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Published on: August 3, 2018
Integrative analysis of the lncRNA-miRNA-mRNA interactions in smooth muscle cell phenotypic transitions
Aatish Mahajan1, Junyoung Hong1, Irene Krukovets1
1Department of Cardiovascular and Metabolic Sciences, Lerner Research Institute, Cleveland Clinic, Cleveland, OH, United States.
Abstract:
Objectives: We previously found that the pluripotency factor OCT4 is reactivated in smooth muscle cells (SMC) in human and mouse atherosclerotic plaques and plays an atheroprotective role. Loss of OCT4 in SMC in vitro was associated with decreases in SMC migration. However, molecular mechanisms responsible for atheroprotective SMC-OCT4-dependent effects remain unknown. Methods: Since studies in embryonic stem cells demonstrated that OCT4 regulates long non-coding RNAs (lncRNAs) and microRNAs (miRNAs), making them candidates for OCT4 effect mediators, we applied an in vitro approach to investigate the interactions between OCT4-regulated lncRNAs, mRNAs, and miRNAs in SMC. We used OCT4 deficient mouse aortic SMC (MASMC) treated with the pro-atherogenic oxidized phospholipid POVPC, which, as we previously demonstrated, suppresses SMC contractile markers and induces SMC migration. Differential expression of lncRNAs, mRNAs, and miRNAs was obtained by lncRNA/mRNA expression array and small-RNA microarray. Long non-coding RNA to mRNA associations were predicted based on their genomic proximity and association with vascular diseases. Given a recently discovered crosstalk between miRNA and lncRNA, we also investigated the association of miRNAs with upregulated/downregulated lncRNA-mRNA pairs. Results: POVPC treatment in SMC resulted in upregulating genes related to the axon guidance and focal adhesion pathways. Knockdown of Oct4 resulted in differential regulation of pathways associated with phagocytosis. Importantly, these results were consistent with our data showing that OCT4 deficiency attenuated POVPC-induced SMC migration and led to increased phagocytosis. Next, we identified several up- or downregulated lncRNA associated with upregulation of the specific mRNA unique for the OCT4 deficient SMC, including upregulation of ENSMUST00000140952-Hoxb5/6 and ENSMUST00000155531-Zfp652 along with downregulation of ENSMUST00000173605-Parp9 and, ENSMUST00000137236-Zmym1. Finally, we found that many of the downregulated miRNAs were associated with cell migration, including miR-196a-1 and miR-10a, targets of upregulated ENSMUST00000140952, and miR-155 and miR-122, targets of upregulated ENSMUST00000155531. Oppositely, the upregulated miRNAs were anti-migratory and pro-phagocytic, such as miR-10a/b and miR-15a/b, targets of downregulated ENSMUST00000173605, and miR-146a/b and miR-15b targets of ENSMUST00000137236. Conclusion: Our integrative analyses of the lncRNA-miRNA-mRNA interactions in SMC indicated novel potential OCT4-dependent mechanisms that may play a role in SMC phenotypic transitions.
Insights
The pluripotency factor OCT4 in smooth muscle cells (SMC) regulates long non-coding RNAs (lncRNAs) and microRNAs (miRNAs), influencing cell migration and phagocytosis in atherosclerosis. This study reveals novel OCT4-dependent mechanisms in SMC phenotypic transitions.
Area of Science:
- Cardiovascular Biology
- Molecular Biology
- Epigenetics
Background:
- The transcription factor OCT4 is reactivated in atherosclerotic plaques and plays an atheroprotective role in smooth muscle cells (SMC).
- OCT4 deficiency in SMC reduces cell migration, but the underlying molecular mechanisms remain unclear.
- OCT4 is known to regulate long non-coding RNAs (lncRNAs) and microRNAs (miRNAs) in embryonic stem cells.
Purpose of the Study:
- To investigate the role of OCT4-regulated lncRNAs, mRNAs, and miRNAs in SMC.
- To elucidate the molecular mechanisms by which OCT4 influences SMC behavior in atherosclerosis.
- To identify potential therapeutic targets for atherosclerosis by understanding OCT4-dependent pathways.
Main Methods:
- Used OCT4-deficient mouse aortic SMC (MASMC) treated with oxidized phospholipid POVPC.
- Performed lncRNA/mRNA expression arrays and small-RNA microarrays to identify differentially expressed molecules.
- Predicted lncRNA-mRNA associations based on genomic proximity and vascular disease relevance.
- Investigated lncRNA-miRNA interactions and their targets.
Main Results:
- POVPC treatment upregulated genes in axon guidance and focal adhesion pathways.
- OCT4 knockdown altered pathways related to phagocytosis, consistent with reduced SMC migration and increased phagocytosis.
- Identified specific lncRNAs (e.g., ENSMUST00000140952, ENSMUST00000155531) associated with OCT4 deficiency.
- Found downregulated miRNAs (e.g., miR-196a-1, miR-10a) linked to cell migration and upregulated miRNAs (e.g., miR-10a/b, miR-15a/b) linked to anti-migration and pro-phagocytosis.
Conclusions:
- Integrative analysis revealed novel OCT4-dependent lncRNA-miRNA-mRNA interactions in SMC.
- These interactions may mediate SMC phenotypic transitions, impacting atheroprotection.
- The findings provide insights into potential therapeutic strategies targeting OCT4-regulated pathways in atherosclerosis.
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