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Spatial Proteomics Reveals Distinct Protein Patterns in Cortical Migration Disorders Caused by LIN28A Overexpression
Jelena Navolić1, Sara Hawass1, Manuela Moritz2
1Center for Molecular Neurobiology Hamburg (ZMNH), University Medical Center Hamburg-Eppendorf, Hamburg, Germany.
Abstract:
Developmental signaling pathways act in stage and tissue dependent relation and misactivation can drive tumor formation. The RNA-binding protein LIN28A binds to mRNA and miRNA and thereby affects the protein turnover and maintains stemness. LIN28A is overexpressed in embryonal brain tumors which show low correlation between transcriptome and proteome signatures. Additionally, stabilizing CTNNB1 mutations activating the WNT pathway have been reported in brain tumors with LIN28A overexpression. The aim of this study was to coactivate these oncogenic proteins during embryonal brain development and investigate the histomorphology of the cerebral cortex in relation to proteome levels with spatial resolution using the nanosecond infrared laser system for nano-volume sampling. The combination of both oncogenic factors in vivo did not lead to brain tumour formation during embryonal development but resulted in disturbed lamination and impaired cell migration in the murine cerebral cortex. Spatially resolved proteome analysis of the cortices revealed unique layer signatures across ablated layers. Moreover, the extracellular matrix receptors RPSA and ITGB1 were spatially disturbed comparing the mouse models and accompanied by a porous pial border and overmigration of neural cells. Cajal-Retzius cells were misplaced in deeper cortex regions without affecting general REELIN levels. Additionally, the glycosylated levels of α-dystroglycan were reduced. Taken together, the interplay of LIN28A and CTNNB1 resulted in a cortical migration disorder showing histomorphological and molecular similarities to human cobblestone lissencephaly (type 2) disorder. This highlights novel implications of the oncogene LIN28A in extracellular matrix integrity.
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