Bioconcentration Model for Non-Ionic, Polar, and Ionizable Organic Compounds in Amphipod

被引:11
|
作者
Chen, Ciara Chun [1 ,2 ]
Kuo, Dave Ta Fu [1 ,2 ]
机构
[1] City Univ Hong Kong, Dept Architecture & Civil Engn, Kowloon, Hong Kong, Peoples R China
[2] City Univ Hong Kong, Shenzhen Res Inst, Shenzhen, Peoples R China
基金
中国国家自然科学基金;
关键词
Bioconcentration; Aquatic invertebrate; Risk assessment; Non-ionic organic compound; Polar and ionizable organic compound; Amphipod; BIOTRANSFORMATION RATE CONSTANTS; AQUATIC FOOD-WEBS; FRESH-WATER; PARTITION-COEFFICIENTS; HYDROPHOBIC CHEMICALS; HYALELLA-AZTECA; GAMMARUS-PULEX; IN-VIVO; BIOACCUMULATION; FISH;
D O I
10.1002/etc.4081
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The present study presents a bioconcentration model for non-ionic, polar, and ionizable organic compounds in amphipod based on first-order kinetics. Uptake rate constant k(1) is modeled as logk(1) = 1/0:81/logK(OW)+0.15(root mean square error [RMSE] = 0.52). Biotransformation rate constant k(M) is estimated using an existing polyparameter linear free energy relationship model. Respiratory elimination k(2) is calculated as modeled k1 over theoretical biota-water partition coefficient K-blow considering the contributions of lipid, protein, carbohydrate, and water. With negligible contributions of growth and egestion over a typical amphipod bioconcentration experiment, the bioconcentration factor (BCF) is modeled as k(1)/(k(M) (+) k(2)) (RMSE = 0.68). The proposed model performs well for non-ionic organic compounds (log K-OW range = 3.3-7.62) within 1 log-unit error margin. Approximately 12% of the BCFs are underpredicted for polar and ionizable compounds. However, >50% of the estimated k(2) values are found to exceed the total depuration rate constants. Analyses suggest that these excessive k2 values and underpredicted BCFs reflect underestimation in Kbiow, which may be improved by incorporating exoskeleton as a relevant partitioning component and refining the membrane-water partitioning model. The immediate needs to build up high-quality experimental kM values, explore the sorptive role of exoskeleton, and investigate the prevalence of k(2) overestimation in other bioconcentration models are also identified. The resulting BCF model can support, within its limitations, the ecotoxicological and risk assessment of emerging polar and ionizable organic contaminants in aquatic environments and advance the science of invertebrate bioaccumulation. (C) 2018 SETAC.
引用
收藏
页码:1378 / 1386
页数:9
相关论文
共 50 条
  • [21] Partitioning of organic solutes into bilayers formed by non-ionic surfactants
    Siepmann, J. Ilja
    Minkara, Mona
    Lindsey, Rebecca
    Jamadagni, Sumanth
    Eike, David
    Koenig, Peter
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2017, 253
  • [22] MECHANISM OF CHROMATOGRAPHIC RETENTION OF ORGANIC IONS ON A NON-IONIC ADSORBENT
    CANTWELL, FF
    PUON, S
    ANALYTICAL CHEMISTRY, 1979, 51 (06) : 623 - 632
  • [23] Polar and non-polar valency in organic compounds.
    Garner, WE
    NATURE, 1922, 110 : 543 - 544
  • [24] Partitioning regularity of non-ionic organic mixtures in organic phase/water system
    Lin, ZF
    Yu, HX
    Huang, LM
    Feng, JF
    Wang, LS
    CHINESE SCIENCE BULLETIN, 2001, 46 (17): : 1422 - 1425
  • [25] Sorption of ionizable and ionic organic compounds to biochar, activated carbon and other carbonaceous materials
    Kah, Melanie
    Sigmund, Gabriel
    Xiao, Feng
    Hofmann, Thilo
    WATER RESEARCH, 2017, 124 : 673 - 692
  • [26] Adsorption of a non-ionic surfactant on soils: A model study
    Xue, Xiaobo
    Zhou, Yanmei
    Wang, Dongshen
    ADSORPTION SCIENCE & TECHNOLOGY, 2006, 24 (04) : 349 - 361
  • [27] Tethered non-ionic micelles: a matrix for enhanced solubilization of lipophilic compounds
    Patchornik, Guy
    Namboothiri, Irishi N. N.
    Nair, Divya K.
    Wachtel, Ellen
    Persky, Rachel
    SOFT MATTER, 2012, 8 (32) : 8456 - 8463
  • [28] RELEASE OF NON-IONIC COMPOUNDS FROM FROG NERVE DURING STIMULATION
    BOYARSKY, LL
    FEDERATION PROCEEDINGS, 1964, 23 (2P1) : 113 - &
  • [29] PLANT UPTAKE OF NON-IONIC ORGANIC-CHEMICALS FROM SOILS
    RYAN, JA
    BELL, RM
    DAVIDSON, JM
    OCONNOR, GA
    CHEMOSPHERE, 1988, 17 (12) : 2299 - 2323
  • [30] Sorption of non-ionic organic pollutants onto immobilized humic acid
    Iovino, Pasquale
    Leone, Vincenzo
    Salvestrini, Stefano
    Capasso, Sante
    DESALINATION AND WATER TREATMENT, 2015, 56 (01) : 55 - 62