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.

The Analyst
|November 4, 2017
PubMed

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.