Catalogue Search | MBRL
Search Results Heading
Explore the vast range of titles available.
MBRLSearchResults
-
DisciplineDiscipline
-
Is Peer ReviewedIs Peer Reviewed
-
Item TypeItem Type
-
SubjectSubject
-
YearFrom:-To:
-
More FiltersMore FiltersSourceLanguage
Done
Filters
Reset
139
result(s) for
"Masuko, Takashi"
Sort by:
Glutaminolysis‐related genes determine sensitivity to xCT‐targeted therapy in head and neck squamous cell carcinoma
by
Kawaguchi, Sho
,
Banno, Kouji
,
Yoshikawa, Momoko
in
Acidification
,
Amino Acid Transport System ASC - genetics
,
Amino Acid Transport System y+ - antagonists & inhibitors
2019
Targeting the function of membrane transporters in cancer stemlike cells is a potential new therapeutic approach. Cystine‐glutamate antiporter xCT expressed in CD44 variant (CD44v)‐expressing cancer cells contributes to the resistance to oxidative stress as well as cancer therapy through promoting glutathione (GSH)‐mediated antioxidant defense. Amino acid transport by xCT might, thus, be a promising target for cancer treatment, whereas the determination factors for cancer cell sensitivity to xCT‐targeted therapy remain unclear. Here, we demonstrate that high expression of xCT and glutamine transporter ASCT2 is correlated with undifferentiated status and diminished along with cell differentiation in head and neck squamous cell carcinoma (HNSCC). The cytotoxicity of the xCT inhibitor sulfasalazine relies on ASCT2‐dependent glutamine uptake and glutamate dehydrogenase (GLUD)‐mediated α‐ketoglutarate (α‐KG) production. Metabolome analysis revealed that sulfasalazine treatment triggers the increase of glutamate‐derived tricarboxylic acid cycle intermediate α‐KG, in addition to the decrease of cysteine and GSH content. Furthermore, ablation of GLUD markedly reduced the sulfasalazine cytotoxicity in CD44v‐expressing stemlike HNSCC cells. Thus, xCT inhibition by sulfasalazine leads to the impairment of GSH synthesis and enhancement of mitochondrial metabolism, leading to reactive oxygen species (ROS) generation and, thereby, triggers oxidative damage. Our findings establish a rationale for the use of glutamine metabolism (glutaminolysis)‐related genes, including ASCT2 and GLUD, as biomarkers to predict the efficacy of xCT‐targeted therapy for heterogeneous HNSCC tumors. Competition exists between xCT‐mediated cystine uptake and GLUD‐mediated alpha‐KG generation.
Journal Article
Inhibition of tumor formation and metastasis by a monoclonal antibody against lymphatic vessel endothelial hyaluronan receptor 1
by
Tatano, Yutaka
,
Ohno, Yoshiya
,
Torii, Ryota
in
Animals
,
Antibodies, Monoclonal - pharmacology
,
Antibodies, Monoclonal - therapeutic use
2018
Although cancer metastasis is associated with poor prognosis, the mechanisms of this event, especially via lymphatic vessels, remain unclear. Lymphatic vessel endothelial hyaluronan receptor 1 (LYVE‐1) is expressed on lymphatic vessel endothelium and is considered to be a specific marker of lymphatic vessels, but it is unknown how LYVE‐1 is involved in the growth and metastasis of cancer cells. We produced rat monoclonal antibodies (mAb) recognizing the extracellular domain of mouse LYVE‐1, and investigated the roles of LYVE‐1 in tumor formation and metastasis. The mAb 38M and 64R were selected from hybridoma clones created by cell fusion between spleen cells of rats immunized with RH7777 rat hepatoma cells expressing green fluorescent protein (GFP)‐fused mouse LYVE‐1 proteins and mouse myeloma cells. Two mAb reacted with RH7777 and HEK293F human embryonic kidney cells expressing GFP‐fused mouse LYVE‐1 proteins in a GFP expression‐dependent manner, and each recognized a distinct epitope. On immunohistology, the 38M mAb specifically stained lymphatic vessels in several mouse tissues. In the wound healing assay, the 64R mAb inhibited cell migration of HEK293F cells expressing LYVE‐1 and mouse lymphatic endothelial cells (LEC), as well as tube formation by LEC. Furthermore, this mAb inhibited primary tumor formation and metastasis to lymph nodes in metastatic MDA‐MB‐231 xenograft models. This shows that LYVE‐1 is involved in primary tumor formation and metastasis, and it may be a promising molecular target for cancer therapy. LYVE‐1 is involved in primary tumor formation and metastasis, and may be a promising molecular target for cancer therapy with therapeutic mAb.
Journal Article
Antitumor effects of novel mAbs against cationic amino acid transporter 1 (CAT1) on human CRC with amplified CAT1 gene
by
Endo, Yuichi
,
Yoshioka, Toshiaki
,
Komiyama, Hiromitsu
in
Addictions
,
Animals
,
Antibodies, Monoclonal - pharmacology
2021
Copy number alterations detected by comparative genomic hybridization (CGH) can lead to the identification of novel cancer‐related genes. We analyzed chromosomal aberrations in a set of 100 human primary colorectal cancers (CRCs) using CGH and found a solute carrier (SLC) 7A1 gene, which encodes cationic amino acid transporter 1 (CAT1) with 14 putative transmembrane domains, in a chromosome region (13q12.3) with a high frequency of gene amplifications. SLC7A1/CAT1 is a transporter responsible for the uptake of cationic amino acids (arginine, lysine, and ornithine) essential for cellular growth. Microarray and PCR analyses have revealed that mRNA transcribed from CAT1 is overexpressed in more than 70% of human CRC samples, and RNA interference–mediated knockdown of CAT1 inhibited the cell growth of CRCs. Rats were immunized with rat hepatoma cells expressing CAT1 tagged with green fluorescent protein (GFP), and rat splenocytes were fused with mouse myeloma cells. Five rat monoclonal antibodies (mAbs) (CA1 ~ CA5) reacting with HEK293 cells expressing CAT1‐GFP in a GFP expression–dependent manner were selected from established hybridoma clones. Novel anti‐CAT1 mAbs selectively reacted with human CRC tumor tissues compared with adjacent normal tissues according to immuno‐histochemical staining and bound strongly to numerous human cancer cell lines by flow cytometry. Anti‐CAT1 mAbs exhibited internalization activity, antibody‐dependent cellular cytotoxicity, and migration inhibition activity against CRC cell lines. Furthermore, CA2 inhibited the in vivo growth of human HT29 and SW‐C4 CRC tumors in nude mice. This study suggested CAT1 to be a promising target for mAb therapy against CRCs. Frequent gene amplification of SLC7A1/CAT1 and increased CAT1 mRNA expression in colorectal cancers (CRC) were demonstrated. Novel anti‐CAT1 monoclonal antibodies (mAbs) were developed, and higher expression of CAT1 protein in CRC and in vivo antitumor effects of mAbs on xenografted CRC cells in nude mice were confirmed. CAT1 may be a promising target for anti‐CRC therapy.
Journal Article
Alternative splicing of CD44 mRNA by ESRP1 enhances lung colonization of metastatic cancer cell
2012
In cancer metastasis, various environmental stressors attack the disseminating cells. The successful colonization of cancer cells in secondary sites therefore requires the ability of the cells to avoid the consequences of such exposure to the stressors. Here we show that orthotopic transplantation of a CD44 variant isoform-expressing (CD44v
+
) subpopulation of 4T1 breast cancer cells, but not that of a CD44v
−
subpopulation, in mice results in efficient lung metastasis accompanied by expansion of stem-like cancer cells. Such metastasis is dependent on the activity of the cystine transporter xCT, and the stability of this protein is controlled by CD44v. We find that epithelial splicing regulatory protein 1 regulates the expression of CD44v, and knockdown of epithelial splicing regulatory protein 1 in CD44v
+
cells results in an isoform switch from CD44v to CD44 standard (CD44s), leading to reduced cell surface expression of xCT and suppression of lung colonization. The epithelial splicing regulatory protein 1-CD44v-xCT axis is thus a potential therapeutic target for the prevention of metastasis.
CD44 is a cell surface protein that is a marker for stem cell-like cancer cells and has a role in invasion and metastasis. Here, epithelial splicing regulatory protein 1 is shown to generate a CD44 variant protein that enhances metastasis in a mouse model and protects cells from oxidative stress.
Journal Article
CD44 variant‐dependent redox status regulation in liver fluke‐associated cholangiocarcinoma: A target for cholangiocarcinoma treatment
2016
Expression of CD44, especially the variant isoforms (CD44v) of this major cancer stem cell marker, contributes to reactive oxygen species (ROS) defense through stabilizing xCT (a cystine–glutamate transporter) and promoting glutathione synthesis. This enhances cancer development and increases chemotherapy resistance. We investigate the role of CD44v in the regulation of the ROS defense system in cholangiocarcinoma (CCA). Immunohistochemical staining of CD44v and p38MAPK (a major ROS target) expression in Opisthorchis viverrini‐induced hamster CCA tissues (at 60, 90, 120, and 180 days) reveals a decreased phospho‐p38MAPK signal, whereas the CD44v signal was increased during bile duct transformation. Patients with CCA showed CD44v overexpression and negative‐phospho‐p38MAPK patients a significantly shorter survival rate than the low CD44v signal and positive‐phospho‐p38MAPK patients (P = 0.030). Knockdown of CD44 showed that xCT and glutathione levels were decreased, leading to a high level of ROS. We examined xCT‐targeted CD44v cancer stem cell therapy using sulfasalazine. Glutathione decreased and ROS increased after the treatment, leading to inhibition of cell proliferation and induction of cell death. Thus, the accumulation of CD44v leads to the suppression of p38MAPK in transforming bile duct cells. The redox status regulation of CCA cells depends on the expression of CD44v to contribute the xCT function and is a link to the poor prognosis of patients. Thus, an xCT inhibitor could inhibit cell growth and activate cell death. This suggests that an xCT‐targeting drug may improve CCA therapy by sensitization to the available drug (e.g. gemcitabine) by blocking the mechanism of the cell's ROS defensive system. The redox status regulation of CCA cells depends on the expression of CD44v to contribute the xCT function and is a link to the carcinogenesis and poor prognosis of patients.
Journal Article
Functional role of CD44v‐xCT system in the development of spasmolytic polypeptide‐expressing metaplasia
by
Wada, Takeyuki
,
Oshima, Masanobu
,
Kitagawa, Yuko
in
Adenocarcinoma - etiology
,
Adenocarcinoma - metabolism
,
Adenocarcinoma - pathology
2013
Cancer development is often preceded by the appearance of preneoplastic lesions. In gastric carcinogenesis, chronic inflammation and histopathologic progression of the stomach epithelium lead to the development of metaplasia and eventually adenocarcinoma. The cell surface protein CD44, especially its variant isoforms (CD44v), has been implicated in metaplasia–carcinoma sequence progression in the stomach. We recently found that CD44v interacts with and stabilizes xCT, a subunit of the cystine transporter system xc(–), in cancer cells and thereby increases cystine uptake and confers resistance to various types of cellular stress in vivo. The functional relevance of CD44v and xCT in the development of preneoplastic lesions, however, has remained unknown. We have now examined the role of the CD44v‐xCT system in the development of spasmolytic polypeptide‐expressing metaplasia (SPEM) in mouse models of gastric carcinogenesis. CD44v was found to be expressed de novo in SPEM, and CD44v+ metaplastic cells manifested upregulation of xCT expression compared with CD44v− cells. Genetic ablation of CD44 or treatment with sulfasalazine, an inhibitor of xCT‐dependent cystine transport, suppressed the development of SPEM and subsequent gastric tumor growth. Therapy targeted to CD44v‐xCT could thus prove effective for prevention or attenuation of the CD44v‐dependent development of preneoplastic lesions and cancer.
Journal Article
CD44+ slow‐cycling tumor cell expansion is triggered by cooperative actions of Wnt and prostaglandin E2 in gastric tumorigenesis
by
Oshima, Masanobu
,
Oshima, Hiroko
,
Torii, Ryota
in
Animals
,
Biological and medical sciences
,
Cyclooxygenase 2 - physiology
2010
(Cancer Sci 2010; 101: 673–678) Similar to normal tissue stem cells, cancer stem cells (CSCs) are thought to be quiescent or slow‐cycling and, thereby, insensitive to chemo‐ and radiotherapies. CD44, a cell surface component that interacts with the extracellular matrix, has been found to be highly expressed in CSCs of several solid tumors. However, the relevancy between CD44+ cells and slow‐cycling cells and the underlying mechanisms for the emergence of CD44+ CSCs during tumorigenesis have not been elucidated. Here we show that a gastric gland residing at the squamo‐columnar junction (SCJ) in normal mouse stomach contains CD44+ stem cell‐like slow‐cycling cells and that this characteristic CD44+ gland was expanded by prostaglandin E2 (PGE2) and Wnt signaling in K19‐Wnt1/C2mE mouse, a genetic mouse model for gastric tumorigenesis. The analysis of three transgenic mouse lines, K19‐Wnt1, K19‐C2mE and K19‐Wnt1/C2mE, revealed that the expansion of CD44+ SCJ cells is triggered by PGE2‐mediated signaling and is prominently enhanced by the addition of Wnt activation. Furthermore, each expanded CD44+ gland in gastric tumor of K19‐Wnt1/C2mE mouse contains a few BrdU label‐retaining quiescent or slow‐cycling cells, suggesting that the CD44+ SCJ cells in normal mouse are candidates for the cell‐of‐origin of gastric CSCs. These observations suggest that PGE2‐mediated inflammatory signaling and Wnt signaling cooperatively trigger the expansion of CD44+ slow‐cycling stem‐like cells in SCJ, leading to development of lethal gastric tumors in mice.
Journal Article
CD44v, S1PR1, HER3, MET and cancer‐associated amino acid transporters are promising targets for the pancreatic cancers characterized using mAb
by
Shimada‐Takaura, Kayoko
,
Yagi, Hideki
,
Yoshimoto, Soshi
in
adenocarcinoma
,
Amino Acid Transport Systems - metabolism
,
amino acid transporter
2025
Effective therapies have yet to be established for pancreatic ductal adenocarcinomas (PDAC) even though it is the most aggressive cancer. In the present study, PDAC was analyzed using novel rat mAbs against membrane proteins in conjunction with flow cytometry and immunohistochemistry. Human epidermal growth receptor (HER)1–4, mesenchymal to epithelial transition factor (MET), sphingosine‐1‐phospahate receptor 1 (S1PR1), l‐type amino acid transporter 1 (LAT1), system x−c transporter (xCT), alanine‐serine‐cysteine transporter (ASCT2), cationic amino acid transporter 1 (CAT1) and variant CD44 (CD44v) were expressed at high frequencies in both in vitro and in vivo PDAC. Internalization of membrane proteins by mAbs and growth inhibition by toxin‐linked mAbs were demonstrated in many PDAC cell lines, and mAbs against S1PR1, ASCT2, HER3 and CD44v inhibited the growth of xenografted MIA PaCa‐2 PDAC cells. Furthermore, CD44v‐high PDAC showed high mRNA expression of HER1–3, MET and CD44v, and was correlated with poor prognosis. Taken together, our results suggest that CD44v, S1PR1, HER3, MET and the above‐mentioned cancer‐associated amino acid transporters might be promising targets for the diagnosis and treatment of PDAC. Novel mAbs could detect cancer‐associated membrane proteins on various type of pancreatic ductal adenocarcinomas (PDAC) by flow cytometry with viable PDAC cells and by immunohistochemistry with PDAC tissues. Results of protein expression were substantiated by mRNA expression by The Cancer Genome Atlas. PDAC will be handled by targeting mAb‐defined single or combinations of multiple molecules such as variant CD44 (CD44v), sphingosine‐1‐phospahate receptor 1 (S1PR1), human epidermal growth receptor (HER)1–4, mesenchymal to epithelial transition factor (MET), l‐type amino acid transporter 1 (LAT1), system x−c transporter (xCT), alanine‐serine‐cysteine transporter (ASCT2) and cationic amino acid transporter 1 (CAT1).
Journal Article
Anti‐tumor effects of mAb against l‐type amino acid transporter 1 (LAT1) bound to human and monkey LAT1 with dual avidity modes
by
Yagi, Hideki
,
Hayashi, Hidemi
,
Agatsuma, Toshinori
in
A549 Cells
,
Amino Acids - metabolism
,
Animals
2019
l‐Type amino acid transporter 1 (LAT1) disulfide linked to CD98 heavy chain (hc) is highly expressed in most cancer cells, but weakly expressed in normal cells. In the present study, we developed novel anti‐LAT1 mAbs and showed internalization activity, inhibitory effects of amino acid uptake and cell growth and antibody‐dependent cellular cytotoxicity, as well as in vivo antitumor effects in athymic mice. Furthermore, we examined the reactivity of mAbs with LAT1 of Macaca fascicularis to evaluate possible side‐effects of antihuman LAT1 mAbs in clinical trials. Antihuman LAT1 mAbs reacted with ACHN human and MK.P3 macaca kidney‐derived cells, and this reactivity was significantly decreased by siRNAs against LAT1. Macaca LAT1 cDNA was cloned from MK.P3, and only two amino acid differences between human and macaca LAT1 were seen. RH7777 rat hepatoma and HEK293 human embryonic kidney cells expressing macaca LAT1 were established as stable transfectants, and antihuman LAT1 mAbs were equivalently reactive against transfectants expressing human or macaca LAT1. Dual (high and low) avidity modes were detected in transfectants expressing macaca LAT1, MK.P3, ACHN and HCT116 human colon cancer cells, and KA values were increased by anti‐CD98hc mAb, suggesting anti‐LAT1 mAbs detect an epitope on LAT1‐CD98hc complexes on the cell surface. Based on these results, LAT1 may be a promising anticancer target and Macaca fascicularis can be used in preclinical studies with antihuman LAT1 mAbs. Chimeric anti‐LAT1 mAbs showed strong ADCC activity against many human cancer cells from the colon, uterus, lung, and ovary (Figure 4A). Furthermore, the ADCC activity of anti‐LAT1 chimeric mAbs was markedly superior to chimeric anti‐HER1 (Cetuximab) against HCT116 (Figure 4B).
Journal Article
Endothelial–Mesenchymal Transition Drives Expression of CD44 Variant and xCT in Pulmonary Hypertension
2019
Abstract
Pulmonary arterial hypertension (PAH) pathogenesis shares similarities with carcinogenesis. One CD44 variant (CD44v) isoform, CD44v8-10, binds to and stabilizes the cystine transporter subunit (xCT), producing reduced glutathione and thereby enhancing the antioxidant defense of cancer stem cells. Pharmacological inhibition of xCT by sulfasalazine suppresses tumor growth, survival, and resistance to chemotherapy. We investigated whether the CD44v–xCT axis contributes to PAH pathogenesis. CD44v was predominantly expressed on endothelial-to-mesenchymal transition (EndMT)–like cells in the neointimal layer of PAH affected pulmonary arterioles. In vitro, CD44 standard form and CD44v were induced as a result of EndMT. Among human pulmonary artery endothelial cells that have undergone EndMT, CD44v+ cells showed high levels of xCT expression on their cell surfaces and high concentrations of glutathione for survival. This made CD44v+ cells the most vulnerable target for sulfasalazine. CD44v+xCThi cells showed the highest expression levels of proinflammatory cytokines, antioxidant enzymes, antiapoptotic molecules, and cyclin-dependent kinase inhibitors. In the Sugen5416/hypoxia mouse model, CD44v+ cells were present in the thickened pulmonary vascular wall. The administration of sulfasalazine started either at the same time as “Sugen5416” administration (a prevention model) or after the development of pulmonary hypertension (a reversal model) attenuated the muscularization of the pulmonary vessels, decreased the expression of markers of inflammation, and reduced the right ventricular systolic pressure, while reducing CD44v+ cells. In conclusion, CD44v+xCThi cells appear during EndMT and in pulmonary hypertension tissues. Sulfasalazine is expected to be a novel therapeutic agent for PAH, most likely targeting EndMT-derived CD44v+xCThi cells.
Journal Article