Uptake and biotransformation of pure commercial microcystin-LR versus microcystin-LR from a natural cyanobacterial bloom extract in the aquatic fungus Mucor hiemalis

被引:11
作者
Esterhuizen-Londt, Maranda [1 ]
Hertel, Stefanie [1 ]
Pflugmacher, Stephan [1 ,2 ]
机构
[1] Tech Univ Berlin, Inst Biotechnol, Chair Ecol Impact Res & Ecotoxicol, Ernst Reuter Pl 1, D-10587 Berlin, Germany
[2] Korea Inst Sci & Technol Europe KIST, Joint Lab Appl Ecotoxicol, Campus 7-1, Saarbrucken, Germany
关键词
Cyanotoxins; Microcystin-LR; Mucor hiemalis; Mycoremediation; GLUTATHIONE-S-TRANSFERASE; OXIDATIVE STRESS; INHIBITION; AERUGINOSA; TOXINS; GROWTH; PLANTS; STEP; LAKE;
D O I
10.1007/s10529-017-2378-2
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
To evaluate the remediation efficiency of Mucor hiemalis by comparing media elimination, uptake, and biotransformation of microcystin-LR with exposure to pure toxin versus a crude bloom extract. With exposure to the extract, the elimination rate of microcystin-LR from the media, which was 0.28 ng MC-LR l(-1) h(-1), was significantly higher compared to that achieved with exposure to the pure toxin (0.16 ng MC-LR l(-1) h(-1)) after 24 h. However, intracellular breakdown of microcystin-LR was significantly lower in the extract exposed pellets compared to the pure toxin treated fungal pellets over time. This coincided with reduced intracellular glutathione S-transferase activity with crude extract exposure which could be responsible for the detection of only the glutathione conjugate of microcystin-LR. This paper signifies the importance of using laboratory exposure scenarios which resemble conditions in nature to fully understand and evaluate remediation efficiency. There is merit in using M. hiemalis for mycoremediation of cyanotoxins in surface waters.
引用
收藏
页码:1537 / 1545
页数:9
相关论文
共 25 条
[1]  
Balsano E., 2015, INT J WATER WASTEWAT, V1, P1, DOI 10.16966/2381
[2]  
Balsano Evelyn, 2016, Journal of Applied Biology & Biotechnology, V4, P31, DOI 10.7324/JABB.2016.40403
[3]   Effects of enteric bacterial and cyanobacterial lipopolysaccharides, and of microcystin-LR, on glutathione S-transferase activities in zebra fish (Danio rerio) [J].
Best, JH ;
Pflugmacher, S ;
Wiegand, C ;
Eddy, FB ;
Metcalf, JS ;
Codd, GA .
AQUATIC TOXICOLOGY, 2002, 60 (3-4) :223-231
[4]   β-N-Methylamino-L-alanine exposure alters defense against oxidative stress in aquatic plants Lomariopsis lineata, Fontinalis antipyretica, Riccia fluitans and Taxiphyllum barbieri [J].
Contardo-Jara, Valeska ;
Funke, Marc Sebastian ;
Peuthert, Anja ;
Pflugmacher, Stephan .
ECOTOXICOLOGY AND ENVIRONMENTAL SAFETY, 2013, 88 :72-78
[5]   Biomagnification of cyanobacterial neurotoxins and neurodegenerative disease among the Chamorro people of Guam [J].
Cox, PA ;
Banack, SA ;
Murch, SJ .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2003, 100 (23) :13380-13383
[6]   β-N-methylamino-L-alanine (BMAA) in novel South African cyanobacterial isolates [J].
Esterhuizen, M. ;
Downing, T. G. .
ECOTOXICOLOGY AND ENVIRONMENTAL SAFETY, 2008, 71 (02) :309-313
[7]   The effect of β-N-methylamino-L-alanine (BMAA) on oxidative stress response enzymes of the macrophyte Ceratophyllum demersum [J].
Esterhuizen-Londt, M. ;
Pflugmacher, S. ;
Downing, T. G. .
TOXICON, 2011, 57 (05) :803-810
[8]   Oxidative stress responses in the animal model, Daphnia pulex exposed to a natural bloom extract versus artificial cyanotoxin mixtures [J].
Esterhuizen-Londt, Maranda ;
von Schnehen, Marie ;
Kuehn, Sandra ;
Pflugmacher, Stephan .
AQUATIC TOXICOLOGY, 2016, 179 :151-157
[9]  
HABIG WH, 1974, J BIOL CHEM, V249, P7130
[10]   A bacterium that inhibits the growth of Pfiesteria piscicida and other dinoflagellates [J].
Hare, CE ;
Demir, E ;
Coyne, KJ ;
Cary, SC ;
Kirchman, DL ;
Hutchins, DA .
HARMFUL ALGAE, 2005, 4 (02) :221-234