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Apolipoprotein L1 confers pH-switchable ion permeability to phospholipid vesicles.
- Source :
-
The Journal of biological chemistry [J Biol Chem] 2017 Nov 03; Vol. 292 (44), pp. 18344-18353. Date of Electronic Publication: 2017 Sep 15. - Publication Year :
- 2017
-
Abstract
- Apolipoprotein L1 (ApoL1) is a human serum protein conferring resistance to African trypanosomes, and certain ApoL1 variants increase susceptibility to some progressive kidney diseases. ApoL1 has been hypothesized to function like a pore-forming colicin and has been reported to have permeability effects on both intracellular and plasma membranes. Here, to gain insight into how ApoL1 may function in vivo , we used vesicle-based ion permeability, direct membrane association, and intrinsic fluorescence to study the activities of purified recombinant ApoL1. We found that ApoL1 confers chloride-selective permeability to preformed phospholipid vesicles and that this selectivity is strongly pH-sensitive, with maximal activity at pH 5 and little activity above pH 7. When ApoL1 and lipid were allowed to interact at low pH and were then brought to neutral pH, chloride permeability was suppressed, and potassium permeability was activated. Both chloride and potassium permeability linearly correlated with the mass of ApoL1 in the reaction mixture, and both exhibited lipid selectivity, requiring the presence of negatively charged lipids for activity. Potassium, but not chloride, permease activity required the presence of calcium ions in both the association and activation steps. Direct assessment of ApoL1-lipid associations confirmed that ApoL1 stably associates with phospholipid vesicles, requiring low pH and the presence of negatively charged phospholipids for maximal binding. Intrinsic fluorescence of ApoL1 supported the presence of a significant structural transition when ApoL1 is mixed with lipids at low pH. This pH-switchable ion-selective permeability may explain the different effects of ApoL1 reported in intracellular and plasma membrane environments.<br /> (© 2017 by The American Society for Biochemistry and Molecular Biology, Inc.)
- Subjects :
- Apolipoprotein L1 chemistry
Apolipoprotein L1 genetics
Apolipoprotein L1 pharmacology
Biological Transport
Calcium Signaling
Cell Membrane chemistry
Cell Membrane Permeability
Cetylpyridinium chemistry
Fluorescence
Hydrogen-Ion Concentration
Lethal Dose 50
Phosphatidic Acids chemistry
Phosphatidic Acids metabolism
Phosphatidylcholines chemistry
Phosphatidylcholines metabolism
Phosphatidylethanolamines chemistry
Phosphatidylethanolamines metabolism
Phosphatidylserines chemistry
Phosphatidylserines metabolism
Potassium chemistry
Protein Stability
Recombinant Fusion Proteins chemistry
Recombinant Fusion Proteins metabolism
Recombinant Fusion Proteins pharmacology
Trypanocidal Agents chemistry
Trypanocidal Agents metabolism
Trypanocidal Agents pharmacology
Trypanosoma brucei brucei drug effects
Trypanosoma brucei brucei growth & development
Unilamellar Liposomes chemistry
Unilamellar Liposomes metabolism
Apolipoprotein L1 metabolism
Cell Membrane metabolism
Cetylpyridinium metabolism
Models, Molecular
Potassium metabolism
Subjects
Details
- Language :
- English
- ISSN :
- 1083-351X
- Volume :
- 292
- Issue :
- 44
- Database :
- MEDLINE
- Journal :
- The Journal of biological chemistry
- Publication Type :
- Academic Journal
- Accession number :
- 28918394
- Full Text :
- https://doi.org/10.1074/jbc.M117.813444