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The utilization of Ginkgo biloba in medicinal practice dates back to 1505 A.D. Ironically, the mechanisms of action of Ginkgo are not fully clarified till now. Nowadays, Ginkgo biloba leaf extracts are mainly indicated for mild to moderate cerebrovascular insufficiency and different forms of dementia. The fact that it is an herbal extract composed of several different components indeed adds to the intricacy of finding its mechanisms of actions. Indisputably, many scientists tried to elucidate the mechanisms of actions of Ginkgo. The first step to achieve this goal was to standardize the leaf extract. The standardized Ginkgo leaf extract contains 22-27 % flavonol glycosides, 2.8-3.4 % of ginkgolide A, B and C, as well as approximately 2.6-3.2 % bilobalide and below 5 ppm ginkgolic acids. A widespread standardized Ginkgo extract is the EGb 761, which was utilized in the current work. One of the earliest proposed mechanisms is the ability of the Ginkgo extract to act as an anti-oxidant, which could be explained by its high flavonoid contents. However, without doubt EGb 761 encompasses other characteristics which distinguish it from other herbal extracts that are also rich in flavonoids. Since free radicals and reactive oxygen species are highly associated with the mitochondrial functions, examination of the effect of EGb 761 on mitochondrial functions was lately addressed. Moreover, this was encouraged as the link between Alzheimer’s disease [AD] and the mitochondria started to emerge. Previously, our group observed mitochondrial protective actions of EGb 761 on cell culture in vitro. Furthermore, anti-apoptotic effects were previously described for EGb 761. However, only very few studies addressed the single constituents and their effect on mitochondrial functions. Flavonoids were studied in several other plant extracts and their radical scavenging activity is unquestionable, but EGb 761 has anti-apoptotic actions which may be attributed to its terpenoid fraction. Exclusively found in the Ginkgo plant, are the ginkgolides and therefore their actions are not yet fully elucidated. Moreover, those who attempted to address these constituents concentrated on one or two candidates, for example bilobalide or ginkgolide B and ignored the rest. Unfortunately, this led to incomplete results, and one couldn’t compare the relative activities of all EGb 761 components in order to state whether all the components are effective or not. ...
IL-18, a recently identified member of IL-1 family, is now recognized as an important regulator of innate and acquired immune responses. Therefore, the antitumor activities of IL-18 have been investigated. IL-18 has been shown to induce IFN-γ production by T, B, and NK cells, enhances NK cell activity, activates Fas ligandmediated apoptosis of the tumor cells, and improves the overall antitumor immunity. KG-1 cells were derived from a patient with acute myeloid leukemia (AML). IL-18 has been shown to induce IFN-γ production in those leukemic cells. TLR-3, in addition to its ability to recognize viral double stranded RNA, also can recognize the synthetic analogue poly(I:C) and induces type I IFN, inflammatory cytokine production, e.g TNF-α, and maturation of denderitic cells. In the present work the potential modulatory effect of PIC on IFN-γ and TNF-α production by KG-1 cells treated with IL-18 was investigated. Indeed, PIC strongly amplified the production of IFN-γ induced by IL-18 on mRNA and protein levels via NF-κB as well as p38 and JNK MAPK activation. Compared to IFN-γ, TNF-α showed different behaviour in KG-1 cells. On mRNA level I found only weak induction of TNF-α by IL-18 which was potentiated in the presence of PIC. Similarly, the release of TNF-α by IL-18 plus PIC required NF-κB as well as p38 and JNK MAPK activation. Furthermore, in the present work I found that TLR-3 is required for IFN-γ and TNF-α production. In addition, it is demonstrated by immunofluoresence that TLR-3 is localized in cytoplasm but not on the cell surface in KG-1 cells. Recently, it has been demonstrated that IFN-γ shows therapeutic potential as detected in AML blasts, specifically via inhibition of proliferation and induction of apoptosis. Thus our data could serve as a rationale for the clinical use of PIC and IL-18 in combination therapy. In search for new cytokines potentially modulated by the combination IL-18 plus PIC in KG-1 cells, cytokine antibody array analysis was performed. I found an upregulation of expected genes like IP-10 but most interestingly unexpected upregulation of PDGF-AA. Searching for detailed mechanisms of PDGF-AA induction, I found that neither p38 nor JNK is involved in PDGF-AA production but NF-κB is essential for the expression of PDGF-AA. Furthermore, I found that PDGF-AA is not able to increase the proliferation of KG-1 cells. PDGF and TGF-β are examples of signaling molecules which control the growth, survival, motility, and differentiation of cells. Therefore, the release of TGF-β by IL-18 plus PIC was monitored by ELISA. The level of TGF-β in cellular supernatants revealed that neither PIC nor IL-18 was able to significantly mediate release of TGF-β indicating that only PDGF-AA but not TGF-β is induced by PIC and IL-18 in KG-1 cells. To the best of our knowledge this is the first time that IL-18 or PIC is shown to induce the expression of PDGF-AA in KG-1 cells.
Breaking tolerance to the natural human liver autoantigen cytochrome P450 2D6 by virus infection
(2009)
Autoimmune hepatitis (AIH) is a chronic liver disease of unknown etiology, characterized by a loss of tolerance against hepatocytes leading to the progressive destruction of hepatic parenchyma and cirrhosis. Clinical signs for AIH are interface hepatitis and portal plasma cell infiltration, hypergammaglobulinemia, and autoantibodies. Based on serological markers AIH is defined in subtypes. The hallmark of AIH type 2 are type 1 liver/kidney microsomal autoantibodies (LKM-1), whereas AIH type 1 is characterized by the presence of anti-nuclear (ANA) and/or anti-smooth muscular (SMA) autoantibodies. The major autoantigen recognized specifically by LKM-1 autoantibodies was identified as the 2D6 isoform of the cytochrome P450 enzyme family (CYP2D6). Not much is known about the etiology and pathogenic mechanisms of AIH so far and most animal models available result in only transient hepatic liver damage after a rather complex initiation method. It was the aim of my project to generate a novel animal model for AIH that reflects the chronic and progressive destruction of the liver characteristic for the human disease while using a defined and feasible initiating event to further analyze the pathogenic mechanisms leading to the autoimmune-mediated destruction of the liver. Therefore, mice transgenically expressing the human CYP2D6 in the liver and wild-type mice were infected with a liver-tropic adenovirus expressing the human CYP2D6 (Ad-2D6). Selftolerance to CYP2D6 was broken in Ad-2D6-infected mice, resulting in persistent autoimmune liver damage, apparent by cellular infiltration, hepatic fibrosis and necrosis. Similar to type 2 AIH patients, Ad-2D6-infected mice generated LKM-1-like antibodies recognizing the same immunodominant epitope of CYP2D6. Taken together, we could introduce a new animal model that reflects the persistent autoimmune-mediated liver damage as well as the serological marker characteristic for AIH type 2 and we could demonstrate that chronic autoimmune diseases targeting the liver can be triggered by molecular mimicry occurring in the context of a hepatotropic viral infection.
The mTOR kinase inhibitor rapamycin (sirolimus) is a drug with potent immunosuppressive and antiproliferative properties. We found that rapamycin induces the TGF/Smad signaling cascade in rat mesangial cells (MC) as depicted by the nuclear translocation of phospho-Smads 2, -3 and Smad-4, respectively. Concomitantly rapamycin increases the nuclear DNA binding of receptor (R)- and co-Smad proteins to a cognate Smad-binding element (SBE) which in turn causes an increase in profibrotic gene expression as exemplified by the connective tissue growth factor (CTGF) and plasminogen activator inhibitor 1 (PAI-1). Using small interfering (si)RNA we demonstrate that Smad 2/3 activation by rapamycin depends on its endogenous receptor FK-binding protein 12 (FKBP12). Mechanistically, Smad induction by rapamycin is initiated by an increase in active TGF1 as shown by ELISA and by the inhibitory effects of a neutralizing TGF antibody. Using an activin receptor-like kinase (ALK)-5 inhibitor and by siRNA against the TGF type II receptor TGF-RII) we furthermore demonstrate a functional involvement of both types of TGF receptors. However, rapamycin did not compete with TGFfor TGF-receptor binding as found in radioligand-binding assay. Besides SB203580, a specific inhibitor of the p38 MAPK, the reactive oxygen species (ROS) scavenger N-acetyl-cysteine (NAC) and a cell-permeable superoxide dismutase (SOD) mimetic strongly abrogated the stimulatory effects of rapamycin on Smad 2 and 3 phosphorylation. Furthermore, the rapid increase in Dichlorofluorescein (DCF) formation implies that rapamycin mainly acts through ROS. In conclusion, activation of the profibrotic TGFSmad signaling cascade accompanies the immunosuppressive and antiproliferative actions of rapamycin. Keywords: FK506 binding protein; p38 MAP kinase; rapamycin; renal fibrosis; Smads; TGFβ