The role of sulfides and thiols in the marine copper cycle
The role of sulfides and thiols in the marine copper cycle
批准号:
2112708
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2018
资助国家:
英国
项目状态:
已结题
起止时间:
2018 至 --
中文摘要
铜是一种必需的微量营养素,促进了海洋微生物中许多重要的生物地球化学过程,也是公认的藻类细胞毒剂。开阔海域的总铜浓度很低(约1-3海里),而沿海系统的铜总浓度可达数十海里。人们认为,只有游离形式的铜(水合Cu2+)才是生物可利用的形式,其浓度低至10 PM,对海洋微生物具有强烈的毒害作用。铜与有机配体的广泛络合(>;99.9%)将游离铜保持在较低的安全水平,随着海洋酸化的进行,预计铜的浓度将显著增加。因此,了解铜的配位体库是至关重要的。微生物能够通过产生硫醇来抵消Cu2+浓度的毒性效应。硫醇是一种含有巯基(S-H)的有机化合物,能够与包括铜在内的金属形成高度稳定的络合物。硫醇以许多不同的形式存在,如谷胱甘肽(GSH)、半胱氨酸、硫代乙醇酸,以及可能还有许多目前在海洋系统中尚未发现的形式。它们是由地表水中的生物产生的,可能是调节地表水中铜的生物有效性的主要络合剂之一。除了与有机配体形成强大的络合物外,铜离子还与硫化物形成络合物,在水热等还原环境中最常见的络合作用。在这个项目中,我们使用伏安法作为一种高灵敏的分析技术,允许在亚纳米级检测硫醇和/或硫化物化合物,并确定在滴定实验中获得的铜形态参数(配体浓度和稳定常数)。将进行一系列实验,研究硫醇的生物地球化学行为,探索它们在有/无光和不同温度下对铜的稳定性和络合能力。铜络合参数与硫醇络合能力的比较将评估硫醇在控制氧化良好的地表水中铜的有机形态方面的作用。我们还有兴趣更好地了解水热系统中可能影响铜与硫化物络合的参数,例如温度,并评估这种络合可能如何影响铜从通风口向外的运输。这些信息将进一步加深我们对硫醇和硫化物在控制铜生物地球化学循环中的作用的理解。
英文摘要
Copper (Cu) is an essential micronutrient that facilitates many significant biogeochemical processes in marine microbes and is also a well-recognised toxic agent for algal cells. Total Cu concentrations in open oceans are low (approximately 1-3 nM) while they can reach tens of nM in coastal systems. It is believed that only Cu in its free form, (hydrated Cu2+) is the bioavailable form with concentrations as low as 10pM of Cu2+ being a potent toxicant to marine microbes. Extensive complexation (>99.9%) of Cu with organic ligands maintain free Cu at low safe levels and with on-going ocean acidification, the concentration of Cu2+ is predicted to significantly increase. Understanding of the copper ligand pool is thus of prime importance. Microbes are able to counteract the toxic effects of Cu2+ concentrations by producing thiols. Thiols are organic compounds that contain a sulfhydryl group (S-H) and are able to form highly stable complexes with metals, including copper. Thiols exist in a number of different forms such as glutathione (GSH), cysteine, thioglycolic acid and possibly many more that have not yet currently been identified in the marine system. They are produced by the biology in surface waters and may be one of the main complexing agent regulating the bioavailability of copper in surface waters. In addition to forming strong complexes with organic ligands, copper ions also complex with sulphide species, complexation that is most predominant in reducing environment such as hydrothermal systems .In this project, we are using voltammetry as a highly sensitive analytical technique that allows detection in the sub nM levels of thiols and/or sulfide compounds as well as the determination of Cu speciation parameters (ligand concentrations and stability constants) obtained during titration experiments. A series of experiments will be carried out looking into the biogeochemical behavior of thiols, probing their stability and complexation capability towards Cu in presence/absence of lights and at various temperatures. Comparison of copper complexation parameters with thiols complexing abilities will assess the role of thiols in controlling copper organic speciation in well oxygenated surface waters. We are also interested in better understanding the parameters that might affect the complexation of copper with sulphide, e.g. temperature, in hydrothermal system and assess how this complexation might affect the transport of copper away from the vents. This information will further our understanding on the roles of thiols and sulphide in controlling the copper biogeochemical cycle.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
海外基金