various cell functions including, proliferation, differentiation, ATP production, gene expressions, regulation of reactive oxygen spices (ROS), and also boost the tissue healing and reduction of inflammation. This systematic review\'s main idea is a comprehensive appraisal of the literatures on subjects of PBMT consequences in four light ranges wavelength (blue, green, red, near-infrared (NIR)) on sperm cell characteristics, in vitro and in vivo. In this study, PubMed, Google Scholar, and Scopus databases were used for abstracts and full-text scientific papers published from 2003-2023 that reported the application of PBM on sperm cells. Criteria\'s for inclusion and exclusion to review were applied. Finally, the studies that matched with our goals were included, classified, and reported in detail. Also, searched studies were subdivided into the effects of four ranges of light irradiation, including the blue light range (400-500 nm), green light range (500-600 nm), red light range (600-780 nm), and NIR light range (780-3000 nm) of laser irradiation on human or animal sperm cells, in situations of in vitro or in vivo. Searches with our keywords results in 137 papers. After primary analysis, some articles were excluded because they were review articles or incomplete and unrelated studies. Finally, we use the 63 articles for this systematic review. Our category tables were based on the light range of irradiation, source of sperm cells (human or animal cells) and being in vitro or in vivo. Six% of publications reported the effects of blue, 10% green, 53% red and 31% NIR, light on sperm cell. In general, most of these studies showed that PBMT exerted a positive effect on the sperm cell motility. The various effects of PBMT in different wavelength ranges, as mentioned in this review, provide more insights for its potential applications in improving sperm characteristics. PBMT as a treatment method has significant effectiveness for treatment of different medical problems. Due to the lack of reporting data in this field, there is a need for future studies to assessment the biochemical and molecular effects of PBMT on sperm cells for the possible application of this treatment to the human sperm cells before the ART process.
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  • 文章类型: Journal Article
    光是驱动植物碳代谢的基本要求,并支持地球上的生命。光谱质量极大地影响植物形态,生理学,和各种生化途径的代谢。在可见光光谱中,红色,蓝色,和绿光波长会影响植物生长和生产力的几种机制。此外,补充红色,蓝色,或其他波长的绿光对植物生物学表现出生动的影响。然而,植物的反应在不同的物种和生长条件下不同。这篇综述文章提供了对现有知识的详细视图和解释,并阐明了潜在的机制,蓝色,和绿色光谱影响植物形态生理,生物化学,和分子参数对提高作物产量做出重大贡献,水果品质,疾病控制,植物修复潜力,和资源使用效率。
    Light is a basic requirement to drive carbon metabolism in plants and supports life on earth. Spectral quality greatly affects plant morphology, physiology, and metabolism of various biochemical pathways. Among visible light spectrum, red, blue, and green light wavelengths affect several mechanisms to contribute in plant growth and productivity. In addition, supplementation of red, blue, or green light with other wavelengths showed vivid effects on the plant biology. However, response of plants differs in different species and growing conditions. This review article provides a detailed view and interpretation of existing knowledge and clarifies underlying mechanisms that how red, blue, and green light spectra affect plant morpho-physiological, biochemical, and molecular parameters to make a significant contribution towards improved crop production, fruit quality, disease control, phytoremediation potential, and resource use efficiency.
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  • 文章类型: Journal Article
    动物对可能危及其完整性的令人不快的刺激作出反应的能力被称为伤害感受。药物治疗对伤害感受没有显示出令人满意的结果。在最近的时代,光疗法成为治疗各种疾病的潜在非药物方法,包括季节性情感障碍,偏头痛,疼痛,和其他人。评估绿光暴露对伤害感受的潜力涉及研究其对不同类型的疼痛和疼痛相关状况的影响,并确定最佳的暴露方法。这篇综述提供了绿光对减少疼痛频率的有益影响。对伤害性感受的绿光照射改变了细胞中疼痛相关基因和蛋白质的活性。这篇综述可以提供对绿光调节疼痛的潜在机制的见解。总的来说,评估绿光暴露对伤害感受的潜力需要多学科的方法,并应考虑安全性,功效,最佳剂量,以及绿光暴露的持续时间和疼痛的类型。然而,到目前为止,很少有研究报道;因此,治疗偏头痛的光疗法需要对动物模型进行更多的研究,以提供光对伤害感受的精确结果。
    The capacity of animals to react to unpleasant stimuli that might endanger their integrity is known as nociception. Pharmacological treatments do not show satisfactory results in response to nociception. In the recent era, light therapy emerged as a potential non-pharmacological approach for treating various diseases, including seasonal affective disorders, migraine, pain, and others. Evaluating the potential of green light exposure on nociception involves studying its effects on different types of pain and pain-related conditions and determining the optimal exposure methods. This review provides the beneficial effects of green light on the reduction in the frequency of pain. The green light exposure on nociception changes the activity of pain-related genes and proteins in cells. This review could provide insights into the underlying mechanisms by which green light modulates pain. Overall, evaluating the potential of green light exposure on nociception requires a multidisciplinary approach and should consider the safety, efficacy, optimal dose, and duration of green light exposure and the type of pain. However, few studies have been reported so far; therefore, light therapy for treating migraines require more studies on animal models to provide precise results of light effects on nociception.
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