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T Ikezoe

Publications and source records attributed to T Ikezoe.

At least 19 recordsLinked to original sources

JNK interacting protein 1 (JIP-1) protects LNCaP prostate cancer cells from growth arrest and apoptosis mediated by 12-0-tetradecanoylphorbol-13-acetate (TPA).

12-0-tetradecanoylphorbol-13-acetate (TPA) stimulates protein kinase C (PKC) which mediates apoptosis in androgen-sensitive LNCaP human prostate cancer cells. The downstream signals of PKC that mediate TPA-induced apoptosis in LNCaP cells are unclear. In this study, we found that TPA activates the c-Jun NH2-terminal kinase (JNK)/c-Jun/AP-1 pathway. To explore the possible role that the JNK/c-Jun/AP-1 signal pathway has on TPA-induced apoptosis in LNCaP cells, we stably transfected the scaffold protein, JNK interacting protein 1 (JIP-1), which binds to JNK inhibiting its ability to phosphorylate c-Jun. TPA (10(-9)-10(-7) mol l(-1)) caused phosphorylation of JNK in both wild-type and JIP-1-transfected (LNCaP-JIP-1) cells. It resulted in phosphorylation and upregulation of expression of c-Jun protein in the wild-type LNCaP cells, but not in the JIP-1-transfected LNCaP cells. In addition, upregulation of AP-1 reporter activity by TPA (10(-9) mol l(-1)) occurred in LNCaP cells but was abrogated in LNCaP-JIP-1 cells. Thus, TPA stimulated c-Jun through JNK, and JIP-1 effectively blocked JNK. TPA (10(-12)-10(-8) mol l(-1)) treatment of LNCaP cells caused their growth inhibition, cell cycle arrest, upregulation of p53 and p21waf1, and induction of apoptosis. All of these effects were significantly attenuated when LNCaP-JIP-1 cells were similarly treated with TPA. A previous study showed that c-Jun/AP-1 blocked androgen receptor (AR) signaling by inhibiting AR binding to AR response elements (AREs) of target genes including prostate-specific antigen (PSA). Therefore, we hypothesised that TPA would not be able to disrupt the AR signal pathway in LNCaP-JIP-1 cells. Contrary to expectation, TPA (10(-9)-10(-8) mol l(-1)) inhibited DHT-induced AREs reporter activity and decreased levels of PSA in the LNCaP-JIP-1 cells. Taken together, TPA, probably by stimulation of PKC, phosphorylates JNK, which phosphorylates and increases expression of c-Jun leading to AP-1 activity. Growth control of prostate cancer cells can be mediated through the JNK/c-Jun pathway, but androgen responsiveness of these cells can be independent of this pathway, suggesting that androgen independence in progressive prostate cancer may not occur through activation of this pathway.

Adaptor Proteins, Signal Transducing↗

Baicalin is a major component of PC-SPES which inhibits the proliferation of human cancer cells via apoptosis and cell cycle arrest.

BACKGROUND: PC-SPES is an eight-herb mixture that was shown to have activity against prostate cancer. Recently, we isolated a major component (6% of the total ethanolic extract) known as baicalin from PC-SPES by high performance liquid chromatography (HPLC). METHODS: Baicalin was evaluated for its ability to inhibit clonal growth, and to induce cell cycle arrest of various cancer types (PC-3, DU145, LNCaP prostate cancer cell lines, MCF-7 breast cancer cell line, HL-60 myeloblastic leukemia cell line, and NB4 promyelocytic leukemia cell line). The ability of baicalin to induce apoptosis of cancer cells was examined by both staining with Annexin V and detection of cleavage of Poly (ADP-ribose) polymerase (PARP)(3). Western blot analysis examined the effect of baicalin on levels of p21(waf1) and p27(kip1) in those cells. Futhermore, induction of differentiation in HL-60 cells was measured by expression of CD11b. RESULTS: Baicalin inhibited the clonal proliferation of LNCaP and PC3 prostate cancer cell lines, and the HL-60 and NB4 myeloblastic/promyelocytic leukemia cell lines with a 50% inhibition (ED(50)) that ranged between 6.4 x 10(-6) to 12 x 10(-6) mol/L. Cell cycle analysis showed that baicalin (2 x 10(-5) mol/L, 4 days) caused a G(0)/G(1) and G(2)/M accumulation of LNCaP and HL-60 cells, respectively. Concomitantly, differentiation and apoptosis were induced in HL-60 cells, as measured by expression of CD11b antigen, staining with annexin V, and detection of cleavage of PARP. Moreover, baicalin enhanced the expression of the cyclin-dependent kinase inhibitor, p27(kip1) in LNCaP and HL-60 cells. CONCLUSIONS: Baicalin inhibited the proliferation of cancer cells via apoptosis and cell cycle arrest, in which p27(kip1) may play a role. Baicalin may be a novel, adjunctive therapy for selected malignancies including prostate cancer.

Annexin A5↗

Regulation of expression of murine transferrin receptor 2.

Complementary and genomic DNA for the murine transferrin receptor 2 (TfR2) were cloned and mapped to chromosome 5. Northern blot analysis showed that high levels of expression of murine TfR2 occurred in the liver, whereas expression of TfR1 in the liver was relatively low. During liver development, TfR2 was up-regulated and TfR1 was down-regulated. During erythrocytic differentiation of murine erythroleukemia (MEL) cells induced by dimethylsulfoxide, expression of TfR1 increased, whereas TfR2 decreased. In MEL cells, expression of TfR1 was induced by desferrioxamine, an iron chelator, and it was reduced by ferric nitrate. In contrast, levels of TfR2 were not affected by the cellular iron status. Reporter assay showed that GATA-1, an erythroid-specific transcription factor essential for erythrocytic differentiation at relatively early stages, enhanced TfR2 promoter activity. Interestingly, FOG-1, a cofactor of GATA-1 required for erythrocyte maturation, repressed the enhancement of the activity by GATA-1. Also, CCAAT-enhancer binding protein, which is abundant in liver, enhanced the promoter activity. Thus, tissue distribution of TfR2 was consistent with the reporter assays. Expression profiles of TfR2 were different from those of TfR1, suggesting unique functions for TfR2, which may be involved in iron metabolism, hepatocyte function, and erythrocytic differentiation.

3T3 Cells↗

Mutational analysis of the peroxisome proliferator-activated receptor gamma gene in human malignancies.

Peroxisome proliferator-activated receptor gamma (PPARgamma) plays an important role in adipocyte differentiation and is expressed in many human malignancies, including those from prostate, breast, as well as colon. It regulates differentiation and/or cell growth of these cells. However, expression of this nuclear hormone receptor in other types of cancer, especially in hematological malignancies, remains to be fully elucidated. The PPARgamma gene has been mapped to chromosome band 3p25, where chromosomal abnormalities are observed in a variety of human malignancies. Furthermore, a recent study revealed that the PPARgamma gene is functionally mutated in sporadic colon cancer cells. Therefore, PPARgamma could be an important tumor suppressor gene. This prompted us to investigate the expression and mutational status of the PPARgamma gene in cancers of a variety of tissues. A total of 159 samples were interrogated for their expression of PPARgamma as measured by reverse transcription-polymerase chain reaction and/or Western blot analysis. In each of the samples, expression of PPARgamma was detectable. In addition, a total of 397 clinical samples and cell lines including colon, prostate, breast and lung cancers, and leukemias were analyzed for mutations of the PPARgamma gene by either reverse transcription-polymerase chain reaction-single-strand conformation polymorphism or polymerase chain reaction-single-strand conformation polymorphism analysis. No abnormalities were detectable in any of the human malignancies. On the other hand, shifted bands were easily detectable when using positive controls, which harbored the same sequence alterations reported previously in colon cancer cells. Taken together, PPARgamma is expressed in a variety of cancers, and mutation of the PPARgamma gene is a very rare event in human malignancies.

Blotting, Western↗

Mutation analysis of the DNA-damage checkpoint gene CHK2 in myelodysplastic syndromes and acute myeloid leukemias.

Checkpoint genes code for a family of proteins which sense DNA damage in eukaryotic cells. They play an important role in the control of the cell cycle. The human CHK2 is a homolog of the yeast G(2) checkpoint kinases known as CDS1 and RAD53. The CHK2 may be a tumor suppressor gene because it was found to be mutated in some individuals with the Li-Fraumeni syndrome. These cases had a normal, non-mutated p53 gene. We performed a mutational analysis of the CHK2 gene using polymerase chain reaction-single strand conformation polymorphism (PCR-SSCP) in 41 bone marrow samples from individuals with myelodysplastic syndrome (MDS) and 41 samples of acute myeloid leukemias (AML). We found a novel G to C transversion resulting in a change from Ala to Gly at codon 507 of CHK2 in one MDS sample, but normal cells from this individual did not have the abnormality. In addition, we demonstrated a previously described polymorphism at codon 84 (A to G at nucleotide 252) of exon 1 of CHK2 in three of 41 MDS and three of 41 AML patients. The presence of a CHK2 mutation in MDS highlights the importance of alterations of cell cycle checkpoint genes in this disease.

Acute Disease↗

Analysis of the CHK2 gene in lymphoid malignancies.

The CHK2 gene encodes a protein kinase that is important for the regulation of cell cycle arrest after DNA damage. CHK2 acts downstream of ataxia teleangiecstasia mutated (ATM), modulates the function of p53 and may help mediate cell cycle arrest at G2/M by phosphorylation of Cdc25C. Recently, the human homolog of the checkpoint kinase Cds1 (CHK2) has been suggested to be a tumor suppressor gene. Heterozygous germline mutations have been reported in Li-Fraumeni syndrome (LFS), a highly penetrant familial cancer phenotype, and in sporadic colon cancer. LFS is associated with the development of lymphoid malignancies, especially childhood ALL. Therefore, we analyzed the DNA from 143 lymphoid malignancies to determine whether they had mutations of the CHK2 gene. The 14 exons of CHK2 were studied by polymerase chain reaction-single strand conformational polymorphism (PCR-SSCP) and sequencing of aberrantly migrating bands. One missense mutation changing serine to phenylalanine (codon 428) in an evolutionarily highly conserved domain was found in a non-Hodgkin's aggressive lymphoma. Another point mutation in the non-coding region was identified in one of adult T-cell leukemias (ATL) samples. This result suggests that mutation of the CHK2 gene may rarely be involved in the development of selected lymphomas.

Adult↗

HIV-1 protease inhibitors decrease proliferation and induce differentiation of human myelocytic leukemia cells.

Inhibitors of the protease of human immunodeficiency virus type 1 (HIV-1) may inhibit cytoplasmic retinoic acid-binding proteins, cytochrome P450 isoforms, as well as P-glycoproteins. These features of the protease inhibitors might enhance the activity of retinoids. To explore this hypothesis, myeloid leukemia cells were cultured with all-trans retinoic acid (ATRA) either alone or in combination with the HIV-1 protease inhibitors indinavir, ritonavir, and saquinavir. Consistent with the hypothesis, the HIV-1 protease inhibitors enhanced the ability of ATRA to inhibit growth and induce differentiation of HL-60 and NB4 myeloid leukemia cells, as measured by expression of CD11b and CD66b cell surface antigens, as well as reduction of nitroblue tetrazolium. Growth of ATRA-resistant UF-1 cells was also inhibited when cultured with the combination of ATRA and indinavir. Moreover, indinavir enhanced the ability of ATRA to induce expression of the myeloid differentiation-related transcription factor C/EBPepsilon messenger RNA in NB4 cells by 9.5-fold. Taken together, the results show that HIV-1 protease inhibitors enhance the antiproliferative and differentiating effects of ATRA on myeloid leukemia cells. An HIV-1 protease inhibitor might be a useful adjuvant with ATRA for patients with acute promyelocytic leukemia and possibly retinoid-resistant cancers.

CCAAT-Enhancer-Binding Proteins↗

Down-Regulation of prostate-specific antigen expression by ligands for peroxisome proliferator-activated receptor gamma in human prostate cancer.

The peroxisome proliferator-activated receptor gamma (PPARgamma) is a member of the nuclear receptor superfamily. Recent studies found that ligand-activated PPARgamma regulated differentiation and clonal growth of several types of cancer cells, including prostate cancer, suggesting that PPARgamma could be a tumor suppressor. Troglitazone was a widely used antidiabetic drug that activates PPARgamma. Recently, we reported that this agent had antiprostate cancer effects in vitro and in vivo. In this study, we administered troglitazone for over 1.5 years to an individual with occult recurrent prostate cancer. Using the prostate-specific antigen (PSA) levels as a surrogate marker of the disease, the oral administration of troglitazone (600-800 mg/day) reduced the increase velocity of PSA levels, suggesting clinical efficacy of troglitazone in prostate cancer. PSA promoter/ enhancer reporter assays showed that the PPARgamma ligands troglitazone (10(-5) M), pioglitazone (10(-5) M), or 15-deoxy-delta12,14-prostaglandin J2 (10(-5) M) down-regulated androgen-stimulated reporter gene activity in LNCaP cells, a prostate cancer cell line. The PSA promoter contains androgen receptor response elements (AREs). Reporter gene studies showed that troglitazone inhibited androgen activation of the AREs in the PSA regulatory region. Consistent with inhibition of gene expression, 2 days of incubation of LNCaP with troglitazone dramatically suppressed PSA protein expression without suppressing AR expression, suggesting that troglitazone inhibited ARE activation by a mechanism other than down-regulation of expression of the AR. Taken together, ligands of PPARgamma may be a useful therapeutic approach for the treatment of prostate cancer and may be acting, in part, by inhibiting transactivation of androgen-responsive genes.

Adenocarcinoma↗

Mutations of the E2F4 gene in hematological malignancies having microsatellite instability.

Mutations of coding repeats within the E2F4, TGF-betaRII, BAX, IGFIIR, and hMSH3 are critical targets of microsatellite instability (MSI) in many kinds of cancers. We analyzed 9 childhood acute lymphoblastic leukemia (ALL) samples, 5 acute myelocytic leukemia (AML) samples, and 10 adult T-cell leukemia (ATL) samples having MSI to determine whether they had mutations of the E2F4, TGF-betaRII, BAX, IGFIIR, and hMSH3 genes. Frameshift mutations were found at trinucleotide repeats within a coding exon of the E2F4 gene in 2 of 10 (20%) ATL samples and 1 of 9 (11%) childhood ALL samples. No mutations were found in the TGF-betaRII, BAX, IGFIIR, and hMSH3 genes. E2F4 is a transcription factor that influences the cell-cycle progression. These results suggest that mutations of the E2F4 gene, presumably caused by an abnormality of one of the DNA repair genes, may play an important role in development of ATL and childhood ALL. (Blood. 2000;95:1509-1510)

Adult↗

In situ detection of Aspergillus 18S ribosomal RNA in invasive pulmonary aspergillosis.

OBJECTS: We attempted to evaluate the usefulness of in situ hybridization (ISH) in the specific diagnosis of Aspergillus pulmonary infection. METHODS: We used an ISH technique using a multiple digoxigenin-incorporating probe, which was constructed by means of the polymerase chain reaction (PCR) from the 18S ribosomal RNA of Aspergillus fumigatus. MATERIALS: We studied twelve formalin-fixed, paraffin-embedded lung tissue sections from autopsy-confirmed invasive pulmonary aspergillosis (IPA) (5 acute myelocytic leukemias, 2 acute lymphocytic leukemias, 2 chronic myelocytic leukemias, 1 adult T-cell leukemia, 1 non-Hodgkin's lymphoma and 1 chronic obstructive pulmonary disease.), and 18 sections from other pulmonary infections as control. RESULTS: ISH using the probe and a low-viscosity hybridization buffer solution (LV) positively stained hyphal elements in 12 of 12 autopsy lung tissue specimens from subjects with IPA, while ISH using the probe and a high viscosity hybridization buffer solution (HV) positively stained the hyphal elements in 6 of 12. Specifically, ISH (LV) demonstrates hyphal elements of Aspergillus spp. in the center of Aspergillus abscess. While, ISH (HV) can detect hyphal elements located in the periphery of a suppurative abscess as well as those in the blood vessel. Conversely, ISH did not show positive results for any of the autopsy tissue specimens from subjects with other fungal pneumonia infections (Candida n=5, Mucor n=2, Cryptococcus n=2, and Pseudallescheria n=1), Pneumocystis carinii pneumonia (n=5), and cytomegalovirus pneumonia (n=3). Dual staining by means of ISH and immunohistochemistry (IHC) using anti-neutrophil elastase (NE) and anti-CD68 monoclonal antibodies showed that NE positive cells were localized at the edge of the radial growth of the organism, but CD68 positive cells were located around the center of the abscess. The accumulation of NE positive cells was rarely seen in half of the cases (6/12). In contrast, CD68 positive cells were routinely present in the center of the abscess (12/12). CONCLUSION: ISH in conjunction with IHC is a useful tool for differentiating Aspergillus spp. from other fungal genera in tissue sections from patients with IPA and may have a certain role in the evaluation of the interactions between organisms and recruiting inflammatory cells.

Adult↗

Defective human T-lymphotrophic virus type I provirus in T-cell prolymphocytic leukaemia.

T-cell prolymphocytic leukaemia (T-PLL) is a rare form of post-thymic T-cell neoplasm, the aetiology of which remains unknown. We examined human T-lymphotropic virus (HTLV) provirus in five HTLV-I/II seronegative patients with T-PLL. Southern blotting did not show monoclonal integration of the HTLV-I genome in any of the DNA samples. However, two of the five DNA samples contained an HTLV-I tax sequence. Other sets of oligonucleotide primers for HTLV-I gag, pol, env and LTR regions were all negative. HTLV-I tax gene expression and p40tax antibody were not detected in samples from cases with HTLV-I tax sequence. Our findings suggest that there may be alternative mechanisms involved in HTLV-associated leukaemogenesis, in which HTLV-I genome insertion triggers T-PLL but the deletion of various regions of the integrated provirus subsequently prevents active replication and the expression of the virus.

Adult↗

Prevalence of HTLV-I in leprosy patients in two sanatoriums in Japan.

To determine the association between leprosy and HTLV-I, 450 and 394 leprosy patients in two sanatoriums in Japan (Sanatorium-A in Okayama prefecture and Sanatorium-B in Gunma prefecture) were investigated serologically for antibodies to HTLV-I. Serology was positive for HTLV-I in 38 (8.4%) of 450 leprosy patients in Sanatorium-A and in 34 (8.6%) of 394 patients in Sanatorium-B. Prevalence was much higher than that in the general population of these areas in Japan. A large proportion of HTLV-I-positive patients in both sanatoriums came from HTLV-I nonendemic areas in Japan, suggesting that HTLV-I infection occurred after the patients arrived at the sanatoriums. Infection through sexual contact or reuse of needles for frequent vaccination are possible routes of infection for HTLV-I in these cases.

Age Distribution↗

Analysis of the Smad2 gene in hematological malignancies.

A total of 34 leukemia and lymphoma samples (17 clinical samples and 17 cell lines) were analyzed for mutations of the Smad2 gene by reverse transcriptase-polymerase chain reaction single strand conformation polymorphism (RT-PCR-SSCP) analysis. Nine of the 34 samples had 18q chromosomal abnormalities. No shifted bands were detected in any of the hematological malignancies. Our results suggest that resistance to cell growth inhibitory effects of TGF-beta in hematological malignancies is not due to alterations of the Smad2 gene.

Adolescent↗

Dual infection of rabbits with human T cell lymphotropic virus types I and II.

Attempts were made to generate a rabbit model of dual infection with human T lymphotropic virus (HTLV) types I and II. Four groups (A, B, C, and D) of three rabbits each were used. Group A was inoculated with the RW-1 cell line coinfected with HTLV-I and HTLV-II and group B was transfused from a dually infected rabbit. Polymerase chain reaction (PCR) using primers specific for the pol region of each virus detected both HTLV-I and HTLV-II in all group A and two group B rabbits, but HTLV-II only in the remaining group B rabbit. Groups C and D already infected with HTLV-I and HTLV-II, respectively, were inoculated with an HTLV-II- or HTLV-I-producing cell line. One group C rabbit became PCR-positive for both viruses but the other five resisted superinfection with the respective viruses. During prolonged observation, three of the six dually infected rabbits converted to single (HTLV-I or HTLV-II) infection. The in vivo dual infection was confirmed by in vitro establishment of a lymphoid cell line coinfected with HTLV-I and HTLV-II. It was also possible to establish coinfected lymphoid cell lines from HTLV-I-infected rabbits by coculture with lethally irradiated HTLV-II-producing cells and vice versa. The mechanism of viral elimination in dually infected rabbits, as well as that of protective immunity against superinfection, remains to be elucidated.

Animals↗