Literature DB >> 8706737

Domain structure, stability and interactions in streptokinase.

L V Medved1, D A Solovjov, K C Ingham.   

Abstract

The structural organization of streptokinase was established through detailed study of its denaturation by differential scanning calorimetry. Streptokinase exhibited a complex endotherm whose shape was sensitive to changing pH. In all cases the endotherms were easily described by four two-state transitions indicating unambiguously the presence of four independently folded domains in the molecule. Two of them were slightly destabilized by lowering pH from 7.0 to 3.8 while the other two were stabilized in this pH range. Two proteolytic fragments of streptokinase were examined, a 37-kDa fragment beginning at Ile1 with a cleavage following Phe62, and a 17-kDa fragment beginning at Lys 147. At pH 8.5, three two-state transitions were observed in the former and two in the latter indicating this many domains in each and suggesting that the fragments are formed by a step-wise removal of individual domains from the parent molecule. Comparison of the melting of these fragments with that of streptokinase allowed the first two transitions in the parent protein to be assigned to the melting of two NH2-terminal domains and the two higher-temperature transitions to the melting of the two COOH-terminal domains. The latter two domains strongly interact with each other since the absence of the most stable extreme COOH-terminal domain in both fragments resulted in a strong destabilization of its neighbor whose melting occurred with a midpoint near room temperature. The two NH2-terminal domains seem to be more independent. One of them melts similarly in the parent protein and both fragments while the other, formed by the 1-146 region, is less stable in the 37-kDa fragment. This destabilization is most probably due to the cleavage after Phe62 which, based on the sequence similarity of streptokinase with serine proteases, may be part of a surface-oriented loop.

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Year:  1996        PMID: 8706737     DOI: 10.1111/j.1432-1033.1996.0333u.x

Source DB:  PubMed          Journal:  Eur J Biochem        ISSN: 0014-2956


  6 in total

1.  Multidomain structure of a recombinant streptokinase. A differential scanning calorimetry study.

Authors:  A Beldarraín; J L López-Lacomba; V P Kutyshenko; R Serrano; M Cortijo
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2.  Detection of a unique fibrinolytic enzyme in Aeromonas sp. JH1.

Authors:  Han-Young Cho; Min Jeong Seo; Jeong Uck Park; Byoung Won Kang; Gi-Young Kim; Woo Hong Joo; Young-Choon Lee; Young-Su Cho; Yong Kee Jeong
Journal:  J Microbiol       Date:  2011-12-28       Impact factor: 3.422

3.  Purification and biochemical characterization of a 17 kDa fibrinolytic enzyme from Schizophyllum commune.

Authors:  In Suk Park; Jeong Uck Park; Min Jeong Seo; Min Jeong Kim; Hye Hyeon Lee; Sung Ryeal Kim; Byoung Won Kang; Yung Hyun Choi; Woo Hong Joo; Yong Kee Jeong
Journal:  J Microbiol       Date:  2011-01-09       Impact factor: 3.422

4.  Biochemical analysis of a fibrinolytic enzyme purified from Bacillus subtilis strain A1.

Authors:  Won Sik Yeo; Min Jeong Seo; Min Jeong Kim; Hye Hyeon Lee; Byoung Won Kang; Jeong Uck Park; Yung Hyun Choi; Yong Kee Jeong
Journal:  J Microbiol       Date:  2011-06-30       Impact factor: 3.422

5.  Analysis of the interactions between streptokinase domains and human plasminogen.

Authors:  F Conejero-Lara; J Parrado; A I Azuaga; C M Dobson; C P Ponting
Journal:  Protein Sci       Date:  1998-10       Impact factor: 6.725

6.  Isolation and identification of an endophytic strain EJS-3 producing novel fibrinolytic enzymes.

Authors:  Fengxia Lu; Lijun Sun; Zhaoxin Lu; Xiaomei Bie; Yaowei Fang; Shu Liu
Journal:  Curr Microbiol       Date:  2007-05-08       Impact factor: 2.188

  6 in total

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