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1.
Mar Pollut Bull ; 205: 116678, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38986266

ABSTRACT

Estuaries, vital coastal ecosystems, face growing threats from industrialization. To understand the pace of sedimentary changes and heavy metal pollution at the anthropogenically altered and industrialized Nakdong River Estuary in South Korea, we used sediment coring to reconstruct environmental change. Estuarine dam construction in 1934 shifted the sedimentary system from sand to mud, coinciding with a post-1930s mercury increase due to coal burning. Mercury concentrations in other South Korean regions surged in the 1970s, indicating proximity to emission sources matters. However, most heavy metal levels (Cu, Cd, Zn, Ag) sharply rose in the 1960s and 1970s with regional industrialization. Modern heavy metal concentrations doubled pre-industrial levels, underscoring human activities as the primary driver of Nakdong Estuary environmental changes. This emphasizes the need for a balanced approach to development and environmental preservation.


Subject(s)
Environmental Monitoring , Estuaries , Metals, Heavy , Rivers , Water Pollutants, Chemical , Republic of Korea , Metals, Heavy/analysis , Water Pollutants, Chemical/analysis , Rivers/chemistry , Geologic Sediments/chemistry , Mercury/analysis
2.
Science ; 340(6130): 341-4, 2013 Apr 19.
Article in English | MEDLINE | ID: mdl-23599491

ABSTRACT

The circum-Antarctic Southern Ocean is an important region for global marine food webs and carbon cycling because of sea-ice formation and its unique plankton ecosystem. However, the mechanisms underlying the installation of this distinct ecosystem and the geological timing of its development remain unknown. Here, we show, on the basis of fossil marine dinoflagellate cyst records, that a major restructuring of the Southern Ocean plankton ecosystem occurred abruptly and concomitant with the first major Antarctic glaciation in the earliest Oligocene (~33.6 million years ago). This turnover marks a regime shift in zooplankton-phytoplankton interactions and community structure, which indicates the appearance of eutrophic and seasonally productive environments on the Antarctic margin. We conclude that earliest Oligocene cooling, ice-sheet expansion, and subsequent sea-ice formation were important drivers of biotic evolution in the Southern Ocean.


Subject(s)
Adaptation, Physiological , Dinoflagellida/physiology , Ecosystem , Ice Cover , Oceans and Seas , Phytoplankton/physiology , Zooplankton/physiology , Animals , Antarctic Regions , Cold Temperature , Fossils
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