Molecular Insights Into Copper-Induced Structural and Functional Alterations of Key Soil Enzymes: Multispectral and
Zhen Zhang1,2, Jiahui Shao1,2, Wenbin Mu1,2
1College of Life Sciences, Institute of Life Science and Green Development, Hebei Basic Science Center for Biotic Interaction, Hebei University, Baoding, Hebei, China.
Abstract:
Heavy metal-induced environmental degradation has become a pressing concern. Soil enzymes are the products of plant, animal, and microbial activities in the soil. Participating in diverse soil biochemical processes, their activity levels serve as sensitive indicators of biochemical process intensity in soil ecosystems. In this paper, the toxic effects of Cu2+ on glutamate dehydrogenase (L-GDH), copper/zinc-superoxide dismutase (Cu/Zn-SOD), and acid phosphatase (ACP) were investigated under simulated physiological conditions. Fluorescence spectra and lifetime measurements showed that Cu2+ reduced the fluorescence intensity and hydrophobicity and altered the protein conformation of L-GDH, Cu/Zn-SOD, and ACP; the intrinsic fluorescence of L-GDH and Cu/Zn-SOD underwent dynamic quenching, whereas ACP underwent static quenching. Enzyme activity assays revealed that ACP was the most susceptible to Cu2+ inhibition among the three enzymes, showing a clear dose-dependent effect. UV-Vis and CD spectroscopy showed that Cu2+ loosened the protein backbone structure and induced peptide chain extension and protein unfolding. The changes of enzyme activity in Eisenia fetida were measured after exposure to Cu2+ at different times and concentrations. Overall, this study provides a foundation for understanding the effects of Cu2+ on the structure and function of soil enzymes, revealing the potential effects of heavy metals on enzymes.
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