TRANSPORT KINETICS, CATION INHIBITION AND INTRACELLULAR LOCATION OF ACCUMULATED CESIUM IN THE GREEN MICROALGA CHLORELLA-SALINA

被引:32
作者
AVERY, SV [1 ]
CODD, GA [1 ]
GADD, GM [1 ]
机构
[1] UNIV DUNDEE, DEPT BIOL SCI, DUNDEE DD1 4HN, SCOTLAND
来源
JOURNAL OF GENERAL MICROBIOLOGY | 1993年 / 139卷
关键词
D O I
10.1099/00221287-139-4-827
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Caesium accumulation by Chlorella salina, from buffer (pH 8.0) supplemented with 50 muM-CsCl and Cs-137 continued for approximately 15 h and displayed first-order kinetics, indicating a single rate-limiting transport process. Efflux of Cs+ from Cs+-loaded cells occurred in two distinct phases: a rapid initial loss, representing approximately 11 % of total cellular Cs+, corresponded to release from the cell surface, whereas a second, slower, phase of efflux corresponded to loss from the cytoplasm and vacuole. Analysis of subcellular Cs+ compartmentation revealed that most Cs+ was accumulated into the vacuole of C. salina, with lesser amounts being associated with the cell surface or located in the cytoplasm. Uptake of Cs+ into the vacuole was correlated with a stoichiometric exchange for K+. However, no loss of K+ from the cell surface or cytoplasm was evident nor was Cs+ or K+ associated with insoluble intracellular components. Calculated values for the Cs+ flux across the vacuolar membrane were approximately equal to, or higher than, values for total cellular influx. Cs+ influx obeyed Michaelis-Menten kinetics over the lower range of external Cs+ concentrations examined (0.01-0.25 mm) and a single transport system with a K(m) approximately 0.5 mM was evident. The effects of other monovalent cations on Cs+ influx implied that K+ and Rb+ were competitive, and NH4+ non-competitive/uncompetitive inhibitors of Cs+ uptake. The order of inhibition was Rb+ > K+ > NH4+. We propose that a single, relatively non-selective, rate-limiting transport system for Cs+ influx is located on the cytoplasmic membrane of C. salina, while a more permeable vacuolar membrane facilitates transport of Cs+ into the vacuole.
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页码:827 / 834
页数:8
相关论文
共 42 条
[31]  
PERKINS J, 1991, 8TH P INT C HEAV MET, V2, P318
[32]   INFLUENCE OF POTASSIUM ON REMOVAL OF CS-137 BY LIVE CHLORELLA FROM LOW-LEVEL RADIOACTIVE-WASTES [J].
PLATO, P ;
DENOVAN, JT .
RADIATION BOTANY, 1974, 14 (01) :37-41
[33]  
Raven J A, 1980, Adv Microb Physiol, V21, P47
[34]  
RAVEN JA, 1989, METHOD ENZYMOL, V174, P366
[35]  
Reed R H, 1990, HEAVY METAL TOLERANC, P105
[36]   UPTAKE OF POTASSIUM AND RUBIDIUM IONS BY THE CYANOBACTERIUM ANABAENA-VARIABILIS [J].
REED, RH ;
ROWELL, P ;
STEWART, WDP .
FEMS MICROBIOLOGY LETTERS, 1981, 11 (04) :233-236
[37]   ION ABSORPTION AND RETENTION BY CHLORELLA PYRENOIDOSA .I. ABSORPTION OF POTASSIUM [J].
SCHAEDLE, M ;
JACOBSON, L .
PLANT PHYSIOLOGY, 1965, 40 (02) :214-&
[39]  
TROMBALLA HW, 1981, Z PFLANZENPHYSIOL, V105, P1
[40]   PATTERNS OF GROWTH AND DEVELOPMENT IN PLEUROCAPSALEAN CYANOBACTERIA [J].
WATERBURY, JB ;
STANIER, RY .
MICROBIOLOGICAL REVIEWS, 1978, 42 (01) :2-44