Vascular endothelial barrier dysfunction is the most prominent manifestation and important cause of mortality in infectious acute lung injury (ALI). Exogenous apelin is effective in ameliorating lipopolysaccharide (LPS)-induced inflammatory response in ALI lungs, reducing exudation of lung tissue and decreasing mortality. This study set out to investigate the association between apelin and Friend leukemia integration-1 (Fli-1) in the prevention and treatment of ALI, and to elucidate the molecular mechanism by which apelin protects the permeability of the vascular endothelial barrier. At the vivo functional level, lung wet/dry weight ratio was used to detect whole lung permeability, evans blue assay and dual fluorescent protein tracking assay were used to detect lung vascular endothelial permeability, HE staining to observe the inflammatory status of lung tissue, and immunofluorescence staining for VE-cadherin expression levels in blood vessels. The changes in inflammatory factors in bronchoalveolar lavage fluid (BALF) were detected by ELASA. Western blot was used to detect the expression level of proteins. qRT-PCR was performed to detect changes in mRNA expression of Fli-1 and adherent junction-related proteins. The correlation analysis of Fli-1 with vascular endothelial permeability and SRC showed that Fli-1 participated in the process of ALI. After preventive and therapeutic treatment of ALI mice with exogenous apelin, Fli-1, APJ, VE-cadherin, phosphorylated-VE-cadherin (p-VE-cadherin) and β-catenin were up-regulated, while SRC, phosphorylated-SRC (p-SRC), VEGF and VEGF-R were down-regulated, which indicated that the stability of vascular endothelial barrier was enhanced. With the use of Fli-1 inhibitor irinotecan, the protective effect of apelin was weakened in various functional indexes, genes and proteins. The lung was maintained at the level of the injury. Our research shows that Fli-1 is involved in the LPS-induced ALI process. The molecular mechanism for apelin in preventing endothelial barrier dysfunction in ALI is through up-regulating Fli-1, thus regulating adherens junction-related proteins, and finally recovering the endothelial barrier function.
Pulmonary hypertension (PH), a rare but deadly cardiopulmonary disorder, is characterized by extensive remodeling of pulmonary arteries resulting from enhancement of pulmonary artery smooth muscle cell proliferation and suppressed apoptosis; however, the underlying pathophysiological mechanisms remain largely unknown. Recently, epigenetics has gained increasing prominence in the development of PH. We aimed to investigate the role of vestigial-like family member 4 (VGLL4) in chronic normobaric hypoxia (CNH)-induced PH and to address whether it is associated with epigenetic regulation. The rodent model of PH was established by CNH treatment (10% O2 , 23 hours/day). Western blot, quantitative reverse transcription polymerase chain reaction, immunofluorescence, immunoprecipitation, and adeno-associated virus tests were performed to explore the potential mechanisms involved in CNH-induced PH in mice. VGLL4 expression was upregulated and correlated with CNH in PH mouse lung tissues in a time-dependent manner. VGLL4 colocalized with α-smooth muscle actin in cultured pulmonary arterial smooth muscle cells (PASMCs), and VGLL4 immunoactivity was increased in PASMCs following hypoxia exposure in vitro. VGLL4 knockdown attenuated CNH-induced PH and pulmonary artery remodeling by blunting signal transducer and activator of transcription 3 (STAT3) signaling; conversely, VGLL4 overexpression exacerbated the development of PH. CNH enhanced the acetylation of VGLL4 and increased the interaction of ac-H3K9/VGLL4 and ac-H3K9/STAT3 in the lung tissues, and levels of ac-H3K9, p-STAT3/STAT3, and proliferation-associated protein levels were markedly up-regulated, whereas apoptosis-related protein levels were significantly downregulated, in the lung tissues of mice with CNH-induced PH. Notably, abrogation of VGLL4 acetylation reversed CNH-induced PH and pulmonary artery remodeling and suppressed STAT3 signaling. Finally, STAT3 knockdown alleviated CNH-induced PH. In conclusion, VGLL4 acetylation upregulation could contribute to CNH-induced PH and pulmonary artery remodeling via STAT3 signaling, and abrogation of VGLL4 acetylation reversed CNH-induced PH. Pharmacological or genetic deletion of VGLL4 might be a potential target for therapeutic interventions in CNH-induced PH.
Histone H3K27me3 demethylase KDM6B (also known as Jumonji domain-containing protein D3, JMJD3) plays vital roles in the etiology of inflammatory responses; however, little is known about the role of KDM6B in neuroinflammation-induced anxiety-like behavior. The present study aimed to investigate the potential role of KDM6B in lipopolysaccharide (LPS)-induced anxiety-like behavior and to evaluate whether it is associated with the modulation of vestigial-like family member 4 (VGLL4). The elevated plus maze, light-dark box, and open-field test were performed to test the anxiety-like behavior induced by LPS in C57BL/6 J male mice. Levels of relative protein expression in the hippocampus were quantified by western blotting. KDM6B inhibitor GSK-J4 and microglia inhibitor minocycline as well as adeno-associated virus of Vgll4 shRNA were used to explore the underlying mechanisms. We found that KDM6B, VGLL4, interleukin-1β (IL-1β), and ionized calcium-binding adaptor molecule-1 (Iba-1, microglia marker) protein levels were increased in LPS-dose dependent manner in the hippocampus but not in prefrontal cortex. GSK-J4 treatment attenuated LPS-induced VGLL4, the signal transducer and activator of transcription 3 (STAT3), IL-1β and Iba-1 upregulation and anxiety-like behavior. Knockdown VGLL4 with Vgll4 shRNA prevented the increase of anxiety-like behavior and levels of STAT3, IL-1β, and Iba-1 expression in the hippocampus of LPS-treated mice. Moreover, minocycline, an inhibitor of microglia treatment blunted LPS-induced anxiety-like behavior. Collectively, these results demonstrate that the induction of neuroinflammation by LPS promotes KDM6B activation in the hippocampus, and LPS-induced anxiety-like behavior is associated with upregulation of VGLL4 by KDM6B in the hippocampus.
Objective: To observe changes of Friend leukemia virus integration 1 (FLI-1) protein expression of pulmonary tissue in mice with pulmonary endothelial barrier dysfunction following acute lung injury (ALI) induced by lipopolysaccharide (LPS). Methods: The mouse model of ALI was established by injection of LPS (7.5 mg/kg, i.p. ). At 0 h, 12 h, 24 h and 48 h after LPS injection, pulmonary microvascular endothelial permeability and lung wet/dry weight ratio (W/D) were assessed. The contents of TNF-α and IL-6 in bronchoalveolar lavage fluid (BALF) were detected by ELISA method. The protein levels of FLI-1 and Src protein tyrosine kinase (SRC) were analyzed by Western blotting.Results: ①Pulmonary microvascular endothelial permeability at 12 h and 24 h were significantly higher than those of 0 h by 74.3% and 162.4%, respectively, while that of 48 h was lower than that of 24 h by 27.0% (P<0.05). The W/D at 12 h and 24 h were significantly higher than those of 0 h by 50.1% and 122.9%, respectively, while that of 48 h was lower than that of 24 h by 10.7% (P<0.05). ②The contents of IL-6 and TNF-α in BALF at 12 h and 24 h were significantly higher than those of 0 h, while those of 48 h were significantly lower than those of 24 h by 28.3% and 21.6% (P<0.05), respectively. ③The protein level of FLI-1 in lung at 12 h and 24 h were down-regulated than those of 0 h by 20.4% and 56.9%, respectively, while that of 48 h was up-regulated than that of 24 h by 18.2% (P<0.05). The protein level of SRC in lung at 12 h and 24 h were up-regulated than those of 0 h by 76.8% and 176.7%, respectively, while that of 48 h was down-regulated than that of 24 h by 33.4% (P<0.05).④Same as the protein level of FLI-1 with the protein level of SRC in lung, pulmonary microvascular endothelial permeability was significantly negative correlated with the protein level of FLI-1 in lung, while it was significantly positive correlated with the protein level of SRC (P<0.01). Conclusion: FLI-1 participates in the pathological proceeding of pulmonary endothelial barrier dysfunction following ALI induced by LPS.
目的 探讨形成性评价在生物化学课程中实施效果.方法 选取该校2014级临床课改班及2015~2017级临床"5+3"专业学生249人作为观察组,同时选取五年制临床医学专业同年级学生2812人作为对照组.对照组实施传统的期末考试评价方式,观察组实施形成性评价方式,比较2组中同一年级学生生物化学总成绩及不及格率.结果 观察组中2014~2017级学生生物化学总成绩及不及格率分别优于对照组中相应年级学生,差异有统计学意义(P<0.05).结论 形成性评价考核方式能真实、客观地反映学生的学习水平及教师的教学效果.
Pulmonary arterial hypertension (PAH) is a cardiopulmonary disease that can lead to heart failure and eventually death. MicroRNAs (miRs) play essential roles during PAH progression; however, their exact mechanism of action remains unclear. Apelin is a small bioactive peptide with a key protective function in the pathogenesis of PAH mediated by binding to the APJ gene. The aim of the present study was to investigate the role of miR-335-3p in chronic normobaric hypoxia (CNH)-induced PAH in mice and the potential underlying regulatory mechanism. Adult male C57BL/6 mice were exposed to normoxia (~21% O2) or CNH (~10% O2, 23 h/d) for 5 weeks. MiR-335-3p was significantly increased in lung tissue of CNH-induced PAH mice. Blocking miR-335-3p attenuated CNH-induced PAH and alleviated pulmonary vascular remodeling. Bioinformatics analysis and luciferase reporter assay indicated that nuclear factor-kappa beta (NF-κB) acted as a transcriptional regulator upstream of miR-335-3p. Pyrrolidine dithiocarbamate treatment reversed the CNH-induced increase in miR-335-3p expression and diminished CNH-induced PAH. Moreover, p50-/- mice were resistant to CNH-induced PAH. Finally, APJ was identified as a direct targeting gene downstream of miR-335-3p, and pharmacological activation of APJ by its ligand apelin-13 reduced CNH-induced PAH and improved pulmonary vascular remodeling. Our results indicate that NF-κB-mediated transcriptional upregulation of miR-335-3p contributes to the inhibition of APJ and induction of PAH during hypoxia; hence, miR-335-3p could be a potential therapeutic target for hypoxic PAH.
目的:探讨Yes激酶相关蛋白(YAP)活化对感染性急性肺损伤修复的影响及可能机制.方法:SPF级雄性ICR小鼠90只,随机分为2组,LPS组和LPS+XMU组.LPS组腹腔注射脂多糖(LPS)(7.5 mg/kg),LPS+XMU组在给予LPS的同时腹腔注射XMU-MP-1(YAP激动剂)(1 mg·kg-1·d-1,连续3 d).在给予LPS 0 h、24 h、48 h、72 h后,采用苏木素-伊红(HE)染色观察肺组织形态.制备小鼠肺泡灌洗液,BCA法检测总蛋白含量,酶联免疫吸附法(ELISA)检测TNF-α和IL-6含量,比色法检测髓过氧化物酶(MPO)活性.Western blot法检测小鼠肺细胞核内YAP及胞浆磷酸化YAP(P-YAP)、肺组织YAP靶基因-结缔组织生长因子(CTGF)及增殖细胞核抗原(PC-NA)蛋白的表达.结果:与LPS组比较,LPS+XMU组核内YAP蛋白表达在24 h、48 h、72 h表达分别上调39.2%、148.1% 和42.9%(P均<0.05),同时YAP下游靶蛋白CTGF蛋白表达分别上调186.6%、10.1%、146.1%(P均<0.05),而胞浆中P-YAP显著下调.与LPS组比较,LPS+XMU 24 h组肺泡灌洗液中IL-6和TNF-α含量分别降低28.4%和23.7%,48 h组肺泡灌洗液MPO活性和TNF-α 含量分别降低13.5% 和39.5%,72 h组肺泡灌洗液IL-6和TNF-α含量分别降低42.8%和16.7%(P均<0.05).与LPS组比较,LPS+XMU 24 h组肺组织PCNA蛋白表达无统计学差异,而48 h、72 h PCNA表达分别上调44.2%、14.9%(P均<0.05).与LPS组比较,LPS+XMU 24 h组、48 h组和72 h组肺泡灌洗液蛋白含量分别降低32.4%、46.0%和26.3%(P均<0.05).HE染色结果显示,与LPS组比较,LPS+XMU组肺组织炎症细胞渗出减少,肺泡壁重构增加,肺组织修复明显加快.结论:YAP活化通过多种机制来改善肺损伤,促进肺损伤修复,损伤期抑制炎症,修复期促进炎症消减和诱导细胞增殖.
The roles of the Hippo-Yes-associated protein (YAP) pathway in lung injury and repair remain elusive. The present study examined the effects of systemic inhibition or stimulation of YAP activity on lung injury, repair and inflammation in a mouse model of lipopolysaccharide (LPS)-induced lung injury. Mice were treated with or without YAP inhibitor, verteporfin, or with or without YAP stimulator, XMU-MP-1, and intraperitoneally injected with LPS (7.5 mg/kg). Lung injury and repair were evaluated by histological analysis and by testing for markers of lung injury. Lung inflammation was assessed by measuring tissue levels of inflammatory media-tors. Lung injury was associated with a decreased, whereas lung repair was associated with an increased YAP activity evidenced by nuclear translocation. Lung injury was associated with a high level of lung inflammation and epithelial adherens junction disassembly, but not with cell proliferation or epithelial cell regeneration. The injury phase was defined as 0-48 h post-LPS injection, and the 48-168 h time period was considered the repair phase. Inhibition of YAP activity at the injury phase, using verteporfin, exacerbated, whereas its stimulation, using XMU-MP-1, alleviated lung injury, lung inflammation and epithelial adherens junction disassembly. Inhibition or stimulation of YAP activity at the injury phase had no effects on cell proliferation or epithelial regeneration. By contrast, lung repair was associated with inflammation resolution, increased cell proliferation, epithelial regeneration and reassembly of epithelial adherens junctions. Inhibition of YAP activity at the repair phase delayed inflammation resolution, impeded lung recovery, inhibited cell proliferation and epithelial regeneration, and inhibited epithelial adherens junction reassembly. Stimulation of YAP activity at the repair phase reversed all these processes. The results of the current study demonstrated that the Hippo-YAP activity serves a protective role against endotoxemic lung injury. The Hippo-YAP activity alleviated lung inflammation and injury at the injury phase and promoted inflammation resolution and lung repair at the repair phase.
Aims: Endothelial barrier dysfunction is associated with multiple diseases, and barrier repair may be a possible therapeutic target. Yes-associated protein and its pathway have been implicated in organ repair after injury. However, the mechanisms underlying barrier repair and any role YAP plays in the process are unclear. This study aimed to explore the role and mechanism of YAP in the repair of endothelial cell permeability after TNF-alpha-induced injury. Main methods: A trans-endothelial electrical resistance assay was performed to investigate changes in endothelial cell permeability. Lentivirus packaging by calcium phosphate transfection was used to construct endothelial cell lines with knocked down or overexpressed YAP. Western blotting, immunofluorescence, CO-IP, and real-time PCR were used to detect related protein and gene expression. Key findings: YAP is involved in the repair process of TNF-alpha-induced endothelial cell permeability injury; its overexpression promotes repair of endothelial cell permeability, and knockdown weakens repair ability. Moreover, YAP may promote repair by down-regulating STAT3 activity, thereby inhibiting VEGF expression. Significance: Elucidating the role of YAP in endothelial cell permeability repair process after injury might reveal mechanisms of endothelial barrier repair and provide therapeutic targets for treatment of vascular hyper-permeability disease.
依托该校“考易网络题库与考试系统”平台,建立生物化学试题库,自2014年开始,在温州医科大学生物化学课程评价中试行“随堂章节考试十期末考”分阶段考核模式,对学生学习成绩进行综合评定.初步研究显示,这种基于形成性评价的考核方式能有力地提高学生平时学习的积极性,有效地提高学习质量和教学效果.
OBJECTIVE To investigate the effects of apolipoprotein E (apoE) on the proliferation of pulmonary arterial smooth muscle cells (PASMCs) induced by hypoxia. METHODS Primary culture of mouse PASMCs was prepared from male C57BL/6 mouse pulmonary artery by the method of tissue block anchorage. PASMCs were divided into four groups: normoxia group, normoxia with apoE administration group, hypoxia group and hypoxia with apoE administration group. The proliferation of PASMCs was observed by EdU incorporation. The protein levels of apoE, proliferating cell nuclear antigen (PCNA), protein kinase C (PKC) and phosphorylated protein kinase C (p-PKC) were analyzed by Western blot. RESULTS The percentage of PASMCs proliferation of hypoxia group was significantly higher than that of normoxia group by 64.7% (P<0.05), and the protein expression levels of PCNA and p-PKC of hypoxia group were up-regulated than those of normoxia group by 69.0% and 120.0%, while the protein expression of apoE was down-regulated by 51.0% (P<0.05), respectively. The percentage of PASMCs proliferation of hypoxia with apoE administration group was significantly lower than that of hypoxia group by 19.6% (P<0.05), and the protein expression levels of PCNA and p-PKC of hypoxia with apoE administration group were down-regulated than those of hypoxia group by 19.8% and 103.2% (P<0.05), respectively. There was no significant difference among each group in the protein expression of PKC, nor do there any significant difference between normoxia group and hypoxia group in the protein expression of p-PKC (P>0.05). CONCLUSION ApoE can inhibit the proliferation of PASMCs induced by hypoxia, and the mechanism of its effect may be attributed to blocking PKC pathway.
Background/aims: Epigallocatechin-3-gallate (EGCG), a major catechin found in green tea, plays an important anti-tumor role and is involved in various other biological processes, such as, neuroprotection by prevention of aggregation of misfolded proteins generated because of genetic defects. Surfactant protein A2 mutations (G231V and F198S) have been identified to be associated with pulmonary fibrosis and lung cancer, and these mutations cause protein aggregation, instability as well as secretion deficiency. The present study focused on investigating the inhibitory effects of EGCG on aggregation of mutant SP-A2 and elucidating the potential mechanisms underlying this action. Methods: Wild-type and mutant SP-A2 were transiently expressed in CHO-K1 cells. The aggregated and soluble proteins were separated into NP-40-insoluble and NP-40-soluble fractions. Protein stability was validated by chymotrypsin limited proteolysis assay. Western blot and RT-PCR were used to determine the protein and mRNA expression level, respectively. Results: Mutant SP-A2 alone or wild-type SP-A2 co-expressed with G231V formed NP-40-insoluble aggregates in CHO-K1 cells. EGCG significantly suppressed this aggregation and alleviated mutant SP-A2 accumulation in the ER. When combined with 4-PBA, EGCG treatment completely blocked mutant SP-A2 aggregate formation. Though secretion of mutant protein was not affected, EGCG facilitated protein instability in both wild-type and mutant protein. Importantly, MG132, a proteasome inhibitor, reversed EGCG-induced aggregate reduction. Conclusions: EGCG inhibits aggregation of misfolded SP-A2 via induction of protein instability and activation of proteasomal pathway for aggregate degradation.
OBJECTIVE:To observe the changes of apolipoprotein E (apoE) protein expression of pulmonary tissue in mice with pulmonary hypertension induced by hypoxia.METHODS:The animal model of hypoxic pulmonary hypertension was established by exposing the mice to isobaric hypoxic chamber for 3 weeks (23 h/d, regular chow feed).Twenty male wild type (WT) C57BL/6 mice and twenty apoE gene knockout (apoE-KO) mice were randomly divided into normoxia group and hypoxia group. The plasma concentrations of low density lipoprotein (LDL), high density lipoprotein (HDL) and total cholesterol were detected by ELISA method. The protein expression of apoE in lung and liver, and peroxisome proliferators-activated receptor gamma (PPARγ) in lung were measured by Western blot.RESULTS:①In WT mice, the right ventricular systolic pressure (RVSP) and the weight ratio of right ventricle (RV) to left ventricle plus septum (LV+S) of hypoxia group were significantly higher than those of normoxia group by 68% and 59% (P<0.05), respectively. The plasma concentration of HDL and HDL/LDL of hypoxia group were significantly lower than those of normoxia group by 17% and 40% (P<0.05), respectively.The protein expression of apoE in lung and in liver of hypoxia group were significantly down-regulated than those of normoxia group by 48% and 52% (P<0.05), respectively.The protein expression of PPARγ in lung was significantly down-regulated than that of normoxia group by 37%(P<0.05).RVSP were significantly negative correlated with the protein levels of apoE and PPARγ in lung (P<0.01).② In apoE-KO mice, RVSP and the weight ratio of RV to LV+S of hypoxia group were significantly higher than those of normoxia group by 96% and 86% (P<0.05), respectively.RVSP and RV to (LV+S) of hypoxia group in apoE-KO mice were significantly higher than those of hypoxia group in WT mice by 29% and 24% (P<0.05), respectively.CONCLUSIONS:Down-regulated expression of apoE in lung tissue participates in the pathological proceeding of pulmonary hypertension induced by hypoxia.
We previously showed that apelin-13 ameliorates chronic normobaric hypoxia (CNH)-induced anxiety-like behavior in mice, the mechanism, however, is not well known. This study aims to investigate whether SIRT1 is involved in the anxiolytic effect of apelin-13 in CNH-treated mice, and to illustrate the potential underlying mechanism. We showed that apelin-13 treatment reversed a decrease in SIRT1 and an increase in acetylated p65 (lysine 310) proteins' expression in hippocampus of CNH-treated mice, indicating that apelin-13 inhibited NF-κB signaling pathway by activating SIRT1. Behaviorally, apelin-13 ameliorated CNH-induced anxiety-like behavior, EX-527 blocked the beneficial effect of apelin-13, and the anxiogenic effect of CNH was attenuated by resveratrol pretreatment, suggesting that SIRT1 was involved in the effect of apelin-13 against CNH-induced anxiety-like behavior in mice. We also showed that resveratrol treatment decreased IL-1β, IL-6, TNF-ɑ, PCNA, Bcl-2, and acetyl-p65 levels, but increased Bax and caspase 3 levels in hippocampus, suggesting a suppressive effect of resveratrol on cellular neuroinflammation and proliferation while a promotive effect on apoptosis of microglia in hippocampus. Finally, blockade of NF-κB activity by PDTC diminished CNH-induced anxiety-like behavior, indicating that NF-κB was involved in CNH-induced anxiety-like behavior in mice. In conclusion, this study provides the first evidence that SIRT1 mediates the anxiolytic effect of apelin-13 in CNH-treated mice through the inhibition of NF-κB pathway. These results imply that dysfunction of the apelin-SIRT1-NF-κB axis in hippocampus represents a potential mechanism that results in the induction of neuroinflammation and reduction in neuroprotection, thus induces anxiety-like behavior in CNH-treated mice.
G231V and F198S mutations in surfactant protein A2 (SP-A2) are associated with familial pulmonary fibrosis. These mutations cause defects in dimer/trimer assembly, trafficking, and secretion, as well as cause mutant protein aggregation. We investigated the effects and mechanisms of chemical chaperones on the cellular and biochemical properties of mutant SP-A2. Chemical chaperones, including 4-phenyl butyric acid (4-PBA), could enhance secretion and decrease intracellular aggregation of mutant SP-A2 in a dose-dependent manner. Interestingly, increased levels of aggregated mutant SP-A2, resulting from MG-132-mediated proteasome inhibition, could also be alleviated by 4-PBA. 4-PBA treatment reduced the degradation of mutant SP-A2 to chymotrypsin digestion in CHO-K1 cells and up-regulated GRP78 (BiP) expression. Overexpression of GRP78 in SP-A2 G231V- or F198S-expressing cells reduced, whereas shRNA-mediated knockdown of GRP78 enhanced aggregation of mutant SP-A2, suggesting that GRP78 regulates aggregation of mutant SP-A2. Together, these data indicate chemical chaperone 4-PBA and upregulation of GRP78 can alleviate aggregation to stabilize and facilitate secretion of mutant SP-A2. The up-regulation expression of GRP78 might partially contribute to the aggregate-alleviating effect of 4-PBA.
BACKGROUND AND AIMS:Chronic intermittent hypoxia (CIH) exposure causes atherosclerosis, although the underlying mechanisms are poorly understood. This study defines the role of endothelial intrinsic NF-κB signaling in the atherogenic response to CIH. METHODS:We created ApoE-ECI-κBmt mice that are deficient in the apolipoprotein E gene (ApoE-/-) and overexpress an I-κBα mutant (I-κBmt) selectively in endothelial cells. ApoE-/- and ApoE-ECI-κBmt mice were fed a normal chow diet (NCD) or high cholesterol diet (HCD) and exposed to sham or CIH, and atherosclerotic lesions were quantified. RESULTS:CIH exposure activated NF-κB in aortas, and induced the expression of endothelial-specific and NF-κB-dependent genes, E-selectin and vascular cell adhesion molecule (VCAM)-1, in the aortas and hearts. Endothelial I-κBmt overexpression in ApoE-ECI-κBmt mice significantly inhibited CIH-induced NF-κB activity, and suppressed E-selectin and VCAM-1 expressions, confirming endothelial NF-κB inhibition in ApoE-ECI-κBmt mice. ApoE-/- mice, on NCD, developed mild atherosclerotic lesions spontaneously, and developed advanced and larger areas of atherosclerotic plaques when exposed to CIH. ApoE-/- mice also developed advanced atherosclerotic lesions when fed an HCD alone. The HCD-induced atherosclerotic plaques became more advanced, and plaque area was doubled in mice exposed to HCD + CIH. Endothelial I-κBmt overexpression in ApoE-ECI-κBmt mice attenuated spontaneously developed atherosclerotic lesions, abrogated CIH-induced atherosclerosis and mitigated CIH-mediated facilitation of HCD-induced atherosclerosis. CONCLUSIONS:These results suggest that endothelial intrinsic NF-kB signaling may play a pivotal role in CIH-induced atherosclerosis.
课程整合是现代课程改革的主要问题之一,更是目前我国基础教育课程改革方案的重点内容之一.《医学生物化学》是临床医学专业学生的一门重要基础课程,但是在教学中存在内容多、课时少等问题;上课仍然以讲授为主;对学生的评价主要通过期末考试,基本上是“一考定乾坤”等问题.因此,综合其他院校和其他科目课程整合的经验,教师重新构建了《医学生物化学》课程体系,首先在教学内容上进行调整,压缩一些内容,留出一些课时,引入讨论式教学模式,讨论过程中引入临床案例,使生物化学理论知识与临床实践相衔接,培养学生对知识的运用和分析问题能力.同时,改变目前单一依靠期末考试成绩作为考核的唯一标准,将理论课中讨论课表现、撰写小综述、期中考核、机动小测验等内容纳入考核体系,不但可以及时反馈学生每个阶段的学习效果,而且可以更全面客观地评价出学生的综合能力.
在《医学生物化学》教学评价体系中适当地引入形成性评价指标,建立形成性评价与期末终结性考核评价相结合的教学评价系统。首先在大课教学中期通过考易平台进行选择题测试,测试后教师给予及时反馈与讲解,另外在毕博网络教学平台出1~2道讨论题,教师与学生可以做线上线下讨论,教师最终做出点评和总结;其次实验课上根据学生课上听课情况、动手积极与否、操作有无错误、结果是否合理、实验报告的书写是否规范等方面进行形成性评价,教师对每次实验的过程及结果进行记录并总结,并在下一次实验课授课前进行统一反馈;再次在以案例为基础的学习讨论课上,就教师提出的问题,学生以小组为单位通过自行查阅资料、进行组内和组间交流讨论,最后教师根据学生的讨论结果和讨论中出现的问题进行总结和评价。在这三部分教学环节中都使用形成性评价,弥补传统的终结性评价的不足,以便更有效地提高教学质量。