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Histoplasma capsulatum modulates the acidification of phagolysosomes
L G Eissenberg1, W E Goldman, P H Schlesinger
1Department of Molecular Microbiology, Washington University School of Medicine, St. Louis, Missouri 63110.
Abstract:
The phagolysosome is perhaps the most effective antimicrobial site within macrophages due both to its acidity and to its variety of hydrolytic enzymes. Few species of pathogens survive and multiply in these vesicles. However, one strategy for microbial survival would be to induce a higher pH within these organelles, thus interfering with the activity of many lysosomal enzymes. Altering the intravesicular milieu might also profoundly influence antigen processing, antimicrobial drug delivery, and drug activity. Here we report the first example of an organism proliferating within phagolysosomes that maintain a relatively neutral pH for a sustained period of time. We inoculated P388D1 macrophages with fluorescein isothiocyanate (FITC)-labeled Histoplasma capsulatum or zymosan. Using the ratio of fluorescence excitations at 495 and 450 nm, we determined that vesicles containing either virulent or avirulent FITC-labeled H. capsulatum yeasts had a pH one to two units higher than vesicles containing either zymosan or methanol-killed H. capsulatum. The difference in pH remained stable for at least 5.5 h postinoculation. Longer-term studies using cells preincubated with acridine orange indicated that phagolysosomes containing live Histoplasma continued to maintain a relatively neutral pH for at least 30 h. Many agents raise the pH of multiple vesicles within the same cell. In contrast, H. capsulatum affects only the phagolysosome in which it is located; during coinoculation of cells with unlabeled Histoplasma and labeled zymosan, organelles containing zymosan still acidified normally. Similarly, unlabeled zymosan had no influence on the elevated pH of vesicles housing labeled Histoplasma. Thus, zymosan and Histoplasma were segregated into separate phagolysosomes that responded independently to their phagocytized contents. This localized effect might reflect an intrinsic difference between phagosomes housing the two particle types, active buffering by the microbe, or altered ion transport across the phagolysosomal membrane such that acidification is inhibited.
Insights
Histoplasma capsulatum manipulates macrophage phagolysosomes, maintaining a neutral pH for survival. This localized pH alteration inhibits antimicrobial activity, unlike other agents that affect multiple vesicles.
Area of Science:
- Microbiology
- Cell Biology
- Immunology
Background:
- Phagolysosomes are acidic organelles crucial for macrophage antimicrobial activity.
- Pathogens typically struggle to survive in the harsh phagolysosomal environment.
- Altering phagolysosomal pH can impact microbial survival, antigen processing, and drug efficacy.
Purpose of the Study:
- To investigate the pH dynamics within phagolysosomes containing Histoplasma capsulatum.
- To determine if H. capsulatum can maintain a neutral pH within phagolysosomes.
- To compare the pH effects of H. capsulatum with other phagocytized particles like zymosan.
Main Methods:
- Macrophages (P388D1) were inoculated with FITC-labeled H. capsulatum or zymosan.
- Phagolysosomal pH was measured using the ratio of fluorescence excitations (495/450 nm).
- Acridine orange staining was used for longer-term pH monitoring (up to 30 hours).
Main Results:
- Phagolysosomes containing live H. capsulatum exhibited a pH 1-2 units higher than those with zymosan or dead H. capsulatum.
- This neutral pH was maintained for at least 5.5 hours and up to 30 hours.
- H. capsulatum specifically altered the pH of its own phagolysosome, leaving adjacent zymosan-containing phagolysosomes acidic.
Conclusions:
- H. capsulatum is the first reported organism to proliferate within phagolysosomes maintaining a sustained neutral pH.
- This localized pH neutralization is a unique survival strategy for H. capsulatum.
- The mechanism may involve active microbial buffering or altered ion transport, impacting macrophage antimicrobial functions.