A C-terminal di-leucine motif controls plasma membrane expression of PMCA4b
Géza Antalffy1, Katalin Pászty1, Karolina Varga2
1Molecular Biophysics Research Group of the Hungarian Academy of Sciences and Department of Biophysics, Semmelweis University, Budapest, Hungary.
Abstract:
Recent evidences show that the localization of different plasma membrane Ca(2+) ATPases (PMCAs) is regulated in various complex, cell type-specific ways. Here we show that in low-density epithelial and endothelial cells PMCA4b localized mostly in intracellular compartments and its plasma membrane localization was enhanced upon increasing density of cells. In good correlation with the enhanced plasma membrane localization a significantly more efficient Ca(2+) clearance was observed in confluent versus non-confluent HeLa cell cultures expressing mCherry-PMCA4b. We analyzed the subcellular localization and function of various C-terminally truncated PMCA4b variants and found that a truncated mutant PMCA4b-ct24 was mostly intracellular while another mutant, PMCA4b-ct48, localized more to the plasma membrane, indicating that a protein sequence corresponding to amino acid residues 1158-1181 contained a signal responsible for the intracellular retention of PMCA4b in non-confluent cultures. Alteration of three leucines to alanines at positions 1167-1169 resulted in enhanced cell surface expression and an appropriate Ca(2+) transport activity of both wild type and truncated pumps, suggesting that the di-leucine-like motif (1167)LLL was crucial in targeting PMCA4b. Furthermore, upon loss of cell-cell contact by extracellular Ca(2+) removal, the wild-type pump was translocated to the early endosomal compartment. Targeting PMCA4b to early endosomes was diminished by the L(1167-69)A mutation, and the mutant pump accumulated in long tubular cytosolic structures. In summary, we report a di-leucine-like internalization signal at the C-tail of PMCA4b and suggest an internalization-mediated loss of function of the pump upon low degree of cell-cell contact.
Insights
Cell density influences plasma membrane Ca(2+) ATPase 4b (PMCA4b) localization. A di-leucine-like motif in PMCA4b targets it intracellularly, affecting Ca(2+) clearance, especially when cell-cell contact is lost.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Plasma membrane Ca(2+) ATPases (PMCAs) are crucial for calcium homeostasis.
- PMCA localization is known to be cell type-specific and regulated.
- The precise mechanisms governing PMCA4b localization require further elucidation.
Purpose of the Study:
- To investigate the role of cell density in regulating PMCA4b localization.
- To identify specific protein motifs responsible for PMCA4b subcellular targeting.
- To understand how PMCA4b localization affects cellular calcium handling.
Main Methods:
- Expression of wild-type and mutant mCherry-PMCA4b in epithelial and endothelial cells.
- Analysis of subcellular localization using microscopy in cells of varying densities.
- Functional assessment of Ca(2+) clearance efficiency in confluent versus non-confluent cultures.
- Site-directed mutagenesis to investigate the role of specific amino acid residues.
Main Results:
- PMCA4b predominantly localized intracellularly in low-density cells, shifting to the plasma membrane with increased cell density.
- Confluent cells exhibited significantly more efficient Ca(2+) clearance compared to non-confluent cells.
- A C-terminal di-leucine-like motif (residues 1167-1169) was identified as critical for intracellular retention and PMCA4b targeting.
- Loss of cell-cell contact induced PMCA4b translocation to early endosomes, mediated by this motif.
Conclusions:
- A novel di-leucine-like internalization signal in the C-tail of PMCA4b regulates its plasma membrane localization.
- Cell-cell contact and density-dependent localization are critical for PMCA4b function in calcium clearance.
- Disruption of cell-cell contact leads to PMCA4b internalization and potential loss of function.
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