997 resultados para nuclear membrane
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A more or less detailed study of the spermatogenesis in six species of Hemiptera belonging to the Coreid Family is made in the present paper. The species studied and their respective chromosome numbers were: 1) Diactor bilineatus (Fabr.) : spermatogonia with 20 + X, primary spermatocytes with 10 + X, X dividing equationaliv in the first division and passing undivided to one pole in the second. 2) Lcptoglossus gonagra (Fabr.) : spermatogonia with 20 + X, primary spermatocytes with 10 + X, X dividing equationally in the first division and passing undivided to one pole in the second. 3) Phthia picta (Drury) : spermatogonia with 20 + X, primary spermatocytes with 10 + X, X dividing equationally in the first division and passing undivided to one pole in the second. 4) Anisocelis foliacea Fabr. : spermatogonia with 26 + X fthe highest mumber hitherto known in the Family), primary .spermatocytes with 13 + X, X dividing equationally in the first division an passing undivided to one pole in the second. 5) Pachylis pharaonis (Herbtst) : spermatogonia with 16 + X, primary spermatocytes with 8 + X. Behaviour of the heteroehromosome not referred. 6) Pachylis laticornis (Fabr.) : spermatogonia with 14 + X, primary spermatocytes with 7 + X, X passing undivided to one pole in the first division and therefore secondary spermatocytes with 7 + X and 7 chromosomes. General results and conclusions a) Pairing modus of the chromosomes (Telosynapsis or Farasynapsis ?) - In several species of the Coreld bugs the history of the chromosomes from the diffuse stage till diakinesis cannot be follewed in detail due specially to the fact that lhe bivalents, as soon as they begin to be individually distinct they appear as irregular and extremely lax chromatic areas, which through an obscure process give rise to the diakinesis and then to the metaphase chomosomes. Fortunately I was able to analyse the genesis of the cross-shaped chromosomes, becoming thus convinced that even in the less favorable cases like that of Phthia, in which the crosses develop from four small condensation areas of the diffuse chromosomes, nothing in the process permit to interpret the final results as being due to a previous telosynaptic pairing. In the case of long bivalents formed by two parallel strands intimately united at both endsegments and more or less widely open in the middle (Leptoglossus, Pachylis), I could see that the lateral arms of the crosses originate from condensation centers created by a torsion or bending in the unpaired parts of the chromosomes In the relatively short bivalents the lateral branches of the cross are formed in the middle but in the long ones, whose median opening is sometimes considerable, two asymetrical branches or even two independent crosses may develop in the same pair. These observations put away the idea of an end-to-end pairing of the chromosomes, since if it had occured the lateral arms of the crosses would always be symetrical and median and never more than two. The direct observation of a side- toside pairing of the chromosomal threads at synizesis, is in foil agreement with the complete lack of evidence in favour of telosynapsis. b) Anaphasic bridges and interzonal connections - The chromosomes as they separate from each other in anaphase they remain connected by means of two lateral strands corresponding to the unpaired segmenas observed in the bivalents at the stages preceding metaphase. In the early anaphase the chromosomes again reproduce the form they had in late diafcinesis. The connecting threads which may be thick and intensely coloured are generally curved and sometimes unequal in lenght, one being much longer than the other and forming a loop outwardly. This fact points to a continuous flow of chromosomal substance independently from both chromosomes of the pair rather than to a mechanical stretching of a sticky substance. At the end of anaphase almost all the material which formed the bridges is reduced to two small cones from whose vertices a very fine and pale fibril takes its origin. The interzonal fibres, therefore, may be considered as the remnant of the anaphasic bridges. Abnormal behaviour of the anaphase chromosomes showed to be useful in aiding the interpretation of normal aspects. It has been suggested by Schrader (1944) "that the interzonal is nothing more than a sticky coating of the chromosome which is stretched like mucilage between the daughter chromosomes as they move further and further apart". The paired chromosomes being enclosed in a commom sheath, as they separate they give origin to a tube which becomes more and more stretched. Later the walls of the tube collapse forming in this manner an interzonal element. My observations, however, do not confirm Schrader's tubular theory of interzonal connections. In the aspects seen at anaphase of the primary spermatocytes and described in this paper as chromosomal bridges nothing suggests a tubular structure. There is no doubt that the chromosomes are here connected by two independent strands in the first division of the spermatocytes and by a single one in the second. The manner in which the chromosomes separate supports the idea of transverse divion, leaving little place for another interpretation. c) Ptafanoeomc and chromatoid bodies - The colourabtlity of the plasmosome in Diactor and Anisocelis showed to be highly variable. In the latter species, one may find in the same cyst nuclei provided with two intensely coloured bodies, the larger of which being the plasmosome, sided by those in which only the heterochromosome took the colour. In the former one the plasmosome strongly coloured seen in the primary metaphase may easily be taken for a supernumerary chromosome. At anaphase this body stays motionless in the equator of the cell while the chromosomes are moving toward the poles. There, when intensely coloured ,it may be confused with the heterochromosome of the secondary spermatocytes, which frequently occupies identical position in the corresponding phase, thus causing missinterpretation. In its place the plasmosome may divide into two equal parts or pass undivided to one cell in whose cytoplasm it breaks down giving rise to a few corpuscles of unequal sizes. In Pachylis pharaonis, as soon as the nuclear membrane breate down, the plasmosome migrates to a place in the periphery of the cell (primary spermatocyte), forming there a large chromatoid body. This body is never found in the cytoplasm prior to the dissolution of the nuclear membrane. It is certain that chromatoid bodies of different origin do exist. Here, however, we are dealing, undoubtedly, with true plasmosomes. d) Movement of the heterochromosome - The heterochromosome in the metaphase of the secondary spermatocytes may occupy the most different places. At the time the autosomes prient themselves in the equatorial plane it may be found some distance apart in this plane or in any other plane and even in the subpolar and polar regions. It remains in its place during anaphase. Therefore, it may appear at the same level with the components of one of the anaphase plates (synchronism), between both plates (succession) or between one plate and tbe pole (precession), what depends upon the moment the cell was fixed. This does not mean that the heterochromosome sometimes moves as quickly as the autosomes, sometimes more rapidly and sometimes less. It implies, on the contrary, that, being anywhere in the cell, the heterochromosome m he attained and passed by the autosomes. In spite of being almost motionless the heterochromosome finishes by being enclosed in one of the resulting nuclei. Consequently, it does move rapidly toward the group formed by the autosomes a little before anaphase is ended. This may be understood assuming that the heterochromosome, which do not divide, having almost inactive kinetochore cannot orient itself, giving from wherever it stays, only a weak response to the polar influences. When in the equator it probably do not perform any movement in virtue of receiving equal solicitation from both poles. When in any other plane, despite the greater influence of the nearer pole, the influence of the opposite pole would permit only so a slow movement that the autosomes would soon reach it and then leave it behind. It is only when the cell begins to divide that the heterochromosome, passing to one of the daughter cells scapes the influence of the other and thence goes quickly to join the autosomes, being enclosed with them in the nucleus formed there. The exceptions observed by BORING (1907) together with ; the facts described here must represent the normal behavior of the heterocromosome of the Hemiptera, the greater frequency of succession being the consequence of the more frequent localization of the heterochromosome in the equatorial plane or in its near and of the anaphase rapidity. Due to its position in metaphase the heterochromosome in early anaphase may be found in precession. In late anaphase, oh the contrary ,it appears almost always in succession. This is attributed to the fact of the heterochromosome being ordinairily localized outside the spindle area it leaves the way free to the anaphasic plate moving toward the pole. Moreover, the heterochromosome being a round element approximately of the size of the autosomes, which are equally round or a little longer in the direction of the movement, it can be passed by the autosomes even when it stands in the area of the spindle, specially if it is not too far from the equatorial plane. e) The kinetochore - This question has been fully discussed in another paper (PIZA 1943a). The facts treated here point to the conclusion that the chromosomes of the Coreidae, like those of Tityus bahiensis, are provided with a kinetochore at each end, as was already admitted by the present writer with regard to the heterochromosome of Protenor. Indeed, taking ipr granted the facts presented in this paper, other cannot be the interpretation. However, the reasons by which the chromosomes of the species studied here do not orient themselves at metaphase of the first division in the same way as the heterochromosome of Protenor, that is, with the major axis parallelly to the equatorial plane, are claiming for explanation. But, admiting that the proximity of the kinetochores at the ends of chromosomes which do not separate until the second division making them respond to the poles as if they were a single kinetochore ,the explanation follows. (See PIZA 1943a). The median opening of the diplonemas when they are going to the diffuse stage as well as the reappearance of the bivalents always united at the end-segments and open in the middle is in full agreement with the existence of two terminal kinetochores. The same can be said with regard to the bivalents which join their extremities to form a ring.
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In the present paper the behavior of the heterochromoso-mes in the course of the meiotic divisions of the spermatocytes in 15 species of Orthoptera belonging to 6 different families was studied. The species treated and their respective chromosome numbers were: Phaneropteridae: Anaulacomera sp. - 1 - 2n = 30 + X, n +15+ X and 15. Anaulacomera sp. - 2 - 2n - 30 + X, n = 15+ X and 15. Stilpnochlora marginella - 2n = 30 + X, n = 15= X and 15. Scudderia sp. - 2n = 30 + X, n = 15+ X and 15. Posldippus citrifolius - 2n = 24 + X, n = 12+X and 12. Acrididae: Osmilia violacea - 2n = 22+X, n = 11 + X and 11. Tropinotus discoideus - 2n = 22+ X, n = 11 + X and 11. Leptysma dorsalis - 2n = 22 + X, n = 11-J-X and 11. Orphulella punctata - 2n = 22-f X, n = 11 + X and 11. Conocephalidae: Conocephalus sp. - 2n = 32 + X, n = 16 + X and 16. Proscopiidae: Cephalocoema zilkari - 2n = 16 + X, n = 8+ X and 8. Tetanorhynchus mendesi - 2n = 16 + X, n = 8+X and 8. Gryliidae: Gryllus assimilis - 2n = 28 + X, n = 14+X and 14. Gryllodes sp. - 2n = 20 + X, n = 10- + and 10. Phalangopsitidae: Endecous cavernicola - 2n = 18 +X, n = 94-X and 9. It was pointed out by the present writer that in the Orthoptera similarly to what he observed in the Hemiptera the heterochromosome in the heterocinetic division shows in the same individual indifferently precession, synchronism or succession. This lack of specificity is therefore pointed here as constituting the rule and not the exception as formerly beleaved by the students of this problem, since it occurs in all the species referred to in the present paper and probably also m those hitherto investigated. The variability in the behavior of the heterochromosome which can have any position with regard to the autosomes even in the same follicle is attributed to the fact that being rather a stationary body it retains in anaphase the place it had in metaphase. When this place is in the equator of the cell the heterochromosome will be left behind as soon as anaphase begins (succession). When, on the contrary, laying out of this plane as generally happens (precession) it will sooner be reached (synchronism) or passed by the autosomes (succession). Due to the less kinetic activity of the heterochromosome it does not orient itself at metaphase remaining where it stands with the kinetochore looking indifferently to any direction. At the end of anaphase and sometimes earlier the heterochromosome begins to show mitotic activities revealed by the division of its body. Then, responding to the influence of the nearer pole it moves to it being enclosed with the autosomes in the nucleus formed there. The position of the heterochromosome in the cell is explained in the following manner: It is well known that the heterochromosome of the Orthoptera is always at the periphery of the nucleus, just beneath the nuclear membrane. This position may be any in regard of the axis of the dividing cell, so that if one of the poles of the spindle comes to coincide with it, the heterochromosome will appear at this pole in the metaphasic figures. If, on the other hand, the angle formed by the axis of the spindle with the ray reaching the heterochromosome increases the latter will appear in planes farther and farther apart from the nearer pole until it finishes by being in the equatorial plane. In this way it is not difficult to understand precession, synchronism or succession. In the species in which the heterochromosome is very large as it generally happens in the Phaneropteridae, the positions corresponding to precession are much more frequent. This is due to the fact that the probabilities for the heterochromosome taking an intermediary position between the equator and the poles at the time the spindle is set up are much greater than otherwise. Moreover, standing always outside the spindle area it searches for a place exactly where this area is larger, that is, in the vicinity of the poles. If it comes to enter the spindle area, what has very little probability, it would be, in virtue of its size, propelled toward the pole by the nearing anaphasic plate. The cases of succession are justly those in which the heterochromosome taking a position parallelly to the spindle axis it can adjust its large body also in the equator or in its proximity. In the species provided with small heterochromosome (Gryllidae, Conocephalidae, Acrididae) succession is found much more frequently because here as in the Hemiptera (PIZA 1945) the heterochromosome can equally take equatorial or subequatorial positions, and, furthermore, when in the spindle area it does offer no sereous obstacle to the passage of the autosomes. The position of the heterochromosome at the periphery of the nucleus at different stages may be as I suppose, at least in part a question of density. The less colourability and the surface irregularities characteristic of this element may well correspond to a less degree of condensation which may influence passive movements. In one of the species studied here (Anaulacomera sp.- 1) included in the Phaneropteridae it was observed that the plasmosome is left motionless in the spindle as the autosomes move toward the poles. It passes to one of the secondary spermatocytes being not included in its nucleus. In the second division it again passes to one of the cells being cast off when the spermatid is being transformed into spermatozoon. Thus it is regularly found among the tails of the spermatozoa in different stages of development. In the opinion of the present writer, at least in some cases, corpuscles described as Golgi body's remanents are nothing more than discarded plasmosomes.
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The male of Eneoptera surinamensis (Orthoptera-Eneopteridae) is provided with 9 chromosomes, that is, with 3 pairs of autosomes and 3 sex chromosomes. Spermatogonia. - The autosomes of the spermatogonia are of the same size and U-shaped. One of the sex chromosomes approximately equalling the autosomes in size is telocentric, while the other two are much larger and V-shaped. One of the latter is smaller than the other. The sex chromosomes as showed in Figs. 1 and 2 are designated by X, Yl and Y2, X being the larger V, Yl the smaller one and Y2 the rod-shaped. Primary spermatocytes. - Before the growth period of the spermatocytes all the three sex chromosomes are visible in a state of strong heteropycnosis. X is remarkable in this stage in having two long arms well separated by a wide commissural segment. (Figs. 4, 5 and 6). During the growth period Y2 disappears, while X and Yl remain in a condensed form until metaphase. These may be separated from one another or united in the most varied and irregular manner. (Fig. 7 to 12). In the latter case the segments in contact seem to be always different so that we cannot recognize any homology of parts in the sense os genetics. At diplotene Y2 reappears together with the autosomal tetrads. X and Yl may again be seen as separate or united elements. (Figs. 13 and 14). At later diakinesis and metaphase the three sex chromosomes are always independent from each other, Y2 being typically rod-shaped, X and Yl V-shaped, X being a little larger than Yl. (Fig. 15 to 18). At metaphase the three condensed tetrads go to the equatorial plane, while the sex chromosomes occupy any position at both sides of this plane. In almost all figures which could be perfectly analysed X appeared at one side of the autosomal plate an Yl together with Y2 far apart at the other side. (Figs. 16 and 18). Only a few exception have been found. (Figs. 17 and 19). At anaphase X goes in precession to one pole, Yl and Y2 to the other (Figs. 20 and 21). As it is suggested by the few figures in which a localization of the sex chromosomes different from the normal has been observed, the possibility of other types of segregation of these elements cannot be entirely precluded. But, if this does happen, the resulting gametes should be inviable or give inviable zygotes. Early in anaphase autosomes and sex chromosomes divide longitudinally, being maintained united only by the kinetochore. (Figs. 20 and 21). At metaphase the three sex chromosomes seem to show no special repulsion against each other, X being found in the proximity of Yl or Y2 indifferently. At anaphase, however, the evidences in hand point to a stronger repulsion between X on the one side and both Ys on the other, so that in spite of the mutual repulsion of the latter they finish by going to the same pole. Secondary spermatocytes. - At telophase of the primary spermatocytes all the chromosomes enter into distension without disappearing of view. A nuclear membrane is formed around the chromosomes. All the chromosomes excepting Y2 which has two arms, are four-branched. (Fig. 22). Soon the chromosomes enter again into contraction giving rise to the secondary metaphase plate. Secondary spermatocytes provided as expected with four and five chromosomes are abundantly found. (Figs. 23 and 24). In the former all chromosomes are X-shaped while in the latter there is one which is V-shaped. This is the rod- shaped Y2. In the anaphase of the spermatocytes with four chromosomes all the chromosomes are V-shaped, one of them (X) being much larger than the others. In those with five there is one rod-shaped chromosome (Y2). (Fig. 25), Spermatids. Two classes of spermatids are produced, one with X and other with Yl and Y2. All the autosomes as well as Y2 soon enter into solution, X remaining visible for long time in one class and Yl in the other. (Figs. 26 and 27). Since both are very alike at this stage, one cannot distinguish the two classes of spermatids. Somatic chromosomes in the famale. - In the follicular cells of the ovary 8 chromosomes were found, two of which are much larger than the rest. (Figs. 29 and 30). These are considered as being sex chromosomes. CONCLUSION: Eneoptera surinamensis has a new type of sex-determining mechanism, the male being X Yl Y2 and the female XX. The sex chromosomes segregate without entering into contact at metaphase or forming group. After a review of the other known cases of complex sex chromosome mechanism the author held that Eneoptera is the unique representative of a true determinate segregation of sex chromosomes. Y2 behaving as sex chromosome and as autosome is considered as representing an intermediary state of the evolution of the sex chromosomes.
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Definite hyperplasia of cells occurs in the skin lesions of the infectious myxoma of rabbits, more visible in such stages in which the intercellular basophilic substance is rather scanty (fig. 2). The increase in number of cells is the result of simplified forms of mitosis (modified type of mitosis, pseudoamitosis) which might readily be mistaken for amitosis in their final stages. Budding (figs. 20, 28, 29, 30) as well as constriction of the nucleus (figs. 18, 31, 32), and the formation of giant-cells (figs. 33, 34) are not rare. During the entire process the nuclear membrane does not desintegrate as in typical mitosis. Division of the cytoplasm following division of the nucleus has been demonstrated (fig. 17). Typical mitosis is practically absent. The cells which undergo hyperplasia present remarkable changes in their dimension, shape, and structure. The nucleus and cell-body are considerably enlarged (figs. 6, 7, 8). The shape of the nucleus is modified (figs. 8, 10, 15). Hypertrophy of nuclein, either as an intranuclear network (spireme?, figs. 9, 23), or in the form conspicuous, deeply staining masses which appear not to be homogeneous but to be composed of small particles closely clumped ("mulberries"?, figs. 12, 13, 14, 25, 26) occurs in most cells. While some of these pictures are probably related to necrosis of the cells as started by most of the previous workers, it is lekely that some of them may represent developmental stages of the modified mitosis (pseudoamitosis) here reported. In fact, fine cytological details not ordinarily preserved in necrotic cells (figs. 35, 36, 37) may be demonstrated in the socalled myxoma-cells subtted to approved cytological methods of study (fixation in B-15 and P. F. A.-3, staining in iron-hematoxylin).
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Beta-catenin is a component of the intercalated disc in cardiomyocytes, but can also be involved in signalling and activation of gene transcription. We wanted to determine how long-term changes in beta-catenin expression levels would affect mature cardiomyocytes. Conditional transgenic mice that either lacked beta-catenin or that expressed a non-degradable form of beta-catenin in the adult ventricle were created. While mice lacking beta-catenin in the ventricle do not have an overt phenotype, mice expressing a non-degradable form develop dilated cardiomyopathy and do not survive beyond 5 months. A detailed analysis could reveal that this phenotype is correlated with a distinct localisation of beta-catenin in adult cardiomyocytes, which cannot be detected in the nucleus, no matter how much protein is present. Our report is the first study that addresses long-term effects of either the absence of beta-catenin or its stabilisation on ventricular cardiomyocytes and it suggests that beta-catenin's role in the nucleus may be of little significance in the healthy adult heart.
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L'angiotensine-II (Ang-II), synthétisée à partir de sources extracardiaques et intracardiaques, régule l'homéostasie cardiaque en favorisant des effets mitogéniques et en promouvant la croissance cellulaire résultant d’une altération de l'expression génique. Dans cette étude, nous avons évalué la possibilité que les récepteurs de l'angiotensine-1 (AT1) ou les récepteurs de l'angiotensine-2 (AT2) situés sur l'enveloppe nucléaire régulent l’expression génique des cardiomyocytes. En analysant les noyaux cellulaires retenus des fractions de cœur de rat par immunobuvardage Western, nous avons détecté une co-purification préférentielle des protéines AT1 et AT2 avec un marqueur de la membrane nucléaire (Nup 62), par rapport aux marqueurs de la membrane plasmique (Calpactin I), de l’appareil de Golgi (GRP 78) ou du réticulum endoplasmique (GM130). La microscopie confocale a permis de démontrer la présence des AT1 et AT2 dans les membranes nucléaires. La microinjection de l’Ang-II-FITC sur des cardiomyocytes a provoqué une liaison de préférence aux sites nucléaires. Les enregistrements de transients calciques ont illustré que les AT1 nucléaires régulent le relâchement du Ca2+. L’incubation des ligands spécifiques d’AT1 et d’AT2 avec l’UTP [α32P] a résulté en une synthèse de novo d’ARN (par exemple, 16,9 ± 0,5 cpm/ng ADN contrôle vs 162,4 ± 29,7 cpm/ng ADN-Ang II, 219,4 ± 8,2 cpm/ng ADN L -162313 (AT1) et 126,5 ± 8,7 cpm/ng ADN CGP42112A (AT2), P <0,001). L’incubation des noyaux avec Ang-II augmente de façon significative l’expression de NFκB, une réponse qui est réprimée partiellement par la co-administration de valsartan ou de PD123177. Les expériences dose-réponse avec Ang-II administrée à l'ensemble des noyaux purifiés vs. aux cardiomyocytes seuls a montré une augmentation plus importante dans les niveaux d'ARNm de NFκB avec une affinité de ~ 3 fois plus grande (valeurs d’EC50 = 9 contre 28 pmol/L, respectivement), suggérant un rôle préférentiel nucléaire dans la signalisation. Par conséquent, nous avons conclu que les membranes cardiaques nucléaires possèdent des récepteurs d’Ang-II couplés à des voies de signalisation et à la transcription génique. La signalisation nucléaire pourrait jouer un rôle clé dans les changements de l'expression de gènes cardiaques, entraînant ainsi des implications mécanistiques et thérapeutiques diverses.
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Le virus herpès simplex de type 1 (HSV 1) affecte la majorité de la population mondiale. HSV 1 cause de multiples symptômes délétères dont les plus communs sont les lésions orofaciales usuellement appelées feux sauvages. Le virus peut aussi causer des effets plus sérieux comme la cécité ou des troubles neurologiques. Le virus réside de façon permanente dans le corps de son hôte. Malgré l’existence de nombreux traitements pour atténuer les symptômes causés par HSV 1, aucun médicament ne peut éliminer le virus. Dans le but d’améliorer les connaissances concernant le cycle viral de HSV 1, ce projet cible l’étude du transport du virus dans la cellule hôte. Ce projet aura permis la collecte d’informations concernant le modus operandi de HSV 1 pour sortir des compartiments cellulaires où il séjourne. Les différentes expérimentations ont permis de publier 3 articles dont un article qui a été choisi parmi les meilleurs papiers par les éditeurs de « Journal of Virology » ainsi qu’un 4e article qui a été soumis. Premièrement, un essai in vitro reproduisant la sortie de HSV 1 du noyau a été mis sur pied, via l’isolation de noyaux issus de cellules infectées. Nous avons démontré que tout comme dans les cellules entières, les capsides s’évadent des noyaux isolés dans l’essai in vitro en bourgeonnant avec la membrane nucléaire interne, puis en s’accumulant sous forme de capsides enveloppées entre les deux membranes nucléaires pour finalement être relâchées dans le cytoplasme exclusivement sous une forme non enveloppée. Ces observations appuient le modèle de transport de dé-enveloppement/ré-enveloppement. Deuxièmement, dans le but d’identifier des joueurs clefs viraux impliqués dans la sortie nucléaire du virus, les protéines virales associées aux capsides relâchées par le noyau ont été examinées. La morphologie multicouche du virus HSV 1 comprend un génome d’ADN, une capside, le tégument et une enveloppe. Le tégument est un ensemble de protéines virales qui sont ajoutées séquentiellement sur la particule virale. La séquence d’ajout des téguments de même que les sites intracellulaires où a lieu la tégumentation sont l’objet d’intenses recherches. L’essai in vitro a été utilisé pour étudier cette tégumentation. Les données recueillies suggèrent un processus séquentiel qui implique l’acquisition des protéines UL36, UL37, ICP0, ICP8, UL41, UL42, US3 et possiblement ICP4 sur les capsides relâchées par le noyau. Troisièmement, pour obtenir davantage d’informations concernant la sortie de HSV 1 des compartiments membranaires de la cellule hôte, la sortie de HSV 1 du réseau trans golgien (TGN) a aussi été étudiée. L’étude a révélé l’implication de la protéine kinase D cellulaire (PKD) dans le transport post-TGN de HSV 1. PKD est connue pour réguler le transport de petits cargos et son implication dans le transport de HSV 1 met en lumière l’utilisation d’une machinerie commune pour le transport des petits et gros cargos en aval du TGN. Le TGN n’est donc pas seulement une station de triage, mais est aussi un point de rencontre pour différentes voies de transport intracellulaire. Tous ces résultats contribuent à une meilleure compréhension du processus complexe de maturation du virus HSV 1, ce qui pourrait mener au développement de meilleurs traitements pour combattre le virus. Les données amassées concernant le virus HSV 1 pourraient aussi être appliquées à d’autres virus. En plus de leur pertinence dans le domaine de la virologie, les découvertes issues de ce projet apportent également de nouveaux détails au niveau du transport intracellulaire.
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Le dogme voulant que les récepteurs couplés aux protéines G (GPCRs) activent des voies de signalisation seulement lorsqu’ils sont localisés à la membrane plasmatique, a récemment été remis en question. Des données récentes indiquent que certains GPCRs peuvent également induire une réponse intracellulaire à partir des compartiments intracellulaires dont le noyau. Les récepteurs activés par la protéase (PAR) sont des membres de la famille GPCR. Les PARs sont activés par le clivage de la partie N–terminale du récepteur ce qui permet au ligand attaché sur le récepteur de se lier à sa poche réceptrice. Quatre PARs ont été décrits : PAR1, PAR2, PAR3 et PAR4. PAR2 peut susciter des effets mitogéniques et participer aux processus comme l’angiogenèse et l'inflammation. Alors que beaucoup d'effets intracellulaires de PAR2 peuvent être expliqués lorsqu’il est localisé à la membrane plasmatique, une fonction intracrine de PAR2 a aussi été proposée. Pourtant les mécanismes par lesquels PAR2 peut provoquer l’expression de gènes ciblés sont toujours inconnus. Le but de notre étude était de vérifier l’existence d’une population nucléaire de PAR2. Nous avons également émis l’hypothèse que les voies activées par l’activation de PAR2 dépendent de sa localization cellulaire. En utilisant des techniques de microscopie confocale et de "Western Blot" nous avons démontré la présence d’une population nucléaire de PAR2. À la suite de la stimulation de PAR2, nous avons observé une augmentation de la translocation du récepteur de la membrane plasmatique au noyau. En utilisant la technique de "RT – PCR", nous avons observé des rôles différents de PAR2 à la surface de la cellule et du noyau dans l’initiation de l’expression des gènes. Afin d’identifier les mécanismes responsables de la translocation nucléaire de PAR2, nous avons évalué l’implication des membres de la famille de "Sorting Nexins (SNX)" dans la translocation nucléaire de PAR2. "Sorting Nexins" est un groupe de protéines avec des fonctions de transport bien établies. SNX1 et SNX2 ont été identifiés comme responsables du transfert de PAR1 vers les lysosomes. SNX11 n'a pas encore été étudié et nous avons émis l’hypothèse qu'il pourrait être un autre membre de la famille des SNX impliqué dans la signalisation de PAR2. Pour ce faire, nous avons développé des "knockdowns" stables pour SNX1, SNX2 et SNX11 dans les cellules HEK293. En utilisant les essais d’immunofluorescence, "Western Blot" et de cytométrie en flux, nous avons déterminé que tous les trois membres du groupe SNX sont des partenaires d'interaction de PAR2. Toutefois, seul SNX11 se co-localise avec son partenaire au noyau et est responsable de sa translocation nucléaire. Les expériences de "RT - PCR" sur les lignées de cellule de SNXs "knockdowns" ont démontré que la fonction de PAR2 nucléaire dépend surtout de SNX11; néanmoins SNX1 et SNX2 peuvent aussi l’influencer, suggérant qu'ils font aussi partie du réseau signalétique de PAR2. En conclusion, PAR2 est déplacé de la membrane plasmatique à la membrane nucléaire après sa stimulation avec un agoniste. La translocation nucléaire de PAR2 par un mécanisme impliquant SNX11, initie des effets intracellulaires différents de sa signalisation membranaire. Mots clés : récepteurs couplés à la protéine G, “Sorting Nexins”, récepteurs activés par la protéase, translocation nucléaire, membrane nucléaire, signal nucléaire.
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Le Virus Herpès Simplex de type 1 (HSV-1) est un agent infectieux qui cause l’herpès chez une grande proportion de la population mondiale. L’herpès est généralement considéré comme une maladie bénigne dont la forme la plus commune est l'herpès labial (communément appelé « bouton de fièvre »), mais elle peut se révéler très sérieuse et causer la cécité et l’encéphalite, voir létale dans certain cas. Le virus persiste toute la vie dans le corps de son hôte. Jusqu'à présent, aucun traitement ne peut éliminer le virus et aucun vaccin n’a été prouvé efficace pour contrôler l’infection herpétique. HSV-1 est un virus avec un génome d’ADN bicaténaire contenu dans une capside icosaèdrale entourée d’une enveloppe lipidique. Treize glycoprotéines virales se trouvent dans cette enveloppe et sont connues ou supposées jouer des rôles distincts dans différentes étapes du cycle de réplication viral, incluant l'attachement, l'entrée, l’assemblage, et la propagation des virus. La glycoprotéine M (gM) qui figure parmi ces glycoprotéines d’enveloppe, est la seule glycoprotéine non essentielle mais est conservée dans toute la famille herpesviridae. Récemment, l’homologue de gM dans le Pseudorabies virus (PRV), un autre herpesvirus, a été impliqué dans la phase finale de l’assemblage (i.e. l’enveloppement cytoplasmique) au niveau du réseau trans-Golgi (TGN) en reconnaissant spécifiquement des protéines tégumentaires et d’autres glycoprotéines d’enveloppe ([1]). Toutefois, il a été proposé que cette hypothèse ne s’applique pas pour le HSV-1 ([2]). De plus, contrairement à la localisation au TGN dans les cellules transfectées, HSV-1 gM se localise dans la membrane nucléaire et sur les virions périnucléaires durant une infection. L’objectif du projet présenté ici était d’éclaircir la relation de la localisation et la fonction de HSV-1 gM dans le contexte d’une infection. Dans les résultats rapportés ici, nous décrivons tout abord un mécanisme spécifique de ciblage nucléaire de HSV-1 gM. En phase précoce d’une infection, gM est ciblée à la membrane nucléaire d'une manière virus ii dépendante. Cela se produit avant la réorganisation du TGN normalement induite par l’infection et avant que gM n’entre dans la voie de sécrétion. Ce ciblage nucléaire actif et spécifique de gM ne semble pas dépendre des plusieurs des partenaires d’interaction proposés dans la littérature. Ces données suggèrent que la forme nucléaire de gM pourrait avoir un nouveau rôle indépendant de l’enveloppement final dans le cytoplasme. Dans la deuxième partie du travail présenté ici, nous avons concentré nos efforts sur le rôle de gM dans l’assemblage du virus en phase tardive de l’infection et en identifiant un domaine critique de gM. Nos résultats mettent en valeur l’importance du domaine carboxyl-terminal cytoplasmique de gM dans le transport de gM du réticulum endoplasmique (RE) à l’appareil de Golgi, dans l’enveloppement cytoplasmique et la propagation intercellulaire du virus. Ainsi, l’export du RE de gM a été complètement compromis dans les cellules transfectées exprimant un mutant de gM dépourvu de sa région C-terminale. La délétion la queue cytoplasmique de gM cause une réduction légère du titre viral et de la taille des plaques. L'analyse de ces mutants par microscopie électronique a démontré une accumulation des nucléocapsides sans enveloppe dans le cytoplasme par rapport aux virus de type sauvage. Étrangement, ce phénotype était apparent dans les cellules BHK mais absent dans les cellules 143B, suggérant que la fonction de gM dépende du type cellulaire. Finalement, le criblage de partenaires d’interaction du domaine C-terminal de gM identifiés par le système de double-hybride nous a permis de proposer plusieurs candidats susceptibles de réguler la fonction de gM dans la morphogénèse et la propagation de virus.
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L’autophagie est un processus cellulaire catabolique qui a été conservé durant l’évolution de la levure à l’homme. Cet important mécanisme consiste en une dégradation des composants cytoplasmiques dans une structure lytique, le lysosome. Il existe trois types de l’autophagie : la microautophagie, l’autophagie médiée par les chaperones et la macroautophagie nommée « autophagie ». Il a été démontré que lors de l’autophagie, le matériel cytoplasmique (protéines cytosoliques et organites) est séquestré dans l’autophagosome qui finit par fusionner avec le lysosome, formant ainsi l’autophagolysosome. Le matériel séquestré et la membrane interne de l’autophagosome seront dégradés par les hydrolases lysosomales. Plusieurs études se sont focalisées sur la détermination de la machinerie moléculaire et les mécanismes de l’autophagie. Il a été démontré l’implication de 31 molécules Atg essentielles dans le processus de l’autophagie. L’identification de ces protéines a permis de déceler le rôle de l’autophagie non seulement dans le maintien de l’homéostasie cellulaire mais aussi dans la défense contre les agents pathogènes. En effet, l’autophagie joue un rôle important dans l’immunité innée conduisant à contrôler l’évasion des pathogènes dont les bactéries et les virus. Également, l’autophagie est impliquée dans l’immunité adaptative en favorisant la présentation des antigènes viraux par le CMH de classe II aux cellules T CD4+. De plus, une étude récente suggère que l’autophagie contribue à la présentation antigénique par le CMH de classe I aux cellules T CD8+ durant une infection virale par le virus HSV-1 (Herpes simplex type 1). Toutefois, certains virus y compris HSV-1 ont pu développer des mécanismes pour contourner et inhiber en partie le rôle protecteur de l’autophagie. Récemment, une étude dans notre laboratoire a mis en évidence, lors d’une infection virale par HSV-1 des cellules macrophages BMA, la présence d’une nouvelle structure autophagique dans une phase tardive de l’infection. Cette nouvelle structure est différente des autophagosomes classiques à double membrane et est caractérisée morphologiquement par quatre membranes dérivées de l’enveloppe nucléaire interne et externe. Peu de choses ont été rapportées sur cette nouvelle voie autophagique qui peut être un mécanisme de défense cellulaire quand l’autophagie classique dans le cytosol est inhibée par HSV-1. Il devient donc intéressant de caractériser les molécules impliquées dans la formation de ces autophagosomes issus du noyau par spectrométrie de masse. Pour ce faire, il était impératif d’établir un outil d’isolation des noyaux à partir de macrophages infectés par HSV-1 dans lesquels les autophagosomes issus des noyaux seront formés. La validation de cette méthode d’isolation a été effectuée en déterminant la pureté et l’intégrité des noyaux isolés à partir des cellules non infectées (contrôle) et infectées par HSV-1. La pureté des préparations de noyaux isolés a été caractérisée par l’absence de contaminants cellulaires et un enrichissement en noyaux. Également, il a fallu déterminer la cinétique de formation des autophagosomes issus des noyaux pour les deux lignées cellulaires de macrophages utilisées dans ce projet. Dans une perspective future, l’analyse protéomique à partir des échantillons purs des noyaux isolés (non infectés et infectés) mènera à identifier les protéines impliquées dans la formation des autophagosomes dérivés des noyaux, ce qui permettra ultérieurement d’effectuer des études sur les mécanismes moléculaires et les fonctions de cette nouvelle voie autophagique.
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L’ostéoarthrose (OA) est une maladie articulaire dont l’incidence augmente avec le vieillissement de la population. Elle se caractérise par une détérioration progressive du cartilage articulaire accompagnée du remodelage de l’os sous-chondral et du changement des tissus mous de l’articulation. La douleur et le dysfonctionnement de l’articulation affectée sont généralement attribués à l’inflammation et l’épanchement de la synovie. Plusieurs évidences indiquent que l’inflammation de la membrane synoviale contribue grandement à la pathogenèse de l’OA. En effet, la synthèse et l’expression des enzymes protéolytiques qui dégradent la matrice cartilagineuse sont régulées par de nombreuses cytokines retrouvées au sein de ce foyer inflammatoire. Deux d’entre elles, l’interleukine-1 beta (IL-1β) et le «tumor necrosis factor » alpha (TNF-α), jouent un rôle majeur dans le déclenchement de l’inflammation associée à l’OA. Ces cytokines pro-inflammatoires agissent notamment sur les synoviocytes et les chondrocytes en activant NF-κB qui, à son tour, active les gènes de cytokines. Cette boucle de régulation positive amplifie et perpétue la réponse inflammatoire. Récemment, il a été rapporté que l’activation de NF-κB par TNF-α peut être potentialisée par EXTL3, un récepteur transmembranaire ; mais le mécanisme sous-jacent de cet effet demeure inconnu. Toutefois, les niveaux important d’EXTL3 et de son ligand Reg1B chez les patients arthrosiques, laissent croire que ces protéines jouent un rôle dans le développement de l’OA. Notre objectif était d’étudier le mécanisme par lequel EXTL3 amplifie l’activation de NF-κB par TNF-α et d’examiner si ce phénomène se produit aussi avec l’IL-1β. Nous avons utilisé les cellules C28/I2, une lignée cellulaire de chondrocytes, comme modèle d’étude. Les transfections transitoires avec un vecteur d’expression, les techniques d’immunofluorescence (IF), d’immunoprécipitation (IP) et d’immunobuvardage de type Western (IB); ont été utilisées dans le cadre de diverses approches expérimentales. Les résultats obtenus par transfection ont révélé que la protéine EXTL3 potentialisait l’activation de NF-κB aussi bien par IL-1β que par TNF-α. Ce résultat signifie que la potentialisation de l’activité NF-κB par EXTL3 n’est pas spécifique à TNF-α. D’autre part, l’IP avec TNFRI et TRAF2 a révélé la présence d’EXTL3 dans le complexe TNF-α/TNFRI/TRAF2 qui se forme au niveau de la membrane plasmique. De plus, ceci a été confirmé in vivo par microscopie confocale montrant la co-localisation de TNFRI-TRAF2-EXTL3 dans la membrane nucléaire, suggérant ainsi la formation d’un complexe identique au niveau des membranes plasmique et nucléaires. Toutefois, la présence du ligand Reg1B et/ou de la glucosamine inhibait la formation de ce complexe au niveau de la membrane plasmique, tout comme ils abolissaient la potentialisation de l’activité NF-κB par EXTL3. Ces résultats suggèrent non seulement que le recrutement d’EXTL3 libre dans le complexe TNF-α/TNFR1 est requis pour amplifier l’activation de NF-κB par TNF-α, mais aussi la capacité du ligand Reg1B et de la glucosamine à moduler cette activation à travers la baisse ou l’inhibition de l’interaction EXTL3-TNFR1. Les données de cette étude constituent une avancée majeure dans la compréhension des événements moléculaires qui contrôlent l’activation de NF-κB par les cytokines pro-inflammatoires. Ces résultats pourraient conduire au développement de nouvelles approches thérapeutiques pour le traitement de l’inflammation associée à l’OA et impliquant une activation incessante de NF-κB.
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In unstimulated cells, proteins of the nuclear factor kappaB (NF-kappaB) transcription factor family are sequestered in the cytoplasm through interactions with IkappaB inhibitor proteins. Tumor necrosis factor alpha (TNF-alpha) activates the degradation of IkappaB-alpha and the nuclear import of cytoplasmic NF-kappaB. Nuclear localization of numerous cellular proteins is mediated by the ability of the cytoskeleton, usually microtubules, to direct their perinuclear accumulation. In a former study we have shown that activated NF-kappaB rapidly moves from distal processes in neurons towards the nucleus. The fast transport rate suggests the involvement of motor proteins in the transport of NF-kappaB. Here we address the question how NF-kappaB arrives at the nuclear membrane before import in non-neuronal cells, i.e., by diffusion alone or with the help of active transport mechanisms. Using confocal microscopy imaging and analysis of nuclear protein extracts, we show that NF-kappaB movement through the cytoplasm to the nucleus is independent of the cytoskeleton, in the three cell lines investigated here. Additionally we demonstrate that NF-kappaB p65 is not associated with the dynein/dynactin molecular motor complex. We propose that cells utilize two distinct mechanisms of NF-kappaB transport: (1) signaling via diffusion over short distances in non-neuronal cells and (2) transport via motor proteins that move along the cytoskeleton in neuronal processes where the distances between sites of NF-kappaB activation and nucleus can be vast.
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Disease, injury, and age problems compromise human quality of life and continuously motivate the search for new and more efficacious therapeutic approaches. The field of Tissue Regeneration and Engineering has greatly evolved over the last years, mainly due to the combination of the important advances verified in Biomaterials Science and Engineering with those of Cell and Molecular Biology. In particular, a new and promising area arose – Nanomedicine – that takes advantage of the extremely small size and especial chemical and physical properties of Nanomaterials, offering powerful tools for health improvement. Research on Stem Cells, the self-renewing progenitors of body tissues, is also challenging to the medical and scientific communities, being expectable the appearance of new and exciting stem cell-based therapies in the next years. The control of cell behavior (namely, of cell proliferation and differentiation) is of key importance in devising strategies for Tissue Regeneration and Engineering. Cytokines, growth factors, transcription factors and other signaling molecules, most of them proteins, have been identified and found to regulate and support tissue development and regeneration. However, the application of these molecules in long-term regenerative processes requires their continuous presence at high concentrations as they usually present short half-lives at physiological conditions and may be rapidly cleared from the body. Alternatively, genes encoding such proteins can be introduced inside cells and be expressed using cell’s machinery, allowing an extended and more sustained production of the protein of interest (gene therapy). Genetic engineering of stem cells is particularly attractive because of their self-renewal capability and differentiation potential. For Tissue Regeneration and Engineering purposes, the patient’s own stem cells can be genetically engineered in vitro and, after, introduced in the body (with or without a scaffold) where they will not only modulate the behavior of native cells (stem cell-mediated gene therapy), but also directly participate in tissue repair. Cells can be genetically engineered using viral and non-viral systems. Viruses, as a result of millions of years of evolution, are very effective for the delivery of genes in several types of cells, including cells from primary sources. However, the risks associated with their use (like infection and immunogenic reactions) are driving the search for non-viral systems that will efficiently deliver genetic material into cells. Among them, chemical methods that are promising and being investigated use cationic molecules as carriers for DNA. In this case, gene delivery and gene expression level remain relatively low when primary cells are used. The main goal of this thesis was to develop and assess the in vitro potential of polyamidoamine (PAMAM) dendrimers based carriers to deliver genes to mesenchymal stem cells (MSCs). PAMAM dendrimers are monodispersive, hyperbranched and nanospherical molecules presenting unique characteristics that make them very attractive vehicles for both drug and gene delivery. Although they have been explored for gene delivery in a wide range of cell lines, the interaction and the usefulness of these molecules in the delivery of genes to MSCs remains a field to be explored. Adult MSCs were chosen for the studies due to their potential biomedical applications (they are considered multipotent cells) and because they present several advantages over embryonic stem cells, such as easy accessibility and the inexistence of ethical restrictions to their use. This thesis is divided in 5 interconnected chapters. Chapter I provides an overview of the current literature concerning the various non-viral systems investigated for gene delivery in MSCs. Attention is devoted to physical methods, as well as to chemical methods that make use of polymers (natural and synthetic), liposomes, and inorganic nanoparticles as gene delivery vectors. Also, it summarizes the current applications of genetically engineered mesenchymal stem cells using non-viral systems in regenerative medicine, with special focus on bone tissue regeneration. In Chapter II, the potential of native PAMAM dendrimers with amine termini to transfect MSCs is evaluated. The level of transfection achieved with the dendrimers is, in a first step, studied using a plasmid DNA (pDNA) encoding for the β-galactosidase reporter gene. The effect of dendrimer’s generation, cell passage number, and N:P ratio (where N= number of primary amines in the dendrimer; P= number of phosphate groups in the pDNA backbone) on the level of transfection is evaluated, being the values always very low. In a second step, a pDNA encoding for bone morphogenetic protein-2, a protein that is known for its role in MSCs proliferation and differentiation, is used. The BMP-2 content produced by transfected cells is evaluated by an ELISA assay and its effect on the osteogenic markers is analyzed through several classical assays including alkaline phosphatase activity (an early marker of osteogenesis), osteocalcin production, calcium deposition and mineralized nodules formation (late osteogenesis markers). Results show that a low transfection level is enough to induce in vitro osteogenic differentiation in MSCs. Next, from Chapter III to Chapter V, studies are shown where several strategies are adopted to change the interaction of PAMAM dendrimers with MSCs cell membrane and, as a consequence, to enhance the levels of gene delivery. In Chapter III, generations 5 and 6 of PAMAM dendrimers are surface functionalized with arginine-glycine-aspartic acid (RGD) containing peptides – experiments with dendrimers conjugated to 4, 8 and 16 RGD units were performed. The underlying concept is that by including the RGD integrin-binding motif in the design of the vectors and by forming RGD clusters, the level of transfection will increase as MSCs highly express integrins at their surface. Results show that cellular uptake of functionalized dendrimers and gene expression is enhanced in comparison with the native dendrimers. Furthermore, gene expression is dependent on both the electrostatic interaction established between the dendrimer moiety and the cell surface and the nanocluster RGD density. In Chapter IV, a new family of gene delivery vectors is synthesized consisting of a PAMAM dendrimer (generation 5) core randomly linked at the periphery to alkyl hydrophobic chains that vary in length and number. Herein, the idea is to take advantage of both the cationic nature of the dendrimer and the capacity of lipids to interact with biological membranes. These new vectors show a remarkable capacity for internalizing pDNA, being this effect positively correlated with the –CH2– content present in the hydrophobic corona. Gene expression is also greatly enhanced using the new vectors but, in this case, the higher efficiency is shown by the vectors containing the smallest hydrophobic chains. Finally, chapter V reports the synthesis, characterization and evaluation of novel gene delivery vectors based on PAMAM dendrimers (generation 5) conjugated to peptides with high affinity for MSCs membrane binding - for comparison, experiments are also done with a peptide with low affinity binding properties. These systems present low cytotoxicity and transfection efficiencies superior to those of native dendrimers and partially degraded dendrimers (Superfect®, a commercial product). Furthermore, with this biomimetic approach, the process of gene delivery is shown to be cell surface receptor-mediated. Overall, results show the potential of PAMAM dendrimers to be used, as such or modified, in Tissue Regeneration and Engineering. To our knowledge, this is the first time that PAMAM dendrimers are studied as gene delivery vehicles in this context and using, as target, a cell type with clinical relevancy. It is shown that the cationic nature of PAMAM dendrimers with amine termini can be synergistically combined with surface engineering approaches, which will ultimately result in suitable interactions with the cytoplasmic membrane and enhanced pDNA cellular entry and gene expression. Nevertheless, the quantity of pDNA detected inside cell nucleus is always very small when compared with the bigger amount reaching cytoplasm (accumulation of pDNA is evident in the perinuclear region), suggesting that the main barrier to transfection is the nuclear membrane. Future work can then be envisaged based on the versatility of these systems as biomedical molecular materials, such as the conjugation of PAMAM dendrimers to molecules able to bind nuclear membrane receptors and to promote nuclear translocation.
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Livers of thirty specimens of Astyanax altiparanae obtained from a commercial fish farm were subjected to light and transmission electron microscopy, in order to describe the hepatic parenchyma and the intrahepatic exocrine pancreatic tissue. Anatomically, the liver showed only three hepatic lobes. Histological analysis demonstrated that the hepatocytes were spread out as anastomotic cords, arranged in two cellular layers and surrounded by sinusoids. The intrahepatic exocrine pancreatic tissue exhibited an acinar arrangement and was diffused in the hepatic parenchyma. Ultrastructural analysis showed that the hepatocytes had a rounded nucleus and a rough endoplasmatic reticulum, with a parallel disposition to the nuclear membrane. The exocrine pancreatic cells showed secretion granules at the apical portion, and the rough endosplasmatic reticulum was concentrically distributed.
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Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)