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Fluorescence-Based Measurements of Phosphatidylserine/Phosphatidylinositol 4-Phosphate Exchange Between Membranes
Published on: March 14, 2021
ProxyPhos sensors for the detection of negatively charged membranes
Bronte I Murcar-Evans1, Aaron D Cabral, Krimo Toutah
1Department of Chemistry and Department of Chemical & Physical Sciences, University of Toronto, Mississauga, 3359 Mississauga Road North, Mississauga, Ontario, Canada L5L 1C6. diana.kraskouskaya@utoronto.ca patrick.gunning@utoronto.ca.
Abstract:
Membrane-embedded negatively charged phospholipids (MENCP) can be used as biomarkers for a range of biological processes, including early detection of apoptosis in animal cells, drug-induced phospholipidosis, and selective detection of bacterial over animal cells. Currently, several technologies for the detection of apoptosis and bacterial cells are based on the recognition of MENCPs, including the AnnexinV stain and PSVue™ probes. As probes, these technologies have limitations, the most significant of which is the need for washing the unbound probe away to achieve optimal signal. In contrast, a turn-on chemosensor selective for MENCP would address this shortcoming, and allow for a more rapid protocol for the detection of apoptosis, bacteria and for other relevant applications. In this work, the aim was to explore whether ProxyPhos chemosensors, previously reported by our group for the detection of proximally phosphorylated peptides and proteins, could be re-purposed for the detection of MENCPs. Six lead ProxyPhos sensors were screened against synthetic vesicles containing biologically relevant negatively charged phospholipids including phosphatidic acid (PA), phosphatidylglycerol (PG), cardiolipin (CL) and phosphatidylserine (PS). Through these screens, ProxyPhos sensors exhibiting high selectivity for the detection of MENCPs over zwitterionic lipids were identified. Particular selectivity was observed for PA and CL. Sensitivity of the lead sensors for MENCPs was suitable for the detection of apoptosis: ProxyPhos detected vesicles containing as little as 2.5% PS and detected camptothecin-induced apoptosis in mammalian cells in flow cytometry experiments. The results suggest that ProxyPhos sensors can be used for the detection of MENCPs in synthetic vesicles and live mammalian cells.
Insights
New ProxyPhos chemosensors detect membrane-embedded negatively charged phospholipids (MENCPs), crucial biomarkers for apoptosis and bacterial detection. This offers a faster alternative to existing probes, enabling rapid cell analysis without washing steps.
Area of Science:
- Biochemistry
- Cell Biology
- Chemical Biology
Background:
- Membrane-embedded negatively charged phospholipids (MENCPs) are vital biomarkers for apoptosis, phospholipidosis, and bacterial detection.
- Current detection methods like AnnexinV and PSVue™ probes require washing, limiting protocol speed.
- A selective turn-on chemosensor for MENCPs could significantly improve detection efficiency.
Purpose of the Study:
- To investigate the repurposing of ProxyPhos chemosensors for MENCP detection.
- To evaluate the selectivity and sensitivity of ProxyPhos sensors for various MENCPs.
- To assess the potential of ProxyPhos sensors in biological applications like apoptosis detection.
Main Methods:
- Screening of six lead ProxyPhos sensors against synthetic vesicles containing MENCPs (PA, PG, CL, PS).
- Evaluation of sensor selectivity against zwitterionic lipids.
- Testing sensor sensitivity using vesicles with varying PS content and in flow cytometry experiments for apoptosis detection.
Main Results:
- ProxyPhos sensors demonstrated high selectivity for MENCPs over zwitterionic lipids.
- Particular selectivity was observed for phosphatidic acid (PA) and cardiolipin (CL).
- Sensors detected as little as 2.5% phosphatidylserine (PS) in vesicles and identified camptothecin-induced apoptosis in mammalian cells.
Conclusions:
- ProxyPhos chemosensors can be effectively repurposed for MENCP detection.
- These sensors offer a promising tool for rapid detection of MENCPs in synthetic vesicles and live cells.
- The findings support the use of ProxyPhos for improved apoptosis and bacterial detection protocols.
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