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砷酸盐和亚砷酸盐对两种固氮蓝藻(念珠藻和鱼腥藻)的抑制和恢复作用:时间依赖性毒性调节研究。

Arsenate and arsenite-induced inhibition and recovery in two diazotrophic cyanobacteria Nostoc muscorum and Anabaena sp.: study on time-dependent toxicity regulation.

机构信息

Ranjan Plant Physiology and Biochemistry Laboratory, Department of Botany, University of Allahabad, Prayagraj, 211002, India.

出版信息

Environ Sci Pollut Res Int. 2021 Oct;28(37):51088-51104. doi: 10.1007/s11356-021-13800-1. Epub 2021 May 11.

DOI:10.1007/s11356-021-13800-1
PMID:33974205
Abstract

Exposure time, metal bio-accumulation, and upregulation of ascorbate-glutathione (AsA-GSH) cycle are the key factor that provide tolerance against heavy metal stress. Thus, the current study is an endeavor to prove our hypothesis that regulation of arsenate (As: 50, 100, and 150 mM) and arsenite (As: 50, 100, and 150 μM) toxicity is time dependent (48-96 h) due to modulation in bio-accumulation pattern, AsA-GSH cycle, and non-enzymatic antioxidants in two paddy field cyanobacteria Nostoc muscorum ATCC27893 and Anabaena sp. PCC7120. After 48 h, reduction in growth associated with increased sensitivity index, As bio-accumulation, and oxidative stress was observed which further intensified after 96 h but the degree of damage was lesser than 48 h. It denotes a significant recovery in growth after 96 h which is correlated with decreased As bio-accumulation and oxidative stress due to increased efficiency of AsA-GSH cycle and non-enzymatic antioxidants. Both the species of As caused significant rise in oxidative biomarkers as evident by in -vitro analysis of O, HO, and MDA equivalent contents despite appreciable rise in the activity antioxidative enzymes APX, DHAR, and GR. The study concludes that among both forms of arsenic, As induced more toxic effect on growth by over-accumulating the ROS as evident by weak induction of AsA-GSH cycle to overcome the stress as compared to As. Further, with increasing the time exposure, apparent recovery was noticed with the lower doses of As, i.e., 50 and 100 mM and As, i.e., 50 and 100 μM; however, the toxicity further aggravated with higher dose of both As and As. Study proposes the deleterious impact of As and As on cyanobacteria N. muscorum and Anabaena sp. but the toxicity was overcome by time-dependent recovery.

摘要

暴露时间、金属生物积累、抗坏血酸-谷胱甘肽(AsA-GSH)循环的上调是提供重金属胁迫耐受的关键因素。因此,本研究旨在证明我们的假设,即砷酸盐(As:50、100 和 150mM)和亚砷酸盐(As:50、100 和 150μM)毒性是时间依赖性的(48-96 小时),这是由于生物积累模式、AsA-GSH 循环和两种稻田蓝藻念珠藻 ATCC27893 和鱼腥藻 PCC7120 中非酶抗氧化剂的调节。48 小时后,观察到生长减少伴随着敏感性指数增加、As 生物积累和氧化应激增加,96 小时后进一步加剧,但程度小于 48 小时。这表示在 96 小时后生长显著恢复,这与 As 生物积累和氧化应激的降低有关,这是由于 AsA-GSH 循环和非酶抗氧化剂的效率提高。两种 As 形式都导致了氧化生物标志物的显著升高,这在体外分析 O、HO 和 MDA 当量含量时显而易见,尽管抗氧化酶 APX、DHAR 和 GR 的活性明显升高。研究得出结论,在两种砷形式中,As 通过过度积累 ROS 对生长产生更毒性的影响,这与 AsA-GSH 循环的弱诱导以克服应激相比更为明显。此外,随着暴露时间的增加,在较低剂量的 As(50 和 100mM)和 As(50 和 100μM)时观察到明显的恢复,但随着两种 As 和 As 的剂量增加,毒性进一步加重。研究提出了 As 和 As 对蓝藻念珠藻和鱼腥藻的有害影响,但毒性通过时间依赖性恢复得到克服。

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