» Articles » PMID: 17661302

Probing Phospholipase A(2) with Fluorescent Phospholipid Substrates

Overview
Journal Chembiochem
Specialty Biochemistry
Date 2007 Jul 31
PMID 17661302
Citations 13
Authors
Affiliations
Soon will be listed here.
Abstract

The Foerster resonance energy transfer-based sensor, PENN, measures intracellular phospholipase A(2) (PLA(2)) activity in living cells and small organisms. In an attempt to modify the probe for the detection of particular isoforms, we altered the sn-2 fatty acid in such a way that either one or three of the Z double bonds in arachidonic acid were present in the sensor molecule. Arachidonic-acid-mimicking fatty acids were prepared by copper-mediated coupling reactions. Probes with a single double bond in the 5-position exhibited favorable substrate properties for secretory PLA(2)s. In vitro experiments with the novel unsaturated doubly labeled phosphatidylethanolamine derivatives showed preferred cleavage of the sensor PENN2 (one double bond) by the physiologically important group V sPLA(2), while the O-methyl-derivative PMNN2 was accepted best by the isoform from hog pancreas. For experiments in living cells, we demonstrated that bioactivation via S-acetylthioethyl (SATE) groups is essential for probe performance. Surprisingly, membrane-permeant versions of the new sensors that contained double bonds, PENN2 and PENN3, were only cleaved to a minor extent in HeLa cells while the saturated form, PENN, was well accepted.

Citing Articles

Probing Glycerolipid Metabolism using a Caged Clickable Glycerol-3-Phosphate Probe.

Lou J, Ancajas C, Zhou Y, Lane N, Reynolds T, Best M Chembiochem. 2024; 25(18):e202300853.

PMID: 38705850 PMC: 11535253. DOI: 10.1002/cbic.202300853.


4-Amino-TEMPO loaded liposomes as sensitive EPR and OMRI probes for the detection of phospholipase A2 activity.

Alberti D, Thiaudiere E, Parzy E, Elkhanoufi S, Rakhshan S, Stefania R Sci Rep. 2023; 13(1):13725.

PMID: 37608036 PMC: 10444830. DOI: 10.1038/s41598-023-40857-4.


Nile-Red-Based Fluorescence Probe for Selective Detection of Biothiols, Computational Study, and Application in Cell Imaging.

Rong X, Xu Z, Yan J, Meng Z, Zhu B, Zhang L Molecules. 2020; 25(20).

PMID: 33066675 PMC: 7587360. DOI: 10.3390/molecules25204718.


Combining 3D graphene-like screen-printed carbon electrode with methylene blue-loaded liposomal nanoprobes for phospholipase A detection.

Zhang Y, Ai J, Dong Y, Zhang S, Gao Q, Qi H Biosens Bioelectron. 2018; 126:255-260.

PMID: 30445300 PMC: 6413735. DOI: 10.1016/j.bios.2018.11.004.


Activity-based targeting of secretory phospholipase A enzymes: A fatty-acid-binding-protein assisted approach.

Keshavarz A, Zelaya L, Singh J, Ranganathan R, Hajdu J Chem Phys Lipids. 2016; 202:38-48.

PMID: 27894770 PMC: 5218917. DOI: 10.1016/j.chemphyslip.2016.11.006.


References
1.
Bayburt T, Yu B, Lin H, Browning J, Jain M, Gelb M . Human nonpancreatic secreted phospholipase A2: interfacial parameters, substrate specificities, and competitive inhibitors. Biochemistry. 1993; 32(2):573-82. DOI: 10.1021/bi00053a024. View

2.
Rose T, Prestwich G . Fluorogenic phospholipids as head group-selective reporters of phospholipase A activity. ACS Chem Biol. 2006; 1(2):83-91. DOI: 10.1021/cb5000014. View

3.
Wichmann O, Wittbrodt J, Schultz C . A small-molecule FRET probe to monitor phospholipase A2 activity in cells and organisms. Angew Chem Int Ed Engl. 2005; 45(3):508-12. DOI: 10.1002/anie.200500751. View

4.
Miyawaki A . Visualization of the spatial and temporal dynamics of intracellular signaling. Dev Cell. 2003; 4(3):295-305. DOI: 10.1016/s1534-5807(03)00060-1. View

5.
Lefebvre I, Perigaud C, Pompon A, Aubertin A, Girardet J, KIRN A . Mononucleoside phosphotriester derivatives with S-acyl-2-thioethyl bioreversible phosphate-protecting groups: intracellular delivery of 3'-azido-2',3'-dideoxythymidine 5'-monophosphate. J Med Chem. 1995; 38(20):3941-50. DOI: 10.1021/jm00020a007. View