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Neuroblastoma-associated ALK variants have distinct cellular and biochemical activities
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Abstract
Mutations in anaplastic lymphoma kinase (ALK) are associated with high-risk neuroblastoma, a childhood cancer arising in trunk neural crest cells. The role of ALK in undifferentiated NC is still unknown; however, the presence of activating mutations in ALK correlates with migratory and invasive cell behaviours in neuroblastoma cell lines. Here, we show the functional consequences of ALK overexpression on neural crest cells, by comparing wildtype ALK (ALK
WT
) protein to ALK gain-of-function variants ALK
F1174L
and ALK
R1275Q
. Elevated ALK activity, independent of mutational status leads to increased migration velocity and loss of directionality, while ALK
F1174L
overexpression presents additional effects on cytoskeletal protrusions. These results correlate with increased binding of ALK
F1174L
to GSK3, which has previously been shown to regulate cytoskeletal dynamics in neural crest cells. Further, molecular dynamics simulations of the ALK-GSK3 complex show high flexibility, suggestive of enhanced allosteric regulation. Together, our data show that activating mutations in ALK drive migratory changes in trunk NC cells, potentially mediated by its novel interacting partner GSK3.
Significance Statement
Anaplastic lymphoma kinase (ALK)-associated neuroblastoma phenotypes arise in the neural crest lineage, but the effects on neural crest cell behaviours are not well-studied. Here, we use primary mouse neural crest cells to study the functional relevance of ALK-activating mutations on cell migration, which we then biochemically link to interactions with GSK3-isoforms. We also directly compare the activities of wild-type ALK with two gain-of-function variants associated with metastatic disease, ALK
F1174L
and ALKR
1275Q
, and find that ALK
F1174L
causes increased cytoskeletal protrusions and GSK3 binding. Our study provides insights into a signalling pathway in neural crest that drives cytoskeletal rearrangements and pathological migration in neuroblastoma.
Title: Neuroblastoma-associated ALK variants have distinct cellular and biochemical activities
Description:
Abstract
Mutations in anaplastic lymphoma kinase (ALK) are associated with high-risk neuroblastoma, a childhood cancer arising in trunk neural crest cells.
The role of ALK in undifferentiated NC is still unknown; however, the presence of activating mutations in ALK correlates with migratory and invasive cell behaviours in neuroblastoma cell lines.
Here, we show the functional consequences of ALK overexpression on neural crest cells, by comparing wildtype ALK (ALK
WT
) protein to ALK gain-of-function variants ALK
F1174L
and ALK
R1275Q
.
Elevated ALK activity, independent of mutational status leads to increased migration velocity and loss of directionality, while ALK
F1174L
overexpression presents additional effects on cytoskeletal protrusions.
These results correlate with increased binding of ALK
F1174L
to GSK3, which has previously been shown to regulate cytoskeletal dynamics in neural crest cells.
Further, molecular dynamics simulations of the ALK-GSK3 complex show high flexibility, suggestive of enhanced allosteric regulation.
Together, our data show that activating mutations in ALK drive migratory changes in trunk NC cells, potentially mediated by its novel interacting partner GSK3.
Significance Statement
Anaplastic lymphoma kinase (ALK)-associated neuroblastoma phenotypes arise in the neural crest lineage, but the effects on neural crest cell behaviours are not well-studied.
Here, we use primary mouse neural crest cells to study the functional relevance of ALK-activating mutations on cell migration, which we then biochemically link to interactions with GSK3-isoforms.
We also directly compare the activities of wild-type ALK with two gain-of-function variants associated with metastatic disease, ALK
F1174L
and ALKR
1275Q
, and find that ALK
F1174L
causes increased cytoskeletal protrusions and GSK3 binding.
Our study provides insights into a signalling pathway in neural crest that drives cytoskeletal rearrangements and pathological migration in neuroblastoma.
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