Mining seafloor massive sulphides and biodiversity: what is at risk?

被引:111
作者
Van Dover, Cindy Lee [1 ]
机构
[1] Duke Univ, Nicholas Sch Environm, Marine Lab, Beaufort, NC 28516 USA
关键词
conservation; deep sea; diversity; hydrothermal vent; mitigation; EAST PACIFIC RISE; DE-FUCA RIDGE; HYDROTHERMAL VENT; COMMUNITY STRUCTURE; RIFTIA-PACHYPTILA; MUSSEL BEDS; MARINE INVERTEBRATE; RIMICARIS-EXOCULATA; GENETIC-STRUCTURE; LARVAL DISPERSAL;
D O I
10.1093/icesjms/fsq086
中图分类号
S9 [水产、渔业];
学科分类号
0908 ;
摘要
Scientific exploration of the deep sea in the late 1970s led to the discovery of seafloor massive sulphides at hydrothermal vents. More recently, sulphide deposits containing high grades of ore have been discovered in the southwest Pacific. In addition to metal-rich ores, hydrothermal vents host ecosystems based on microbial chemoautotrophic primary production, with endemic invertebrate species adapted in special ways to the vent environment. Although there has been considerable effort to study the biology and ecology of vent systems in the decades since these systems were first discovered, there has been limited attention paid to conservation issues. Three priority recommendations for conservation science at hydrothermal vent settings are identified here: (i) determine the natural conservation units for key species with differing life histories; (ii) identify a set of first principles for the design of preservation reference areas and conservation areas; (iii) develop and test methods for effective mitigation and restoration to enhance the recovery of biodiversity in sulphide systems that may be subject to open-cut mining.
引用
收藏
页码:341 / 348
页数:8
相关论文
共 51 条
[1]   Biogeographic relationships among deep-sea hydrothermal vent faunas at global scale [J].
Bachraty, C. ;
Legendre, P. ;
Desbruyeres, D. .
DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 2009, 56 (08) :1371-1378
[2]   The Oregon ocean resources management program: a state-level ocean management initiative [J].
Bailey, RJ .
OCEAN & COASTAL MANAGEMENT, 1997, 34 (03) :205-224
[3]   On the global distribution of hydrothermal vent fields [J].
Baker, ET ;
German, CR .
MID-OCEAN RIDGES: HYDROTHERMAL INTERACTIONS BETWEEN THE LITHOSPHERE AND OCEANS, 2004, 148 :245-266
[4]   Regionally isolated populations of an imperiled Caribbean coral, Acropora palmata [J].
Baums, IB ;
Miller, MW ;
Hellberg, ME .
MOLECULAR ECOLOGY, 2005, 14 (05) :1377-1390
[5]   ACTIVELY FORMING POLYMETALLIC SULFIDE DEPOSITS ASSOCIATED WITH FELSIC VOLCANIC-ROCKS IN THE EASTERN MANUS BACK-ARC BASIN, PAPUA-NEW-GUINEA [J].
BINNS, RA ;
SCOTT, SD .
ECONOMIC GEOLOGY AND THE BULLETIN OF THE SOCIETY OF ECONOMIC GEOLOGISTS, 1993, 88 (08) :2226-2236
[6]   Finding the relevant scale:: clonality and genetic structure in a marine invertebrate (Crambe crambe, Porifera) [J].
Calderon, Isabel ;
Ortega, Natalia ;
Duran, Sandra ;
Becerro, Mikel ;
Pascual, Marta ;
Turon, Xavier .
MOLECULAR ECOLOGY, 2007, 16 (09) :1799-1810
[7]   Assessment of decadal-scale ecological change at a deep Mid-Atlantic hydrothermal vent and reproductive time-series in the shrimp Rimicaris exoculata [J].
Copley, J. T. P. ;
Jorgensen, P. B. K. ;
Sohnt, R. A. .
JOURNAL OF THE MARINE BIOLOGICAL ASSOCIATION OF THE UNITED KINGDOM, 2007, 87 (04) :859-867
[8]   The quantum event of oceanic crustal accretion: Impacts of diking at mid-ocean ridges [J].
Delaney, JR ;
Kelley, DS ;
Lilley, MD ;
Butterfield, DA ;
Baross, JA ;
Wilcock, WSD ;
Embley, RW ;
Summit, M .
SCIENCE, 1998, 281 (5374) :222-230
[9]  
Desbruyeres D., 2006, HDB DEEP SEA HYDROTH
[10]  
Dilek Y., 2003, Ophiolite concept and the evolution of geological thought