FOLDING OF HUMAN LYSOZYME INVIVO BY THE FORMATION OF AN ALTERNATIVE DISULFIDE BOND

被引:0
|
作者
KANAYA, E [1 ]
KIKUCHI, M [1 ]
机构
[1] PROT ENGN RES INST,6-2-3 FURUEDAI,SUITA,OSAKA 565,JAPAN
关键词
D O I
暂无
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The mutant h-lysozyme, W64CC65A, with Trp64 and Cys65 replaced by Cys and Ala, respectively, was secreted by yeast and purified. Peptide mapping confirmed that W64CC65A contained a nonnative Cys64-Cys81 bond and three native disulfide bonds. The mutant had 2% of the lytic activity of the wild-type lysozyme. The midpoint concentration of the guanidine hydrochloride denaturation curve, the [D]1/2, was 2.7 M for W64CC65A at pH 3.0 and 25-degrees-C, whereas the [D]1/2 for the wild-type h-lysozyme was 2.9 M. These results show that the W64CC65A protein is a compactly folded molecule. Our previous results, using the mutant C81A, indicate that Cys81 is not required for correct folding and activity, whereas Cys65 is indispensable (Taniyama, Y., Yamamoto, Y., Kuroki, R., and Kikuchi, M. (1990) J. Biol. Chem. 65, 7570-7575). Cys64 substituted for Cys65 in W64CC65A, even though the distance between the a-carbons at positions 64 and 81 in the wild-type h-lysozyme is not favorable for forming a disulfide bond. Unlike C81A, the mutant W64CC65/81A, which has the additional substitution of Ala for Cys81, did not fold. These results suggest that the absence of both the Cys64-Cys81 bond and the amino acid residue Trp64 caused the misfolding or destabilization of W64CC65/81A in vivo. It is proposed that the formation of the alternative bond, Cys64-Cys81 is important for the folding of W64CC65A in vivo.
引用
收藏
页码:15111 / 15115
页数:5
相关论文
共 50 条
  • [21] DISULFIDE BOND FORMATION DURING THE FOLDING OF INFLUENZA-VIRUS HEMAGGLUTININ
    SEGAL, MS
    BYE, JM
    SAMBROOK, JF
    GETHING, MJH
    JOURNAL OF CELL BIOLOGY, 1992, 118 (02): : 227 - 244
  • [22] HYPOXIA INHIBITS DISULFIDE BOND FORMATION AND PROTEIN FOLDING IN THE ENDOPLASMIC RETICULUM
    Koritzinsky, M.
    Rouschop, K.
    van den Beucken, T.
    Braakman, I.
    Wouters, B.
    RADIOTHERAPY AND ONCOLOGY, 2008, 88 : S156 - S157
  • [23] Multilevel Framework for Analysis of Protein Folding Involving Disulfide Bond Formation
    Wesolowski, Patryk A.
    Wales, David J.
    Pracht, Philipp
    JOURNAL OF PHYSICAL CHEMISTRY B, 2024, 128 (13): : 3145 - 3156
  • [24] HYPOXIA INHIBITS DISULFIDE BOND FORMATION AND PROTEIN FOLDING IN THE ENDOPLASMIC RETICULUM
    Koritzinsky, M.
    Van den Beucken, T.
    Chu, K.
    Boutros, P. C.
    Braakman, I.
    Wouters, B. G.
    RADIOTHERAPY AND ONCOLOGY, 2012, 102 : S185 - S186
  • [25] ROLE OF DISULFIDE BONDS IN FOLDING AND SECRETION OF HUMAN LYSOZYME IN SACCHAROMYCES-CEREVISIAE
    TANIYAMA, Y
    YAMAMOTO, Y
    NAKAO, M
    KIKUCHI, M
    IKEHARA, M
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1988, 152 (03) : 962 - 967
  • [26] ASSEMBLY OF SILKMOTH CHORION PROTEINS - INVIVO PATTERNS OF DISULFIDE BOND FORMATION
    REGIER, JC
    WONG, JR
    INSECT BIOCHEMISTRY, 1988, 18 (05): : 471 - 482
  • [27] PDI-Regulated Disulfide Bond Formation in Protein Folding and Biomolecular Assembly
    Fu, Jiahui
    Gao, Jihui
    Liang, Zhongxin
    Yang, Dong
    MOLECULES, 2021, 26 (01):
  • [28] Heterologous expression of lipase in Escherichia coli is limited by folding and disulfide bond formation
    Yali Xu
    Amrita Yasin
    Raymond Tang
    Jeno M. Scharer
    Murray Moo-Young
    C. Perry Chou
    Applied Microbiology and Biotechnology, 2008, 81 : 79 - 87
  • [29] Balancing oxidative protein folding: The influences of reducing pathways on disulfide bond formation
    Kojer, Kerstin
    Riemer, Jan
    BIOCHIMICA ET BIOPHYSICA ACTA-PROTEINS AND PROTEOMICS, 2014, 1844 (08): : 1383 - 1390
  • [30] Cysteine sulfenic Acid as an Intermediate in Disulfide Bond Formation and Nonenzymatic Protein Folding
    Rehder, Douglas S.
    Borges, Chad R.
    BIOCHEMISTRY, 2010, 49 (35) : 7748 - 7755