1.Research progress on the mechanism of phenotypic transformation of pulmonary artery smooth muscle cells induced by hypoxia.
Journal of Zhejiang University. Medical sciences 2023;51(6):750-757
Phenotypic transformation of pulmonary artery smooth muscle cells (PASMCs) is a key factor in pulmonary vascular remodeling. Inhibiting or reversing phenotypic transformation can inhibit pulmonary vascular remodeling and control the progression of hypoxic pulmonary hypertension. Recent studies have shown that hypoxia causes intracellular peroxide metabolism to induce oxidative stress, induces multi-pathway signal transduction, including those related to autophagy, endoplasmic reticulum stress and mitochondrial dysfunction, and also induces non-coding RNA regulation of cell marker protein expression, resulting in PASMCs phenotypic transformation. This article reviews recent research progress on mechanisms of hypoxia-induced phenotypic transformation of PASMCs, which may be helpful for finding targets to inhibit phenotypic transformation and to improve pulmonary vascular remodeling diseases such as hypoxia-induced pulmonary hypertension.
Humans
;
Pulmonary Artery
;
Hypertension, Pulmonary
;
Vascular Remodeling/genetics*
;
Hypoxia/genetics*
;
Myocytes, Smooth Muscle
;
Cell Proliferation/physiology*
;
Cells, Cultured
;
Cell Hypoxia/genetics*
2.Knocking-out of HIF1α gene by CRISPR/cas9 inhibits proliferation and invasiveness of prostate cancer DU145 cells.
Yunyi XU ; Zhou_qiao@hotmail.com. ; Miao XU ; Mengni ZHANG ; Junya TAN ; Zhengzheng SU ; Xueqin CHEN ; Qiao ZHOU
Chinese Journal of Medical Genetics 2018;35(2):160-164
OBJECTIVETo explore the role of HIF1α gene in prostate cancer cell line DU145 by knocking it out with a novel gene-editing tool CRISPR/cas9 system.
METHODSA CRISPR/cas9 system with two sgRNAs targeting exon 1 of the HIF1α gene was constructed for the knock out experiment. CCK8 assay and transwell experiment were carried out to assess the effect of the knock out on the proliferation, migration and invasiveness of DU145 cells.
RESULTSThe efficiency of gene-targeting was measured through a T7E1 assaying and sequence analysis, which confirmed that the partial knock out was successful and has led to a significant decrease in the expression of HIF1α and inhibition of cell proliferation, migration and invasiveness.
CONCLUSIONA CRISPR/cas9 system for the knock out of HIF1α has been successfully constructed, which could inhibit the proliferation and migration of DU145 cells. The system can facilitate further studies of the HIF1α gene and its roles in tumorigenesis.
CRISPR-Cas Systems ; genetics ; Cell Line, Tumor ; Cell Movement ; Cell Proliferation ; Gene Editing ; Humans ; Hypoxia-Inducible Factor 1, alpha Subunit ; genetics ; physiology ; Male ; Neoplasm Invasiveness ; Prostatic Neoplasms ; pathology
3.Research progress of long chain non-coding RNA H19 in anoxic environment mechanism.
Xinrui YUE ; Rong WANG ; Wenbin LI ; Chang WANG ; Hui LU ; Juanhong ZHANG
Journal of Central South University(Medical Sciences) 2018;43(10):1151-1158
LncRNA H19 encoded by the H19 imprinting gene plays an important regulatory role in the cell. Recently study has found that in hypoxic cells, the expression of H19 gene changes, and the transcription factors and protein involved in the expression change accordingly. Through the involvement of specific protein 1 (SP1), hypoxia-inducible factor-1α (HIF-1α) binds directly to the H19 promoter and induces the up-regulation of H19 expression under hypoxic conditions. The tumor suppressor protein p53 may also mediate the expression of the H19 gene, in part by interfering with HIF-la activity under hypoxia stress. The miR675-5p encoded by exon 1 of H19 promotes hypoxia response by driving the nuclear accumulation of HIF-1α and reducing the expression of VHL gene, which is a physiological HIF-1α inhibitor. In addition, under the condition of hypoxia, the expression of transporter on cell membrane changes, and the transition of the intracellular glucose metabolism pathway from aerobic oxidation to anaerobic glycolysis is also involved in the involvement of H19. Therefore, H19 may be a key gene that maintains intracellular balance under hypoxic conditions and drives adaptive cell survival under conditions of hypoxia stress.
Cell Hypoxia
;
genetics
;
Genes, Tumor Suppressor
;
physiology
;
Humans
;
Hypoxia-Inducible Factor 1, alpha Subunit
;
genetics
;
RNA, Long Noncoding
;
Up-Regulation
;
physiology
;
Von Hippel-Lindau Tumor Suppressor Protein
;
genetics
4.Effect of Endothelial Microparticles Induced by Hypoxia on Migration and Angiogenesis of Human Umbilical Vein Endothelial Cells by Delivering MicroRNA-19b.
Hui-Zhu LIANG ; Su-Fang LI ; Feng ZHANG ; Man-Yan WU ; Chang-Long LI ; Jun-Xian SONG ; Chongyou LEE ; Hong CHEN
Chinese Medical Journal 2018;131(22):2726-2733
Background:
Microparticles (MPs) are small extracellular plasma membrane particles shed by activated and apoptotic cells, which are involved in the development of atherosclerosis. Our previous study found that microRNA (miR)-19b encapsulated within endothelial MPs (EMPs) may contribute to the upregulation of circulating miR-19b in unstable angina patients. Hypoxia is involved in atherosclerosis as a critical pathological stimulus. However, it still remains unclear whether the increase of miR-19b levels in EMPs is related to hypoxia and if the effect of miR-19b - wrapped within EMPs - stimulates hypoxia on vascular endothelial cells. This study aimed to explore the changes of miR-19b in EMPs induced by hypoxia as well as their effects on endothelial cells.
Methods:
Human umbilical vein endothelial cells (HUVECs) were cultured in vitro and arranged to harvest EMPs in two parts: the first part consisted of EMP and EMP and the second part included EMP, EMP, and EMP. Cell migration was detected by scratch migration and transwell chamber migration. Angiogenesis was assessed by tube formation assays. Furthermore, we predicted the target gene of miR-19b by bioinformatics analysis, and luciferase assay was used to verify the targeted gene of miR-19b. Data were analyzed by one-way analysis of variance. Student's t-test was used when two groups were compared.
Results:
Compared with EMP- and EMP-inhibited migration of cells by scratch migration assay (80.77 ± 1.10 vs. 28.37 ± 1.40, P < 0. 001) and transwell chamber migration assay (83.00 ± 3.46 vs. 235.00 ± 16.52, P < 0.01), the number of tube formations was markedly reduced by 70% in the EMP group (P < 0.001) in vitro analysis of HUVECs. Meanwhile, a strong inhibition of migration and tube formation of HUVECs in the presence of miR-19b-enriched EMP was observed. This effect might be due to the delivery of miR-19b in EMPs. Transforming growth factor-β2 (TGFβ2) was predicted to be one of the target genes of miR-19b, and we further confirmed that TGFβ2 was a direct target gene of miR-19b using the luciferase assay. The expression of TGFβ2 in HUVECs was inhibited by treatment with EMP and EMP.
Conclusions
MiR-19b in EMPs induced by hypoxia could reduce endothelial cell migration and angiogenesis by downregulating TGFβ2 expression, which may have inhibited the progression of atherosclerosis.
Cell Hypoxia
;
genetics
;
physiology
;
Cell Movement
;
genetics
;
physiology
;
Endothelial Cells
;
metabolism
;
Human Umbilical Vein Endothelial Cells
;
metabolism
;
Humans
;
MicroRNAs
;
genetics
;
metabolism
;
Neovascularization, Physiologic
;
genetics
;
physiology
;
Transforming Growth Factor beta2
;
genetics
;
metabolism
5.Brain-Derived Glia Maturation Factor β Participates in Lung Injury Induced by Acute Cerebral Ischemia by Increasing ROS in Endothelial Cells.
Fei-Fei XU ; Zi-Bin ZHANG ; Yang-Yang WANG ; Ting-Hua WANG
Neuroscience Bulletin 2018;34(6):1077-1090
Brain damage can cause lung injury. To explore the mechanism underlying the lung injury induced by acute cerebral ischemia (ACI), we established a middle cerebral artery occlusion (MCAO) model in male Sprague-Dawley rats. We focused on glia maturation factor β (GMFB) based on quantitative analysis of the global rat serum proteome. Polymerase chain reaction, western blotting, and immunofluorescence revealed that GMFB was over-expressed in astrocytes in the brains of rats subjected to MCAO. We cultured rat primary astrocytes and confirmed that GMFB was also up-regulated in primary astrocytes after oxygen-glucose deprivation (OGD). We subjected the primary astrocytes to Gmfb RNA interference before OGD and collected the conditioned medium (CM) after OGD. We then used the CM to culture pulmonary microvascular endothelial cells (PMVECs) acquired in advance and assessed their status. The viability of the PMVECs improved significantly when Gmfb was blocked. Moreover, ELISA assays revealed an elevation in GMFB concentration in the medium after OGD. Cell cultures containing recombinant GMFB showed increased levels of reactive oxygen species and a deterioration in the state of the cells. In conclusion, GMFB is up-regulated in astrocytes after ACI, and brain-derived GMFB damages PMVECs by increasing reactive oxygen species. GMFB might thus be an initiator of the lung injury induced by ACI.
Animals
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Brain
;
metabolism
;
pathology
;
Brain Ischemia
;
complications
;
pathology
;
Bronchoalveolar Lavage Fluid
;
Cell Hypoxia
;
physiology
;
Cells, Cultured
;
Cerebrovascular Circulation
;
physiology
;
Chromatography, High Pressure Liquid
;
Culture Media, Conditioned
;
pharmacology
;
Disease Models, Animal
;
Endothelial Cells
;
metabolism
;
Gene Expression Regulation
;
physiology
;
Glia Maturation Factor
;
metabolism
;
In Situ Nick-End Labeling
;
Lung Injury
;
etiology
;
metabolism
;
pathology
;
Male
;
Neuroglia
;
metabolism
;
Neurologic Examination
;
Peroxidase
;
metabolism
;
Proteome
;
RNA Interference
;
physiology
;
RNA, Small Interfering
;
genetics
;
metabolism
;
Rats
;
Rats, Sprague-Dawley
;
Reactive Oxygen Species
;
metabolism
;
Tandem Mass Spectrometry
6.Calpain mediated pulmonary vascular remodeling in hypoxia induced pulmonary hypertension.
Weifang ZHANG ; Tiantian ZHU ; Aizhen XIONG ; Xiaoyue GE ; Ruilai XU ; Shegui LU ; Changping HU
Journal of Central South University(Medical Sciences) 2016;41(9):929-936
OBJECTIVE:
To explore the role of calpain in pulmonary vascular remodeling in hypoxia-induced pulmonary hypertension and the underlying mechanisms.
METHODS:
Sprague-Dawley rats were randomly divided into the hypoxia group and the normoxia control group. Right ventricular systolic pressure (RVSP) and mean pulmonary artery pressure (mPAP) were monitored by a method with right external jugular vein cannula. Right ventricular hypertrophy index was presented as the ratio of right ventricular weight to left ventricular weight (left ventricle plus septum weight). Levels of calpain-1, -2 and -4 mRNA in pulmonary artery were determined by real-time PCR. Levels of calpain-1, -2 and -4 protein were determined by Western blot. Primary rat pulmonary arterial smooth muscle cells (PASMCs) were divided into 4 groups: a normoxia control group, a normoxia+MDL28170 group, a hypoxia group and a hypoxia+MDL28170 group. Cell proliferation was detected by MTS and flow cytometry. Levels of Ki-67 and proliferating cell nuclear antigen (PCNA) mRNA were determined by real-time PCR.
RESULTS:
RVSP, mPAP and right ventricular remodeling index were significantly elevated in the hypoxia group compared to those in the normoxia group. In the hypoxia group, pulmonary vascular remodeling was significantly developed, accompanied by up-regulation of calpain-1, -2 and -4. MDL28170 significantly inhibited hypoxia-induced proliferation of PASMCs concomitant with the suppression of Ki-67 and PCNA mRNA expression.
CONCLUSION
Calpain mediates vascular remodeling via promoting proliferation of PASMCs in hypoxia-induced pulmonary hypertension.
Animals
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Calpain
;
genetics
;
physiology
;
Cell Proliferation
;
Dipeptides
;
physiology
;
Hypertension, Pulmonary
;
chemically induced
;
genetics
;
physiopathology
;
Hypertrophy, Right Ventricular
;
Hypoxia
;
Ki-67 Antigen
;
drug effects
;
Myocytes, Smooth Muscle
;
physiology
;
Proliferating Cell Nuclear Antigen
;
drug effects
;
Pulmonary Artery
;
Rats
;
Rats, Sprague-Dawley
;
Real-Time Polymerase Chain Reaction
;
Up-Regulation
;
Vascular Remodeling
;
genetics
;
physiology
7.Role of long non-coding RNA BC088414 in hypoxic-ischemic injury of neural cells.
Feng-Yan ZHAO ; Jun TANG ; Li ZHANG ; Shi-Ping LI ; Yi FENG ; Hai-Ting LIU ; Yi QU ; De-Zhi MU
Chinese Journal of Contemporary Pediatrics 2015;17(12):1348-1353
OBJECTIVETo investigate the role of long non-coding RNA (lncRNA) BC088414 in hypoxic-ischemic injury of neural cells.
METHODSRat adrenal pheochromocytoma (PC12) cells were divided into four groups: normoxic, oxygen glucose deprivation (OGD), siRNA-normoxic (siRNA group) and siRNA-OGD (n=3 each). Cells were incubated in glucose-free and serum-free DMEM medium under the conditions of 37℃ and 1% O2+99% N2/CO2 for 6 hours to establish an in vitro hypoxic-ischemic model. Quantitative real-time PCR was used to measure mRNA expression of lncRNA BC088414, β2-adrenoceptor (Adrb2), and caspase-6 (CASP6). siRNAs were used to inhibit BC088414 expression in PC12 cells. The TUNEL method was used to measure cell apoptosis.
RESULTSThe OGD group had a significantly higher cell apoptotic index than the normoxic group (P<0.01). After inhibition of BC088414 expression, the OGD group had a significantly reduced apoptotic index (P<0.05). The OGD group had significantly higher mRNA expression levels of lncRNA BC088414, Adrb2, and CASP6 compared with the normoxic group (P<0.05). The siRNA -normoxic group had significantly lower mRNA expression levels of Adrb2 and CASP6 than the normoxic group (P<0.05), and the siRNA-OGD group also had significantly lower mRNA expression levels of Adrb2 and CASP6 than the OGD group (P<0.05).
CONCLUSIONSLncRNA BC088414 may promote apoptosis through Adrb2 and CASP6 and aggravate neural cell injury induced by hypoxia-ischemia.
Animals ; Apoptosis ; Caspase 6 ; genetics ; physiology ; Cell Hypoxia ; Neurons ; pathology ; PC12 Cells ; RNA, Long Noncoding ; physiology ; RNA, Messenger ; analysis ; Rats ; Receptors, Adrenergic, beta-2 ; genetics ; physiology
8.Regulatory effects of AT₁R-TRAF6-MAPKs signaling on proliferation of intermittent hypoxia-induced human umbilical vein endothelial cells.
Jin SHANG ; Xue-Ling GUO ; Yan DENG ; Xiao YUAN ; Hui-Guo LIU
Journal of Huazhong University of Science and Technology (Medical Sciences) 2015;35(4):495-501
Endothelial dysfunction induced by intermittent hypoxia (IH) participates in obstructive sleep apnea syndrome (OSAS)-associated cardiovascular disorders. Myeloid differentiation primary response 88 (MyD88) and tumor necrosis factor receptor-associated factor 6 (TRAF6) regulate numerous downstream adaptors like mitogen-activated protein kinases (MAPKs) and the subsequent oxidative stress and inflammatory responses. This study aimed to characterize the role of MyD88/TRAF6 in IH-treated cell function and its associated signaling. Human umbilical vein endothelial cells (HUVECs) were randomly exposed to IH or normoxia for 0, 2, 4 and 6 h. Western blotting was used to detect the expression pattern of target gene proteins [angiotensin 1 receptor (AT1R), p-ERK1/2, p-p38MAPK, MyD88 and TRAF6], and the relationships among these target genes down-regulated by the corresponding inhibitors were studied. Finally, the influence of these target genes on proliferation of HUVECs was also assessed by EdU analysis. Protein levels of AT1R, TRAF6 and p-ERK1/2 were increased after IH exposure, with a slight rise in MyD88 and a dynamic change in p-p38MAPK. The down-regulation of TRAF6 by siRNA reduced ERK1/2 phosphorylation during IH without any effects on AT1R. Blockade of AT1R with valsartan decreased TRAF6 and p-ERK1/2 protein expression after IH exposure. ERK1/2 inhibition with PD98059 suppressed only AT1R expression. IH promoted HUVECs proliferation, which was significantly suppressed by the inhibition of TRAF6, AT1R and ERK1/2. The findings demonstrate that TRAF6 regulates the proliferation of HUVECs exposed to short-term IH by modulating cell signaling involving ERK1/2 downstream of AT1R. Targeting the AT1R-TRAF6-p-ERK1/2 signaling pathway might be helpful in restoring endothelial function.
Cell Hypoxia
;
Cell Proliferation
;
Cells, Cultured
;
Gene Expression Regulation
;
Human Umbilical Vein Endothelial Cells
;
physiology
;
Humans
;
MAP Kinase Signaling System
;
drug effects
;
Phosphorylation
;
Receptor, Angiotensin, Type 1
;
genetics
;
metabolism
;
TNF Receptor-Associated Factor 6
;
genetics
;
metabolism
;
Valsartan
;
pharmacology
9.Calreticulin translocation aggravates endoplasmic reticulum stress-associated apoptosis during cardiomyocyte hypoxia/reoxygenation.
Chinese Medical Journal 2015;128(3):353-360
BACKGROUNDCalreticulin (CRT) is major Ca 2+ -binding chaperone mainly resident in the endoplasmic reticulum (ER) lumen. Recently, it has been shown that non-ER CRT regulates a wide array of cellular responses. We previously found that CRT was up-regulated during hypoxia/reoxygenation (H/R) and this study was aimed to investigate whether CRT nuclear translocation aggravates ER stress (ERS)-associated apoptosis during H/R injury in neonatal rat cardiomyocytes.
METHODSApoptosis rate and lactate dehydrogenase (LDH) leakage in culture medium were measured as indices of cell injury. Immunofluorescence staining showed the morphological changes of ER and intracellular translocation of CRT. Western blotting or reverse transcription polymerase chain reaction was used to detect the expression of target molecules.
RESULTSCompared with control, H/R increased apoptosis rate and LDH activity. The ER became condensed and bubbled, and CRT translocated to the nucleus. Western blotting showed up-regulation of CRT, Nrf2, activating transcription factor 4 (ATF4), CHOP and caspase-12 expression after H/R. Exogenous CRT overexpression induced by plasmid transfection before H/R increased cell apoptosis, LDH leakage, ER disorder, CRT nuclear translocation and the expression of ERS-associated molecules. However, administration of the ERS inhibitor, taurine, or CRT siRNA alleviated cell injury, ER disorder, and inhibited ERS-associated apoptosis.
CONCLUSIONSOur results indicated that during H/R stress, CRT translocation increases cell apoptosis and LDH leakage, aggravates ER disorder, up-regulates expression of nuclear transcription factors, Nrf2 and ATF4, and activates ERS-associated apoptosis.
Animals ; Apoptosis ; genetics ; physiology ; Calreticulin ; genetics ; metabolism ; Cell Hypoxia ; genetics ; physiology ; Cell Survival ; genetics ; physiology ; Cells, Cultured ; Endoplasmic Reticulum Stress ; physiology ; Myocytes, Cardiac ; cytology ; metabolism ; RNA Interference ; Rats
10.Factors affecting expression of differentiation-related gene NDRG1.
Guoxin ZHANG ; Song BAI ; Yingying ZOU ; Fang WANG
Chinese Journal of Pathology 2014;43(5):356-358
Animals
;
Cadherins
;
metabolism
;
Cell Cycle Proteins
;
genetics
;
metabolism
;
Cell Differentiation
;
Cell Line, Tumor
;
Early Growth Response Protein 1
;
genetics
;
metabolism
;
Estradiol
;
physiology
;
Eukaryotic Initiation Factor-3
;
metabolism
;
Genes, Tumor Suppressor
;
physiology
;
HSP90 Heat-Shock Proteins
;
metabolism
;
Humans
;
Hypoxia-Inducible Factor 1, alpha Subunit
;
metabolism
;
Intracellular Signaling Peptides and Proteins
;
genetics
;
metabolism
;
Iron
;
metabolism
;
Neoplasms
;
metabolism
;
pathology

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