Treatment of copper nanoparticles (CuNPs) for two spermatogenic cycles impairs testicular activity via down-regulating steroid receptors and inhibition of germ cell proliferation in a mice model.

IF 3.6 3区 医学 Q3 NANOSCIENCE & NANOTECHNOLOGY
Nanotoxicology Pub Date : 2022-06-01 Epub Date: 2022-10-18 DOI:10.1080/17435390.2022.2133647
Vanrohlu Nicy, Milirani Das, Guruswami Gurusubramanian, Pradip Mondal, Vikas Kumar Roy
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引用次数: 3

Abstract

Although copper is an indispensable trace metal for biological functions, its excess exposure causes hazardous effects on health. Copper in the form of nanoparticles (CuNPs) is widely used at present and therefore, the living organism is at continuous risk of its adverse effect. The prolonged treatment of CuNPs has not been evaluated yet on the male reproductive system. To demonstrate the combined adverse effects and the mechanism of copper nanoparticles (CuNPs), three doses of CuNPs, 10, 100 and 200 mg/kg were orally given to mice for 70 days. The present study demonstrated that CuNPs decreased the sperm quality parameters, male circulating hormones, induces testicular damages, increased oxidative stress, apoptosis, decreases antioxidant enzymes, germ cell proliferation, and increases the expression of 8-oxoguanine DNA glycosylase-1 (OGG1), apelin receptor (APJ) as well. CuNPs also down-regulated the expression of AR and Erα in the testis. These results suggest that CuNPs manifested their adverse effect on testis via modulating steroid and cytokine (apelin) receptors. The adverse effect of testis was most pronounced at the highest dose (200 mg/kg) of CuNPs, however, other doses show a less toxic effect on various parameters. In conclusion, results indicated that CuNPs may impair spermatogenesis via oxidative stress-mediated DNA damage and germ cell apoptosis at high doses.

在小鼠模型中,纳米铜粒子(CuNPs)会通过下调类固醇受体和抑制生殖细胞增殖来损害睾丸活性,并持续两个生精周期。
尽管铜是生物功能不可或缺的微量金属,但过量接触铜会对健康造成危害。目前,以纳米颗粒(CuNPs)形式存在的铜被广泛使用,因此,生物体持续面临其不良影响的风险。目前尚未评估 CuNPs 的长期处理对男性生殖系统的影响。为了证明纳米铜粒子(CuNPs)的综合不良影响和机制,研究人员给小鼠口服了 10、100 和 200 毫克/千克三种剂量的 CuNPs,持续 70 天。本研究表明,CuNPs 会降低精子质量指标、雄性循环激素、诱导睾丸损伤、增加氧化应激和细胞凋亡、减少抗氧化酶和生殖细胞增殖,并增加 8-氧代鸟嘌呤 DNA 糖基化酶-1(OGG1)和凋亡素受体(APJ)的表达。CuNPs 还能下调睾丸中 AR 和 Erα 的表达。这些结果表明,CuNPs 通过调节类固醇和细胞因子(apelin)受体对睾丸产生不良影响。最高剂量(200 毫克/千克)的 CuNPs 对睾丸的不良影响最为明显,但其他剂量的 CuNPs 对各种参数的毒性影响较小。总之,研究结果表明,高剂量的 CuNPs 可能会通过氧化应激介导的 DNA 损伤和生殖细胞凋亡损害精子发生。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Nanotoxicology
Nanotoxicology 医学-毒理学
CiteScore
10.10
自引率
4.00%
发文量
45
审稿时长
3.5 months
期刊介绍: Nanotoxicology invites contributions addressing research relating to the potential for human and environmental exposure, hazard and risk associated with the use and development of nano-structured materials. In this context, the term nano-structured materials has a broad definition, including ‘materials with at least one dimension in the nanometer size range’. These nanomaterials range from nanoparticles and nanomedicines, to nano-surfaces of larger materials and composite materials. The range of nanomaterials in use and under development is extremely diverse, so this journal includes a range of materials generated for purposeful delivery into the body (food, medicines, diagnostics and prosthetics), to consumer products (e.g. paints, cosmetics, electronics and clothing), and particles designed for environmental applications (e.g. remediation). It is the nano-size range if these materials which unifies them and defines the scope of Nanotoxicology . While the term ‘toxicology’ indicates risk, the journal Nanotoxicology also aims to encompass studies that enhance safety during the production, use and disposal of nanomaterials. Well-controlled studies demonstrating a lack of exposure, hazard or risk associated with nanomaterials, or studies aiming to improve biocompatibility are welcomed and encouraged, as such studies will lead to an advancement of nanotechnology. Furthermore, many nanoparticles are developed with the intention to improve human health (e.g. antimicrobial agents), and again, such articles are encouraged. In order to promote quality, Nanotoxicology will prioritise publications that have demonstrated characterisation of the nanomaterials investigated.
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