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1.
为研究TGF β1 SMAD3信号对小鼠软骨细胞增殖和分化的影响 ,分离了野生型与Smad3基因剔除 (Smad3ex8 ex8)突变纯合子小鼠肋骨软骨细胞并进行了体外培养 .通过3 H TdR参入实验检测了体外培养软骨细胞的增殖能力 .TGF β1可以刺激野生型软骨细胞的增殖 ,Smad3基因缺失导致小鼠软骨细胞丧失对TGF β1刺激生长作用的应答 .Northern杂交显示 ,TGF β1促进野生型小鼠软骨细胞表达Ⅱ型胶原 ,而Smad3基因缺失突变纯合子软骨细胞大量表达肥大性软骨细胞的分子标记物X型胶原 .结果表明 ,SMAD3介导转化生长因子TGF β1刺激软骨细胞增殖并抑制软骨细胞的肥大性分化  相似文献   

2.
杨晓 《生命科学》2008,20(2):165-170
转化生长因子-β(TGF-β)是一个包括数十种TGF-βs、骨形态发生蛋白(BMPs)等配体在内的生长因子超家族,在哺乳动物整体和组织器官发育过程中具有广泛而重要的功能。Smad4是细胞内TGF-β信号通路的核心信号转导分子。为了深入研究Smad4介导的TGF-β信号在骨骼发育过程中的生理功能,我们利用转基因技术研制了软骨细胞、肥大型软骨细胞和成骨细胞分别特异性表达Cre重组酶的转基因小鼠,利用条件基因敲除技术研制了不同类型骨骼细胞Smad4基因敲除的小鼠模型。表型分析结果揭示了Smad4在软骨细胞增殖和分化、骨重塑以及稳态维持过程中的功能以及相关的分子机制,为理解人类相关骨骼疾病的发生及其机理提供了新的线索。  相似文献   

3.
目的:研究Lefty1在小鼠胚胎干细胞分化过程中的作用。方法:根据染色质免疫沉淀测序结果,在临近Lefty1转录起始位点以及与之相距10 kb的上游区域有TGF-β信号通路Smad2/3蛋白的四个结合区域,通过CRISPR/Cas9方法获得四个区域敲除的单克隆细胞,利用荧光实时定量PCR(qRT-PCR)检测各细胞中Lefty1的转录水平,并用TGF-β信号通路的激活剂AC和抑制剂SB分别处理敲除的细胞,检测其对TGF-β信号的响应,最后通过胚状体形成实验,检测敲除细胞系在中内胚层分化过程中的标志分子Gsc和Mixl1的表达。结果:利用CRISPR/Cas9方法成功获得不同区域敲除的单克隆细胞,与野生型E14细胞相比,四种区域敲除的细胞中Lefty1 RNA含量明显降低,并且在干细胞状态和分化状态下,敲除细胞系对TGF-β信号的响应减弱。在胚状体形成的实验中,与野生型E14细胞相比,敲除细胞系在分化过程中Lefty1表达的基础水平明显降低,中内胚层分化的标志分子Gsc和Mixl1转录水平也明显下降。结论:在胚胎干细胞中,Lefty1转录起始位点附近以及上游10 kb的这四段区域通过TGF-β信号通路对Lefty1的转录发挥调控作用,从而影响中内胚层分化过程中的标志分子Gsc和Mixl1的表达。  相似文献   

4.
转化生长因子β1 (TGF-β1) 是参与骨髓间充质干细胞(BMSCs)脂肪定向分化的重要调节因子,其具体的调节机制尚不清楚. 本研究证明,BMSCs在体外分化为脂肪细胞的过程中, TGF-β1的基因表达显著下调,重组TGF-β1能够抑制BMSCs体外脂肪细胞定向分化,其分化的标志蛋白C/EBPβ和αP2的表达水平显著降低. TGF-β1在激活Smad信号通路的同时,还抑制胰岛素(脂肪分化的主要诱导剂)对PI3K/Akt信号通路的激活.加入Smad特异性阻断剂后,C/EBPβ和αP2的诱导表达恢复正常,同时PI3K/Akt信号通路的活化亦得以恢复. 结果提示,TGF-β1可通过Smad信号通路干扰脂肪细胞分化的核心信号通路-PI3K/Akt的活化,从而实现对BMSCs脂肪分化的抑制.该研究结果为肥胖等导致的心血管疾病或Ⅱ型糖尿病等的临床治疗提供有价值的参考.  相似文献   

5.
目的:研究转化生长因子β1(TGF-β1)及其下游Smad3信号蛋白在大鼠心肌细胞肥大中的作用。方法:TGF-β1干预培养新生大鼠心肌细胞,流式细胞仪检测心肌细胞总蛋白含量。结扎大鼠腹主动脉复制心肌肥厚模型,在不同时间点处死动物,检测左室质量指数(LVM1),RT—PCR检测TGF-β1及Smad3的mRNA表达,Westernblot检测Smad3蛋白的表达。结果:不同剂量TGF-β1均能明显增加体外培养的心肌细胞总蛋白含量,TGF-β1(3ng/ml)还增加心肌细胞Smad3 mRNA和蛋白的表达,其表达量1h达高峰,持续至TGF-β1刺激后8h。大鼠腹主动脉结扎术后3d LVMI开始上升并持续至术后28d,心肌组织中TGF-β1、Smad3的mRNA表达水平以及Smad3蛋白表达术后3d也开始上升持续至术后28d,术后14d为表达高峰(P〈0.01)。结论:TGF-β1能诱导大鼠心肌细胞肥大,其信号蛋白Smad3参与了大鼠心肌肥大的病理过程。  相似文献   

6.
转化生长因子-β信号传导的Smad通路   总被引:4,自引:0,他引:4  
转化生长因子-β(TGF-b)的信号传导主要通过激活Smad通路实现, Smads复合物与靶基因启动子结合完成对基因转录的调控作用. 多种转录共激活因子和转录共抑制因子与Smads直接结合, 从而协同参与Smads与基因启动子的结合以及对基因转录的调控. 泛素-蛋白水解酶复合体通路(UPP)对Smads的降解是Smad通路的终止机制. TGF- β也能激活MAPK通路等其他信号通路. Smad通路和其他信号通路之间的对话构成了TGF-β信号传导的复杂调节网络.  相似文献   

7.
为了研究伴侣分子相互作用蛋白 CHIP 对 TGF-β信号通路的调控,利用四环素基因表达调控系统,建立四环素调控表达 CHIP 的稳定细胞系 (Mv1Lu-Tet off-CHIP). 利用此细胞模型,发现 CHIP 的过量表达可显著降低细胞内 Smad2/3 蛋白水平;荧光素酶报告分析也表明开启 CHIP 蛋白表达可明显降低 Smads 介导的基因转录活性;进一步的免疫印迹结果显示 CHIP 蛋白可明显下调 TGF-β所诱导的下游基因 JunB 的表达 . 上述结果提示 CHIP 可以作为一种新的蛋白质分子抑制性调节 TGF-β信号通路 .  相似文献   

8.
杨冠  杨晓 《遗传》2008,30(8)
转化生长因子β(Transforming growth factor β,TGF-β)超家族包括TGF-β和骨形态发生蛋白(Bone morphogenetic protein,BMP)两个亚家族.TGF-β超家族信号通路的配体、配体拮抗分子,受体、信号转导分子均在软骨内成骨过程中发挥各自独特的作用,参与调控软骨细胞的谱系分化、增殖、成熟、凋亡和矿化.BMP信号能起始间充质细胞向软骨细胞分化并维持软骨细胞的特性,在软骨发生过程中起主导作用;在生长板发育的过程中,BMP信号促进软骨细胞的成熟,促进成骨,而TGF-β信号抑制软骨细胞的肥大分化,维持生长板中适量的软骨细胞;TGF-β信号和BMP信号对于关节软骨的维持和修复都是不可或缺的.因此,TGF-β超家族的重要作用贯穿骨骼发育过程的始终.  相似文献   

9.
为了进一步验证转化生长因子(TGF-β) /Smads信号通路在脯氨酸(Pro)促进鱼鳔胶原蛋白沉积中的作用, 研究利用TGF-β/Smads通路抑制剂干扰, 分析干扰前后鱼鳔中胶原蛋白含量及相关基因转录水平的变化。根据前期实验获得的Pro最佳添加量, 制定饲料配方, 饲喂浅色黄姑鱼1月后, 通过腹腔注射氧化苦参碱(Oxymatrine)为期1个月。在实验结束后, 测量各项指标, 评估干扰前后, Pro促进鱼鳔胶原蛋白沉积的效果及变化。实验结果表明: Pro能显著上调TGF-β/Smads通路中相关基因的表达, 并促进鱼鳔胶原蛋白沉积, Oxymatrine干扰显著下调了TGF-β/Smads通路中相关基因(Col1α1、Col1α2、TGF-β和Smad2)表达, 同时导致鱼鳔中胶原蛋白沉积下降。由此推断Pro通过激活TGF-β/Smads通路促进鱼鳔中胶原蛋白沉积, 而Oxymatrine干扰抑制了TGF-β/Smads通路, 导致Smad2与Col1α2启动子结合受阻, 进而下调了Col1α2基因的转录, 从而降低鱼鳔中胶原蛋白的沉积。综上表明, TGF-β/Smads信号通路在Pro促进浅色黄姑鱼鱼鳔胶原蛋白沉积过程中起着重要调控作用, 其中Col1α1、Col1α2、TGF-β和Smad2扮演着重要角色, 研究结果可为鱼类胶原蛋白代谢的营养调控提供新思路和新方法。  相似文献   

10.
卵巢癌中TGF-β/Smads信号通路的功能研究   总被引:1,自引:0,他引:1  
为探讨卵巢癌细胞中TGF-β的信号传导情况及TGF-β/Smads信号通路各组分在卵巢癌发生中的作用,采用MTT和活细胞计数方法研究了TGF-β1对卵巢癌细胞系HO-8910、HO-8910PM及SKOV3的生长抑制作用;并应用RT-PCR、荧光免疫组化等方法研究了TGF-β/Smads传导通路中各组分的表达和定位以及TGF-β1刺激前后Smad7和P-Smad2定位及表达的变化。结果显示,TGF-β1对细胞系SKOV3没有生长抑制作用.而SK-OV3细胞表达了TGF-β/Smads信号通路中的所有已知成分。且3种卵巢癌细胞在TGF-β1刺激后Smad7mRNA瞬时表达增加,Smad7蛋白表达亦增加并由胞核转位到胞浆,P-Smad2由胞浆转位到胞核。结果表明TGF-β/Smads信号传导通路在卵巢癌细胞HO-8910、HO-8910PM和SKOV3中是完整的,SKOV3细胞逃逸TGF-β介导的生长抑制作用可能是由于TGF-β/Smads信号通路下游发生异常。  相似文献   

11.
Endochondral ossification begins from the condensation and differentiation of mesenchymal cells into cartilage. The cartilage then goes through a program of cell proliferation, hypertrophic differentiation, calcification, apoptosis, and eventually is replaced by bone. Unlike most cartilage, articular cartilage is arrested before terminal hypertrophic differentiation. In this study, we showed that TGF-beta/Smad3 signals inhibit terminal hypertrophic differentiation of chondrocyte and are essential for maintaining articular cartilage. Mutant mice homozygous for a targeted disruption of Smad3 exon 8 (Smad3(ex8/ex8)) developed degenerative joint disease resembling human osteoarthritis, as characterized by progressive loss of articular cartilage, formation of large osteophytes, decreased production of proteoglycans, and abnormally increased number of type X collagen-expressing chondrocytes in synovial joints. Enhanced terminal differentiation of epiphyseal growth plate chondrocytes was also observed in mutant mice shortly after weaning. In an in vitro embryonic metatarsal rudiment culture system, we found that TGF-beta1 significantly inhibits chondrocyte differentiation of wild-type metatarsal rudiments. However, this inhibition is diminished in metatarsal bones isolated from Smad3(ex8/ex8) mice. These data suggest that TGF-beta/Smad3 signals are essential for repressing articular chondrocyte differentiation. Without these inhibition signals, chondrocytes break quiescent state and undergo abnormal terminal differentiation, ultimately leading to osteoarthritis.  相似文献   

12.
Smad4 is required for the normal organization of the cartilage growth plate   总被引:6,自引:0,他引:6  
Zhang J  Tan X  Li W  Wang Y  Wang J  Cheng X  Yang X 《Developmental biology》2005,284(2):311-322
Smad4 is the central intracellular mediator of transforming growth factor-beta (TGF-beta) signals. To study the role of Smad4 in skeletal development, we introduced a conditional mutation of the gene in chondrocytes using Cre--loxP system. We showed that Smad4 was expressed strongly in prehypertrophic and hypertrophic chondrocytes. The abrogation of Smad4 in chondrocytes resulted in dwarfism with a severely disorganized growth plate characterized by expanded resting zone of chondrocytes, reduced chondrocyte proliferation, accelerated hypertrophic differentiation, increased apoptosis and ectopic bone collars in perichondrium. Meanwhile, Smad4 mutant mice exhibited decreased expression of molecules in Indian hedgehog/parathyroid hormone-related protein (Ihh/PTHrP) signaling. The cultured mutant metatarsal bones failed to response to TGF-beta1, while the hypertrophic differentiation was largely inhibited by Sonic hedgehog (Shh). This indicated that Ihh/PTHrP inhibited the hypertrophic differentiation of chondrocytes independent of the Smad4-mediated TGF-beta signals. All these data provided the first genetic evidence demonstrating that Smad4-mediated TGF-beta signals inhibit the chondrocyte hypertrophic differentiation, and are required for maintaining the normal organization of chondrocytes in the growth plate.  相似文献   

13.
Maintenance of the articular surface depends on the function of articular chondrocytes (ACs) which produce matrix and are constrained from undergoing the maturation program seen in growth plate chondrocytes. Only during pathologic conditions, such as in osteoarthritis, are maturational constraints lost causing recapitulation of the process that occurs during endochondral ossification. With the aim of establishing a model to identify regulatory mechanisms that suppress AC hypertrophy, we examined the capability of 5-azacytidine (Aza) to have an impact on the maturational program of these cells. Primary ACs do not spontaneously express markers of maturation and are refractory to treatment by factors that normally regulate chondrocyte maturation. However, following exposure to Aza, ACs (i) were induced to express type X collagen (colX), Indian hedgehog, and alkaline phosphatase and (ii) showed altered colX and AP expression in response to bone morphogenetic protein-2 (BMP-2), transforming growth factor-beta (TGF-beta), and parathyroid hormone-related protein (PTHrP). Since Aza unmasked responsiveness of ACs to BMP-2 and TGF-beta, we examined the effect of Aza treatment on signaling via these pathways by assessing the expression of the TGF-beta Smads (2 and 3), the BMP-2 Smads (1 and 5), and the Smad2 and 3-degrading ubiquitin E3 ligase Smurf2. Aza-treated ACs displayed less Smad2 and 3 and increased Smad1, 5, and Smurf2 protein and showed a loss of TGF-beta signaling on the P3TP-luciferase reporter. Suggesting that Aza-induction of Smurf2 may be responsible for the loss of Smad2 and 3 protein via this pathway, immunoprecipitation and metabolic labeling experiments confirmed that Aza accelerated the ubiquitination and degradation of these targets. Overall, Aza-treated ACs represent a novel model for the study of mechanisms that regulate maturational potential of articular cartilage, with the data suggesting that maturation of these cells may be due to up-regulation of Smad1 and 5 coupled with a Smurf2-dependent degradation of Smad2 and 3 and loss of TGF-beta signaling.  相似文献   

14.
Hypertrophic maturation of chondrocytes is a crucial step in endochondral ossification, whereas abnormally accelerated differentiation of hypertrophic chondrocytes in articular cartilage is linked to pathogenesis of osteoarthritis. This cellular process is promoted or inhibited by bone morphogenetic protein (BMP) or transforming growth factor-β (TGF-β) signaling, respectively, suggesting that these signaling pathways cross-talk during chondrocyte maturation. Here, we demonstrated that expression of Tgfb1 was increased, followed by phosphorylation of Smad2, during BMP-2-induced hypertrophic maturation of ATDC5 chondrocytes. Application of a TGF-β type I receptor inhibitor compound, SB431542, increased the expression of Id1, without affecting the phosphorylation status of Smad1/5/8, indicating that the activated endogenous TGF-β pathway inhibited BMP signaling downstream of the Smad activation step. We searched for TGF-β-inducible effectors that are able to inhibit BMP signaling in ATDC5 cells and identified SnoN. Overexpression of SnoN suppressed the activity of a BMP-responsive luciferase reporter in COS-7 cells as well as expression of Id1 in ATDC5 cells and, subsequently, the expression of Col10a1, a hallmark of hypertrophic chondrocyte maturation. siRNA-mediated loss of SnoN showed opposite effects in BMP-treated ATDC5 cells. In adult mice, we found the highest level of SnoN expression in articular cartilage. Importantly, SnoN was expressed, in combination with phosphorylated Smad2/3, in prehypertrophic chondrocytes in the growth plate of mouse embryo bones and in chondrocytes around the ectopically existing hypertrophic chondrocytes of human osteoarthritis cartilage. Our results indicate that SnoN mediates a negative feedback mechanism evoked by TGF-β to inhibit BMP signaling and, subsequently, hypertrophic maturation of chondrocytes.  相似文献   

15.
This study demonstrates that ATF-2 cooperates with Smad3 to regulate the rate of chondrocyte maturation in response to TGF-beta. ATF-2 was rapidly phosphorylated in chick embryonic cephalic sternal chondrocytes following treatment with TGF-beta, and the effect was dependent upon p38 kinase activity. Transient transfection of both wild-type ATF-2 or Smad3 activated the TGF-beta-responsive reporter, p3TP-Lux, and synergistic effects were observed with ATF-2 and Smad3 coexpression. The effect of Smad3 and ATF-2 alone and in combination on chondrocyte maturation was examined in cultures simultaneously infected with RCAS viruses expressing different viral envelope proteins. When expressed alone, wild-type ATF-2 or Smad3 both inhibit colX expression and partially mimic the effects of exogenous TGF-beta. However, in combination the effects were additive and similar to the inhibitory effects of TGF-beta on colX expression. Loss of function experiments using dominant negative ATF-2 or Smad3 partially blocked the inhibitory effect of TGF-beta on colX, while together the blockade was complete. Similar effects were observed with another TGF-beta-responsive gene, PTHrP. However, the induction of colX by BMP-2 was not affected by overexpression of either wild-type or dominant negative ATF-2, indicating specificity for TGF-beta signaling. In contrast, although TGF-beta does not activate CRE/CREB signaling, dominant negative CREB enhanced colX expression in control and in TGF-beta and BMP-2-treated cultures. Thus, ATF-2 regulates chondrocyte maturation as a direct target of TGF-beta signaling while CREB regulates differentiation by targeting genes independent of the individual signaling effects of TGF-beta or BMP-2.  相似文献   

16.
Transforming growth factor-beta (TGF-beta) is an important growth inhibitor of epithelial cells, and insensitivity to this cytokine results in uncontrolled cell proliferation and can contribute to tumorigenesis. Smad2 and Smad3 are direct mediators of TGF-beta signaling, however little is known about the selective activation of Smad2 versus Smad3. The Smad2 and Smad3 knockout mouse phenotypes and studies comparing Smad2 and Smad3 activation of TGF-beta target genes, suggest that Smad2 and Smad3 have distinct roles in TGF-beta signaling. The observation that TGF-beta inhibits proliferation of Smad3-null mammary gland epithelial cells, whereas Smad3 deficient fibroblasts are only partially growth inhibited, suggests that Smad3 has a different role in epithelial cells and fibroblasts. Herein, the current understanding of Smad2 and Smad3-mediated TGF-beta signaling and their relative roles are discussed, in addition to potential mechanisms for the selective activation of Smad2 versus Smad3. Since alterations in the TGF-beta signaling pathway play an important role in promoting tumorigenesis and cancer progression, methods for therapeutic targeting of the TGF-beta signaling pathway are being pursued. Determining how Smad2 or Smad3 differentially regulate the TGF-beta response may translate into developing more effective strategies for cancer therapy.  相似文献   

17.
Smad3 is an intracellular signaling molecule that mediates the signal from transforming growth factor-beta (TGF-beta) and activin receptors. In this study, we reveal hypomineralized enamel in mice with the targeted deletion of the Smad3 gene. The Smad3 (-/-) mice had chalky white incisor enamel, while the enamel of the wild-type or Smad3 (+/-) mice was yellow-brown. Histological analysis of the undecalcified sections showed that the enamel thickness of the maxillary incisors in the Smad3 (-/-) mice was similar to that of the wild-type and Smad3 (+/-) mice while that the enamel of the maxillary molars in Smad3 (-/-) mice was disrupted in places. Microcomputed tomography (microCT) analysis revealed that the mineralization of the maxillary incisors and mandibular molars in the Smad3 (-/-) mice showed significant reduction in the degree of mineralization when compared to that of the wild-type and Smad3 (+/-) mice. Scanning electron microscopic (SEM) analysis of the mandibular incisors revealed that the enamel surface of the Smad3 (-/-) mice was irregular and disrupted in places and showed images similar to decalcified mature enamel. The histological analysis of the decalcified sections showed that distinct morphological changes in the ameloblasts at the secretory and maturational stages were not observed between the Smad3 (-/-) and Smad3 (+/-) or wild-type mice, while the enamel matrix was observed in the decalcified sections of the mandibular molars in the Smad3 (-/-) mice. These results suggested that Smad3 was required for enamel biomineralization, and TGF-beta and activin signaling might be critical for its process.  相似文献   

18.
《Cellular signalling》2014,26(5):951-958
BackgroundBoth Wnt signaling and TGF-β signaling have been implicated in the regulation of the phenotype of many cell types including chondrocytes, the only cell type present in the articular cartilage. A changed chondrocyte phenotype, resulting in chondrocyte hypertrophy, is one of the main hallmarks of osteoarthritis. TGF-β signaling via activin-like kinase (ALK)5, resulting in Smad 2/3 phosphorylation, inhibits chondrocyte hypertrophy. In contrast, TGF-β signaling via ALK1, leading to Smad 1/5/8 phosphorylation, has been shown to induce chondrocyte hypertrophy. In this study, we investigated the capability of Wnt3a and WISP1, a protein downstream in canonical Wnt signaling, to skew TGF-β signaling in chondrocytes from the protective Smad 2/3 towards the Smad 1/5/8 pathway.ResultsStimulation with Wnt3a, either alone or in combination with its downstream protein WISP1, decreased TGF-β-induced C-terminal phosphorylation of Smad 2/3. In addition, both Wnt3a and WISP1 increased Smad 1/5/8 phosphorylation at the C-terminal domain in both murine and human chondrocytes. DKK-1, a selective inhibitor of canonical Wnt signaling, abolished these effects. TGF-β signaling via Smad 2/3, measured by the functional CAGA12-Luc reporter construct activity, was decreased by stimulation with Wnt3a in accordance with the decrease in Smad 2/3 phosphorylation found on Western blot. Furthermore, in vivo overexpression of the canonical Wnt8a decreased Smad 2/3 phosphorylation and increased Smad 1/5/8 phosphorylation.ConclusionsOur data show that canonical Wnt signaling is able to skew TGF-β signaling towards dominant signaling via the ALK1/Smad 1/5/8 pathway, which reportedly leads to chondrocyte hypertrophy. In this way canonical Wnts and WISP1, which we found to be increased during experimental osteoarthritis, may contribute to osteoarthritis pathology.  相似文献   

19.
Transforming growth factor beta (TGFβ) is a growth factor with many faces. In our osteoarthritis (OA) research we have found that TGFβ can be protective as well as deleterious for articular cartilage. We postulate that the dual effects of TGFβ on chondrocytes can be explained by the fact that TGFβ can signal via different receptors and related Smad signaling routes. On chondrocytes, TGFβ not only signals via the canonical type I receptor ALK5 but also via the ALK1 receptor. Notably, signaling via ALK5 (Smad2/3 route) results in markedly different chondrocyte responses than ALK1 signaling (Smad1/5/8), and we postulate that the balance between ALK5 and ALK1 expression on chondrocytes will determine the overall effect of TGFβ on these cells. Importantly, signaling via ALK1, but not ALK5, stimulates MMP-13 expression by chondrocytes. In cartilage of ageing mice and in experimental OA models we have found that the ALK1/ALK5 ratio is significantly increased, favoring TGFβ signaling via the Smad1/5/8 route, changes in chondrocyte differentiation and MMP-13 expression. Moreover, human OA cartilage showed a significant correlation between ALK1 and MMP-13 expression. In this paper we summarize concepts in OA, its link with ageing and disturbed growth factor responses, and a potential role of TGFβ signaling in OA development.  相似文献   

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