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Updated: Mar 19, 2026

Quantification of Heavy Metals and Other Inorganic Contaminants on the Productivity of Microalgae
Published on: July 10, 2015
Molecular-weight-dependent effects of humic acid on hexavalent chromium accumulation and reduction in green
Li Luo1, Keyi Zhou1, Mawuli Dzakpasu1
1International Science & Technology Cooperation Center for Urban Alternative Water Resources Development, Key Lab of Northwest Water Resource, Environment and Ecology, MOE, Engineering Technology Research Center for Wastewater Treatment and Reuse, Key Lab of Environmental Engineering, Xi'an University of Architecture and Technology, No. 13, Yanta Road, Xi'an, Shaanxi Province 710055, China.
Abstract:
Dissolved organic matter (DOM) in natural waters comprises a highly heterogeneous mixture of complex compounds that coexist with microalgae and critically regulate metal uptake, yet the molecular-weight-dependent effects of DOM on algal metal detoxification remain largely unresolved. Humic acid (HA), the dominant DOM component, is known to influence microalgal heavy-metal removal, but its specific molecular-weight role in the migration and transformation of low concentrations of hexavalent chromium [Cr(VI)] has not been elucidated. In this study, binary ("algae-HA molecular weight") and ternary ("algae-HA molecular weight-Cr(VI)") systems were constructed using Chlorella vulgaris and four HA fractions (0.45 μm-30 kDa, 10-30 kDa, 5-10 kDa, and <5 kDa). Results revealed that at 0.5 mg/L Cr(VI), the HA fractions exerted distinct regulatory effects on algal physiology and Cr behavior. Decreasing HA molecular weight substantially enhanced total Cr removal by 5.4%-29.9%, driven predominantly by extracellular adsorption (75.78%-80.85%). The < 5 kDa fraction exhibited the highest bioavailability, significantly promoting algal growth, metabolic activity, and Cr uptake. This fraction achieved the maximum total Cr removal (48.46%) and Cr(VI) reduction (60.75%), facilitated by strong complexation of carboxyl and hydroxyl groups with algal surface sites. Extracellular polymeric substances (EPS) accounted for 14.50% of Cr removal and reduced Cr(VI) by 78.25%, revealing a synergistic adsorption-reduction pathway. This study provides mechanistic evidence that HA molecular weight governs microalgal Cr(VI) adsorption, reduction, and sequestration, offering a new conceptual framework for optimizing microalgae-DOM systems in heavy-metal remediation.
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