Genomics, metagenomics and proteomics in biomining microorganisms

被引:106
作者
Valenzuela, L
Chi, A
Beard, S
Orell, A
Guiliani, N
Shabanowitz, J
Hunt, DF
Jerez, CA
机构
[1] Univ Chile, Fac Ciencias, Dept Biol, Lab Mol Microbiol & Biotechnol, Santiago 1, Chile
[2] Univ Virginia, Dept Chem, Charlottesville, VA USA
关键词
biomining; acid mine drainage; genomics; metagenomics; proteomics;
D O I
10.1016/j.biotechadv.2005.09.004
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
The use of acidophilic, chemolithotrophic microorganisms capable of oxidizing iron and sulfur in industrial processes to recover metals from minerals containing copper, gold and uranium is a well established biotechnology with distinctive advantages over traditional mining. A consortium of different microorganisms participates in the oxidative reactions resulting in the extraction of dissolved metal values from ores. Considerable effort has been spent in the last years to understand the biochemistry of iron and sulfur compounds oxidation, bacteria-mineral interactions (chemotaxis, quorum sensing, adhesion, biofilm formation) and several adaptive responses allowing the microorganisms to survive in a bioleaching environment. All of these are considered key phenomena for understanding the process of biomining. The use of genomics, metagenomics and high throughput proteomics to study the global regulatory responses that the biomining community uses to adapt to their changing environment is just beginning to emerge in the last years. These powerful approaches are reviewed here since they offer the possibility of exciting new findings that will allow analyzing the community as a microbial system, determining the extent to which each of the individual participants contributes to the process, how they evolve in time to keep the conglomerate healthy and therefore efficient during the entire process of bioleaching. (c) 2005 Elsevier Inc. All rights reserved.
引用
收藏
页码:197 / 211
页数:15
相关论文
共 103 条
[61]   Protein profile of Acidithiobacillus ferrooxidans strains exhibiting different levels of tolerance to metal sulfates [J].
Novo, MTM ;
Garcia, O ;
Ottoboni, LMM .
CURRENT MICROBIOLOGY, 2003, 47 (06) :492-496
[62]   Bioleaching review part B: Progress in bioleaching: applications of microbial processes by the minerals industries [J].
Olson, GJ ;
Brierley, JA ;
Brierley, CL .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2003, 63 (03) :249-257
[63]  
PARRO V, P NATL ACAD SCI US, P7883
[64]  
Paulino LC, 2002, ELECTROPHORESIS, V23, P520, DOI 10.1002/1522-2683(200202)23:4<520::AID-ELPS520>3.0.CO
[65]  
2-R
[66]   Community proteomics of a natural microbial biofilm [J].
Ram, RJ ;
VerBerkmoes, NC ;
Thelen, MP ;
Tyson, GW ;
Baker, BJ ;
Blake, RC ;
Shah, M ;
Hettich, RL ;
Banfield, JF .
SCIENCE, 2005, 308 (5730) :1915-1920
[67]   Differential protein expression during growth of Acidithiobacillus ferrooxidans on ferrous iron, sulfur compounds, or metal sulfides [J].
Ramírez, P ;
Guiliani, N ;
Valenzuela, L ;
Beard, S ;
Jerez, CA .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2004, 70 (08) :4491-4498
[68]   An exported rhodanese-like protein is induced during growth of Acidithiobacillus ferrooxidans in metal sulfides and different sulfur compounds [J].
Ramírez, P ;
Toledo, H ;
Guiliani, N ;
Jerez, CA .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2002, 68 (04) :1837-1845
[69]   The evolution of pTF-FC2 and pTC-F14, two related plasmids of the IncQ-family [J].
Rawlings, DE .
PLASMID, 2005, 53 (02) :137-147
[70]   Heavy metal mining using microbes [J].
Rawlings, DE .
ANNUAL REVIEW OF MICROBIOLOGY, 2002, 56 :65-91