New and emerging analytical techniques for marine biotechnology

被引:38
作者
Burgess, J. Grant [1 ]
机构
[1] Newcastle Univ, Sch Marine Sci & Technol, Newcastle Upon Tyne NE1 7RU, Tyne & Wear, England
关键词
FLUORESCENT PROTEINS; BIG DATA; CONOTOXINS; POLYMERASE; DECISIONS;
D O I
10.1016/j.copbio.2011.12.007
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Marine biotechnology is the industrial, medical or environmental application of biological resources from the sea. Since the marine environment is the most biologically and chemically diverse habitat on the planet, marine biotechnology has, in recent years delivered a growing number of major therapeutic products, industrial and environmental applications and analytical tools. These range from the use of a snail toxin to develop a pain control drug, metabolites from a sea squirt to develop an anti-cancer therapeutic, and marine enzymes to remove bacterial biofilms. In addition, well known and broadly used analytical techniques are derived from marine molecules or enzymes, including green fluorescence protein gene tagging methods and heat resistant polymerases used in the polymerase chain reaction. Advances in bacterial identification, metabolic profiling and physical handling of cells are being revolutionised by techniques such as mass spectrometric analysis of bacterial proteins. Advances in instrumentation and a combination of these physical advances with progress in proteomics and bioinformatics are accelerating our ability to harness biology for commercial gain. Single cell Raman spectroscopy and microfluidics are two emerging techniques which are also discussed elsewhere in this issue. In this review, we provide a brief survey and update of the most powerful and rapidly growing analytical techniques as used in marine biotechnology, together with some promising examples of less well known earlier stage methods which may make a bigger impact in the future.
引用
收藏
页码:29 / 33
页数:5
相关论文
共 55 条
[1]   Olfaction: Diverse species, conserved principles [J].
Ache, BW ;
Young, JM .
NEURON, 2005, 48 (03) :417-430
[2]  
Arnold SE, 2011, ONLINE, V35, P27
[3]   Addressing the Market Demands for Artificial Olfaction Systems [J].
Atzeni, M. G. ;
Sohn, J. H. ;
Stuetz, R. M. .
NOSE 2010: INTERNATIONAL CONFERENCE ON ENVIRONMENTAL ODOUR MONITORING AND CONTROL, 2010, 23 :135-140
[4]   Biogenic ammonia modifies antibiotic resistance at a distance in physically separated bacteria [J].
Bernier, Steve P. ;
Letoffe, Sylvie ;
Delepierre, Muriel ;
Ghigo, Jean-Marc .
MOLECULAR MICROBIOLOGY, 2011, 81 (03) :705-716
[5]   Marine natural products [J].
Blunt, John W. ;
Copp, Brent R. ;
Munro, Murray H. G. ;
Northcote, Peter T. ;
Prinsep, Michele R. .
NATURAL PRODUCT REPORTS, 2011, 28 (02) :196-268
[6]   Green fluorescent proteins are light-induced electron donors [J].
Bogdanov, Alexey M. ;
Mishin, Alexander S. ;
Yampolsky, Ilia V. ;
Belousov, Vsevolod V. ;
Chudakov, Dmitriy M. ;
Subach, Fedor V. ;
Verkhusha, Vladislav V. ;
Lukyanov, Sergey ;
Lukyanov, Konstantin A. .
NATURE CHEMICAL BIOLOGY, 2009, 5 (07) :459-461
[7]   Amphioxus encodes the largest known family of green fluorescent proteins, which have diversified into distinct functional classes [J].
Bomati, Erin K. ;
Manning, Gerard ;
Deheyn, Dimitri D. .
BMC EVOLUTIONARY BIOLOGY, 2009, 9
[8]  
Bonabeau E, 2009, MIT SLOAN MANAGE REV, V50, P45
[9]   Paraoxonases as Potential Antibiofilm Agents: Their Relationship with Quorum-Sensing Signals in Gram-Negative Bacteria [J].
Camps, Jordi ;
Pujol, Isabel ;
Ballester, Frederic ;
Joven, Jorge ;
Simo, Josep M. .
ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 2011, 55 (04) :1325-1331
[10]   Marine Protistan Diversity [J].
Caron, David A. ;
Countway, Peter D. ;
Jones, Adriane C. ;
Kim, Diane Y. ;
Schnetzer, Astrid .
ANNUAL REVIEW OF MARINE SCIENCE, VOL 4, 2012, 4 :467-493