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Total Protein Extraction and 2-D Gel Electrophoresis Methods for Burkholderia Species
Published on: October 15, 2013
Energy-generating enzymes of Burkholderia cepacia and their interactions with macrophages
Vasu Punj1, Rachna Sharma, Olga Zaborina
1Department of Microbiology and Immunology, University of Illinois College of Medicine, Chicago, Illinois 60612, USA.
Abstract:
We previously demonstrated that several clinical and environmental isolates of Burkholderia cepacia secreted ATP-utilizing enzymes to the medium; the secretion of these enzymes by cystic fibrosis lung isolate strain 38 was shown to be greatly enhanced in the presence of alpha(2)-macroglobulin. Fractionation of the growth medium of cystic fibrosis isolate strain 71 belonging to genomovar I demonstrated the presence of two additional proteins, homologues of Pseudomonas aeruginosa azurin and cytochrome c(551), which are normally involved in electron transfer during denitrification. A Q-Sepharose column flowthrough fraction of the growth medium of B. cepacia strain 71 enriched with the azurin and cytochrome c(551) homologues triggered apoptosis in macrophages and mast cells, leading to their death. Incubation of the Q-Sepharose column flowthrough fraction with antiazurin and anti-cytochrome c(551) antibodies greatly reduced cell death. We cloned and hyperexpressed a gene from B. cepacia strain 71 that encodes the homologue of P. aeruginosa azurin. Such azurin homologues were detected in the growth medium of several strains belonging to genomovars I, III, and VI but not in the growth medium of strains belonging to other genomovars. The growth medium of the strains that elaborated the azurin homologue had high cytotoxicity towards macrophages. Purified azurin homologue was shown to induce apoptosis in macrophages in a caspase-dependent manner and was localized in both the cytosol and nucleus when incubated with or microinjected into macrophages. This is an interesting example of the interaction of a bacterial protein normally involved in cellular energetics with macrophages to effect their cell death.
Insights
Burkholderia cepacia secretes azurin homologues that trigger apoptosis in immune cells. These bacterial proteins, involved in electron transfer, induce macrophage and mast cell death via caspase-dependent pathways.
Area of Science:
- Microbiology
- Immunology
- Biochemistry
Background:
- Burkholderia cepacia clinical isolates secrete ATP-utilizing enzymes.
- Secretion of these enzymes is enhanced by alpha(2)-macroglobulin.
- B. cepacia strain 71 secretes azurin and cytochrome c(551) homologues involved in denitrification.
Purpose of the Study:
- To investigate the cytotoxic effects of B. cepacia secreted proteins on immune cells.
- To identify specific bacterial proteins responsible for inducing apoptosis.
- To explore the mechanism of interaction between bacterial proteins and macrophages.
Main Methods:
- Fractionation of B. cepacia growth medium.
- Incubation of immune cells with bacterial protein fractions.
- Use of specific antibodies to neutralize protein activity.
- Cloning and hyperexpression of the azurin homologue gene.
- Assessment of apoptosis via caspase-dependent pathways.
- Localization studies of the azurin homologue in macrophages.
Main Results:
- A Q-Sepharose column fraction enriched with azurin and cytochrome c(551) homologues induced apoptosis in macrophages and mast cells.
- Antibodies against azurin and cytochrome c(551) reduced cell death.
- Azurin homologues were detected in strains from genomovars I, III, and VI.
- Strains secreting azurin homologues exhibited high cytotoxicity towards macrophages.
- Purified azurin homologue induced caspase-dependent apoptosis in macrophages.
- The azurin homologue localized to both the cytosol and nucleus of macrophages.
Conclusions:
- B. cepacia azurin homologues are cytotoxic to macrophages, inducing apoptosis.
- These bacterial proteins, normally involved in electron transfer, can mediate immune cell death.
- This represents a novel mechanism of bacterial interaction with host immune cells.
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