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Multi-color Localization Microscopy of Single Membrane Proteins in Organelles of Live Mammalian Cells
Published on: June 30, 2018
Cell Labeling with Magneto-Endosymbionts and the Dissection of the Subcellular Location, Fate, and Host Cell
Kayla R Lee1, Abdul Wakeel1, Papia Chakraborty1
1Bell Biosystems, San Francisco, CA, USA.
Purpose:
The purposes of this study are to characterize magneto-endosymbiont (ME) labeling of mammalian cells and to discern the subcellular fate of these living contrast agents. MEs are novel magnetic resonance imaging (MRI) contrast agents that are being used for cell tracking studies. Understanding the fate of MEs in host cells is valuable for designing in vivo cell tracking experiments.
Procedures:
The ME's surface epitopes, contrast-producing paramagnetic magnetosomal iron, and genome were studied using immunocytochemistry (ICC), Fe and MRI contrast measurements, and quantitative polymerase chain reaction (qPCR), respectively. These assays, coupled with other common assays, enabled validation of ME cell labeling and dissection of ME subcellular processing.
Results:
The assays mentioned above provide qualitative and quantitative assessments of cell labeling, the subcellular localization and the fate of MEs. ICC results, with an ME-specific antibody, qualitatively shows homogenous labeling with MEs. The ferrozine assay shows that MEs have an average of 7 fg Fe/ME, ∼30 % of which contributes to MRI contrast and ME-labeled MDA-MB-231 (MDA-231) cells generally have 2.4 pg Fe/cell, implying ∼350 MEs/cell. Adjusting the concentration of Fe in the ME growth media reduces the concentration of non-MRI contrast-producing Fe. Results from the qPCR assay, which quantifies ME genomes in labeled cells, shows that processing of MEs begins within 24 h in MDA-231 cells. ICC results suggest this intracellular digestion of MEs occurs by the lysosomal degradation pathway. MEs coated with listeriolysin O (LLO) are able to escape the primary phagosome, but subsequently co-localize with LC3, an autophagy-associated molecule, and are processed for digestion. In embryos, where autophagy is transiently suppressed, MEs show an increased capacity for survival and even replication. Finally, transmission electron microscopy (TEM) of ME-labeled MDA-231 cells confirms that the magnetosomes (the MRI contrast-producing particles) remain intact and enable in vivo cell tracking.
Conclusions:
MEs are used to label mammalian cells for the purpose of cell tracking in vivo, with MRI. Various assays described herein (ICC, ferrozine, and qPCR) allow qualitative and quantitative assessments of labeling efficiency and provide a detailed understanding of subcellular processing of MEs. In some cell types, MEs are digested, but the MRI-producing particles remain. Coating with LLO allows MEs to escape the primary phagosome, enhances retention slightly, and confirms that MEs are ultimately processed by autophagy. Numerous intracellular bacteria and all endosymbiotically derived organelles have evolved molecular mechanisms to avoid intracellular clearance, and identification of the specific processes involved in ME clearance provides a framework on which to develop MEs with enhanced retention in mammalian cells.
Insights
Magneto-endosymbionts (MEs) are novel MRI contrast agents for cell tracking. This study characterizes ME labeling and reveals their fate in mammalian cells, with implications for improving in vivo tracking.
Area of Science:
- Cell biology
- Biophysics
- Biotechnology
Background:
- Magneto-endosymbionts (MEs) are emerging as novel contrast agents for in vivo cell tracking using magnetic resonance imaging (MRI).
- Understanding the intracellular fate of these living agents is crucial for optimizing their application in cell tracking studies.
Purpose of the Study:
- To characterize the labeling of mammalian cells with MEs.
- To determine the subcellular fate and processing pathways of MEs within host cells.
- To provide insights for developing MEs with enhanced retention for improved in vivo cell tracking.
Main Methods:
- Immunocytochemistry (ICC) for visualizing ME surface epitopes and intracellular localization.
- Ferrozine assay for quantifying iron content and MRI contrast contribution.
- Quantitative polymerase chain reaction (qPCR) for assessing ME genome and cellular processing rates.
- Transmission electron microscopy (TEM) for ultrastructural analysis of MEs and magnetosomes.
Main Results:
- Homogenous ME labeling of mammalian cells was confirmed by ICC.
- MEs contain approximately 7 fg Fe/ME, with ~30% contributing to MRI contrast; labeled cells contain ~350 MEs/cell.
- ME processing begins within 24 hours via lysosomal degradation and autophagy, although magnetosomes remain intact.
- Listeriolysin O (LLO) coating facilitates phagosome escape but does not prevent eventual autophagic processing.
Conclusions:
- Established assays (ICC, ferrozine, qPCR) effectively assess ME labeling and intracellular fate.
- MEs are subject to degradation by lysosomal and autophagic pathways in many cell types.
- Understanding ME clearance mechanisms is key to engineering MEs with improved retention for advanced cell tracking applications.
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