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Novel ORAI1 Mutation Disrupts Channel Trafficking Resulting in Combined Immunodeficiency
Fang Yu1,2, Nourhen Agrebi3, Rafah Mackeh3
1Department of Physiology and Biophysics, Weill Cornell Medicine Qatar, Education City, Qatar Foundation, Doha, Qatar.
Insights
A new ORAI1 mutation causes combined immunodeficiency (CID) by disrupting calcium entry. This finding highlights the importance of ORAI1 channel trafficking for immune cell function.
Area of Science:
- Immunology
- Cell Biology
- Genetics
Background:
- Store-operated calcium entry (SOCE) is crucial for immune cell activation, mediated by ORAI1 and STIM1.
- Mutations in ORAI1 or STIM1 cause combined immunodeficiency (CID) and other developmental issues.
Observation:
- A novel autosomal recessive mutation (p.C126R) in the ORAI1 gene was identified in a child with CID.
- The mutation is located in the ORAI1 transmembrane domain 2 (TM2), a region not previously linked to loss-of-function.
Findings:
- The p.C126R mutation suppressed SOCE in patient lymphocytes, impairing T cell proliferation and cytokine production.
- Functional analysis revealed that the mutation disrupts ORAI1 trafficking, preventing proper insertion into the plasma membrane and causing ER retention.
- Altering positive charge within TM2, as seen in L135R, also leads to misfolding and trafficking defects.
Implications:
- This study identifies a novel mechanism of ORAI1 dysfunction due to impaired protein trafficking.
- Understanding these trafficking defects provides insights into the molecular basis of CID and related disorders.
- Targeting ORAI1 trafficking could offer new therapeutic strategies for immune deficiencies.
Abstract:
Store-operated Ca2+ entry (SOCE) represents a predominant Ca2+ influx pathway in non-excitable cells. SOCE is required for immune cell activation and is mediated by the plasma membrane (PM) channel ORAI1 and the endoplasmic reticulum (ER) Ca2+ sensor STIM1. Mutations in the Orai1 or STIM1 genes abolish SOCE leading to combined immunodeficiency (CID), muscular hypotonia, and anhidrotic ectodermal dysplasia. Here, we identify a novel autosomal recessive mutation in ORAI1 in a child with CID. The patient is homozygous for p.C126R mutation in the second transmembrane domain (TM2) of ORAI1, a region with no previous loss-of-function mutations. SOCE is suppressed in the patient's lymphocytes, which is associated with impaired T cell proliferation and cytokine production. Functional analyses demonstrate that the p.C126R mutation does not alter protein expression but disrupts ORAI1 trafficking. Orai1-C126R does not insert properly into the bilayer resulting in ER retention. Insertion of an Arg on the opposite face of TM2 (L135R) also results in defective folding and trafficking. We conclude that positive side chains within ORAI1 TM2 are not tolerated and result in misfolding, defective bilayer insertion, and channel trafficking thus abolishing SOCE and resulting in CID.
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