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Atomic Force Microscopy Imaging and Force Spectroscopy of Supported Lipid Bilayers
Published on: July 22, 2015
Characterization of intact FeoB in a lipid bilayer using styrene-maleic acid (SMA) copolymers
Mark Lee1, Candice M Armstrong1, Aaron T Smith1
1Department of Chemistry and Biochemistry, University of Maryland, Baltimore County, Baltimore, MD 21250, USA.
Abstract:
The acquisition of ferrous iron (Fe2+) is crucial for the survival of many pathogenic bacteria living within acidic and/or anoxic conditions such as Vibrio cholerae, the causative agent of the disease cholera. Bacterial pathogens utilize iron as a cofactor to drive essential metabolic processes, and the primary prokaryotic Fe2+ acquisition mechanism is the ferrous iron transport (Feo) system. In V. cholerae, the Feo system comprises two cytosolic proteins (FeoA, FeoC) and a complex, polytopic transmembrane protein (FeoB) that is regulated by an N-terminal soluble domain (NFeoB) with promiscuous NTPase activity. While the soluble components of the Feo system have been frequently studied, very few reports exist on the intact membrane protein FeoB. Moreover, FeoB has been characterize almost exclusively in detergent micelles that can cause protein misfolding, disrupt protein oligomerization, and even dramatically alter protein function. As many of these characteristics of FeoB remain unclear, there is a critical need to characterize FeoB in a more native-like lipid environment. To address this unmet need, we employ styrene-maleic acid (SMA) copolymers to isolate and to characterize V. cholerae FeoB (VcFeoB) encapsulated by a styrene-maleic acid lipid particle (SMALP). In this work, we describe the development of a workflow for the expression and the purification of VcFeoB in a SMALP. Leveraging mass photometry, we explore the oligomerization of FeoB in a lipid bilayer and show that the VcFeoB-SMALP is mostly monomeric, consistent with our previous oligomerization observations in surfo. Finally, we characterize the NTPase activity of VcFeoB in the SMALP and in a detergent (DDM), revealing higher NTPase activity in the presence of the lipid bilayer. When taken together, this report represents the first characterization of any FeoB in a native-like lipid bilayer and provides a viable approach for the future structural characterization of FeoB.
Insights
This study characterizes the bacterial ferrous iron transporter FeoB in a native-like lipid environment using styrene-maleic acid lipid particles (SMALPs). Results show FeoB is monomeric and exhibits higher NTPase activity in lipid bilayers, paving the way for structural studies.
Area of Science:
- Microbiology
- Structural Biology
- Biochemistry
Background:
- Ferrous iron (Fe2+) acquisition is vital for pathogenic bacteria like Vibrio cholerae.
- The ferrous iron transport (Feo) system, particularly the FeoB protein, is crucial for Fe2+ uptake.
- Previous studies on FeoB were limited to detergent micelles, potentially altering its native structure and function.
Purpose of the Study:
- To characterize the V. cholerae FeoB (VcFeoB) protein in a native-like lipid environment.
- To establish a workflow for expressing and purifying VcFeoB within styrene-maleic acid lipid particles (SMALPs).
- To investigate the oligomerization state and NTPase activity of VcFeoB in a lipid bilayer.
Main Methods:
- Expression and purification of VcFeoB using styrene-maleic acid (SMA) copolymers to form SMALPs.
- Mass photometry to determine the oligomerization state of VcFeoB within SMALPs.
- Characterization of NTPase activity of VcFeoB in SMALPs and detergent (DDM).
Main Results:
- A successful workflow for VcFeoB expression and purification in SMALPs was developed.
- Mass photometry indicated that VcFeoB is predominantly monomeric in the lipid bilayer.
- VcFeoB exhibited enhanced NTPase activity when reconstituted in SMALPs compared to detergent.
Conclusions:
- This study provides the first characterization of a FeoB protein in a native-like lipid bilayer.
- SMALP technology offers a viable method for studying FeoB in a more biologically relevant environment.
- These findings facilitate future structural studies of the FeoB transporter.
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