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Defining Gene Functions in Tumorigenesis by Ex vivo Ablation of Floxed Alleles in Malignant Peripheral Nerve Sheath Tumor Cells
Published on: August 25, 2021
LGN loss randomizes spindle orientation and accelerates tumorigenesis in PTEN-deficient epidermis
Sophie Viala1, Charlotte Hadjadj1, Vandana Nathan1
1Rosalind and Morris Goodman Cancer Institute and Department of Biochemistry, McGill University, Montreal H3A 1A3, Canada.
Abstract:
Loss of cell polarity and disruption of tissue organization are key features of tumorigenesis that are intrinsically linked to spindle orientation. Epithelial tumors are often characterized by spindle orientation defects, but how these defects impact tumor formation driven by common oncogenic mutations is not fully understood. Here, we examine the role of spindle orientation in adult epidermis by deleting a key spindle regulator, LGN, in normal tissue and in a PTEN-deficient mouse model. We report that LGN deficiency in PTEN mutant epidermis leads to a threefold increase in the likelihood of developing tumors on the snout, and an over 10-fold increase in tumor burden. In this tissue, loss of LGN alone increases perpendicular and oblique divisions of epidermal basal cells, at the expense of a planar orientation of division. PTEN loss alone does not significantly affect spindle orientation in these cells, but the combined loss of PTEN and LGN fully randomizes basal spindle orientation. A subset of LGN- and PTEN-deficient animals have increased amounts of proliferative spinous cells, which may be associated with tumorigenesis. These results indicate that loss of LGN impacts spindle orientation and accelerates epidermal tumorigenesis in a PTEN-deficient mouse model.
Insights
Loss of LGN protein disrupts cell division orientation in mouse skin. This disruption accelerates tumor formation in PTEN-mutant mice, highlighting spindle orientation
Area of Science:
- Cell Biology
- Developmental Biology
- Cancer Research
Background:
- Cell polarity and tissue organization are crucial for preventing cancer.
- Spindle orientation defects are common in epithelial tumors but their role in oncogenesis is unclear.
- LGN is a key regulator of spindle orientation.
Purpose of the Study:
- To investigate the role of LGN-mediated spindle orientation in epidermal tumorigenesis.
- To determine how LGN deficiency impacts tumor formation in PTEN-mutant mice.
Main Methods:
- Deletion of LGN in adult mouse epidermis, both in normal tissue and in a PTEN-deficient model.
- Analysis of cell division orientation (spindle orientation) in epidermal basal cells.
- Assessment of tumor incidence and burden.
Main Results:
- LGN deficiency in PTEN-mutant epidermis significantly increased tumor likelihood and burden.
- Loss of LGN alone caused aberrant spindle orientations (perpendicular/oblique divisions).
- Combined loss of PTEN and LGN completely randomized basal cell spindle orientation.
Conclusions:
- Loss of LGN impairs spindle orientation and accelerates epidermal tumorigenesis.
- Spindle orientation is a critical factor in PTEN-driven tumor development.
- Targeting spindle orientation may offer new therapeutic strategies for epithelial cancers.
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