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N Fausto

Publications and source records attributed to N Fausto.

At least 37 records · Page 2Linked to original sources

Tumor necrosis factor primes hepatocytes for DNA replication in the rat.

Signaling through tumor necrosis factor receptor type 1 (TNFR-1) using a pathway that involves nuclear factor kappaB (NF-kappaB), interleukin-6 (IL-6), and STAT3 is required for the initiation of liver regeneration. We have proposed that TNF primes hepatocytes to respond to the mitogenic effect of growth factors, but so far, there has been no experimental demonstration that TNF enhances growth factor responses of hepatocytes. To test this hypothesis, we infused hepatocyte growth factor (HGF) and transforming growth factor (TGF-) (40 microgram/24 h) directly into the portal vein of rats for 24 hours using osmotic pumps and determined whether TNF injection (5 microgram per rat) would significantly increase hepatocyte DNA labeling in these animals. All rats received 5-bromo-2'-deoxyuridine (BrdU) by intraperitoneal delivery during a 48-hour period (i.e., BrdU infusion continued for 24 hours after the end of growth factor administration). BrdU labeling in the liver was measured by both immunohistochemistry and flow cytometry, and the results obtained by these methods showed excellent concordance. The results demonstrate that TNF transiently activates NF-kappaB and STAT3 and increases the proliferative response of hepatocytes to HGF or TGF- by fourfold. Priming effects on hepatocyte DNA replication were also obtained with injection of lipopolysaccharide (LPS) and gadolinium chloride (GdCl3), agents that release TNF in the liver. Similarly to TNF, GdCl3 injection caused the activation of NF-kappaB and STAT3, reaching a maximum 8 to 12 hours after the injection. The results show that TNF acts as a primer to sensitize hepatocytes to the proliferative effects of growth factors and offers a mechanism to explain the initiation and progression phases of liver regeneration after partial hepatectomy (PH).

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Deficient liver regeneration after carbon tetrachloride injury in mice lacking type 1 but not type 2 tumor necrosis factor receptor.

Signaling by tumor necrosis factor type 1 receptor (TNFR-1) is required for the initiation of liver regeneration after partial hepatectomy. Using knockout mice that lack either TNFR-1 or TNFR-2, we determined whether signaling through TNF receptors is important for liver injury and hepatocyte proliferation induced by carbon tetrachloride (CCl4). Lack of TNFR-1 inhibited hepatocyte DNA synthesis after CCl4 injection. At 44 hours after the injection, replication of hepatocytes in TNFR-1 was 50% to 90% lower than in wild-type (WT) animals, depending on the dose injected. In WT animals, hepatocyte replication was essentially completed by 4 days after CCl4 injection, but replication at a low level persisted in TNFR-1 mice for at least 2 weeks. TNFR-1 knockout mice had little detectable NF-kappa B and STAT3 binding during the first 5 hours after CCl4, high plasma TNF, and reduced levels of plasma interleukin (IL)-6 and liver IL-6 mRNA. Injection of IL-6 30 minutes before CCl4 administration corrected the deficiency of hepatocyte replication at 44 hours and restored STAT3 binding to normal levels. In contrast, mice lacking TNFR-2 did not differ significantly from WT mice in NF-kappa B and STAT3 binding, IL-6 and TNF levels, or hepatocyte replication. Although AP-1 binding was induced in WT TNFR-1 and TNFR-2 knockout mice, binding in TNFR-2 knockouts was lower than in WT mice. C/EBP binding was much lower in TNFR-1 and TNFR-2 knockout mice than in WT mice. As assessed by morphological analysis and alanine aminotransferase levels, the acute injury caused by CCl4 appeared to be similar in the three groups of animals, but subsequent regeneration was impaired in mice lacking TNFR-1. We conclude that a TNFR-1 signaling pathway involving NF-kappa B, IL-6, and STAT3 is an important component of the hepatocyte mitogenic response induced by CCl4 injury in mouse liver.

Alanine Transaminase↗

Initiation of liver growth by tumor necrosis factor: deficient liver regeneration in mice lacking type I tumor necrosis factor receptor.

The mechanisms that initiate liver regeneration after resection of liver tissue are not known. To determine whether cytokines are involved in the initiation of liver growth, we studied the regeneration of the liver after partial hepatectomy (PH) in mice lacking type I tumor necrosis factor receptor (TNFR-I). DNA synthesis after PH was severely impaired in these animals, and the expected increases in the binding of the NF-kappaB and STAT3 transcription factors shortly after PH failed to occur. Binding of AP-1 after PH was decreased in TNFR-I knockout mice compared with animals with the intact receptor whereas C/EBP binding was not modified. Injection of interleukin 6 in TNFR-I-deficient animals 30 min before PH corrected the defect in DNA synthesis and restored STAT3 and AP-1 binding to normal levels but had no effect on NF-kappaB binding in the regenerating liver. The results indicate that TNF, signaling through the TNFR-I, can initiate liver regeneration and acts by activating an interleukin 6-dependent pathway that involves the STAT3 transcription factor.

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Liver regeneration: prospects for therapy based on new technologies.

The liver is an amazing organ because it can regenerate. The differentiated parenchymal cells, which do not normally divide, can undergo multiple rounds of cellular division. This brings into question the exact role of the liver stem-cell, which has not been fully characterized. The knowledge gained from the dissection of the basic molecular and cellular events that occur during hepatic regeneration will be useful for advancing therapeutic interventions for individuals with liver disease or genetic deficiencies. This article reviews the basic principles of liver regeneration, experimental manipulations in animal models, and human clinical applications including cellular transplantation, gene therapy and artificial livers.

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Expression of Bcl-2 family during liver regeneration and identification of Bcl-x as a delayed early response gene.

Induction of Bcl-2 and Bcl-x has been demonstrated in mitogen-stimulated lymphocytes in vitro, suggesting that these two apoptosis modulators may also play a role during proliferation. To explore this possibility in a physiological setting, mRNA expression of various Bcl-2 family members was examined during liver regeneration induced by partial hepatectomy, a well characterized in vivo model of cell cycle progression. After a 60% partial hepatectomy in C3H/HeN mice, the steady-state levels of Bcl-x mRNA exhibited a cyclical pattern, with peaks at 4 hours (early G1) and 48 to 72 hours (G1 phase of the second hepatocyte cell cycle). A1 and Bcl-2 mRNA were not detected, and the levels of two Mcl-1 mRNA species remained low without significant changes. The three pro-apoptotic members of the family, Bak, Bad, and Bax, all showed an early decline in mRNA levels when Bcl-x transcripts increased, followed by later peaks at 12, 24, and 48 to 72 hours, respectively. Experiments were subsequently conducted in C3H/HeJ mice, an endotoxin-resistant strain with slower liver regeneration marked by a protracted G1 phase. Even though immediate-early gene responses measured by c-myc induction remained intact, the timing of Bcl-x mRNA expression was delayed in C3H/HeJ mice. When C3H/HeN mice were pretreated with cycloheximide before hepatectomy, the early peak of Bcl-x mRNA at 4 hours was essentially abrogated whereas the immediate-early gene c-myc was hyperinduced, thus implicating Bcl-x as a delayed early response gene during liver regeneration. Bcl-x was localized in hepatocytes and by both immunohistochemistry and Western blot analysis, Bcl-xL protein reached highest levels at 12 hours (mid-G1), consistent with the expression of a delayed early gene. In summary, the expression profiles of Bcl-2 family members during liver regeneration suggest a cell-cycle-dependent regulation as well as a physiological role for these apoptosis-modulating genes during growth and proliferation.

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Inhibition of NF-kappa B activity induces apoptosis in murine hepatocytes.

Recently we have demonstrated that inhibition of the nuclear factor (NF)-kappa B/Rel family of transcription factors induces apoptosis of B cells. Interestingly, mice lacking the relA gene encoding the p65 subunit of NF-kappa B exhibit embryonic lethality at days 15 to 16 of gestation, accompanied by massive destruction of liver via apoptosis. To determine whether p65 protein plays a direct role in hepatocyte survival, we employed a nontransformed murine hepatocyte (NMH) cell line, which maintains to a high degree the differentiated hepatocyte phenotype. Exponentially growing NMH cells were found to possess a constitutive level of functional classical (p50/p65) NF-kappa B as assayed by electrophoretic mobility shift analysis, antibody supershift, and transient transfection assays. Treatment of NMH cells with the proteasome inhibitor lactacystin, which prevents degradation of the NF-kappa B inhibitor proteins I kappa B, induced apoptosis. Direct inhibition of the endogenous NF-kappa B activity by microinjection of NMH cells with purified specific inhibitor I kappa B-alpha-glutathione-S-transferase fusion protein or an antibody against p65 protein induced apoptosis. These findings suggest that expression of NF-kappa B/Rel activity in murine hepatocytes acts directly to promote survival of these cells and suggest that apoptosis observed in hepatocytes of mice lacking relA is a direct effect of p65 deficiency.

Acetylcysteine↗

Nuclear factor-kappaB/Rel blocks transforming growth factor beta1-induced apoptosis of murine hepatocyte cell lines.

Treatment of hepatocytes with transforming growth factor beta1 (TGF-beta1) induces growth arrest, which is followed by extensive cell death by apoptosis. Previously, we found that TGF-beta1 down-modulates nuclear factor (NF)-kappaB/Rel activity in murine B cell lymphomas, inducing apoptosis. Furthermore, p65 (RelA)-deficient mice died during gestation due to apoptosis of liver cells. Here we have explored the effects of TGF-beta1 on hepatocytes, using two untransformed murine hepatocyte cell lines, AML-12 and NMH, which constitutively express classical NF-kappaB. TGF-beta1 treatment caused increased NF-kappaB binding that was followed by a dramatic decrease in NF-kappaB levels that preceded apoptosis. Ectopic c-Rel expression ablated apoptosis induced by TGF-beta1. The down-regulation in NF-kappaB activity correlated with elevated IkappaB-alpha expression due to hypophosphorylation and increased IkappaB-alpha protein stability. Thus, NF-kappaB factor expression acts directly to promote liver cell survival. Furthermore, these findings characterize a novel signaling pathway for TGF-beta1 in epithelial cells involving down-regulation of NF-kappaB/Rel factors activity through posttranslational modification of IkappaB-alpha protein.

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Analysis of the tumorigenicity of the X gene of hepatitis B virus in a nontransformed hepatocyte cell line and the effects of cotransfection with a murine p53 mutant equivalent to human codon 249.

Chronic infection with hepatitis B virus (HBV) is associated with the development of human hepatocellular carcinoma (HCC). One of the HBV genes, HBx, may have transforming potential, but this issue is still the subject of controversy. One of the major difficulties in addressing this question is the lack of a suitable in vitro model. We used a nontransformed, differentiated murine hepatocyte cell line (AML12) to transfect the HBx gene and examine its transforming capabilities. Because mutations of the p53 gene, in particular at codon 249, have been implicated in HCC development in geographical areas with high incidence of the tumor, we also studied the putative cooperative role in transformation between HBx and mutated p53 by cotransfecting HBx with a murine p53 mutant equivalent to human ser249 (ser246p53). Transfection with HBx plasmids containing the HBx gene under the control of two different promoters resulted in fewer colonies than in control plasmids. The toxic effect of HBx on colony formation was abolished by cotransfection with 246p53, suggesting that the inhibitory effect requires functionally intact p53. Clonal cell lines that stably expressed HBx messenger RNA (mRNA) (HBX lines) were tested for their growth characteristics and their ability to grow in soft agar and form tumors in nude mice. At passages 19-27 after transfection, one of four HBx-expressing lines showed the capacity for anchorage-independent growth in soft agar and produced poorly differentiated hepatocellular carcinomas in 8 of 13 sites of injection in nude mice. HBX lines as well as clonal cell lines of cells transfected with 246p53 (246 cell lines), cotransfected with HBx and 246p53 (246x lines) or transfected with control plasmids, were analyzed by flow cytometry to determine the fraction of cells in S phase (SPF). 246 and 246X lines had similar SPFs that were approximately twofold greater than control or HBX lines. 246x lines showed morphological changes in culture such as marked cellular heterogeneity, cell crowding, and the presence of multinucleated giant cells, but their tumorigenicity was not increased compared with the HBX lines. These data show that HBx has a weak tumorigenicity in murine hepatocytes and that the addition of mutation of p53 at codon 249 to HBx expression does not increase tumorigenicity in AML12 cells.

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Adenovirus-mediated urokinase gene transfer induces liver regeneration and allows for efficient retrovirus transduction of hepatocytes in vivo.

Retrovirus-mediated gene transfer into hepatocytes in vivo results in long-term gene expression. Limitations include the need to remove two-thirds of the liver and the relatively low frequency of gene transfer. To increase gene transfer without surgical hepatectomy, mouse hepatocytes were transduced in vivo with a recombinant adenovirus that transiently expressed urokinase, resulting in high rates of asynchronous liver regeneration. During the regenerative phase, in vivo retroviral-mediated gene transfer in hepatocytes resulted in 5- to 10-fold greater transduction efficiencies than that obtained by conventional partial hepatectomy. In 3-4 weeks, the architecture and microscopic structure of the recipient livers were normal. The two-viral system of achieving permanent transgene expression from hepatocytes in vivo offers an alternative approach to current ex vivo and in vivo gene-transfer models.

Adenoviridae↗

Introduction of a murine p53 mutation corresponding to human codon 249 into a murine hepatocyte cell line results in growth advantage, but not in transformation.

The p53 gene is frequently mutated in human tumors; in hepatocellular carcinomas, there is a high frequency of a specific mutation at codon 249 in regions with significant aflatoxin exposure. To assess the role of this p53 mutation in the development of hepatocellular carcinoma, a mutant murine p53 gene, p53ser246, which corresponds to human codon 249, was transfected into a differentiated, nontransformed hepatocyte cell line AML12. Expression of p53ser246 in this line resulted in a growth advantage when compared with either a control vector (which contains a large p53 deletion) or with a different p53 mutant, val135, not found in hepatocellular carcinoma. Overall, there was a threefold increase in colony formation after transfection with p53ser246 as compared with the control or p53val135 vectors, and the p53ser246 plates developed consistently larger colonies. Whereas clones expressing the control or p53val135 constructs showed no significant morphological changes, clones expressing p53ser246 showed increased heterogeneity (large multinucleated cells and areas of small crowded cells) without focus formation. In addition, the ser246 mutation imparted a growth advantage in serum-free media, suggesting less dependence on specific factors present in serum. None of the mutant p53 or control lines were capable of growth in soft agar or tumor formation in nude mice. Thus in this model, in which endogenous wild-type p53 expression is retained, a high level of mutant p53 expression is not sufficient to transform hepatocytes. Our findings indicate that p53ser246 has effects on hepatocytes that may result in a clonal growth advantage and suggest that additional factors are required for the development of hepatocellular carcinoma.

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Liver regeneration. 2. Role of growth factors and cytokines in hepatic regeneration.

During liver regeneration quiescent hepatocytes undergo one or two rounds of replication and then return to a nonproliferative state. Growth factors regulate this process by providing both stimulatory and inhibitory signals for cell proliferation. EGF, TGF alpha, and HGF stimulate DNA synthesis in hepatocytes in vivo and in culture but the sensitivity of cultured hepatocytes to the mitogenic effects of these factors is much higher than that of quiescent hepatocytes in intact livers. We have proposed that after partial hepatectomy, hepatocytes enter a state of replicative competence ("priming") before they can fully respond to growth factors. The priming step is an initiating event in liver regeneration that involves the activation and DNA binding of NF-kappa B and other transcription factors, which could be induced by TNF or other cytokines. EGF, TGF alpha, and HGF have major effects on liver growth. TGF alpha expression correlates with hepatocyte DNA synthesis during liver development and growth and the constitutive expression of the factor confers proliferative activity to adult hepatocytes in vivo and in culture. The data indicate that the activity of stimulatory and inhibitory growth factors such as TGF beta 1 and activin is low in normal livers but that the expression of both types of factors increase during liver regeneration.

Adult↗

Rapid DNA binding by nuclear factor kappa B in hepatocytes at the start of liver regeneration.

Liver regeneration after two-thirds partial hepatectomy (PH) is a process in which quiescent, fully differentiated hepatocytes rapidly reenter the cell cycle and eventually divide until the original liver mass is restored. Although the exact nature of the growth-initiating signals is unknown, enhanced expression of growth-related genes has been detected during the first hour after operation. This suggests that activation of transcriptional and posttranscriptional regulatory factors is likely to be a very early event in liver regeneration. Here we report the rapid, transient induction of DNA binding by nuclear factor (NF)-kappa B (p50/p65 heterodimer) and p50 homodimers within 30 min after PH. We also detected binding of post-hepatectomy factor. NF-kappa B binding peaks at 1 h after PH before declining and is not induced by sham operation. Liver cell separation studies indicated that the binding activation occurs in hepatocytes, a conclusion further supported by cell culture studies using the hepatocyte cell line AML-12. Furthermore, studies with the liver epithelial cell line LE-6 indicated that these DNA-binding activities are mitogen inducible. One-third hepatectomy, a procedure which primes hepatocytes to respond to growth factors, also induced NF-kappa B binding. We also found that tumor necrosis factor alpha, which may be involved in the control of liver regeneration, rapidly induced NF-kappa B DNA-binding activities in intact animals, similar to those induced by PH. These results suggest that NF-kappa B binding may play a role in making hepatocytes competent to proliferate.

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Autonomous growth in serum-free medium and production of hepatocellular carcinomas by differentiated hepatocyte lines that overexpress transforming growth factor alpha 1.

Transforming growth factor alpha (TGF-alpha) is a polypeptide closely associated with hepatocyte proliferation in vivo and in vitro. In order to investigate the mechanisms by which TGF-alpha contributes to hepatocyte replication and transformation, we isolated hepatocytes from mice bearing a human TGF-alpha transgene and examined their growth properties and gene expression in defined, serum-free culture. The transgenic hepatocytes continued to overexpress human TGF-alpha mRNA and peptide, and were able to proliferate without exogenous growth factors in primary culture, in contrast to nontransgenic mouse hepatocytes. In short-term culture the transgenic hepatocytes underwent 1 wave of DNA replication at 72-96 h in culture before senescing, similar to nontransgenic hepatocytes supplemented with epidermal growth factor. Constitutive expression of TGF-alpha rendered the transgenic hepatocytes unresponsive to further growth stimulation by exogenous TGF-alpha, as well as other mitogens such as epidermal growth factor and hepatocyte growth factor. However, it did not alter their sensitivity to growth inhibition by TGF beta 1, 2 and 3. The addition of nicotinamide to the culture medium enabled both transgenic and epidermal growth factor-supplemented normal hepatocytes to replicate repeatedly and survive for > or = 2 months in primary culture while maintaining differentiated traits. From these long-term primary cultures of transgenic and nontransgenic hepatocytes, we established immortalized cell lines (designated TAMH and NMH lines, respectively). Both lines continued to express differentiated adult hepatocytic markers such as albumin, alpha-1-antitrypsin, transferrin, and connexin 26 and 32 mRNAs, but also expressed mRNAs for the oncofetal markers alpha-fetoprotein and insulin-like growth factor II. Unlike the near-diploid NMH hepatocyte line, the transgenic TAMH hepatocyte line was quasi-tetraploid, strongly expressed human TGF-alpha mRNA, and was highly tumorigenic in nude mice. Well-differentiated hepatocellular carcinomas developed in nude mice given injections of the TAMH line, and these appeared similar to the primary liver tumors seen in TGF-alpha transgenic mice with regard to histology and strong expression of mouse and human TGF-alpha, insulin-like growth factor II, and alpha-fetoprotein mRNAs. Our data show that TGF-alpha overexpression causes autonomous hepatocyte proliferation and contributes to neoplasia but that additional cellular alterations must occur for carcinogenesis. Inappropriate expression of insulin-like growth factor II may constitute one of these steps. The TGF-alpha transgenic mouse hepatocyte line TAMH appears to undergo transformation in a similar manner to that of hepatocytes overexpressing TGF-alpha in vivo, and should serve as an ideal system in which to study hepatocarcinogenesis.

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Inhibition of tumor growth in liver epithelial cells transfected with a transforming growth factor alpha antisense gene.

Transforming growth factor alpha (TGF alpha) overexpression is associated with human hepatocellular carcinoma and with transformation of rat liver epithelial cell lines. In transgenic mice TGF alpha overexpression in the liver induces hepatocyte proliferation and leads to the development of tumors. Using a transformed rat liver epithelial cell line which can give rise to hepatocellular carcinomas, we used antisense genes to examine the importance of TGF alpha in tumor growth. Two different rat TGF alpha complementary DNA fragments were cloned in the antisense orientation into a thymidine kinase minigene downstream of a retroviral long terminal repeat. Cell lines that stably expressed the more effective construct, which contained a fragment that spanned the TGF alpha start codon, exhibited a 4-fold reduction in TGF alpha secretion relative to cell lines that expressed the thymidine kinase minigene alone. Following introduction into nude mice of 2 x 10(5) cells the control cell lines grew rapidly to produce large, highly cellular tumors by 5-6 weeks following injection, whereas with the antisense cell lines tumor growth was delayed so that tumors needed an additional 5 weeks to reach the same size. A high level of growth inhibition was also evident following injection of 2 x 10(6) cells, although the delay in tumor growth from antisense lines was shortened to about 3 weeks. Furthermore, tumors produced by 3 of the 4 antisense cell lines tested were fibrotic and hypocellular relative to those produced by the control cell lines. Growth of tumors from the antisense cell lines was associated with a decline in antisense RNA expression. In contrast, tumors generated from the control cell lines maintained high levels of expression of the control thymidine kinase minigene. These data demonstrate that tumor growth from highly tumorigenic liver cells can be inhibited by disrupting their ability to produce TGF alpha.

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Establishment and characterization of differentiated, nontransformed hepatocyte cell lines derived from mice transgenic for transforming growth factor alpha.

Hepatocytes are extensively used in studies of gene regulation but cannot be maintained in long-term culture as replicating, differentiated cells while remaining nontumorigenic. We have derived two hepatocyte lines from livers of transgenic mice overexpressing transforming growth factor alpha, a potent hepatocyte mitogen, which overcome these limitations. The transgenic hepatocytes were maintained for > or = 2 months in serum-supplemented primary culture and gave rise to cell lines, of which two (AML12 and AML14) have been cultured for > 1.5 years (> 80 passages). Both lines have typical hepatocyte features such as peroxisomes and bile canalicular-like structures, do not grow in soft agar, and are nontumorigenic in nude mice. Like normal hepatocytes, AML cells express high levels of mRNA for serum (albumin, alpha 1-antitrypsin, and transferrin) and gap junction (connexins 26 and 32) proteins, secrete albumin, and contain solely isozyme 5 of lactate dehydrogenase. After extensive passaging, AML12 cells continue to strongly coexpress hepatocyte connexin mRNAs but do not display nonparenchymal cell markers. Although mRNA levels for some serum proteins progressively fall, high expression in late AML12 cultures may be regained by passage in serum-free medium. The AML14 line loses expression of both differentiated markers and transgene mRNA with extended passaging, and hepatocytic traits are only partially restored by passage in serum-free medium. These differentiated, nontumorigenic cell lines should serve as models in which to study hepatocyte growth and differentiation.

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