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The Coxsackievirus and Adenovirus Receptor (CAR) undergoes ectodomain shedding and regulated intramembrane
Nadia Houri1, Kuo-Cheng Huang, Josephine Nalbantoglu
1Department of Neurology and Neurosurgery and Montreal Neurological Institute, McGill University, Montreal, Quebec, Canada.
Abstract:
The Coxsackievirus and Adenovirus Receptor (CAR) is a cell adhesion molecule originally characterized as a virus receptor but subsequently shown to be involved in physiological processes such as neuronal and heart development, epithelial tight junction integrity, and tumour suppression. Proteolysis of cell adhesion molecules and a wide variety of other cell surface proteins serves as a mechanism for protein turnover and, in some cases, cell signaling. Metalloproteases such as A Disintegrin and Metalloprotease (ADAM) family members cleave cell surface receptors to release their substrates' ectodomains, while the presenilin/ɣ-secretase complex mediates regulated intramembrane proteolysis (RIP), releasing intracellular domain fragments from the plasma membrane. In the case of some substrates such as Notch and amyloid precursor protein (APP), the released intracellular domains enter the nucleus to modulate gene expression. We report that CAR ectodomain is constitutively shed from glioma cells and developing neurons, and is also shed when cells are treated with the phorbol ester phorbol 12-myristate 13-acetate (PMA) and the calcium ionophore ionomycin. We identified ADAM10 as a sheddase of CAR using assays involving shRNA knockdown and rescue, overexpression of wild-type ADAM10 and inhibition of ADAM10 activity by addition of its prodomain. In vitro peptide cleavage, mass spectrometry and mutagenesis revealed the amino acids M224 to L227 of CAR as the site of ADAM10-mediated ectodomain cleavage. CAR also undergoes RIP by the presenilin/γ-secretase complex, and the intracellular domain of CAR enters the nucleus. Ectodomain shedding is a prerequisite for RIP of CAR. Thus, CAR belongs to the increasing list of cell surface molecules that undergo ectodomain shedding and that are substrates for ɣ-secretase-mediated RIP.
Insights
The Coxsackievirus and Adenovirus Receptor (CAR) is shed by ADAM10 and undergoes regulated intramembrane proteolysis (RIP) by the presenilin/γ-secretase complex. This shedding is essential for CAR
Area of Science:
- Cell Biology
- Molecular Biology
- Neuroscience
Background:
- The Coxsackievirus and Adenovirus Receptor (CAR) is a cell adhesion molecule with roles in development and tumor suppression.
- Proteolysis, including ectodomain shedding and regulated intramembrane proteolysis (RIP), is crucial for protein turnover and signaling.
- Metalloproteases like ADAM10 and the presenilin/γ-secretase complex mediate these proteolytic events.
Purpose of the Study:
- To investigate the proteolytic processing of CAR.
- To identify the specific proteases involved in CAR ectodomain shedding and RIP.
- To determine the functional consequences of CAR processing.
Main Methods:
- Utilized shRNA knockdown and rescue experiments to identify CAR sheddases.
- Employed overexpression of ADAM10 and inhibition of its activity.
- Performed in vitro peptide cleavage, mass spectrometry, and mutagenesis to map cleavage sites.
- Investigated CAR RIP using presenilin/γ-secretase inhibitors.
Main Results:
- CAR ectodomain is constitutively shed from glioma cells and neurons, and upon stimulation with PMA and ionomycin.
- ADAM10 was identified as the primary sheddase of CAR.
- The ADAM10 cleavage site was mapped to amino acids M224-L227.
- CAR undergoes RIP mediated by the presenilin/γ-secretase complex, with ectodomain shedding being a prerequisite.
- The intracellular domain of CAR translocates to the nucleus.
Conclusions:
- CAR is a novel substrate for both ADAM10-mediated ectodomain shedding and presenilin/γ-secretase-mediated RIP.
- Ectodomain shedding precedes and is required for RIP of CAR.
- These findings place CAR within a growing family of cell surface proteins processed by sequential ectodomain shedding and RIP, impacting cellular functions.
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