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Transdifferentiation of bioencapsulated bone marrow cells into hepatocyte-like cells in the 90% hepatectomized rat model.

Under specific conditions, bone marrow cells can transdifferentiate into a variety of cell types including hepatocytes. In this study, bioencapsulated bone marrow cells were transplanted intraperitoneally into 90% hepatectomized rats. We then followed the transdifferentiation of the bone marrow cells and the effect of this on liver regeneration in this liver failure model. Bone marrow cells isolated from Wistar rats were bioencapsulated using alginate-polylysine-alginate method. These bioencapsulated bone marrow cells were transplanted intraperitoneally into 90% hepatectomized Wistar rats. Blood chemistry, HGF, liver weight, and survival of the recipient rats were evaluated. Histology and immunocytochemistry were used to analyze the bioencapsulated cells before and 14 days after transplantation. Unlike free bone marrow cells, transplantation of bioencapsulated bone marrow cells improved the survival of 90% hepatectomized rats and improved the blood chemistry with an efficacy similar to that of bioencapsulated hepatocytes or free hepatocytes transplantation. Some bioencapsulated bone marrow cells expressed hepatocytes markers of cytokeratins 8, cytokeratins 18, albumin, and AFP after 2 weeks of transplantation. These results suggest that syngeneic bioencapsulated bone marrow cells can transdifferentiate into hepatocyte-like cells in the peritoneal cavity of 90% hepatectomized rats and increased the survival rates of these rats. In conclusion, these findings suggest the potential for a new alternative to hepatocyte transplantation for cellular therapy of acute liver failure.

Animals↗

Retinal pigmented epithelium does not transdifferentiate in adult goldfish.

The neural retina of adult goldfish can regenerate from an intrinsic source of proliferative neuronal progenitor cells, but it is not known whether the retina can regenerate by transdifferentiation of the retinal pigmented epithelium (RPE), a phenomenon demonstrated in adult newts. In this study, we asked whether following surgical removal of the neural retina in adult goldfish the RPE was capable of autonomously transdifferentiating and generating new neural retina. The retina was prelabeled by injecting the fluorescent dye Fluoro-Gold (FG) into the eye prior to surgical removal; this procedure ensured that residual retina was labeled with FG and could therefore be distinguished from unlabeled, regenerated retina. To examine the time course of retinal regeneration, and to identify regenerated retinal neurons, the thymidine analogue bromodeoxyuridine was injected intraocularly, and retinas were examined up to 2 months later. We found that the RPE did not transdifferentiate; instead, retinas regenerated only when pieces of residual neural retina were left intact. Under these circumstances, newly regenerated cells derived from proliferating cells intrinsic to the residual neural retina. When retinas were completely removed, as was evident from a lack of FG labeling, there was no retinal regeneration.

Animals↗

Expression of Smads during in vitro transdifferentiation of hepatic stellate cells to myofibroblasts.

TGFbeta is of crucial importance during transdifferentiation of resting retinoid-storing hepatic stellate cells (HSC) to extracellular matrix producing myofibroblasts (MFB) and consequently, inhibition of TGFbeta signal transduction is an effective means for preventing experimental fibrosis. We have shown that isolated HSC lose TGFbeta-dependent growth control during in vitro activation and that alpha2 (I) collagen production in transdifferentiated MFB is TGFbeta-independent. Furthermore, Smad complexes with SBE binding activity were only detected in early cultures of HSC, although TGFbeta receptor types I and II were significantly expressed in HSC and MFB. In the present report, we compared the expression pattern of TGFbeta downstream mediators, i.e., the Smads, in TGFbeta responsive HSC versus nonresponding MFB. The transdifferentiation process was monitored by morphology and increasing expression of TGFbeta and alpha-smooth muscle actin, and TGFbeta signaling was investigated by (CAGA)(9)-MLP-Luc. The expression level of all Smads remained essentially unchanged both during the activation process and after TGFbeta-treatment. Smad7 was transiently upregulated upon TGFbeta stimulation in quiescent HSC, indicating a negative feed back loop in responsive cells. In contrast, MFB neither displayed TGFbeta-inducible nor constitutively upregulated Smad7 expression. Instead, Smad3 mRNA was increased in MFB. Our data indicate that abrogation of the TGFbeta response in MFB versus HSC is not based on different regulation of Smad expression.

Alternative Splicing↗

bFGF-induced transdifferentiation of RPE to neuronal progenitors is regulated by the mechanical properties of the substratum.

The N-CAM-negative retinal pigment epithelium (RPE[N-CAM-]) can transdifferentiate into N-CAM-positive neural retina (NR[N-CAM+]) when stimulated by basic fibroblast growth factor (bFGF). In this report we examine whether the properties of the growth substrate affect the fate determination of the presumptive RPE. We used a system of biochemically related substrata with different mechanical properties, that is hydrated basement membrane gels (BM gels) and carpets of immobilized basement membrane proteins (BM carpets). We examined the effects of bFGF on RPE grown on either BM gels or BM carpets and compared them with the effects of bFGF on RPE cells grown on their native basement membrane. We show that bFGF provides the stimulus necessary to redirect the choice of fate of the presumptive RPE[N-CAM-] from the RPE pathway into the neural pathway. However, the mechanical properties of the substratum determine the extent to which a neural phenotype is expressed by the transdifferentiating cells. RPE[N-CAM-] transdifferentiates into a pleomorphic neuroepithelium[N-CAM+] on rigid, two-dimensional BM carpets, into a pseudostratified neuroepithelium[N-CAM+] on highly malleable BM gels, and into a stratified, NR[N-CAM+]-like neuroepithelium on its native basement membrane, which is of intermediate rigidity. The newly formed NR, except for the inverted polarity, has a morphology corresponding to, and expresses markers in a distribution appropriate for, the equivalent stage of retinal histodifferentiation in the embryo. We also show that bFGF is not a mitogen for the presumptive RPE cells, while it is a potent one for the presumptive NR.

Animals↗

Transdifferentiation of muscle to electric organ: regulation of muscle-specific proteins is independent of patterned nerve activity.

Transdifferentiation is the conversion of one differentiated cell type into another. The electric organ of fishes transdifferentiates from muscle but little is known about how this occurs. To begin to address this question, we studied the expression of muscle- and electrocyte-specific proteins with immunohistochemistry during regeneration of the electric organ. In the early stages of regeneration, a blastema forms. Blastemal cells cluster, express desmin, fuse into myotubes, and then express alpha-actinin, tropomyosin, and myosin. Myotubes in the periphery of the blastema continue to differentiate as muscle; those in the center grow in size, probably by fusing with each other, and lose their sarcomeres as they become electrocytes. Tropomyosin is rapidly down-regulated while desmin, alpha-actinin, and myosin continue to be diffusely expressed in newly formed electrocytes despite the absence of organized sarcomeres. During this time an isoform of keratin that is a marker for mature electrocytes is expressed. One week later, the immunoreactivities of myosin disappears and alpha-actinin weakens, while that of desmin and keratin remain strong. Since nerve fibers grow into the blastema preceding the appearance of any differentiated cells, we tested whether the highly rhythmic nerve activity associated with electromotor input plays a role in transdifferentiation and found that electrocytes develop normally in the absence of electromotor neuron activity.

Animals↗

Role of Mitf in differentiation and transdifferentiation of chicken pigmented epithelial cell.

Mitf encodes a basic helix-loop-helix-leucine-zipper (bHLHzip) protein that is known to function in the development of melanocytes, pigmented epithelial cells (PECs), osteoclasts, and mast cells. In this paper, we report on the isolation, expression, and overexpression of the chicken Mitf and discuss the role of its protein product in the differentiation and transdifferentiation of PECs. Northern blotting showed that chicken Mitf is predominantly expressed in embryonic retinal pigmented epithelium (PE), but is expressed at low levels in other tissues. A 5' RACE analysis revealed differences in the 5' region Mitf nRNA in PE and other tissues. Immunological analysis revealed that Mitf, the protein encoded by Mitf, is first detected in the nuclei of the optic vesicle cells at embryonic stage 13 in a restricted region covered with mesenchymal cells. From stage 14 to 24, the specific staining is observable in the PE and precursor of the PE, the outer layer of the optic cup. In embryos at stages later than stage 29 the signals for Mitf in the future iris, ciliary body, and posterior retinal regions become faint. These results show that expression of Mitf starts at the optic vesicle stage at which no other marker genes for PECs such as mmp115 and tyrosinase are expressed. Dedifferentiation of cultured retinal PECs (rPECs) was induced by phenylthiourea and testicular hyaluronidase, bFGF, or TGF-beta. Mitf expression was inhibited by these factors and reactivated during redifferentiation of the dedifferentiated cells into rPECs, showing the correlation between Mitf expression and rPEC differentiation. Retrovirus-mediated overexpression of Mtif inhibited bFGF-induced dedifferentiation and transdifferentiation of rPECs to both lens and neural cells. These findings showed that downregulation of Mitf expression is essential for the transdifferentiation of rPEC. Mitf overexpression caused hyperpigmentation in cultured rPECs and suppressed the changes in gene expression induced by bFGF. Mitf overexpression promoted expression of mmp115 and tyrosinase in bFGF-treated rPECs suggesting a critical role for Mitf in rPEC differentiation. Mitf overexpression, however, did not promote expression of another rPEC-specific gene, pP344, in bFGF-treated rPECs. This result suggests the presence of other regulatory genes promoting rPEC differentiation. The expression patterns of pax6 and Mitf are complementary both in vivo in vitro. Overexpression of Mitf inhibited expression of pax6 in cultured rPECs. These observations suggest that Mitf regulates pax6 expression negatively.

Amino Acid Sequence↗

Skeletal muscle stem cells do not transdifferentiate into cardiomyocytes after cardiac grafting.

Skeletal muscle cell-derived grafts in the heart may benefit myocardial performance after infarction. Several studies have suggested that skeletal muscle stem cells (satellite cells) from adult muscle undergo transdifferentiation into cardiomyocytes after grafting into the heart, but expression of cardiac markers in graft cells has not been rigorously confirmed. To determine the fate of satellite cell-derived grafts in the heart, adult rat satellite cells were tagged in vitro with bromodeoxyuridine (BrdU) and grafted into normal hearts of syngeneic rats. At 4 and 12 weeks the graft cells formed multinucleated, cross-striated myofibers that expressed fast skeletal myosin heavy chain (MHC), thus indicating a mature skeletal muscle phenotype. Double staining for the BrdU tag and cardiac-specific markers was employed to identify transdifferentiation. Aside from four questionable cells, none of the 11 grafts examined expressed alpha-MHC, cardiac troponin I, or atrial natriuretic peptide. At 4 weeks, grafts expressed beta -MHC, a hallmark of slow twitch myofibers. By 12 weeks, however, the myofibers had atrophied and downregulated beta-MHC. Grafts never expressed the intercalated disk proteins N-cadherin or connexin43, hence electromechanical coupling did not occur. In conclusion, satellite cells differentiate into mature skeletal muscle and do not express cardiac-specific genes after grafting into the heart. Thus, transdifferentiation into cardiomyocytes did not occur.

Animals↗

From lens regeneration in the newt to in-vitro transdifferentiation of vertebrate pigmented epithelial cells.

Through studies to clarify the cellular origin of lens regeneration in the newt, the pigmented epithelial cells of the iris and the retina of many vertebrate species have been shown to possess a dormant potency to transdifferentiate into the lens. The method of in-vitro culture of pigmented epithelial cells has been optimized to enable detailed studies of the transdifferentiation process by molecular techniques. Growth factors and extracellular matrix components are found to be important in the control of the transdifferentiation process. New systems for in-vitro culture are introduced, while prospects for renewed in-vivo studies using newts are given.

Amphibians↗

Serum factors affecting transdifferentiation in chick embryo neuro-retinal cultures.

Adult sera (horse, chicken and newborn bovine serum) do not support extensive transdifferentiation of lens cells in cultures of 9-day chick embryo neural retina. Conversely, both chick embryo extract and foetal calf serum promote the accumulation of delta-crystallin (a marker for lens cells) in such cultures. Dialysed foetal calf serum does not allow transdifferentiation into lens, whereas the dialysis medium is able to do so in the absence of macromolecular serum components, suggesting one or more active factors of low molecular weight. Choline acetyltransferase activity (cholinergic neuronal marker) is generally maintained for longer under conditions which do not permit extensive transdifferentiation. Glutamine synthetase activity (a glial marker) is inducible by hydrocortisone in dense neuro-retinal cultures, and this hormone also reduces the extent of later lens development.

Animals↗

Microenvironments controlling the transdifferentiation of vertebrate pigmented epithelial cells in in vitro culture.

The transdifferentiation of pigmented epithelial cells in vitro is briefly introduced. Several environmental conditions regulating the process have been demonstrated experimentally. On the basis of these data we have suggested regulatory factors in relation to the mechanisms for the initiation of the transdifferentiation of pigmented epithelial cells, focussing particularly on cell surface functions. Finally, we have presented data which contributes to the establishment of a useful and powerful cell culture system which makes it possible for us to analyse the molecular basis of transdifferentiation.

Animals↗

Transdifferentiation of mesenchymal stem cells into cardiomyocytes by direct cell-to-cell contact with neonatal cardiomyocyte but not adult cardiomyocytes.

Recent studies have demonstrated that direct cell-to-cell interaction is one of the microenvironment factors for transdifferentiation of adult stem cells into cardiomyocytes. We investigated whether transdifferentiation of mesenchymal stem cells (MSCs) into cardiomyocytes was dependent on developmental stages of cocultured cardiomyocytes, and direct cell-to-cell interaction was essential for transdifferentiation. MSCs were isolated from adult rat and cocultured in four different ways: (1) with neonatal cardiomyocytes, (2) with adult cardiomyocytes, (3) with neonatal cardiomyocytes on the cell culture inserts, and (4) with the conditioned medium from neonatal cardiomyocytes. After 5 days of coculture with neonatal cardiomyocytes, 9.40+/-1.15% of 1,1'-dioctadecyl-1-3,3,3',3'-tetramethylindocarbocyanine perchlorate labeled MSCs expressed sarcomeric-alpha-actinin. Immunocytochemistry showed that only these MSCs expressed the cardiac markers and were not observed with other coculture condition as well as conditioned medium. Calcein-AM labeling of cardiomyocytes showed gap junctional communication between 56.1+/-2.0% of MSCs (24 h after labeling, n=5) and neonatal cardiomyocytes. These findings suggest that MSCs are capable of differentiating into cardiomyocytes when directly cocultured with neonatal cardiomyocytes by cell-to-cell interaction, but not with adult cardiomyocytes or conditioned medium.

Animals↗

[Contraction of extracellular matrix by transdifferentiated retinal pigment epithelial cells, inducers and inhibitors].

Transdifferentiated retinal pigment epithelial cells (RPE) display enhanced contractile potentials and have been implicated in the development of tractional retinal detachment. This study determines the activity of contraction-promoting factors, examines some involved mechanisms and evaluates inhibitors. Using an in vitro contraction assay, we demonstrated that collagen matrix contraction by transdifferentiated RPE cells is effectively stimulated by serum, platelet-derived growth factor and insulin-like growth factor-1. Endothelin-1 and transforming growth factor-beta 1 and -beta 2 have a more discrete or marginal effect. Tractional forces promoted by these peptides are completely protein synthesis dependent. Contraction stimulated by serum is only partly dependent on de novo protein synthesis, suggesting different active factors and/or pathways. Staurosporine, a broad-spectrum kinase inhibitor, effectively inhibited collagen matrix contraction by transdifferentiated RPE cells regardless of the promoter.

Collagen↗

Cornea-lens transdifferentiation in the anuran, Xenopus tropicalis.

Previously, the only anuran amphibian known to regenerate the lens of the eye was Xenopus laevis. This occurs during larval stages through transdifferentiation of the outer cornea epithelium under control of factors presumably secreted by the neural retina. This study demonstrates that a distantly related species, X. tropicalis, is also able to regenerate lenses through this process. A transgenic line of X. tropicalis was used to examine the process of cornea-lens transdifferentiation in which green fluorescent protein (GFP) is expressed in differentiated lens cells under the control of the Xenopus gamma1-crystallin promoter element. Unlike X. laevis, the process of cornea-lens transdifferentiation typically occurs at a very low frequency in X. tropicalis due to the rapid rate at which the inner cornea endothelium heals to recover the pupillary opening. The inner cornea endothelium serves as a key physical barrier that normally prevents retinal signals from reaching the outer cornea epithelium. If this barrier is circumvented by implanting outer cornea epithelium of transgenic tadpoles directly into the vitreous chamber of non-transgenic X. tropicalis larval eyes, a higher percentage of cases formed lenses expressing GFP. Lenses were also formed if these tissues were implanted into X. laevis larval eyes, suggesting the same or similar inducing factors are present in both species. When pericorneal ectoderm and posteriolateral flank ectoderm were implanted into the vitreous chamber, only in rare cases did pericorneal ectoderm form lens cells. Thus, unlike the case in X. laevis, competence to respond to the inducing factors is tightly restricted to the cornea epithelium in X. tropicalis. As controls, all these tissues were implanted into the space located between the inner and outer corneas. None of these implants, including outer cornea epithelium, exhibited GFP expression. Thus, the essential inductive factors are normally contained within the vitreous chamber. One explanation why this type of lens regeneration is not seen in some other anurans could be due to the rapid rate at which the inner cornea endothelium heals to recover the pupillary opening once the original lens is removed. These findings are discussed in terms of the evolution of this developmental process within the anurans.

Animals↗

Ultrastructural analysis of the transdifferentiation of smooth muscle to skeletal muscle in the murine esophagus.

The ultrastructure of the mouse esophagus at the level of the diaphragm was studied from embryo day 17 to adult. The transdifferentiation of smooth muscle into skeletal muscle was categorized into seven ultrastructural stages: during phase I normal smooth muscle myogenesis was observed. In phase II subpopulations of cells changed into aggregates of myoblast-like cells. At the center of these cell aggregates, phase III cells appeared that contained condensed myofilaments. Dense bodies and dense bands appeared enlarged by the accumulation of thin filaments. In phase IV the condensed myofilaments organized into sarcomere pretemplate structures. The dense bodies and dense bands formed rudimentary Z-lines. In phase V the sarcomere templates appeared as more defined structures and began to align. An elaborate perinuclear region appeared. During phase VI, skeletal muscle sarcomeres were apparent and myofilaments were arranged in a typical hexagonal array. Phase VII skeletal muscle fibers were unique with sarcomeric bifurcations and anastomoses between adjacent myofibrils. Non-contractile organelles were less organized in these cells than in skeletal muscles such as rectus and vastus lateralis muscles. During the transdifferentiation process, other cell types remained unchanged, except the number of interstitial cells of Cajal became reduced. Immunocytochemical studies with antibodies against smooth and skeletal muscle myosin were also performed during the process of transdifferentiation. An osmium tetroxide/potassium ferricyanide en bloc mordant enabled the use of ultrathin Unicryl sections for immunocytochemistry. Cells exhibited smooth muscle myosin-like immunoreactivity from the smooth muscle stage through the condensed myofilament stage. Cells were immunopositive for skeletal muscle myosin before the formation of sarcomere templates, during the condensed stage, and after development of mature skeletal muscle cells. We also observed a hybrid muscle cell with properties of both smooth and skeletal muscle cells.

Actin Cytoskeleton↗

Histamine-modulated transdifferentiation of dermal microvascular endothelial cells.

Homeostatic and inflammatory functions of skin microvessels are tightly regulated by vasoactive amines. Following stimulation with histamine, dermal microvascular endothelial cells (MEC) undergo a rapid change in phenotype (transdifferentiation) and subsequently exhibit an enhanced rate of growth. To elucidate mechanisms regulating MEC transdifferentiation, this study investigated the functional relationships among vimentin, Ca2+, and protein kinase C (PKC) in histamine-modulated dermal MEC in vitro. Distribution of vimentin and PKC in foreskin-derived MEC cultivated in a modified Iscove's medium was assessed with immunocytochemistry. Calcium ion kinetics in histamine-treated MEC were analyzed using the Ca2+ probe Fluo-3 in conjunction with interactive laser cytometry. Histamine, acting through H-1 receptors, produces a rapid (less than 100 ms) and differential elevation of free calcium in each of three cytological compartments defined by the vimentin cytoskeleton in epithelial MEC. A distinctive compartmentalized and nonuniform distribution of PKC precisely coincides with that observed for free-Ca2+ released in response to histamine. The studies reveal that histamine modulation of the MEC phenotype is associated with a rapid patterned reorganization of the vimentin skeleton. It is hypothesized that histamine induces vimentin post-translational modifications by activating a spatially localized interaction among cytoplasmic free Ca2+, PKC, and the vimentin matrix. The results further suggest that vimentin, in addition to its structural role, may participate in signal transduction and gene regulation processes in effecting MEC transdifferentiation.

Calcium↗

In vitro transdifferentiation of striated muscle to smooth muscle cells of a medusa.

Mononucleated striated muscle cells can be isolated from anthomedusae and cultivated in artificial seawater. In the cultivated muscle the differentiated state is maintained and DNA synthesis is not observed. The isolated striated muscle can be activated by collagenase treatment to transdifferentiate into various new cell types. Between the second and third day following collagenase treatment DNA synthesis is initiated, and mitosis and de novo flagellum formation occur in the isolated muscle. Under these circumstances all isolated striated muscle fragments produce both smooth muscle cells and y-cells (Schmid and Alder, 1984). In experiments, in which either transcription (actinomycin D) or translation (cycloheximide) is inhibited, the activated striated muscle cells do not transdifferentiate but maintain their differentiated state. Inhibition of DNA replication (aphidicolin), however, results in uniform transdifferentiation of striated muscle to smooth muscle cells in the absence of y-cell types (Schmid and Alder, 1984). The fluorescence stain NBD-phallacidin is used to monitor the characteristic change of F-actin pattern of these isolates.

Actins↗

An attempt to assay the state of determination by using transfected genes as probes in transdifferentiation of neural retina into lens.

Hybrid genes coding for chloramphenicol acetyltransferase (CAT) with a non-specific retroviral, lens-specific delta-crystallin or lens-specific alpha-crystallin promoters were constructed to transfect the transdifferentiating (lentoidogenic) and non-transdifferentiating (non-lentoidogenic) cultures of chicken embryonic neural retina for assaying the state of determination towards lens differentiation. The expression occurred only when CAT genes with lens-specific promoters were transfected to the cultures maintained in the conditions permissive to lentoidogenesis. The expression of these exogenous, lens-specific CAT genes began at stages of culturing that were earlier than the expression of endogenous crystallin. Presumably, there are two steps in the transdifferentiation of neural retina into lens; acquisition of capacity to express crystallin genes and derepression of the endogenous crystallin genes.

Animals↗

Expression of gene coding for a melanosomal matrix protein transcriptionally regulated in the transdifferentiation of chick embryo pigmented epithelial cells.

Chicken 115-kDa melanosomal matrix protein (MMP115) was purified from cultured pigmented epithelial cells (PECs), and mouse antiserum was raised to isolate cDNA clones. lambda gt11 expression library made from poly(A)+ RNA of the homogeneous population of PECs was screened with the antiserum. Nine positive clones were obtained from 5 X 10(5) independent phages, and inserts of them shared a common nucleotide sequence. The beta-galactosidase fusion protein from the longest insert (MM-2, 1.0 kb long) was recognized by the anti-MMP115 antiserum in immunoblotting, and the antibody, which was affinity-selected by the fusion protein, specifically reacted with the 115-kDa protein in PEC extracts. The RNA blot analysis with the MM-2 insert as a probe revealed that a transcript of 2.6 kb was expressed by the PEC in a tissue-specific manner. mRNA expressions in the process of in vitro transdifferentiation from PECs to lens cells were analyzed using the MM-2 insert. The transcripts were detected in neither transdifferentiating, transdifferentiated lens cells nor bipotent dedifferentiated PECs, although the 2.6 kb transcript was vigorously synthesized by redifferentiating into PECs.

Animals↗