• Title/Summary/Keyword: Blvrb

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Validation of protein refolding via 1-dimensional 1H-15N heteronuclear single quantum correlation experiments

  • Kim, Boram;Choi, Joonhyeok;Ryu, Kyoung-Seok
    • Journal of the Korean Magnetic Resonance Society
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    • v.23 no.4
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    • pp.104-107
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    • 2019
  • Many proteins are expressed as an insoluble form during the production using Escherichia coli (E. coli) system. Although various methods are applied to increase their amounts of soluble expression, refolding is the only feasible way to obtain a target protein in some cases. Moreover, protein NMR experiments require 13C/15N-labeled proteins that can only be obtained from E. coli systems in terms of cost and technical difficulty. The finding of appropriate refolding conditions for a target protein is a time-consuming process. In particular, it is very difficult to determine whether the refolded protein has a native structure, when a target protein has no enzymatic activity and its refolding yield is very low. Here, we showed that 1-dimensional 1H-15N heteronuclear single quantum correlation (1D 1H-15N HSQC) experiment can be efficiently used to screen an optimal condition for the refolding of a target protein by monitoring both the structure and concentration of the refolded protein.

Backbone NMR assignments of the FAS1-3/FAS1-4 domains of transforming growth factor-beta-induced protein

  • Kang, Dong-Hoon;Yi, Jong-Jae;Sim, Dae-Won;Park, Jung-Wook;Lee, Sung-Hee;Kim, Eun-Hee;Jeon, Young-Ho;Son, Woo Sung;Won, Hyung-Sik;Kim, Ji-Hun
    • Journal of the Korean Magnetic Resonance Society
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    • v.24 no.1
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    • pp.1-8
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    • 2020
  • An extracellular matrix protein, transforming growth factor-beta-induced protein (TGFBIp/βig-h3), which is induced by transforming growth factor-β in the human cornea, skin, and matrix of many connective tissues, is associated with the adhesion, migration, proliferation, and differentiation of various cells. TGFBIp contains four homologous repeat domains, known as FAS1 domains, where certain mutations have been considered to cause corneal dystrophies. In this study, backbone NMR assignments of FAS1-3/FAS1-4 tandem domain were obtained and compared with those previously known for the isolated FAS1-4 domain. The results corroborate in solution the inter-domain interaction between FAS1-3 and FAS1-4 in TGFBIp.