PubMed Health⌕ Search

Biomedical subjects

R Shirakura

Publications and source records attributed to R Shirakura.

At least 73 records · Page 4Linked to original sources

Regulation of complement-mediated swine endothelial cell lysis by a surface-bound form of human C4b binding protein.

BACKGROUND: Human C4b-binding protein (C4bp) functions as a cofactor for factor I in the degradation of C4b and C3b and, in addition, accelerates the rate of decay of the C4b2a complex. METHODS: In this study, we constructed a surface-bound form of human C4b-binding protein (C4bp-PI) consisting of a short consensus repeat 1-8 of the alpha-chain of C4bp and a glycosyl phosphatidylinositol (GPI) of the decay-accelerating factor (CD55) and established stable swine endothelial cell (SEC) lines expressing C4bp-PI by transfection of cDNA. Amelioration of complement-mediated lysis by the transfectant molecules was tested as an in vitro hyperacute rejection model of swine to human discordant xenograft, using the lactate dehydrogenase assay. RESULTS: Flow cytometric profiles of the stable SEC lines with C4bp-PI showed a high level of expression of this molecule. The cell lysate of the SEC line with C4bp-PI showed strong cofactor activity in not only C4b but also C3b, whereas the activity of plasma C4bp to bind to C3 was very weak. Approximately 150 x 10(4) molecules of C4bp-PI per SEC blocked human complement-mediated cell lysis by approximately 75%. CONCLUSIONS: The results suggest that the surface-bound form of C4bp will be very useful in clinical xenotransplantation.

Animals↗

Overexpressed heat shock protein 70 attenuates hypoxic injury in coronary endothelial cells.

Previous studies indicate that heat shock protein 70 (hsp70) improves the myocardial tolerance to ischemia-reperfusion injury by a mechanism that is not well understood. To better define this protective function, it is important to distinguish a role of hsp70 on coronary endothelial cells (cEC) from that on cardiac myocytes. Thus, we transfected rat cEC with a human hsp70 cDNA by using hemagglutinating virus of Japan-liposome method (group H). Control cells (group C) were transfected with a vector containing no gene. Immunohistochemical staining demonstrated overexpression of hsp70 in the cytosol of the cells in group H. Western blotting also showed large amounts of hsp70 expression in these cells. After 18 h of hypoxia followed by 2 h of reoxygenation, the adenosine triphosphate content was higher in group H (H v C; 1.05 +/- 0.08 v 0.68 +/- 0.04 microgram/dish, P = 0.0007). In addition, lactate dehydrogenase leakage after hypoxic insult was lower in group H than that in group C (61.3 +/- 4.5 v 85.4 +/- 6.1 10(-3) IU/dish/37 degrees C, P = 0.004). Conversely, the leakage of FITC-albumin through a confluent monolayer of cEC after hypoxia-reoxygenation was less in group H than that in group C (11.1 +/- 1.8 v 27.4 +/- 3.1%, P = 0.0003). Thus, the high level expression of hsp70 caused by gene transfection enhanced the hypoxic tolerance of coronary endothelial cell. Therefore, coronary endothelial cell is an important targets of hsp70-mediated cardioprotection as well as cardiac myocytes.

Adenosine Triphosphate↗

A monomeric human C4b-binding protein (C4bp) more efficiently inactivates C3b than natural C4bp: participation of C-terminal domains in factor I-cofactor activity.

We designed a cDNA construct encoding an artificial membrane molecule consisting of all 8 short consensus repeats (SCRs) of human monomeric C4b-binding protein (C4bp) followed by DAF's GPI anchor, named mC4bp, and expressed the protein on swine endothelial cells (SEC). At the same level of expression, mC4bp protected host cells as effectively as DAF, the most potent complement (C) regulator on the membrane. This result was unexpected from the reported functional properties of natural multimeric C4bp. Here, we investigated the mechanism whereby mC4bp has potent cell-protective activity. Our results were as follows: (1) mC4bp serves more efficiently as a methylamine-treated C3 (C3ma)-inactivating factor I-cofactor than natural C4bp and as efficiently as MCP as a methylamine-treated (C4ma)-inactivating cofactor by fluid-phase cofactor assay: (2) the potency of C3ma inactivation by mC4bp and factor I is quite high compared to those of other cofactors: (3)blocking studies using mAbs against C4bp suggested that both the 48 kDa N-terminal fragment and the C-terminal domain near the portion responsible for bundle formation participate in the high C3ma-inactivating capacity of mC4bp. Thus, acquiring high C3ma-inactivating capacity secondary to monomeric alteration leads to high C regulatory activity of mC4bp. These results infer that mC4bp differs from C4bp in its potent factor I-cofactor activity and is a good candidate as a safeguard against hyperacute rejection of xenografts.

Complement C3b Inactivator Proteins↗

Prevention of hyperacute rejection by phosphatidylinositol-anchored mini-complement receptor type 1.

Complement receptor type 1 (CR1, CD35) contains both factor I cofactor activity and convertase decay accelerating activity, but is, in general, thought to be an extrinsic regulator of complement activation. In this study, we prepared a phosphatidylinositol (PI)-anchored mini-CR1, which is composed of the short consensus repeat (SCR) 8-11 of CR1 and the PI anchor of DAF, and expressed it stably on a swine endothelial cell (SEC) line. We then examined the intrinsic regulatory activity of the mini-CR1, with respect to complement-mediated cell lysis as an in vitro hyperacute rejection model of a swine to human discordant xenograft. Flowcytometric profiles of the stable SEC lines with mini-CR1 showed a moderate level of expression for this molecule. Mini-CR1 blocked human complement-mediated cell lysis by approximately 50-70% on SEC. From the data of this study and our previous studies, mini-CR1 was more effective than membrane cofactor protein (MCP, CD46), and as effective as decay accelerating factor (DAF, CD55) in this system. The results suggest that PI-anchored mini-CR1 represents a useful molecule for clinical xenotransplantation.

Animals↗

Neoplastic thymic epithelial cells of human thymoma support T cell development from CD4-CD8- cells to CD4+CD8+ cells in vitro.

Human thymoma is a thymic epithelial cell tumour which often contains a large number of immature T cells and is frequently associated with autoimmune diseases. Since thymic epithelial cells play key roles in the development and selection of T cells in the normal thymus, we hypothesized that the neoplastic thymic epithelial cells of thymoma may support T cell differentiation in the tumour. We characterized CD4-CD8- cells in thymoma and applied an in vitro reconstitution culture system using the CD4-CD8- cells and the neoplastic epithelial cells isolated from thymoma. CD34, a stem cell marker, was expressed on 29.9 +/- 12.2% of CD4-CD8- cells in thymoma. TCRgammadelta was expressed on 27.4 +/- 15.1% of CD4-CD8- cells and CD19, a B cell marker, was expressed on 14.1 +/- 23.1% of CD4-CD8- cells. CD4-CD8- cells expressed both IL-7R alpha-chain and common gamma-chain. Purified CD4-CD8- cells from thymomas were cultured with the neoplastic epithelial cells, and their differentiation into CD4+CD8+ cells via CD4 single-positive intermediates was observed within 9 days' co-culture in the presence of recombinant IL-7. Furthermore, we examined the reconstitution culture using CD34+CD4-CD8- cells purified from normal infant thymus. The CD34+CD4-CD8- cells in normal thymus also differentiated to CD4+CD8+ cells in the allogeneic co-culture with the neoplastic epithelial cells of thymoma. These results indicate that the tumour cells of thymoma retain the function of thymic epithelial cells and can induce differentiation of T cells in thymoma.

Adult↗

[Present and future of heart transplantation in Japan and the world].

During the past 31 year, cardiac transplantation has emerged as a standard mode of therapy for patients with end-stage congestive heart failure. At present, cardiac transplantation offers dramatically improved prospects for survival and rehabilitation in properly selected patients. The shortage of donor organs is the most common problem facing organ transplantation today. Despite widespread public education programs, the number of organ donors has leveled off at approximately 5,500 per year worldwide. More than 80% of patients in need of a heart, kidney, or liver allograft fail to receive the needed organ. Extensive research on the use of porcine xenografts as alternatives to allografts has been conducted since the 1980s. In this paper, the prospects for organ transplantation are reviewed.

Heart Transplantation↗

Significant downregulation of the major swine xenoantigen by N-acetylglucosaminyltransferase III gene transfection.

Introduction of the beta-D-mannoside beta-1,4-N-acetylglucosaminyltransferase III (GnT-III) gene into swine endothelial cells (SEC) reduced their susceptibility to normal human serum (NHS) in complement-mediated cell lysis and also suppressed the antigenicity to human natural antibodies as evidenced by flow cytometric analysis, as well as Griffonia simplicifolia 1 isolectin (1B4 lectin) binding to the Gal alpha1-3 Gal beta 1-4 GlcNAc-R (the alpha-galactosyl epitope). Western blot analysis indicated that proteins smaller than 66 kDa had diminished reactivity to NHS and 1B4 lectin. GnT-III, a key enzyme involved in branch formation of N-linked sugars, was found to downregulate the expression of xenoantigen, suggesting that this approach may be of value in clinical xenotransplantation in the future.

Animals↗

The regulation of membrane cofactor protein (CD46) expression by the 3' untranslated region in transgenic mice.

Regulation of the membrane cofactor protein (MCP: CD46) was examined. While the expression of MCP in mice carrying MCP(BC2) cDNA with 125 bp of 3' untranslated region (3'UT) was minimal, that in mice carrying MCP cDNA without total 3' UT was evident in many organs. Reverse transcriptase polymerase chain reaction (RT-PCR) analysis clearly showed the presence of mRNA even in transgenic mice with 3' UT, suggesting that the expression was regulated at the post-transcriptional stage. The in vitro expression data of MCP molecules on the stable Chinese hamster ovary (CHO) cell clone corresponded to that in transgenic mice. The first 125 bp downregulated the expression of MCP molecules in combination with not only beta-actin, but also SR alpha, promoter. Also, this region inhibited expression of decay accelerating factor (DAF: CD55) molecules when it was inserted into cDNA of DAF. Furthermore, the first 32 bp of the 3' UT revealed the same downregulation effect as 125 bp on MCP molecules. These findings indicated that the first 125 bp (and the first 32 bp in particular) of 3' UT regulate the expression of MCP molecules in transgenic mice.

Animals↗

In vivo gene transfection with heat shock protein 70 enhances myocardial tolerance to ischemia-reperfusion injury in rat.

Heat shock protein 70 (HSP70) has been reported to be involved in the myocardial self-preservation system. To obtain the evidence that HSP70 plays a direct role in the protection from myocardial ischemia-reperfusion injury, rat hearts were transfected with human HSP70 gene by intracoronary infusion of hemagglutinating virus of Japan (HVJ)-liposome containing human HSP70 gene. The control hearts were infused with HVJ-liposome without the HSP70 gene. The hearts from whole-body heat-stressed or nontreated rats were also examined. Western blot and immunohistochemical analysis showed that apparent overexpression of HSP70 occurred in the gene transfected hearts and that gene transfection might be more effective for HSP70 induction than heat stress. In Langendorff perfusion, better functional recovery as well as less creatine phosphokinase leakage after ischemia were obtained in the gene transfected hearts with HSP70 than in the control or nontreated hearts. Furthermore, the gene transfected hearts showed better functional recovery than the heat-stressed hearts. These results indicated that overexpressed HSP70 plays a protective role in myocardial injury, suggesting the possibility that gene transfection with HSP70 may become a novel method for myocardial protection through enforcing the self-preservation systems.

Animals↗