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Elevated SNHG1 promotes invasion and migration of Cd(II)-transformed cells through Sox2, Rac1, and Slug
Zhuo Zhang1, Jingxia Li1, Daneah Willis1
1Division of Environmental Medicine, Dept of Medicine, Grossman School of Medicine, New York University, 341 E. 25(th) Street, New York, NY 10010, United States of America.
Abstract:
Numerous studies have shown that exposure to cadmium [Cd(II)] contributes to the development of cancers in the lung and other organs. Cd(II) compounds are classified as confirmed human carcinogens; however, the mechanisms underlying Cd(II)-induced carcinogenesis remain poorly understood. Small nucleolar RNA host gene 1 (SNHG1), a long non-coding RNA (lncRNA), has been identified as an oncogene. In this study, we investigated the role of SNHG1 in the invasion and migration of Cd(II)-transformed cells. Our findings revealed that SNHG1 expression was significantly elevated in Cd(II)-transformed cells compared to their passage-matched normal BEAS-2B counterparts. Silencing SNHG1 reduced the invasive and migratory capacities of Cd(II)-transformed cells and inhibited malignant transformation induced by long-term Cd exposure. Notably, ectopic expression of SNHG1 alone in BEAS-2B cells was sufficient to drive malignant transformation and enhance invasion and migration, underscoring its oncogenic potential. SRY-box 2 (Sox2), a transcription factor implicated in cancer cell proliferation, invasion, and migration, was found to be upregulated in Cd(II)-transformed cells, while SNHG1 knockdown led to decreased Sox2 protein levels. Similarly, ras-related C3 botulinum toxin substrate 1 (Rac1), a key regulator of cytoskeletal dynamics linked to tumor growth, invasion, and metastasis, was also elevated in Cd(II)-transformed cells. Knockdown of SNHG1 reduced Rac1 protein levels, and Rac1 knockout significantly suppressed invasion and migration. Additionally, we observed increased expression of Slug, a key transcription factor invovlved in epithelial-mesenchymal transition (EMT), and decreased expression of its downstream target E-cadherin in Cd(II)-transformed cells. Collectively, these results demonstrate that elevated SNHG1 promotes the expression of Sox2, Rac1, and Slug, thereby driving the invasive and migratory behavior of Cd(II)-transformed cells.
Insights
Cadmium exposure causes cancer. This study shows the long non-coding RNA SNHG1 drives cancer cell invasion and migration by increasing Sox2, Rac1, and Slug expression, highlighting SNHG1 as a potential therapeutic target.
Area of Science:
- Environmental Health
- Molecular Biology
- Cancer Research
Background:
- Cadmium (Cd(II)) compounds are confirmed human carcinogens, but mechanisms of Cd(II)-induced carcinogenesis are unclear.
- Long non-coding RNAs (lncRNAs) like Small Nucleolar RNA Host Gene 1 (SNHG1) are emerging as critical players in cancer.
- Understanding the role of SNHG1 in cadmium-induced cancer is crucial for developing targeted therapies.
Purpose of the Study:
- To investigate the role of SNHG1 in the invasion and migration of cadmium-transformed cells.
- To elucidate the molecular mechanisms by which SNHG1 contributes to cadmium-induced carcinogenesis.
- To assess the oncogenic potential of SNHG1 in normal lung cells.
Main Methods:
- Compared SNHG1 expression in cadmium-transformed cells versus normal BEAS-2B cells.
- Utilized SNHG1 silencing and ectopic expression to assess functional impacts on cell behavior.
- Analyzed protein and gene expression of key factors including Sox2, Rac1, Slug, and E-cadherin.
Main Results:
- SNHG1 expression was significantly elevated in cadmium-transformed cells.
- SNHG1 silencing reduced invasion, migration, and malignant transformation.
- Ectopic SNHG1 expression induced malignant transformation and enhanced invasion/migration.
- SNHG1 knockdown decreased protein levels of Sox2, Rac1, and Slug, and affected EMT markers.
Conclusions:
- Elevated SNHG1 is a key driver of invasion and migration in cadmium-transformed cells.
- SNHG1 promotes malignant transformation by upregulating Sox2, Rac1, and Slug.
- SNHG1 acts as an oncogene in cadmium-induced carcinogenesis, offering a potential therapeutic target.
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