期刊文献+

海洋胶态物质的生物地球化学循环研究 被引量:1

Studies on biogeochemistry cycle of marine colloids
在线阅读 下载PDF
导出
摘要 对近年海洋胶态物质生物地球化学循环研究的进展做了综述。总结了生物影响效应领域的新技术、新成果。切向超滤技术在海洋学上应用促进了海洋胶态物质进一步研究。研究表明,海洋胶态物质的存在对海洋生物影响有着重要的意义,尤其是近岸海域海洋胶态物质有机物含量的增加促进了藻类的繁殖和生长,甚至引发赤潮。胶态物质与金属及其他痕量元素的结合影响了其赋存形态及生物地球化学循环。近年来对胶态物质的生物可利用性的研究结果表明胶态物质对生物的金属可利用性有着重要的影响,使得人们重新考虑已发展建立的自由基活度模型(free ion activity model,FIAM);深入理解生物体内胶态物质的吸收和相关的生理过程将有助于海洋胶态物质的生态效应以及生物可利用性等方面的研究。 Studles on the biogeochemistry cycle of the marine colloidal matters were reviewed in this paper. The application of advanced techniques, such as cross-flow ultrafiltration, in researches on the colloidal matters greatly promoted studies on the marine colloids. The marine colloids were bioavailable to microalgae, bivalves and other marine organisms. The binding of metals and other trace elements may control the forms of these elements and thus affects the marine biogeochemistry of them. The recent studies suggest that uptake may vary from a predominant uptake of free-ionic forms to direct ingestion of high molecular weight (HMW) or colloidal complex metals and different mechanisms may operate for different functional groups of aquatic organisms in the accumulation metals. One challenge is to understand the functional physiology in different groups in the aquatic organisms in controlling metal bioavailability from the colloidal phase.
出处 《海洋环境科学》 CAS CSCD 北大核心 2008年第4期387-390,共4页 Marine Environmental Science
基金 国家自然科学基金(40406024) 国家"973"计划(2002CB412406) 山东省自然科学基金(2006ZRA02063)
关键词 海洋胶态物质 生物地球化学循环 生物可利用性 吸收 机理 marine colloids biogeochemistry bioavailability uptake mechanism
  • 相关文献

参考文献8

二级参考文献135

共引文献58

同被引文献77

  • 1傅凤,刘振乾,陈传红.纳米铜粉对浮游植物生长的影响[J].生态科学,2007,26(2):126-130. 被引量:15
  • 2Poizot P,Laruelle S,Grugeon S,et al.Nano-sized transition-metal oxides as negative-electrode materials for lithium-ion batteries[J].Nature,2000,407(6803):496-499.
  • 3Service R F.Nanotoxicology.Nanotechnology grows up[J].Science,2004,304(5678):1732-1734.
  • 4DeRosa M C,Monreal C,Schnitzer M,et al.Nanotechnology in fertilizers[J].Nature Nanotechnology,2010,5(2):91.
  • 5Zhan H,Jiang Y,Ma Q.Determination of adsorption characteristics of metal oxide nanomaterials:Application as adsorbents[J].Analytical Letters,2014,47(5):871-884.
  • 6Subramanian V,Semenzin E,Hristozov D,et al.Sustainable nanotechnology:Defining,measuring and teaching[J].Nano Today,2014,6(1):6-9.
  • 7Matranga V,Corsi I.Toxic effects of engineered nanoparticles in the marine environment:Model organisms and molecular approaches[J].Marine Environmental Research,2012,76:32-40.
  • 8Navarro E,Piccapietra F,Wagner B,et al.Toxicity of silver nanopartieles to Chlamydomonas reinhardtii[J].Environmental Science & Technology,2008,42(23):8959-8964.
  • 9Arora S,Rajwade J M,Paknikar K M.Nanotoxicology and in vitro studies:The need of the hour[J].Toxicology and Applied Pharmacology,2012,258(2):151-165.
  • 10Fabrega J,Luoma S N,Tyler C R,et al.Silver nanoparticles:Behaviour and effects in the aquatic environment[J].Environment International,2011,37(2):517-531.

引证文献1

二级引证文献3

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部