685 resultados para Replicative senescence


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Harnessing outgrowth endothelial cells (OECs) for vasoreparative therapy and tissue-engineering requires efficient ex-vivo expansion. How such expansion impacts on OEC function is largely unknown. In this study, we show that OECs become permanently cell-cycle arrested after ex-vivo expansion, which is associated with enlarged cell size, ß-galactosidase activity, DNA damage, tumour suppressor pathway activation and significant transcriptome changes. These senescence hallmarks were coupled with low telomerase activity and telomere shortening, indicating replicative senescence. OEC senescence limited their regenerative potential by impairing vasoreparative properties in-vitro and in-vivo. Integrated transcriptome-proteome analysis identified inflammatory signalling pathways as major mechanistic components of the OEC senescence programme. In particular, IL8 was an important facilitator of this senescence; depletion of IL8 in OECs significantly extended ex-vivo lifespan, delayed replicative senescence and enhanced function. While the ability to expand OEC numbers prior to autologous or allogeneic therapy remains a useful property, their replicative senescence and associated impairment of vasorepair needs to be considered. The current study also suggests that modulation of the senescence-associated secretory phenotype (SASP) could be used to optimise OEC therapy.

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Growth and regeneration of postnatal skeletal muscle requires a population of mononuclear myogenic cells, called satellite cells to add/replace myonuclei, which are postmitotic. Wedged between the sarcolemma and the basal lamina of the skeletal muscle fiber, these cells function as the stem cells of mature muscle fibers. Like other normal diploid cells, satellite cells undergo cellular senescence. Investigations of aging in both rodents and humans have shown that satellite cell self-renewal capacity decreases with advanced age. As a consequence, this could be a potential reason for the characteristically observed age-associated loss in skeletal muscle mass (sarcopenia). This provided the rationale that any intervention that can further increase the proliferative capacity of these cells should potentially be able to either delay, or even prevent sarcopenia. ^ Using clonogenicity assays to determine a cell's proliferation potential, these studies have shown that IGF-I enhances the doubling potential of satellite cells from aged rodents. Using a transgenic model, where the mice express the IGF-I transgene specifically in their striated muscles, some of the underlying biochemical mechanisms for the observed increase in replicative life span were delineated. These studies have revealed that IGF-I activates the PI3/Akt pathway to mediate downregulation of p27KIP1, which consequently is associated with an increase in cyclin E-cdk2 kinase activity, phosphorylation of pRb, and upregulation of cyclin A protein. However, the beneficial effects of IGF-I on satellite cell proliferative potential appears to be limited as chronic overexpression of IGF-I in skeletal muscles did not protect against sarcopenia in 18-mo old mice, and was associated with an exhaustion of satellite cell replicative reserves. ^ These results have shown that replicative senescence can be modulated by environmental factors using skeletal muscle satellite cells as a model system. A better understanding of the molecular basis for enhancement of proliferative capacity by IGF-I will provide a rational basis for developing more effective counter-measures against physical frailty. However, the implications of these studies are that these beneficial effects of enhanced proliferative potential by IGF-I may only be over a short-term period, and other alternative approaches may need to be considered. ^

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Finite replicative lifespan, or senescence, of mammalian cells in culture is a phenomenon that has generated much curiosity since its description. The obvious significance of senescence to organismal aging and the development of cancer has engendered a long-lasting and lively debate about its mechanisms. Recent discoveries concerning the phenotypes of telomerase knockout mice, the consequences of telomerase reexpression in somatic cells, and genes that regulate senescence have provided striking molecular insights but also have uncovered important new questions. The objective of this review is to reconcile old observations with new molecular details and to focus attention on the key remaining puzzles.

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This study aimed to determine the cellular aging of osteophyte-derived mesenchymal cells (oMSCs) in comparison to patient-matched bone marrow stromal cells (bMSCs). Extensive expansion of the cell cultures was performed and early and late passage cells (passages 4 and 9, respectively) were used to study signs of cellular aging, telomere length, telomerase activity, and cell-cycle-related gene expression. Our results showed that cellular aging was more prominent in bMSCs than in oMSCs, and that oMSCs had longer telomere length in late passages compared with bMSCs, although there was no significant difference in telomere lengths in the early passages in either cell type. Telomerase activity was detectable only in early passage oMSCs and not in bMSCs. In osteophyte tissues telomerase-positive cells were found to be located perivascularly and were Stro-1 positive. Fifteen cell-cycle regulator genes were investigated and only three genes (APC, CCND2, and BMP2) were differentially expressed between bMSC and oMSC. Our results indicate that oMSCs retain a level of telomerase activity in vitro, which may account for the relatively greater longevity of these cells, compared with bMSCs, by preventing replicative senescence. J. Cell. Biochem. 108: 839-850, 2009. (c) 2009 Wiley-Liss, Inc.

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Introduction: A growing biological research field is the cellular senescence, a mechanism that has been associated, under certain circumstances, with malignant transformation. Given the high incidence of ovarian cancer and its main origin from the ovarian surface epithelium, as well as the possibility that an epithelial-mesenchymal transition occurs, we evaluated both the in vitro growth of stromal fibroblasts from the ovarian cortex and their β-galactosidase activity at pH 6, enzyme whose expression is considered as a marker of replicative senescence. Methods: 48 samples of ovarian cortical fibroblasts from donors without a history of cancer were serially cultured until the end of their replicative life. β-galactosidase activity at pH 6 was quantified in each passage by the chemiluminiscent method. As control, we used ovarian epithelial cell cultures from the same donors. The enzyme activity was also evaluated in fibroblasts previously induced to senescence by exposure to hydrogen peroxide. Results: The analysis of the enzyme activity and the replicative capacity taken together showed that the fibroblast cultures reached the senescent state at passages 4-5, as what happened with the control epithelial cells. Fibroblasts induced to senescence showed high variability in the values of enzymatic activity. Conclusions: The similarity between both types of cells in reaching the senescent state deserves to be taken into account in relation to the epithelialmesenchymal transition that has been proposed to explain their behavior in the genesis of cancer arising from ovarian surface epithelium. Low β-galactosidase activity values at pH 6 would suggest possible inactivation of the response pathways to oxidative stress.

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Expression of the bovine papillomavirus E2 regulatory protein in human cervical carcinoma cell lines repressed expression of the resident human papillomavirus E6 and E7 oncogenes and within a few days caused essentially all of the cells to synchronously display numerous phenotypic markers characteristic of cells undergoing replicative senescence. This process was accompanied by marked but in some cases transient alterations in the expression of cell cycle regulatory proteins and by decreased telomerase activity. We propose that the human papillomavirus E6 and E7 proteins actively prevent senescence from occurring in cervical carcinoma cells, and that once viral oncogene expression is extinguished, the senescence program is rapidly executed. Activation of endogenous senescence pathways in cancer cells may represent an alternative approach to treat human cancers.

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Because repeated injury of the endothelium and subsequent turnover of intimal and medial cells have been implicated in atherosclerosis, we examined telomere length, a marker of somatic cell turnover, in cells from these tissues. Telomere lengths were assessed by Southern analysis of terminal restriction fragments (TRFs) generated by HinfI/Rsa I digestion of human genomic DNA. Mean TRF length decreased as a function of population doublings in human endothelial cell cultures from umbilical veins, iliac arteries, and iliac veins. When endothelial cells were examined for mean TRF length as a function of donor age, there was a significantly greater rate of decrease for cells from iliac arteries than from iliac veins (102 bp/yr vs. 47 bp/yr, respectively, P < 0.05), consistent with higher hemodynamic stress and increased cell turnover in arteries. Moreover, the rate of telomere loss as a function of donor age was greater in the intimal DNA of iliac arteries compared to that of the internal thoracic arteries (147 bp/yr vs. 87 bp/yr, respectively, P < 0.05), a region of the arterial tree subject to less hemodynamic stress. This indicates that the effect is not tissue specific. DNA from the medial tissue of the iliac and internal thoracic arteries showed no significant difference in the rates of decrease, suggesting that chronic stress leading to cellular senescence is more pronounced in the intima than in the media. These observations extend the use of telomere size as a marker for the replicative history of cells and are consistent with a role for focal replicative senescence in cardiovascular diseases.

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Osteophytes form through the process of chondroid metamorphosis of fibrous tissue followed by endochondral ossification. Osteophytes have been found to consist of three different mesenchymal tissue regions including endochondral bone formation within cartilage residues, intra-membranous bone formation within fibrous tissue and bone formation within bone marrow spaces. All these features provide evidence of mesenchymal stem cells (MSC) involvement in osteophyte formation; nevertheless, it remains to be characterised. MSC from numerous mesenchymal tissues have been isolated but bone marrow remains the “ideal” due to the ease of ex vivo expansion and multilineage potential. However, the bone marrow stroma has a relatively low number of MSC, something that necessitates the need for long-term culture and extensive population doublings in order to obtain a sufficient number of cells for therapeutic applications. MSC in vitro have limited proliferative capacity and extensive passaging compromises differentiation potential. To overcome this barrier, tissue derived MSC are of strong interest for extensive study and characterisation, with a focus on their potential application in therapeutic tissue regeneration. To date, no MSC type cell has been isolated from osteophyte tissue, despite this tissue exhibiting all the hallmark features of a regenerative tissue. Therefore, this study aimed to isolate and characterise cells from osteophyte tissues in relation to their phenotype, differentiation potential, immuno-modulatory properties, proliferation, cellular ageing, longevity and chondrogenesis in in vitro defect model in comparison to patient matched bone marrow stromal cells (bMSC). Osteophyte derived cells were isolated from osteophyte tissue samples collected during knee replacement surgery. These cells were characterised by the expression of cell surface antigens, differentiation potential into mesenchymal lineages, growth kinetics and modulation of allo-immune responses. Multipotential stem cells were identified from all osteophyte samples namely osteophyte derived mesenchymal stem cells (oMSC). Extensively expanded cell cultures (passage 4 and 9 respectively) were used to confirm cytogenetic stability and study signs of cellular aging, telomere length and telomerase activity. Cultured cells at passage 4 were used to determine 84 pathway focused stem cell related gene expression profile. Micro mass pellets were cultured in chondrogenic differentiation media for 21 days for phenotypic and chondrogenic related gene expression. Secondly, cell pellets differentiated overnight were placed into articular cartilage defects and cultured for further 21 days in control medium and chondrogenic medium to study chondrogenesis and cell behaviour. The surface antigen expression of oMSC was consistent with that of mesenchymal stem cells, such as lacking the haematopoietic and common leukocyte markers (CD34, CD45) while expressing those related to adhesion (CD29, CD166, CD44) and stem cells (CD90, CD105, CD73). The proliferation capacity of oMSC in culture was superior to that of bMSC, and they readily differentiated into tissues of the mesenchymal lineages. oMSC also demonstrated the ability to suppress allogeneic T-cell proliferation, which was associated with the expression of tryptophan degrading enzyme indoleamine 2,3 dioxygenase (IDO). Cellular aging was more prominent in late passage bMSC than in oMSC. oMSC had longer telomere length in late passages compared with bMSC, although there was no significant difference in telomere lengths in the early passages in either cell type. Telomerase activity was detectable only in early passage oMSC and not in bMSC. In osteophyte tissues telomerase positive cells were found to be located peri vascularly and were Stro-1 positive. Eighty-four pathway-focused genes were investigated and only five genes (APC, CCND2, GJB2, NCAM and BMP2) were differentially expressed between bMSC and oMSC. Chondrogenically induced micro mass pellets of oMSC showed higher staining intensity for proteoglycans, aggrecan and collagen II. Differential expression of chondrogenic related genes showed up regulation of Aggrecan and Sox 9 in oMSC and collagen II in bMSC. The in vitro defect models of oMSC in control medium showed rounded and aggregated cells staining positively for proteoglycan and presence of some extracellular matrix. In contrast, defects with bMSC showed fragmentation and loss of cells, fibroblast-like cell morphology staining positively for proteoglycans. For defects maintained in chondrogenic medium, rounded, aggregated and proteoglycan positive cells were found in both oMSC and bMSC cultures. Extracellular matrix and cellular integration into newly formed matrix was evident only in oMSC defects. For analysis of chondrocyte hypertrophy, strong expression of type X collagen could be noticed in the pellet cultures and transplanted bMSC. In summary, this study demonstrated that osteophyte derived cells had similar properties to mesenchymal stem cells in the expression of antigen phenotype, differential potential and suppression of allo-immune response. Furthermore, when compared to bMSC, oMSC maintained a higher proliferative capacity due to a retained level of telomerase activity in vitro, which may account for the relatively longer telomeres delaying growth arrest by replicative senescence compared with bMSC. oMSC behaviour in defects supported chondrogenesis which implies that cells derived from regenerative tissue can be an alternative source of stem cells and have a potential clinical application for therapeutic stem cell based tissue regeneration.

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Dental pulp cells (DPCs) have shown promising potential in dental tissue repair and regeneration. However, during in vitro culture, these cells undergo replicative senescence and result in significant alteration in cell proliferation and differentiation. Recently, the transcription factors of Oct-4, Sox2, c-Myc, and Klf4 have been reported to play a regulatory role in the stem cell self-renewal process, namely cell reprogramming. Therefore, it is interesting to know whether the replicative senescence during the culture of dental pulp cells is related to the diminishing of the expression of these transcription factors. In this study, we investigated the expression of the reprogramming markers Oct-4, Sox2, and c-Myc in the in vitro explant cultured dental pulp tissues and explant cultured dental pulp cells (DPCs) at various passages by immunofluorescence staining and real-time polymerase chain reaction analysis. Our results demonstrated that Oct-4, Sox2, and c-Myc translocated from nucleus in the first 2 passages to cytoplasm after the third passage in explant cultured DPCs. The mRNA expression of Oct-4, Sox2, and c-Myc elevated significantly over the first 2 passages, peaked at second passage (P < .05), and then decreased along the number of passages afterwards (P < .05). For the first time we demonstrated that the expression of reprogramming markers Oct-4, Sox2, and c-Myc was detectable in the early passaged DPCs, and the sequential loss of these markers in the nucleus during DPC cultures might be related to the cell fate of dental pulp derived cells during the long-term in vitro cultivation under current culture conditions.

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Breast cancer is one of the most prevalent malignancies worldwide. It consists of a group of tumor cells that have the ability to grow uncontrollably, overcome replicative senescence (tumor progression) and metastasize within the body. Metastases are processes that consist of an array of complex gene dysregulation events. Although these processes are still not fully understood, the dysregulation of a number of key proteins must take place if the tumor cells are to disseminate and metastasize. It is now widely accepted that future effective and innovative treatments of cancer metastasis will have to encompass all the major components of malignant transformation. For this reason, much research is now being carried out into the mechanisms that govern the malignant transformation processes. Recent research has identified key genes involved in the development of metastases, as well as their mechanisms of action. A detailed understanding of the encoded proteins and their interrelationship generates the possibility of developing novel therapeutic approaches. This review will focus on a select group of proteins, often deregulated in breast cancer metastasis, which have shown therapeutic promise, notably, EMT, E-cadherin, Osteopontin, PEA3, Transforming Growth Factor Beta (TGF-β) and Ran.

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La dysfonction de l’endothélium vasculaire, associée à une diminution de ses propriétés vasorelaxantes et anti-thrombogéniques, survient avec le vieillissement mais également chez de plus jeunes patients athérosclérotiques présentant plusieurs facteurs de risque cardiovasculaire. Au niveau cellulaire, le vieillissement des cellules endothéliales (CE) mène à un état irréversible de non division cellulaire appelé sénescence. Ces cellules sénescentes présentent des changements spécifiques au niveau de leur morphologie et de l’expression génique, menant à leur dysfonction. La sénescence dite réplicative est déclenchée par le raccourcissement des télomères survenant à chaque division cellulaire, mais peut également être induite prématurément par le stress oxydant (SIPS). L’objectif principal de cette étude est de caractériser la sénescence de CE vasculaires isolées à partir de patients athérosclérotiques, et d’observer l’impact des facteurs de risque sur cette sénescence. Afin de confirmer la contribution des deux principales voies de la sénescence, nous avons par la suite étudié conjointement ou séparément, l’impact d’un traitement chronique avec un antioxydant sur la sénescence de CE, et d’une surexpression de la sous-unité catalytique de la télomérase (hTERT), une enzyme responsable de l’allongement des télomères. Nous avons isolé et cultivé des CE provenant d’artères mammaires internes prélevées lors de pontages coronariens. Selon les études, les cellules ont été infectées ou non avec un lentivirus surexprimant la hTERT, et cultivées in vitro jusqu’à sénescence, en présence ou en absence de l’antioxydant N-acétyl-L-cystéine (NAC). Différents marqueurs des deux principales voies de la sénescence (réplicative ou SIPS) ont été quantifiés. La sénescence cellulaire se développe exponentiellement avec le temps et est associée à une réduction de la viabilité et de la prolifération cellulaires. Chez les patients athérosclérotiques, le vieillissement des CE passe par les deux principales voies de la sénescence : des télomères courts initialement en culture et la durée d’exposition in vivo aux facteurs de risque cardiovasculaire prédisent une apparition prématurée de la sénescence. Toutefois, chez les fumeurs, la sénescence est exclusivement du type SIPS. Ces facteurs de risque cardiovasculaire et principalement l’hypertension, semblent accélèrer le vieillissement biologique et favoriser la dysfonction des CE. Lorsque traitées chroniquement avec le NAC, les CE présentant initialement de moindres dommages cellulaires et moléculaires ainsi qu’une meilleure défense antioxydante développent une sénescence retardée. Lorsque le NAC est combiné à une surexpression de la hTERT, les deux voies de la sénescence sont bloquées et une immortalisation cellulaire est observée. À l’inverse, dans les CE les plus endommagées par les ROS in vivo, le NAC n’a aucun effet sur le développement de la sénescence, la hTERT, seule ou en combinaison avec le NAC, retarde légèrement la sénescence mais aucune immortalisation n’est observée lorsque ces traitements sont combinés. En conclusion, nos études démontrent que l’exposition chronique au stress oxydant associé aux facteurs de risque cardiovasculaire accélère le développement de la sénescence de CE vasculaires, contribuant potentiellement à l’athérogénèse. Dans les cellules de patients athérosclérotiques, il semble exister un seuil de dommages cellulaires et moléculaires subis in vivo au-delà duquel, aucun traitement (antioxydant ou hTERT) ne peut être bénéfique.

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Les virus sont utilisés depuis longtemps dans la recherche sur le cancer et ont grandement contribué à l’avancement des connaissances de même qu’à l’établissement de préceptes importants encore valables aujourd’hui dans le domaine. L’un des défis actuels est de mieux définir les étapes menant à la transition d’une cellule normale à une cellule transformée et c’est sur cette problématique que nous nous sommes penchés. Pour ce faire, nous avons tiré profit de l’utilisation de l’antigène grand-T du virus de polyome (PyLT), un virus capable d’induire des tumeurs chez les rongeurs. Cet oncogène viral à lui seul possède des propriétés intéressantes qui suggèrent que, en plus de l’immortalisation, il peut également contribuer aux événements précoces de la carcinogénèse. Ceci repose principalement sur la capacité de PyLT à induire des tumeurs en souris transgéniques et ce, avec une certaine latence ce qui suggère que des événements supplémentaires sont nécessaires. Ainsi, l’utilisation de PyLT dans un modèle de culture cellulaire permet de disséquer les changements qui lui sont attribuables. Dans un premier temps, l’établissement du profil d'expression génique associé à l'expression de PyLT dans un modèle murin nous a permis de sélectionner un bon nombre de gènes, parmi lesquels figurait Necdin. Nous avons choisi d’étudier Necdin plus en détail puisque peu d’attention était accordée à cette protéine dans le domaine du cancer, malgré que différentes données de la littérature lui suggèrent à la fois des fonctions suppresseurs de tumeur et oncogéniques. Nous avons démontré que, malgré sa fonction proposée de suppresseur de croissance, l’expression de Necdin n’est pas incompatible avec la prolifération dans la lignée cellulaire de souris NIH 3T3 et les cellules primaires humaines (IMR90), bien que l’inhibition de son expression par shARN confère un avantage prolifératif. Nous avons confirmé que Necdin est un gène cible de p53 induit par différents agents génotoxiques, toutefois son expression peut également être régulée de façon p53-indépendante. De plus, Necdin agit négativement sur l’arrêt du cycle cellulaire en réponse à l’activation de p53. Ceci suggère que Necdin est impliqué dans une boucle de régulation négative de la voie de p53 et que l’augmentation anormale de l’expression de Necdin pourrait contribuer à la perturbation la voie du suppresseur de tumeur p53. L’activation de p53 permet l’arrêt transitoire du cycle cellulaire en condition de stress, mais est aussi impliquée dans l’établissement d’un arrêt permanent nommé sénescence. La sénescence est un mécanisme de protection contre l’accumulation de mutations qui peut contribuer à l’initiation du cancer. Vu l’intéressante implication de Necdin dans la régulation de l’activité de p53, nous avons transposé les connaissances acquises du modèle murin à un modèle humain, plus adapté pour l’étude de la sénescence. La caractérisation de l’expression de Necdin dans des fibroblastes primaires humains à différents passages montre que les jeunes cellules en prolifération active expriment Necdin et que son niveau diminue avec l’établissement de la sénescence réplicative. Le même phénomène est observé lors de la sénescence prématurée provoquée par l’expression d’un oncogène et par l’exposition aux radiations ionisantes. De plus, dans des conditions normales de prolifération, la modulation de Necdin par des essais de gain et de perte de fonction n’affecte pas la durée de vie des cellules primaires. Toutefois, en condition de stress génotoxique dû à l’exposition aux irradiations, les cellules surexprimant Necdin présentent une radiorésistance accrue de la même façon que lorsque p53 est inactivé directement. Ce résultat en cellules humaines vient appuyer l’effet observé dans les cellules de souris sur l’impact qu’aura le niveau de Necdin sur la réponse de p53 en condition de stress. Un bref survol a été fait pour aborder de quelle façon nos résultats en culture cellulaire pouvaient se traduire dans des modèles de cancer chez l’humain. Nous avons caractérisé l’expression de Necdin dans deux types différents de cancer. D’abord, dans le cancer de l’ovaire, le niveau élevé de Necdin dans les tumeurs à faible potentiel de malignité (LMP) en comparaison aux cancers agressifs de l’ovaire de type séreux suggère que l’expression de Necdin se limite aux cellules de cancer LMP, qui présente généralement un p53 de type sauvage. Son expression est aussi retrouvée dans deux lignées cellulaires du cancer de l’ovaire non-tumorigéniques en xénogreffe de souris, dont l’une possède un p53 fonctionnel. De plus, la caractérisation de Necdin dans les lignées cellulaires du cancer de la prostate suggère une relation entre son expression et la présence de p53 fonctionnel. Dans le cancer de la prostate, tout comme pour le cancer de l’ovaire, Necdin semble être présent dans les lignées représentant un stade moins avancé de la maladie. L’utilisation de l’oncoprotéine virale PyLT nous a permis de révéler des propriétés intéressantes de Necdin. Nous proposons que dans certains contextes, l’expression constitutive de Necdin pourrait contribuer au cancer en retardant une réponse par p53 appropriée et possiblement en participant à l’augmentation de l’instabilité génomique. La fonction potentiellement oncogénique de Necdin quant à sa relation avec p53 que nous avons révélée requiert davantage d’investigation et les cancers caractérisés ici pourraient constituer de bons modèles à cette fin.

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Telomere length (TL) has been found to be associated with life span in birds and humans. However, other studies have demonstrated that TL does not affect survival among old humans. Furthermore, replicative senescence has been shown to be induced by changes in the protected status of the telomeres rather than the loss of TL. In the present study we explore whether age- and sex-specific telomere dynamics affect life span in a long-lived snake, the water python (Liasis fuscus).

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Devil Facial Tumour Disease (DFTD) is a unique clonal cancer that threatens the world's largest carnivorous marsupial, the Tasmanian devil (Sarcophilus harrisii) with extinction. This transmissible cancer is passed between individual devils by cell implantation during social interactions. The tumour arose in a Schwann cell of a single devil over 15 years ago and since then has expanded clonally, without showing signs of replicative senescence; in stark contrast to a somatic cell that displays a finite capacity for replication, known as the “Hayflick limit”.

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Human mesenchymal stem cells (MSC) are powerful sources for cell therapy in regenerative medicine. The long time cultivation can result in replicative senescence or can be related to the emergence of chromosomal alterations responsible for the acquisition of tumorigenesis features in vitro. In this study, for the first time, the expression profile of MSC with a paracentric chromosomal inversion (MSC/inv) was compared to normal karyotype (MSC/n) in early and late passages. Furthermore, we compared the transcriptome of each MSC in early passages with late passages. MSC used in this study were obtained from the umbilical vein of three donors, two MSC/n and one MSC/inv. After their cryopreservation, they have been expanded in vitro until reached senescence. Total RNA was extracted using the RNeasy mini kit (Qiagen) and marked with the GeneChip ® 3 IVT Express Kit (Affymetrix Inc.). Subsequently, the fragmented aRNA was hybridized on the microarranjo Affymetrix Human Genome U133 Plus 2.0 arrays (Affymetrix Inc.). The statistical analysis of differential gene expression was performed between groups MSC by the Partek Genomic Suite software, version 6.4 (Partek Inc.). Was considered statistically significant differences in expression to p-value Bonferroni correction ˂.01. Only signals with fold change ˃ 3.0 were included in the list of differentially expressed. Differences in gene expression data obtained from microarrays were confirmed by Real Time RT-PCR. For the interpretation of biological expression data were used: IPA (Ingenuity Systems) for analysis enrichment functions, the STRING 9.0 for construction of network interactions; Cytoscape 2.8 to the network visualization and analysis bottlenecks with the aid of the GraphPad Prism 5.0 software. BiNGO Cytoscape pluggin was used to access overrepresentation of Gene Ontology categories in Biological Networks. The comparison between senescent and young at each group of MSC has shown that there is a difference in the expression parttern, being higher in the senescent MSC/inv group. The results also showed difference in expression profiles between the MSC/inv versus MSC/n, being greater when they are senescent. New networks were identified for genes related to the response of two of MSC over cultivation time. Were also identified genes that can coordinate functional categories over represented at networks, such as CXCL12, SFRP1, xvi EGF, SPP1, MMP1 e THBS1. The biological interpretation of these data suggests that the population of MSC/inv has different constitutional characteristics, related to their potential for differentiation, proliferation and response to stimuli, responsible for a distinct process of replicative senescence in MSC/inv compared to MSC/n. The genes identified in this study are candidates for biomarkers of cellular senescence in MSC, but their functional relevance in this process should be evaluated in additional in vitro and/or in vivo assays