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A role for PACE4 in the proteolytic activation of anthrax toxin protective antigen

V M Gordon1, A Rehemtulla, S H Leppla

  • 1Laboratory of Microbial Ecology, National Institute of Dental Research, National Institutes of Health, Bethesda, Maryland 20892, USA. gordon@yoda.nidr.nih.gov

Infection and Immunity
|August 1, 1997
PubMed

Insights

Protease PACE4 activates anthrax toxin protective antigen (PA) on cell surfaces, recognizing specific cleavage sequences. This protease plays a key role in bacterial toxin activation beyond furin.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Cell Biology

Background:

  • Bacterial protein toxins often require host cell proteases for activation.
  • Furin is a known protease that cleaves toxins like anthrax protective antigen (PA), but other proteases can also mediate this activation.
  • Furin and PACE4 proteases have distinct substrate recognition requirements.

Purpose of the Study:

  • To investigate the distinct roles of furin and PACE4 in the proteolytic activation of bacterial toxins, specifically anthrax toxin PA.
  • To determine if PACE4 can activate PA and identify the specific cleavage sequences recognized by PACE4.

Main Methods:

  • Utilized furin-deficient Chinese Hamster Ovary (CHO) cells (FD11) transfected with either furin or PACE4 genes.
  • Created mutant PA proteins with altered cleavage sequences (RAAR, KR) to assess cytotoxicity.
  • Performed in vitro cleavage assays and analyzed PA cleavage on cell surfaces and intracellularly.

Main Results:

  • Mutant PA proteins were cytotoxic to cells expressing PACE4, indicating PACE4's role in activation.
  • PACE4 recognized the RAAR sequence and, to a lesser extent, KR and RR sequences in vitro.
  • PA cleavage occurred on the cell surface for RKKR and RAAR sequences, but dibasic sequence cleavage was intracellular and dependent on furin or PACE4 expression.

Conclusions:

  • PACE4 is located on the cell exterior and contributes to the proteolytic activation of anthrax toxin PA.
  • PACE4 can activate PA at RAAR or KR sequences, expanding the known repertoire of toxin activation pathways.
  • This study highlights the functional redundancy and distinct substrate specificities of proteases like furin and PACE4 in toxin activation.

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