Rishan Sakib Tahmid, Kline Richard J, Rahman Md Saydur
Biochemistry and Molecular Biology Program, School of Integrative Biological and Chemical Sciences, University of Texas Rio Grande Valley, Brownsville, Texas, USA.
Biochemistry and Molecular Biology Program, School of Integrative Biological and Chemical Sciences, University of Texas Rio Grande Valley, Brownsville, Texas, USA; School of Earth, Environmental, and Marine Sciences, University of Texas Rio Grande Valley, Brownsville, Texas, USA.
Chemosphere. 2024 Mar;351:141238. doi: 10.1016/j.chemosphere.2024.141238. Epub 2024 Jan 17.
The rise in worldwide population has led to a noticeable spike in the production, consumption, and transportation of energy and food, contributing to elevated environmental pollution. Marine pollution is a significant global environmental issue with ongoing challenges, including plastic waste, oil spills, chemical pollutants, and nutrient runoff, threatening marine ecosystems, biodiversity, and human health. Pollution detection and assessment are crucial to understanding the state of marine ecosystems. Conventional approaches to pollution evaluation usually represent laborious and prolonged physical and chemical assessments, constraining their efficacy and expansion. The latest advances in environmental DNA (eDNA) are valuable methods for the detection and surveillance of pollution in the environment, offering enhanced sensibility, efficacy, and involvement. Molecular approaches allow genetic information extraction from natural resources like water, soil, or air. The application of eDNA enables an expanded evaluation of the environmental condition by detecting both identified and unidentified organisms and contaminants. eDNA methods are valuable for assessing community compositions, providing indirect insights into the intensity and quality of marine pollution through their effects on ecological communities. While eDNA itself is not direct evidence of pollution, its analysis offers a sensitive tool for monitoring changes in biodiversity, serving as an indicator of environmental health and allowing for the indirect estimation of the impact and extent of marine pollution on ecosystems. This review explores the potential of eDNA metabarcoding techniques for detecting and identifying marine pollutants. This review also provides evidence for the efficacy of eDNA assessment in identifying a diverse array of marine pollution caused by oil spills, harmful algal blooms, heavy metals, ballast water, and microplastics. In this report, scientists can expand their knowledge and incorporate eDNA methodologies into ecotoxicological research.
全球人口的增长导致能源和食品的生产、消费及运输显著增加,造成环境污染加剧。海洋污染是一个重大的全球环境问题,面临诸多挑战,包括塑料垃圾、石油泄漏、化学污染物和营养物质径流等,威胁着海洋生态系统、生物多样性和人类健康。污染检测和评估对于了解海洋生态系统状况至关重要。传统的污染评估方法通常需要进行繁琐且耗时的物理和化学评估,限制了其有效性和推广。环境DNA(eDNA)的最新进展是检测和监测环境污染的有价值方法,具有更高的灵敏度、有效性和参与度。分子方法能够从水、土壤或空气等自然资源中提取遗传信息。eDNA的应用通过检测已识别和未识别的生物及污染物,实现了对环境状况的更广泛评估。eDNA方法对于评估群落组成很有价值,通过其对生态群落的影响,间接洞察海洋污染的强度和质量。虽然eDNA本身并非污染的直接证据,但其分析提供了一个监测生物多样性变化的灵敏工具,作为环境健康的指标,并允许间接估计海洋污染对生态系统的影响程度和范围。本综述探讨了eDNA元条形码技术在检测和识别海洋污染物方面的潜力。本综述还为eDNA评估在识别由石油泄漏、有害藻华、重金属、压载水和微塑料造成的各种海洋污染方面的有效性提供了证据。在本报告中,科学家可以扩展他们的知识,并将eDNA方法纳入生态毒理学研究。