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Dive into the research topics where Hiroyuki Konishi is active.

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Featured researches published by Hiroyuki Konishi.


Cancer Biology & Therapy | 2004

The PIK3CA gene is mutated with high frequency in human breast cancers

Kurtis E. Bachman; Pedram Argani; Yardena Samuels; Natalie Silliman; Janine Ptak; Steve Szabo; Hiroyuki Konishi; Bedri Karakas; Brian G. Blair; Clarence Lin; Brock A. Peters; Victor E. Velculescu; Ben Ho Park

The phosphatidylinositol 3-kinases (PI3Ks) are known regulators of cellular growth and proliferation. It has recently been reported that somatic mutations within the PI3K subunit p110? (PIK3CA) are present in human colorectal and other cancers. Here we show that thirteen of fifty-three breast cancers (25%) contain somatic mutations in PIK3CA, with the majority of mutations located in the kinase domain. These results demonstrate that PIK3CA is the most mutated oncogene in breast cancer and support a role for PIK3CA in epithelial carcinogenesis.


Oncogene | 2002

Aberrant hypermethylation of the CHFR prophase checkpoint gene in human lung cancers.

Kotaro Mizuno; Hirotaka Osada; Hiroyuki Konishi; Yoshio Tatematsu; Yasushi Yatabe; Tetsuya Mitsudomi; Yoshitaka Fujii; Takashi Takahashi

The CHFR gene, which was recently cloned by Scolnick and Halazonetis in search for a novel mitotic checkpoint gene with fork-head association motifs, has been suggested to play a key role in the mitotic prophase checkpoint. In this study, we demonstrated tumor-specific aberrant hypermethylation of the promoter region of the CHFR gene in a significant fraction of lung cancers in association with loss of detectable levels of CHFR transcripts. Aberrant hypermethylation was observed in seven of 37 primary lung cancer cases. Treatment with the demethylating agent 5-aza-2′-deoxycytidine restored expression of the CHFR gene in lung cancer cell lines exhibiting aberrant hypermethylation and loss of its expression. In contrast, genetic alterations were found to be infrequent in lung cancers. This is the first description of aberrant hypermethylation of the CHFR gene in any type of human cancer, and provides further evidence of the involvement of multiple checkpoint alterations in lung cancer.


Proceedings of the National Academy of Sciences of the United States of America | 2009

Knockin of mutant PIK3CA activates multiple oncogenic pathways

John P. Gustin; Bedri Karakas; Michele B. Weiss; Abde M. Abukhdeir; Josh Lauring; Joseph P. Garay; David Cosgrove; Akina Tamaki; Hiroyuki Konishi; Yuko Konishi; Morassa Mohseni; Grace M. Wang; D. Marc Rosen; Samuel R. Denmeade; Michaela J. Higgins; Michele I. Vitolo; Kurtis E. Bachman; Ben Ho Park

The phosphatidylinositol 3-kinase subunit PIK3CA is frequently mutated in human cancers. Here we used gene targeting to “knock in” PIK3CA mutations into human breast epithelial cells to identify new therapeutic targets associated with oncogenic PIK3CA. Mutant PIK3CA knockin cells were capable of epidermal growth factor and mTOR-independent cell proliferation that was associated with AKT, ERK, and GSK3β phosphorylation. Paradoxically, the GSK3β inhibitors lithium chloride and SB216763 selectively decreased the proliferation of human breast and colorectal cancer cell lines with oncogenic PIK3CA mutations and led to a decrease in the GSK3β target gene CYCLIN D1. Oral treatment with lithium preferentially inhibited the growth of nude mouse xenografts of HCT-116 colon cancer cells with mutant PIK3CA compared with isogenic HCT-116 knockout cells containing only wild-type PIK3CA. Our findings suggest GSK3β is an important effector of mutant PIK3CA, and that lithium, an FDA-approved therapy for bipolar disorders, has selective antineoplastic properties against cancers that harbor these mutations.


Proceedings of the National Academy of Sciences of the United States of America | 2011

Mutation of a single allele of the cancer susceptibility gene BRCA1 leads to genomic instability in human breast epithelial cells

Hiroyuki Konishi; Morassa Mohseni; Akina Tamaki; Joseph P. Garay; Sarah Croessmann; Sivasundaram Karnan; Akinobu Ota; Hong Yuen Wong; Yuko Konishi; Bedri Karakas; Khola Tahir; Abde M. Abukhdeir; John P. Gustin; Justin Cidado; Grace M. Wang; David Cosgrove; Rory L. Cochran; Danijela Jelovac; Michaela J. Higgins; Sabrina Arena; Lauren Hawkins; Josh Lauring; Amy L. Gross; Christopher M. Heaphy; Yositaka Hosokawa; Edward Gabrielson; Alan K. Meeker; Kala Visvanathan; Pedram Argani; Kurtis E. Bachman

Biallelic inactivation of cancer susceptibility gene BRCA1 leads to breast and ovarian carcinogenesis. Paradoxically, BRCA1 deficiency in mice results in early embryonic lethality, and similarly, lack of BRCA1 in human cells is thought to result in cellular lethality in view of BRCA1s essential function. To survive homozygous BRCA1 inactivation during tumorigenesis, precancerous cells must accumulate additional genetic alterations, such as p53 mutations, but this requirement for an extra genetic “hit” contradicts the two-hit theory for the accelerated carcinogenesis associated with familial cancer syndromes. Here, we show that heterozygous BRCA1 inactivation results in genomic instability in nontumorigenic human breast epithelial cells in vitro and in vivo. Using somatic cell gene targeting, we demonstrated that a heterozygous BRCA1 185delAG mutation confers impaired homology-mediated DNA repair and hypersensitivity to genotoxic stress. Heterozygous mutant BRCA1 cell clones also showed a higher degree of gene copy number loss and loss of heterozygosity in SNP array analyses. In BRCA1 heterozygous clones and nontumorigenic breast epithelial tissues from BRCA mutation carriers, FISH revealed elevated genomic instability when compared with their respective controls. Thus, BRCA1 haploinsufficiency may accelerate hereditary breast carcinogenesis by facilitating additional genetic alterations.


Proceedings of the National Academy of Sciences of the United States of America | 2008

Tamoxifen-stimulated growth of breast cancer due to p21 loss

Abde M. Abukhdeir; Michele I. Vitolo; Pedram Argani; Angelo M. De Marzo; Bedri Karakas; Hiroyuki Konishi; John P. Gustin; Josh Lauring; Joseph P. Garay; Courtney Pendleton; Yuko Konishi; Brian G. Blair; Keith Brenner; Elizabeth Garrett-Mayer; Hetty E. Carraway; Kurtis E. Bachman; Ben Ho Park

Tamoxifen is widely used for the treatment of hormonally responsive breast cancers. However, some resistant breast cancers develop a growth proliferative response to this drug, as evidenced by tumor regression upon its withdrawal. To elucidate the molecular mediators of this paradox, tissue samples from a patient with tamoxifen-stimulated breast cancer were analyzed. These studies revealed that loss of the cyclin-dependent kinase inhibitor p21 was associated with a tamoxifen growth-inducing phenotype. Immortalized human breast epithelial cells with somatic deletion of the p21 gene were then generated and displayed a growth proliferative response to tamoxifen, whereas p21 wild-type cells demonstrated growth inhibition upon tamoxifen exposure. Mutational and biochemical analyses revealed that loss of p21s cyclin-dependent kinase inhibitory property results in hyperphosphorylation of estrogen receptor-α, with subsequent increased gene expression of estrogen receptor-regulated genes. These data reveal a previously uncharacterized molecular mechanism of tamoxifen resistance and have potential clinical implications for the management of tamoxifen-resistant breast cancers.


Cancer Research | 2007

Knock-in of Mutant K-ras in Nontumorigenic Human Epithelial Cells as a New Model for Studying K-ras–Mediated Transformation

Hiroyuki Konishi; Bedri Karakas; Abde M. Abukhdeir; Josh Lauring; John P. Gustin; Joseph P. Garay; Yuko Konishi; Eike Gallmeier; Kurtis E. Bachman; Ben Ho Park

The oncogenic function of mutant ras in mammalian cells has been extensively investigated using multiple human and animal models. These systems include overexpression of exogenous mutant ras transgenes, conditionally expressed knock-in mouse models, and somatic cell knockout of mutant and wild-type ras genes in human cancer cell lines. However, phenotypic discrepancies between knock-in mice and transgenic mutant ras overexpression prompted us to evaluate the consequences of targeted knock-in of an oncogenic K-ras mutation in the nontumorigenic human breast epithelial cell line MCF-10A and hTERT-immortalized human mammary epithelial cells. Our results show several significant differences between mutant K-ras knock-in cells versus their transgene counterparts, including limited phosphorylation of the downstream molecules extracellular signal-regulated kinase and AKT, minor proliferative capacity in the absence of an exogenous growth factor, and the inability to form colonies in semisolid medium. Analysis of 16 cancer cell lines carrying mutant K-ras genes indicated that 50% of cancer cells harbor nonoverexpressed heterozygous K-ras mutations similar to the expression seen in our knock-in cell lines. Thus, this system serves as a new model for elucidating the oncogenic contribution of mutant K-ras as expressed in a large fraction of human cancer cells.


American Journal of Pathology | 2001

Persistent Increase in Chromosome Instability in Lung Cancer : Possible Indirect Involvement of p53 Inactivation

Nobuhiro Haruki; Tomoko Harano; Akira Masuda; Tohru Kiyono; Takao Takahashi; Yoshio Tatematsu; Shigeki Shimizu; Tetsuya Mitsudomi; Hiroyuki Konishi; Hirotaka Osada; Yoshitaka Fujii; Takashi Takahashi

Karyotype and fluorescence in situ hybridization analyses have demonstrated the frequent presence of an altered static state of the number of chromosomes (ie, aneuploidy) in lung cancer, but it has not been directly established whether aneuploidy is in fact associated with a persistent increase in the rate of chromosomal losses and gains (ie, chromosome instability, or CIN). The study presented here used a panel of 10 lung cancer cell lines to provide for the first time direct evidence that CIN is a common feature in lung cancer cell lines in association with the presence of significant aneuploidy. In addition, we found that the CIN phenotype correlates well with the presence of p53 mutations. However, human papilloma virus 16-E6-directed inactivation of p53 in a representative non-CIN lung cancer cell line did not result in the induction of CIN, at least up to the 25th generation, suggesting that inactivation of p53 itself is unlikely to directly induce CIN in lung cancer cells. Interestingly, however, significant CIN could be induced in conjunction with the generation of aneuploid populations when the mitotic spindle formation was transiently abrogated in p53-inactivated cells. These results suggest that inactivation of p53 may allow lung cancer cells to go through an inappropriate second division cycle under certain forms of mitotic stresses, which would result in the induction of the CIN phenotype in conjunction with the generation of aneuploidy.


Oncogene | 1998

Detailed deletion mapping suggests the involvement of a tumor suppressor gene at 17p13.3, distal to p53, in the pathogenesis of lung cancers.

Hiroyuki Konishi; Takao Takahashi; Ken-ichi Kozaki; Yasushi Yatabe; Tetsuya Mitsudomi; Yoshitaka Fujii; Takahiko Sugiura; Hikaru Matsuda; Toshitada Takahashi; Takashi Takahashi

The short arm of chromosome 17 is one of the most frequently affected chromosomal regions in lung cancers, while there is solid evidence that the p53 gene at 17p13.1 is a target for frequent 17p deletions. In the present study, we re-evaluated 17p deletions in lung cancers by conducting a detailed analysis of the minimum deleted region(s) on 17p with reference to the p53 gene status in each 100 primary lung cancer cases. In addition to the p53 locus at 17p13.1, the presence of an independent, commonly deleted region(s) at 17p13.3 was identified. Furthermore, loss of heterozygosity (LOH) at 17p13.3 was shown to be even more frequent than that at 17p13.1 and it appeared to occur in the absence of p53 mutation and/or 17p13.1 deletion. These results suggest that in addition to the p53 gene at 17p13.1, an as yet unidentified tumor suppressor gene(s) residing at 17p13.3 might play a role in lung carcinogenesis possibly in an earlier phase than the p53 gene. This would warrant future studies to identify the putative tumor suppressor gene at 17p13.3 in order to gain a better understanding of the molecular pathogenesis of this fatal disease.


Oncogene | 2002

Significant up-regulation of a novel gene, CLCP1, in a highly metastatic lung cancer subline as well as in lung cancers in vivo

Katsumi Koshikawa; Hirotaka Osada; Ken-ichi Kozaki; Hiroyuki Konishi; Akira Masuda; Yoshio Tatematsu; Tetsuya Mitsudomi; Akimasa Nakao; Takashi Takahashi

Most lung cancer patients are unfortunately uncurable and die because of widespread metastases, thus indicating the importance of identification of molecules with a crucial role in this process. Our previous expression profiling analysis of a highly metastatic lung cancer cell line, NCI-H460-LNM35, and its parental low metastatic line, NCI-H460-N15, revealed significant up-regulation of both known and unknown genes in LNM35. In this study, we describe the isolation and detailed characterizations of a novel gene, named CLCP1, which corresponds to one of such expression sequence tags with up-regulated expression in LNM35. The CLCP1 gene was found to encode a protein with 775 amino acids with structural similarities to, but distinct from neuropilins, cell surface receptors for VEGF165 and semaphorins. Notably, CLCP1 was shown to be up-regulated not only in LNM35 in association with its acquisition of metastatic phenotype during in vivo selection, but also in a significant fraction of lung cancers in vivo with high frequency in metastatic lesions, warranting future studies for a better understanding of the molecular mechanisms of lung cancer metastasis.


Oncogene | 2010

Knock in of the AKT1 E17K mutation in human breast epithelial cells does not recapitulate oncogenic PIK3CA mutations

Josh Lauring; David Cosgrove; Stefani Fontana; John P. Gustin; Hiroyuki Konishi; Abde M. Abukhdeir; Joseph P. Garay; Morassa Mohseni; Grace M. Wang; Michaela J. Higgins; David U. Gorkin; Marcelo Reis; Bert Vogelstein; Kornelia Polyak; Meredith Cowherd; Phillip Buckhaults; Ben Ho Park

An oncogenic mutation (G49A:E17K) in the AKT1 gene has been described recently in human breast, colon, and ovarian cancers. The low frequency of this mutation and perhaps other selective pressures have prevented the isolation of human cancer cell lines that harbor this mutation thereby limiting functional analysis. Here, we create a physiologic in vitro model to study the effects of this mutation by using somatic cell gene targeting using the nontumorigenic human breast epithelial cell line, MCF10A. Surprisingly, knock in of E17K into the AKT1 gene had minimal phenotypic consequences and importantly, did not recapitulate the biochemical and growth characteristics seen with somatic cell knock in of PIK3CA hotspot mutations. These results suggest that mutations in critical genes within the PI3-kinase (PI3K) pathway are not functionally equivalent, and that other cooperative genetic events may be necessary to achieve oncogenic PI3K pathway activation in cancers that contain the AKT1 E17K mutation.

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Ben Ho Park

Johns Hopkins University

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Abde M. Abukhdeir

Rush University Medical Center

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John P. Gustin

Johns Hopkins University

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Yuko Konishi

Aichi Medical University

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Bedri Karakas

Johns Hopkins University

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Josh Lauring

Johns Hopkins University School of Medicine

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