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Identification of Rac guanine nucleotide exchange factors promoting Lgl1 phosphorylation in glioblastoma
Sylvie J Lavictoire1, Danny Jomaa2, Alexander Gont3
1Cancer Therapeutics Program, Ottawa Hospital Research Institute, Ottawa, Ontario, Canada.
Abstract:
The protein Lgl1 is a key regulator of cell polarity. We previously showed that Lgl1 is inactivated by hyperphosphorylation in glioblastoma as a consequence of PTEN tumour suppressor loss and aberrant activation of the PI 3-kinase pathway; this contributes to glioblastoma pathogenesis both by promoting invasion and repressing glioblastoma cell differentiation. Lgl1 is phosphorylated by atypical protein kinase C that has been activated by binding to a complex of the scaffolding protein Par6 and active, GTP-bound Rac. The specific Rac guanine nucleotide exchange factors that generate active Rac to promote Lgl1 hyperphosphorylation in glioblastoma are unknown. We used CRISPR/Cas9 to knockout PREX1, a PI 3-kinase pathway-responsive Rac guanine nucleotide exchange factor, in patient-derived glioblastoma cells. Knockout cells had reduced Lgl1 phosphorylation, which was reversed by re-expressing PREX1. They also had reduced motility and an altered phenotype suggestive of partial neuronal differentiation; consistent with this, RNA-seq analyses identified sets of PREX1-regulated genes associated with cell motility and neuronal differentiation. PREX1 knockout in glioblastoma cells from a second patient did not affect Lgl1 phosphorylation. This was due to overexpression of a short isoform of the Rac guanine nucleotide exchange factor TIAM1; knockdown of TIAM1 in these PREX1 knockout cells reduced Lgl1 phosphorylation. These data show that PREX1 links aberrant PI 3-kinase signaling to Lgl1 phosphorylation in glioblastoma, but that TIAM1 is also to fill this role in a subset of patients. This redundancy between PREX1 and TIAM1 is only partial, as motility was impaired in PREX1 knockout cells from both patients.
Insights
Researchers identified PREX1 and TIAM1 as key factors linking PI 3-kinase signaling to Lgl1 hyperphosphorylation in glioblastoma, impacting cell invasion and differentiation.
Area of Science:
- Oncology
- Cell Biology
- Molecular Biology
Background:
- Lgl1 protein regulates cell polarity and is inactivated by hyperphosphorylation in glioblastoma.
- This inactivation results from PTEN loss and PI 3-kinase pathway activation, promoting glioblastoma invasion and hindering differentiation.
- Atypical protein kinase C, activated by Par6 and Rac, phosphorylates Lgl1, but the specific Rac guanine nucleotide exchange factors involved were unknown.
Purpose of the Study:
- To identify the Rac guanine nucleotide exchange factors responsible for Lgl1 hyperphosphorylation in glioblastoma.
- To investigate the role of PREX1 and TIAM1 in linking PI 3-kinase signaling to Lgl1 phosphorylation and glioblastoma pathogenesis.
Main Methods:
- CRISPR/Cas9 gene editing was used to knockout PREX1 in patient-derived glioblastoma cells.
- Re-expression of PREX1 and knockdown of TIAM1 were performed to assess their effects.
- RNA-sequencing (RNA-seq) was employed to analyze gene expression changes.
Main Results:
- PREX1 knockout reduced Lgl1 phosphorylation, cell motility, and promoted a neuronal differentiation phenotype.
- RNA-seq revealed PREX1-regulated genes involved in cell motility and neuronal differentiation.
- In some glioblastoma cells, TIAM1 overexpression compensated for PREX1 knockout; TIAM1 knockdown reduced Lgl1 phosphorylation in these cases.
Conclusions:
- PREX1 acts as a crucial link between aberrant PI 3-kinase signaling and Lgl1 hyperphosphorylation in glioblastoma.
- TIAM1 can also play this role in a subset of glioblastoma patients, indicating functional redundancy.
- Despite redundancy, PREX1 and TIAM1 exhibit partial functional overlap, as PREX1 knockout impaired cell motility in all tested cells.
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