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Published on: June 22, 2022
Functional interaction between CFTR and the sodium-phosphate co-transport type 2a in Xenopus laevis oocytes
Naziha Bakouh1, Baya Chérif-Zahar, Philippe Hulin
1Inserm UMRS-845, Paris, France.
Background:
A growing number of proteins, including ion transporters, have been shown to interact with Cystic Fibrosis Transmembrane conductance Regulator (CFTR). CFTR is an epithelial chloride channel that is involved in Cystic Fibrosis (CF) when mutated; thus a better knowledge of its functional interactome may help to understand the pathophysiology of this complex disease. In the present study, we investigated if CFTR and the sodium-phosphate co-transporter type 2a (NPT2a) functionally interact after heterologous expression of both proteins in Xenopus laevis oocytes.
Methodology/Findings:
NPT2a was expressed alone or in combination with CFTR in X. laevis oocytes. Using the two-electrode voltage-clamp technique, the inorganic phosphate-induced current (IPi) was measured and taken as an index of NPT2a activity. The maximal IPi for NPT2a substrates was reduced when CFTR was co-expressed with NPT2a, suggesting a decrease in its expression at the oolemna. This was consistent with Western blot analysis showing reduced NPT2a plasma membrane expression in oocytes co-expressing both proteins, whereas NPT2a protein level in total cell lysate was the same in NPT2a- and NPT2a+CFTR-oocytes. In NPT2a+CFTR- but not in NPT2a-oocytes, IPi and NPT2a surface expression were increased upon PKA stimulation, whereas stimulation of Exchange Protein directly Activated by cAMP (EPAC) had no effect. When NPT2a-oocytes were injected with NEG2, a short amino-acid sequence from the CFTR regulatory domain that regulates PKA-dependent CFTR trafficking to the plasma membrane, IPi values and NPT2a membrane expression were diminished, and could be enhanced by PKA stimulation, thereby mimicking the effects of CFTR co-expression.
Conclusion/Perspectives:
We conclude that when both CFTR and NPT2a are expressed in X. laevis oocytes, CFTR confers to NPT2a a cAMPi-dependent trafficking to the membrane. This functional interaction raises the hypothesis that CFTR may play a role in phosphate homeostasis.
Insights
Cystic Fibrosis Transmembrane conductance Regulator (CFTR) influences sodium-phosphate co-transporter type 2a (NPT2a) membrane expression and activity in Xenopus oocytes. CFTR promotes cAMP-dependent NPT2a trafficking, suggesting a role for CFTR in phosphate homeostasis.
Area of Science:
- Molecular biology
- Cell physiology
Background:
- Cystic Fibrosis Transmembrane conductance Regulator (CFTR) interacts with various proteins, including ion transporters.
- Understanding CFTR's interactome is crucial for elucidating Cystic Fibrosis pathophysiology.
Purpose of the Study:
- To investigate the functional interaction between CFTR and sodium-phosphate co-transporter type 2a (NPT2a).
- To determine if co-expression of CFTR affects NPT2a activity and localization.
Main Methods:
- Heterologous expression of CFTR and NPT2a in Xenopus laevis oocytes.
- Two-electrode voltage-clamp technique to measure NPT2a activity (inorganic phosphate-induced current).
- Western blot analysis to assess NPT2a protein expression at the plasma membrane and in total lysate.
Main Results:
- Co-expression of CFTR reduced NPT2a-mediated phosphate current and plasma membrane expression.
- CFTR co-expression led to increased NPT2a activity and surface expression upon PKA stimulation.
- A CFTR regulatory domain peptide mimicked CFTR's effect on NPT2a trafficking.
Conclusions:
- CFTR mediates cAMP-dependent trafficking of NPT2a to the plasma membrane in Xenopus oocytes.
- This interaction suggests a potential role for CFTR in regulating phosphate homeostasis.
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