Heavy-metal pollution drives habitat-specific microbial survival strategies, with sediment communities showing the highest diversity and metal resistance in estuarine environments.
Chromium effects and bioremediation
Moving in Environmental research, Environmental pollution, Applied and environmental microbiology, Journal of bacteriology, Functional Plant Biology.
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Latest in Chromium effects and bioremediation
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Nitrogen enhances cadmium uptake and detoxification in Spirodela polyrhiza by upregulating key transporter and regulatory genes, improving phytoremediation efficiency.
Gypsum at 0.6% most effectively reduces nickel toxicity in maize by decreasing metal bioavailability and boosting plant defenses, improving growth and photosynthesis.
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Moving areas, week to 3 Oct 2026
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