Cited 4 time in
- Title
- Molecular dynamics simulations integrating kinetics for Pb2+-induced arginine kinase inactivation and aggregation
- Author(s)
- Y X Si; Jinhyuk Lee; Y Cai; S J Yin; J M Yang; Y D Park; G Y Qian
- Bibliographic Citation
- Process Biochemistry, vol. 50, no. 5, pp. 729-737
- Publication Year
- 2015
- Abstract
- We built a 3D structure of arginine kinase from Exopalaemon carinicauda (ECAK) on the basis of the ORF gene sequence to conduct molecular dynamics simulations between ECAK and Pb2+. As a result, the binding mechanism of Pb2+ to ECAK was predicted from the binding sites, and the structural change was elucidated. To confirm the simulated results, the Pb2+-mediated inhibition and aggregation of ECAK were subsequently conducted. We found that Pb2+ partially inactivated the activity of ECAK with relatively strong binding. The spectrofluorimetry results showed that Pb2+ induced tertiary structural changes of ECAK, with the substantial exposure of hydrophobic surfaces directly induced by ECAK aggregation. The ECAK aggregation process induced by Pb2+ occurred with multi-phase kinetics. The addition of osmolytes did not protect ECAK from Pb2+ inactivation. Because AK plays an important role in the cellular energy metabolism of invertebrates, our study suggests new information about the effect of Pb2+ on ECAK's enzymatic function and unfolding, including aggregation, which may be toxic to invertebrates or may act as a negative regulator.
- Keyword
- AggregationaArginine kinaseInhibitionMD simulationPb2+
- ISSN
- 0032-9592
- Publisher
- Elsevier
- Full Text Link
- http://dx.doi.org/10.1016/j.procbio.2015.02.008
- Type
- Article
- Appears in Collections:
- Synthetic Biology and Bioengineering Research Institute > Genome Editing Research Center > 1. Journal Articles
- Files in This Item:
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