Cloning and Expression of the Cathepsin F-like Cysteine Protease Gene in Escherichia coli and Its Characterization

  • Joo, Han-Seung (Department of Biochemistry, College of Medicine, Inha University) ;
  • Koo, Kwang-Bon (Department of Bioindustry, College of Life and Environment, Daegu University) ;
  • Park, Kyun-In (Department of Bioindustry, College of Life and Environment, Daegu University) ;
  • Bae, Song-Hwan (Department of Food & Biotechnology, College of Science and Engineering, Hankyong National University) ;
  • Yun, Jong-Won (Department of Life Engineering, College of Engineering, Daegu University) ;
  • Chang, Chung-Soon (Department of Biochemistry, College of Medicine, Inha University) ;
  • Choi, Jang-Won (Department of Bioindustry, College of Life and Environment, Daegu University)
  • Published : 2007.04.30

Abstract

In this study, we have cloned a novel cDNA encoding for a papain-family cysteine protease from the Uni-ZAP XR cDNA library of the polychaete, Periserrula leucophryna. This gene was expressed in Escherichia coli using the T7 promoter system, and the protease was characterized after partial purification. First, the partial DNA fragment (498 bp) was amplified from the total RNA via RT-PCR using degenerated primers derived from the conserved region of cysteine protease. The full-length cDNA of cysteine protease (PLCP) was prepared via the screening of the Uni-ZAP XR cDNA library using the $^{32}P-labeled$ partial DNA fragment. As a result, the PLCP gene was determined to consist of a 2591 bp nucleotide sequence (CDS: 173-1024 bp) which encodes for a 283-amino acid polypeptide, which is itself composed of an 59-residue signal sequence, a 6-residue propeptide, a 218-residue mature protein, and a long 3'-noncoding region encompassing 1564 bp. The predicted molecular weights of the preproprotein and the mature protein were calculated as 31.8 kDa and 25 kDa, respectively. The results of sequence analysis and alignment revealed a significant degree of sequence similarity with other eukaryotic cysteine proteases, including the conserved catalytic triad of the $Cys^{90},\;His^{226},\;and\;Asn^{250}$ residues which characterize the C1 family of papain-like cysteine protease. The nucleotide and amino acid sequences of the novel gene were deposited into the GenBank database under the accession numbers, AY390282 and AAR27011, respectively. The results of Northern blot analysis revealed the 2.5 kb size of the transcript and ubiquitous expression throughout the entirety of the body, head, gut, and skin, which suggested that the PLCP may be grouped within the cathepsin F-like proteases. The region encoding for the mature form of the protease was then subcloned into the pT7-7 expression vector following PCR amplification using the designed primers, including the initiation and termination codons. The recombinant cysteine proteases were generated in a range of 6.3 % to 12.5 % of the total cell proteins in the E. coli BL21(DE3) strain for 8 transformants. The results of SDS-PAGE and Western blot analysis indicated that a cysteine protease of approximately 25 kDa (mature form) was generated. The optimal pH and temperature of the enzyme were determined to be approximately 9.5 and $35^{\circ}C$, respectively, thereby indicating that the cysteine protease is a member of the alkaline protease group. The evaluation of substrate specificity indicated that the purified protease was more active towards Arg-X or Lys-X and did not efficiently cleave the substrates with non-polar amino acids at the P1 site. The PLCP evidenced fibrinolytic activity on the plasminogen-free fibrin plate test.

Keywords

References

  1. Allaire, M., M.M. Chernaia, B.A. Malcolm, and M.N. James. 1994. Picornaviral 3C cysteine proteinases have a fold similar to chymotrypsin-like serine proteinases. Nature 369, 72-76 https://doi.org/10.1038/369072a0
  2. Astrup, T. and S. Mullertz. 1952. The fibrin plate method for the estimation of fibrinolytic activity. Arch. Biochem. Biophys. 40, 346-351 https://doi.org/10.1016/0003-9861(52)90121-5
  3. Baker, E.N. and J. Drenth. 1987. The thiol proteases: Structure and mechanism, p. 313-368. Biological Macromolecules and Assemblies, 3rd (ed.). Wiley, New York, USA
  4. Barrett, A.J. 1992. Cellular proteolysis. An overview. Ann. NY Acad. Sci. 674, 1-15 https://doi.org/10.1111/j.1749-6632.1992.tb27472.x
  5. Barrett, A.J. 1994. Classification of peptidases. Methods Enzymol. 244, 1-15 https://doi.org/10.1016/0076-6879(94)44003-4
  6. Bendtsen, J.D., H. Nielsen, G. von Heijne, and S. Brunak. 2004. Improved prediction of signal peptides: SignalP 3.0. J. Mol. Biol. 340, 783-795 https://doi.org/10.1016/j.jmb.2004.05.028
  7. Berti, P.J. and A.C. Storer. 1995. Alignment/phylogeny of the papain superfamily of cysteine proteases. J. Mol. Biol. 246, 273-283 https://doi.org/10.1006/jmbi.1994.0083
  8. Bond, J.S. and P.E. Butler. 1987. Intracellular Proteases. Annu. Rev. Biochem. 56, 333-364 https://doi.org/10.1146/annurev.bi.56.070187.002001
  9. Brands, S.J. (comp.) 1989-2002. Systema Naturae 2000. Amsterdam, The Netherlands. [http://sn2000.taxonomy.nl/]
  10. Chapman, H.A., R.J. Riese, and G.P. Shi. 1997. Emerging roles for cysteine proteases in human biology. Annu. Rev. Physiol. 59, 63-880 https://doi.org/10.1146/annurev.physiol.59.1.63
  11. Chomczynski, P. and N. Sacchi. 1987. Single-step method of RNA isolation by acid guanidinium thiocyanate-phenol-chloroform extraction. Anal. Biochem. 162, 156-159
  12. Deussing, J., K. Tisljar, A. Papazoglou, and C. Peters. 2000. Mouse cathepsin F: cDNA cloning, genomic organization and chromosomal assignment of the gene. Gene. 251, 165-173 https://doi.org/10.1016/S0378-1119(00)00196-7
  13. Gschwend, T.P., S.R. Krueger, S.V. Kozlov, D.P. Wolfer, and P. Sonderegger. 1997. Neurotrypsin, a novel multidomain serine protease expressed in the nervous system. Molecul. Cellul. Neurosci. 9, 207-219 https://doi.org/10.1006/mcne.1997.0616
  14. Higgins, D.G. and P.M. Sharp. 1989. Fast and sensitive multiple sequence alignments on a microcomputer. Bioinformatics 5, 151-153 https://doi.org/10.1093/bioinformatics/5.2.151
  15. Jeong, B.R., S.M. Chung, N.J. Baek, K.B. Koo, H.S. Baik, H.S. Joo, C.S. Chang, and J.W. Choi. 2006. Characterization, cloning and expression of the ferritin gene from the Korean polychaete, Periserrula leucophryna. J. Microbiol. 44, 54-63
  16. Joo, H.S., G.C. Park, W.R. Cho, E.S. Tak, S.R. Paik, and C.S. Chang. 2002. Purification and characterization of a prothrombin-activating protease from Nephila clavata. Toxicon. 40, 289-296 https://doi.org/10.1016/S0041-0101(01)00225-2
  17. Kim, H.G., T.N. Phan, T.S. Jang, M.J. Koh, and S.W. Kim. 2005. Characterization of Methylophaga sp. Strain SK1 cytochrome $c_{L}$ expressed in Escherichia coli. J. Microbiol. 43, 499-502
  18. Lacks, S. and B. Greenberg. 1977. Complementary specificity of restriction endonucleases of Diplococcus pneumoniae with respect to DNA methylation. J. Mol. Biol. 114, 225-232
  19. Laemmli, U.K. 1970. Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature 227, 680-685 https://doi.org/10.1038/227680a0
  20. Liu, F., J. Lu, W. Hu, S.Y. Wang, S.J Cui, M. Chi, Q. Yan, X.R. Wang, H.D. Song, X.N. Xu, J.J. Wang, X.L. Zhang, X. Zhang, Z.Q. Wang, C.L.Xue, P.J. Brindley, D.P. McManus, P.Y. Yang, Z. Feng, Z. Chen, and Z.G. Han. 2006. New perspectives on host-parasite interplay by comparative transcriptomic and proteomic analyses of Schistosoma japonicum. PLoS Pathog. 2, E29 https://doi.org/10.1371/journal.ppat.0020029
  21. Nong, V.H., C. Becker, and K. Muntz. 1995. cDNA cloning for a putative cysteine proteinase from developing seeds of soybean. Biochim. Biophys. Acta. 1261, 435-438 https://doi.org/10.1016/0167-4781(95)00038-I
  22. Park, H., K.M. Hong, J.A. Sakanari, J.H. Choi, S.K. Park, K.Y. Kim, H.A. Hwang, M.K. Paik, K.J. Yun, C.H. Shin, J.B. Lee, J.S. Ryu, and D.Y. Min. 2001. Paragonimus westermani: Cloning of a cathepsin F-like cysteine proteinase from the adult worm. Exp. Parasitol. 98, 223-227 https://doi.org/10.1006/expr.2001.4634
  23. Polgar, L. 1989. Mechanisms of Protease Action. In Polgar L., (ed.). CRC Press, Boca Raton, FL, USA
  24. Rawlings, N.D. and A.J. Barrett. 1994. Families of cysteine peptidases. Meth. Enzymol. 244, 461-486 https://doi.org/10.1016/0076-6879(94)44034-4
  25. Rawlings, N.D. and A.J. Barrett. 1999. MEROPS: the peptide database. Nucleic Acids Res. 27, 325-331 https://doi.org/10.1093/nar/27.1.325
  26. Sakanari, J.A., C.E. Staunton, A.E. Eakin, C.S. Craik, and J.H. McKerrow. 1989. Serine proteases from nematode and protozoan parasites: Isolation of sequence homologs using generic molecular probe. Proc. Natl. Acad. Sci. USA 86, 4863-4867
  27. Sambrook, J., E.F. Fritsch, and T. Maniatis. 1989. In Molecular cloning, A Laboratory Manual, Cold Spring Harbor Laboratory Press
  28. Shaw, E. 1990. Cysteinyl proteinases and their selective inactivation, p. 271-347. In A. Meister, Editor, Advances in Enzymology, Wiley, New York, USA
  29. Somoza, J.R., J.T. Palmer, and J.D. Ho. 2002. The crystal structure of human cathepsin F and its implications for the development of novel immunomodulators. J. Mol. Biol. 322, 559-568 https://doi.org/10.1016/S0022-2836(02)00780-5
  30. Studier, F.W. 1991. Use of bacteriophage T7 lysozyme to improve an inducible T7 expression system. J. Mol. Biol. 219, 37-44 https://doi.org/10.1016/0022-2836(91)90855-Z
  31. Tabor, S. and C.C. Richardson. 1985. A bacteriophage T7 RNA polymerase/promoter system for controlled exclusive expression of specific genes. Proc. Natl. Acad. Sci. USA 82, 1074-1078
  32. Tisljar, K., J. Deussing, and C. Peters. 1999. Cathepsin J, a novel murine cysteine protease of the papain family with a placentaestricted expression. FEBS Lett. 459, 299-304 https://doi.org/10.1016/S0014-5793(99)01263-6
  33. Yanisch-Perron, C., J. Vieira, and J. Messing. 1985. Improved M13 phage cloning vectors and host strains: nucleotide sequences of the M13mp18 and pUC19 vectors. Gene. 33, 103-119 https://doi.org/10.1016/0378-1119(85)90120-9