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Inorganic Arsenic-Induced Up-Regulation of MALAT1 Affects Cell Apoptosis via Disrupting the Binding Between IKBα and
Ruihuan Zhao1, Yanhua Zhu2, Xuefei Yang1
1Yunnan Provincial Key Laboratory of Public Health and Biosafety & School of Public Health, Kunming Medical University, Kunming, China.
Abstract:
The toxicity and carcinogenicity of the environmental pollutant arsenic have been widely recognized. Dysregulation of apoptosis and proliferation, mediated by specific genes or signaling pathways, plays a pivotal role in arsenic-induced carcinogenesis. LncRNA MALAT1 is an adverse prognostic marker in lung adenocarcinoma patients and is associated with metastasis. Here, we investigated the arsenic-induced upregulation of MALAT1 and its impact on apoptosis. Our study combined epidemiological analyses of arsenic exposure with in vitro experiments. qRT-PCR assessed gene expression, while CCK-8, JC-1 staining, Hoechst 33342/PI assays, and Western blot analysis evaluated apoptosis, mitochondrial membrane potential, and apoptotic markers. RNA immunoprecipitation (RIP) and co-immunoprecipitation (Co-IP) assays elucidated interactions between MALAT1 and key proteins. Our findings revealed that inorganic arsenic upregulates MALAT1 expression in vivo and in vitro. We show that low expression of MALAT1 diminishes survival and facilitates apoptosis in 16HBE cells, and knockdown of MALAT1 inhibits the mRNA transcription of NF-κB pathway-related genes BCL2, iap-1 and IκBα in 16HBE cells. Mechanistically, MALAT1 knockdown attenuated IKBα phosphorylation and ubiquitination, impairing NF-κB pathway activation. MALAT1 was proven to interact with IKBα, P65 and P50. Knockdown of MALAT1 reduces the binding of IKBα to IKKβ and lowers IκBα protein phosphorylation. Meanwhlie, low expression of MALAT1 enhances IKBα-P65 binding while weakening IKBα-IKKβ interactions, making it disadvantageous for IKBα to detach from the trimer formed by IKBα, P65 and P50. The repression of NF-κB signaling pathway target genes is responsible for cell apoptosis. Arsenic-promoted elevated expression of MALAT1 impinges cell proliferation and apoptosis, providing a scientific rationale for arsenic toxicity and carcinogenicity.
Insights
Arsenic exposure increases MALAT1 long non-coding RNA, promoting lung cancer by inhibiting apoptosis. Reducing MALAT1 expression can restore apoptosis and suppress tumor growth.
Area of Science:
- Environmental toxicology
- Molecular biology
- Cancer research
Background:
- Arsenic is a toxic environmental pollutant linked to carcinogenesis.
- Dysregulation of apoptosis and proliferation pathways are key in arsenic-induced cancer.
- Long non-coding RNA MALAT1 is an adverse prognostic marker in lung adenocarcinoma.
Purpose of the Study:
- To investigate arsenic-induced upregulation of MALAT1.
- To determine the impact of MALAT1 on apoptosis in lung cells.
- To elucidate the molecular mechanisms linking MALAT1, arsenic, and NF-κB signaling.
Main Methods:
- Epidemiological analysis of arsenic exposure and in vitro experiments.
- Quantitative reverse transcription-polymerase chain reaction (qRT-PCR) for gene expression.
- Cell viability assays (CCK-8), apoptosis assays (JC-1, Hoechst 33342/PI), Western blot, RNA immunoprecipitation (RIP), and co-immunoprecipitation (Co-IP).
Main Results:
- Inorganic arsenic upregulates MALAT1 expression both in vivo and in vitro.
- Knockdown of MALAT1 promotes apoptosis and inhibits proliferation in 16HBE cells.
- MALAT1 knockdown represses NF-κB pathway activation by interfering with IκBα phosphorylation, ubiquitination, and interactions within the NF-κB complex.
Conclusions:
- Arsenic-induced MALAT1 upregulation contributes to lung cancer development by inhibiting apoptosis.
- MALAT1 interacts with key components of the NF-κB pathway, including IκBα, P65, and P50.
- Targeting MALAT1 may offer a therapeutic strategy for arsenic-induced lung cancer.
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