| Literature DB >> 31355277 |
Huan Zhou1,2, Bin Wang3, Ying-Xi Yang2, Qiu-Jin Jia2, Ao Zhang4, Zhong-Wen Qi2, Jun-Ping Zhang2.
Abstract
Cardiac remodeling is a self-regulatory response of the myocardium and vasculature under the stressful condition. Cardiomyocytes (CMs), vascular smooth muscle cells (VSMCs), endothelial cells (ECs), and cardiac fibroblasts (CFs) are all involved in this process, characterized by change of morphological structures and mechanical/chemical activities as well as metabolic patterns. Despite current development of consciousness, the control of cardiac remodeling remains unsatisfactory, and to further explore the underlying mechanism and seek the optimal therapeutic targets is still the urgent need in clinical practice. It is now emerging that long noncoding RNAs (lncRNAs) play key regulatory roles in these adverse responses: lncRNA TUG1, AK098656, TRPV1, GAS5, Giver, and Lnc-Ang362 have been indicated in hypertension-related vascular remodeling, H19, TUG1, UCA1, MEG3, APPAT, and lincRNA-p21 in atherosclerosis (AS), and HIF1A-AS1 and Lnc-HLTF-5 in aortic aneurysm (AA). In addition, Neat1, AK139328, APF, CAIF, AK088388, CARL, MALAT1, HOTAIR, XIST, and NRF are involved in postischemia myocardial remodeling, while Mhrt, Chast, CHRF, ROR, H19, Plscr4, and MIAT are involved in myocardial hypertrophy, and MALAT1, wisper, MEG3, and H19 are involved in extracellular matrix (ECM) reconstitution. Signaling to specific miRNAs by acting as endogenous sponge (ceRNA) was the main form that regulates the target gene expression during cardiac remodeling. This review will underline the updates of lncRNAs and lncRNA-miRNA interactions in maladaptive remodeling and also cast light on their potential roles as therapeutic targets, hoping to provide supportive background for following research.Entities:
Year: 2019 PMID: 31355277 PMCID: PMC6634064 DOI: 10.1155/2019/7159592
Source DB: PubMed Journal: Biomed Res Int Impact factor: 3.411
Figure 1Schematic Diagram of Basic LncRNA Mechanism.
LncRNAs involved in vascular remodeling.
| Type | Cellular | LncRNAs | Regulation | Target | Related | References |
|---|---|---|---|---|---|---|
| Hypertension | VSMC | TUG1 | ↑ | miR-145-5p | promote migration and proliferation of VSMCs | Shi et al.[ |
| VSMC | AK098656 | ↑ | myosin heavy chain-11/ fibronectin-1 | promote VSMC phenotypic switch | Jin et al. [ | |
| VSMC | TRPV1 | ↓ | PI3K/Akt | inhibit VSMC | Zhang et al. [ | |
| VSMC/EC | GAS5 | ↓ |
| affect endothelial activation proliferation, andVSMC phenotypic conversion | Wang et al. [ | |
| VSMC | Giver | ↑ | Nr4a3 | promote oxidative stress, VSMC proliferation and vascular inflammation | Das et al. [ | |
| VSMC | Lnc-Ang362 | ↑ | miR221/222 | promote VSMC proliferation | Leung et al. [ | |
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| Atherosclerosis | VSMC | H19 | ↑ | ACP5 | promote VSMC proliferation and inhibit apoptosis | Huang et al. [ |
| VSMC/EC/ | TUG1 | ↑ | miR-21/PTEN | promote VSMC proliferation, | Li et al. [ | |
| VSMC | UCA1 | ↓ | miR-26a/PTEN | suppress VSMC proliferation | Tian et al. [ | |
| VSMC | MEG3 | ↓ | miR-26a/Smad1 | suppress VSMC proliferation | Bai et al. [ | |
| VSMC | APPAT | ↓ | miR-647, | affect VSMC phenotype shift | Meng et al. [ | |
| VSMC | lincRNA-p21 | ↓ | P53 | regulate neointima formation, VSMC proliferation and apoptosis | Wu et al. [ | |
| VSMC | Neat1 | ↑ | SM-contractile gene | modulate VSMC phenotype conversion | Ahmed et al. [ | |
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| Arterial aneurysm | VSMC | HIF1A-AS1 | ↑ | caspase-3 | regulate VSMC apoptosis | He et al. [ |
| VSMC | lincRNA-p21 | ↑ | TGF- | hinder proliferation and promote apoptosis of VSMCs | Hu et al. [ | |
VSMC: vascular smooth muscle cell; EC: endothelial cell; TUG1: taurine upregulated 1; TRPV1: transient receptor potential vanilloid type 1; GAS5: growth block specificity 5; Giver: growth factor-and proinflammatory cytokine–induced vascular cell-expressed lncRNA; UCA1: urothelial carcinoma-associated; MEG3: maternally expressed gene 3; APPAT: atherosclerotic plaque pathogenesis associated transcript; lincRNA-p21: long intergenic noncoding RNA-p21; Neat1: nuclear paraspeckle assembly transcript 1; HIF1A-AS1: HIF1 alpha-antisense RNA1; ACP5: acid phosphatase 5; SM: smooth muscle.
LncRNAs involved in myocardial remodeling.
| Type | Cellular | LncRNAs | Regulation | Target | Related | References |
|---|---|---|---|---|---|---|
| Post-ischemia/hypoxia myocardial remodelling | Autophagy | Neat1 | ↑ | Foxo1 | activate autophagy, aggravate CM injury | Ma et al. [ |
| AK139328 | ↑ | miR-204-3p | activate autophagy, aggravate CM injury | Yu et al. [ | ||
| APF | ↑ | miR-188-3p | induce autophagic cell death | Wang et al. [ | ||
| CAIF | ↓ | p53 | inhibit autophagy | Liu et al. [ | ||
| AK088388 | ↑ | miR-30a | induce autophagic injury | Wang et al. [ | ||
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| Post-ischemia/hypoxia myocardial remodelling | Apoptosis | CARL | ↓ | miR-539 | suppress mitochondrial fission and apoptosis | Wang et al. [ |
| MALAT1 | ↑ | miR-203 | exacerbate inflammation and apoptosis | Wang et al. [ | ||
| HOTAIR | ↓ | miR-125, | inhibit apoptosis | Li et al. [ | ||
| UCA1 | ↑ | unspecified | suppress ER-stress and apoptosis | Chen et al. [ | ||
| XIST | ↑ | miR-130a-3p | facilitate apoptosis, inhibit proliferation | Zhou et al. [ | ||
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| Post-ischemia/hypoxia myocardial remodelling | Necrosis | NRF | ↑ | miR-873 | facilitate necrosis | Wang et al. [ |
| H19 | ↑ | miR-103/107 | promote necrosis | Wang et al. [ | ||
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| Myocardial hypertrophy | Hypertrophy | Mhrt | ↓ | Brg1 | inhibit cardiac hypertrophy | Hang et al. [ |
| Chast | ↑ | Plekhm1 | hinder autophagy and facilitate hypertrophy | Viereck et al. [ | ||
| CHRF | ↓ | miR-489 | anti-hypertrophic | Wang et al. [ | ||
| ROR | ↑ | miR-133 | promote hypertrophy | Jiang et al. [ | ||
| H19 | ↓ | miR-675 | protect CMs from hypertrophy | Liu et al. [ | ||
| Plscr4 | ↑ | miR-214 | attenuate cardiac | Lv et al. [ | ||
| MIAT | ↑ | miR-150 | promote hypertrophy | Zhu et al. [ | ||
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| Myocardial hypertrophy | Electrical remodeling | TCONS_00075467 | ↓ | miRNA-328 | affect the effective refractory period, increase the action potential duration in AF | Li et al. [ |
| MALAT1 | ↑ | miR-200c | regulate transient outward potassium current | Zhu et al. [ | ||
Neat1: nuclear-enriched abundant transcript1; APF: autophagy promoting factor; CAIF: cardiac autophagy inhibitory factor; CARL: cardiac apoptosis-related lncRNA; MALAT1:metastasis-associated lung adenocarcinoma transcript 1; HOTAIR:HOX antisense intergenic RNA;UCA1:urothelial carcinoma-associated; XIST:X-inactive specific transcript; Mhrt: myosin heavy chain associated RNA transcripts; Chast: cardiac hypertrophy-associated transcript; Plekhm1:pleckstrin homology domain-containing protein family M member 1; CHRF: cardiac hypertrophy-related factor; MIAT: myocardial infarction–associated transcript; Foxo1:forkhead box protein O1;ER:endoplasmic reticulum; CM: cardiomyocyte; AF: atrial fibrillation.