Biorecovery of gold using cyanobacteria and an eukaryotic alga with special reference to nanogold formation - a novel phenomenon

被引:91
作者
Chakraborty, Nabanita [1 ]
Banerjee, Anupam [2 ]
Lahiri, Susanta [2 ]
Panda, Arpita [3 ]
Ghosh, Amar Nath [3 ]
Pal, Ruma [1 ]
机构
[1] Univ Calcutta, Dept Bot, Kolkata 700019, India
[2] Saha Inst Nucl Phys, Div Chem Sci, Kolkata 700064, W Bengal, India
[3] Natl Inst Cholera & Enter Dis, Kolkata 700010, India
关键词
Gold; Algae; Bioaccumulation; Radionuclide; Nanoparticle; FILAMENTOUS CYANOBACTERIA; METAL NANOPARTICLES; IONS; DIATOM; FUNGUS; AU; BIOACCUMULATION; BIOSYNTHESIS; BIOREDUCTION; MECHANISMS;
D O I
10.1007/s10811-008-9343-3
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 [微生物学]; 090105 [作物生产系统与生态工程];
摘要
Pro- and eukaryotic algal genera, i.e. Lyngbya majuscula, Spirulina subsalsa (Cyanophyceae) and Rhizoclonium hieroglyphicum (Chlorophyceae), were used for bio-recovery of gold (Au) out of aqueous solution. Au (III) spiked with Au-198 was used for the experiment. Batch laboratory experiments indicated quick metabolic independent binding of Au to the algae followed by active accumulation and subsequent reduction. Gold accumulation by different algal genera was found in order of R. hieroglyphicum > L. majuscula > S. subsalsa (3.28, 1.93 and 1.73 mg g(-1), respectively). It was observed that the algal biomass and the media used for the experiment turned purple in colour indicating reduction of Au (III) to Au (0) at intra- and extracellular level. This was confirmed by TEM studies of L. majuscula biomass exposed in HAuCl4 solution where < 20-nm-sized gold particles were found both inside as well as on the surface of the cell. Up to 90-100% of accumulated gold was recovered from the algal biomass by using nitric acid and acidic thiourea solution.
引用
收藏
页码:145 / 152
页数:8
相关论文
共 53 条
[1]
Intracellular synthesis of gold nanoparticles by a novel alkalotolerant actinomycete, Rhodococcus species [J].
Ahmad, A ;
Senapati, S ;
Khan, MI ;
Kumar, R ;
Ramani, R ;
Srinivas, V ;
Sastry, M .
NANOTECHNOLOGY, 2003, 14 (07) :824-828
[2]
Extracellular biosynthesis of monodisperse gold nanoparticles by a novel extremophilic actinomycete, Thermomonospora sp. [J].
Ahmad, A ;
Senapati, S ;
Khan, MI ;
Kumar, R ;
Sastry, M .
LANGMUIR, 2003, 19 (08) :3550-3553
[3]
Extracellular biosynthesis of silver nanoparticles using the fungus Fusarium oxysporum [J].
Ahmad, A ;
Mukherjee, P ;
Senapati, S ;
Mandal, D ;
Khan, MI ;
Kumar, R ;
Sastry, M .
COLLOIDS AND SURFACES B-BIOINTERFACES, 2003, 28 (04) :313-318
[4]
Biosynthesis of gold and silver nanoparticles using Emblica officinalis fruit extract, their phase transfer and transmetallation in an organic solution [J].
Ankamwar, B ;
Damle, C ;
Ahmad, A ;
Sastry, M .
JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2005, 5 (10) :1665-1671
[5]
[Anonymous], P 1998 C HAZ WAST RE
[6]
BATES SS, 1982, J PHYCOL, V18, P521
[7]
Bold Harold C., 1942, BOT REV, V8, P69, DOI 10.1007/BF02879474
[8]
Self-assembled gold nanoparticle thin films with nonmetallic optical and electronic properties [J].
Brust, M ;
Bethell, D ;
Kiely, CJ ;
Schiffrin, DJ .
LANGMUIR, 1998, 14 (19) :5425-5429
[9]
Diatom: A potential bio-accumulator of gold [J].
Chakraborty, N. ;
Pal, R. ;
Ramaswami, A. ;
Nayak, D. ;
Lahiri, S. .
JOURNAL OF RADIOANALYTICAL AND NUCLEAR CHEMISTRY, 2006, 270 (03) :645-649
[10]
GOLD SOL FORMATION MECHANISMS - ROLE OF COLLOIDAL STABILITY [J].
CHOW, MK ;
ZUKOSKI, CF .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 1994, 165 (01) :97-109