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Updated: May 30, 2026

Imaging InlC Secretion to Investigate Cellular Infection by the Bacterial Pathogen Listeria monocytogenes
Published on: September 19, 2013
The metalloprotease of Listeria monocytogenes is regulated by pH
Brian M Forster1, Alan Pavinski Bitar, Emily R Slepkov
1Department of Microbiology and Immunology, VMC Rm C5-169, Cornell University, Ithaca, NY 14853-6401, USA.
Abstract:
Listeria monocytogenes is an intracytosolic bacterial pathogen. Among the factors contributing to escape from vacuoles are a phosphatidylcholine phospholipase C (PC-PLC) and a metalloprotease (Mpl). Both enzymes are translocated across the bacterial membrane as inactive proproteins, whose propeptides serve in part to maintain them in association with the bacterium. We have shown that PC-PLC maturation is regulated by Mpl and pH and that Mpl maturation occurs by autocatalysis. In this study, we tested the hypothesis that Mpl activity is pH regulated. To synchronize the effect of pH on bacteria, the cytosolic pH of infected cells was manipulated immediately after radiolabeling de novo-synthesized bacterial proteins. Immunoprecipitation of secreted Mpl from host cell lysates revealed the presence of the propeptide and catalytic domain in samples treated at pH 6.5 but not at pH 7.3. The zymogen was present in small amounts under all conditions. Since proteases often remain associated with their respective propeptide following autocatalysis, we aimed at determining whether pH regulates autocatalysis or secretion of the processed enzyme. For this purpose, we used an Mpl construct that contains a Flag tag at the N terminus of its catalytic domain and antibodies that can distinguish N-terminal and non-N-terminal Flag. By fluorescence microscopy, we observed the Mpl zymogen associated with the bacterium at physiological pH but not following acidification. Mature Mpl was not detected in association with the bacterium at either pH. Using purified proteins, we determined that processing of the PC-PLC propeptide by mature Mpl is also pH sensitive. These results indicate that pH regulates the activity of Mpl on itself and on PC-PLC.
Insights
This study reveals that Listeria monocytogenes metalloprotease (Mpl) activity is pH-dependent. Acidic conditions trigger Mpl processing and secretion, impacting bacterial escape from host cells.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Listeria monocytogenes escapes host vacuoles using enzymes like phosphatidylcholine phospholipase C (PC-PLC) and metalloprotease (Mpl).
- Both PC-PLC and Mpl are secreted as inactive proproteins, with propeptides aiding bacterial association.
- Previous research indicated Mpl regulates PC-PLC maturation and Mpl matures via autocatalysis, with pH influencing PC-PLC maturation.
Purpose of the Study:
- To investigate the hypothesis that Mpl activity is regulated by pH.
- To determine if pH affects Mpl autocatalysis or secretion of the processed enzyme.
- To assess the pH sensitivity of Mpl processing of the PC-PLC propeptide.
Main Methods:
- Manipulating the cytosolic pH of infected host cells after radiolabeling bacterial proteins.
- Immunoprecipitation of secreted Mpl from host cell lysates at different pH levels (6.5 and 7.3).
- Utilizing a Flag-tagged Mpl construct and fluorescence microscopy to track zymogen and mature Mpl localization.
- Assessing the pH-dependent processing of PC-PLC by purified Mpl.
Main Results:
- Secreted Mpl contained both propeptide and catalytic domain at pH 6.5, but not at pH 7.3.
- Mpl zymogen was observed associated with the bacterium at physiological pH but not after acidification.
- Mature Mpl was not detected associated with the bacterium at either pH.
- Mpl-mediated processing of the PC-PLC propeptide was found to be pH sensitive.
Conclusions:
- pH is a critical regulator of Mpl activity, influencing both its autocatalysis and secretion.
- Acidification of the host cell environment affects Mpl localization and processing.
- These findings highlight pH-dependent mechanisms in Listeria monocytogenes pathogenesis and host cell invasion.
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