• 제목/요약/키워드: Cancer gene therapy

검색결과 379건 처리시간 0.027초

RNA Interference as a Plausible Anticancer Therapeutic Tool

  • Ramachandran, Puthucode Venkatakrishnan;Ignacimuthu, Savarimuthu
    • Asian Pacific Journal of Cancer Prevention
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    • 제13권6호
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    • pp.2445-2452
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    • 2012
  • RNA interference has created a breakthrough in gene silencing technology and there is now much debate on the successful usage of RNAi based methods in treating a number of debilitating diseases. Cancer is often regarded as a result of mutations in genomic DNA resulting in faulty gene expression. The occurrence of cancer can also be influenced by epigenetic irregularities in the chromatin structure which leads to alterations and mutations in DNA resulting in cancer cell formation. A number of therapeutic approaches have been put forth to treat cancer. Anti cancer therapy often involves chemotherapy targeting all the cells in common, whereby both cancer cells as well as normal cells get affected. Hence RNAi technology has potential to be a better therapeutic agent as it is possible to deactivate molecular targets like specific mutant genes. This review highlights the successful use of RNAi inducers against different types of cancer, thereby paving the way for specific therapeutic medicines.

폐암 세포주에서 광역학 치료에 의한 유전자 발현 분석 (Gene Expression Profile of Lung Cancer Cells Following Photodynamic Therapy)

  • 성지현;이미은;한선숙;이승준;하권수;김우진
    • Tuberculosis and Respiratory Diseases
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    • 제63권1호
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    • pp.52-58
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    • 2007
  • 연구배경: 광역학 치료는 폐암 치료에 실질적으로 이용 가능하며, 많은 연구들에서 폐암 세포에서 세포사멸을 일으킨다는 것이 이미 알려져 있다. 그러나 이 세포사멸의 기전은 아직 정확히 알려져 있지 않으며, 이에 암세포의 전사에서 초기 변화가 어떻게 일어나는 지를 알아보기 위하여 실험을 수행하였다. 방 법: 광과민성 물질인 DH-I-180-3으로 A549 세포에 처리를 하고 광역학 치료를 한 후 관찰하였다. 광역학 치료 후 DEG kit를 이용하여 폐암 세포주에서의 유전자 발현을 보았으며, 유세포 분석기를 이용하여 세포 사멸을 측정하였다. 광역학 치료 후 의미있는 변화를 보인 유전자는 염기서열분석으로 확인하였다. 결 과: 유세포분석 결과 폐암세포주는 대부분 세포괴사에 의하여 사멸되었다.광역학 치료 후, 9개의 유전자에서 명확한 변화가 있음을 발견했으며 이 중8개의 유전자를 밝혀내었다. 3-phosphoglycerate dehydrogenase와 리보솜 단백질 S29의 유전자 발현이 증가되어 있었으며, carbonic anhydrase XII, clusterin, MRP3s1 protein, complement 3, membrane cofactor protein, ${\beta}$-1 integrin의 유전자 발현은 감소되어 있었다. 결 론: 본 연구는 광과민성 물질인 DH-I-180-3을 이용한 광역학 치료에서 폐암 세포의 세포사멸의 주된 기전이 세포괴사에 의해 이루어 진 것임을 밝혀냈으며, 이와 관련된 유전자들 대부분이 막단백의 변화를 통해 이루어짐을 알 수 있었다.

Molecular Diagnosis for Personalized Target Therapy in Gastric Cancer

  • Cho, Jae Yong
    • Journal of Gastric Cancer
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    • 제13권3호
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    • pp.129-135
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    • 2013
  • Gastric cancer is the second leading cause of cancer-related deaths worldwide. In advanced and metastatic gastric cancer, the conventional chemotherapy with limited efficacy shows an overall survival period of about 10 months. Patient specific and effective treatments known as personalized cancer therapy is of significant importance. Advances in high-throughput technologies such as microarray and next generation sequencing for genes, protein expression profiles and oncogenic signaling pathways have reinforced the discovery of treatment targets and personalized treatments. However, there are numerous challenges from cancer target discoveries to practical clinical benefits. Although there is a flood of biomarkers and target agents, only a minority of patients are tested and treated accordingly. Numerous molecular target agents have been under investigation for gastric cancer. Currently, targets for gastric cancer include the epidermal growth factor receptor family, mesenchymal-epithelial transition factor axis, and the phosphatidylinositol 3-kinase-AKT-mammalian target of rapamycin pathways. Deeper insights of molecular characteristics for gastric cancer has enabled the molecular classification of gastric cancer, the diagnosis of gastric cancer, the prediction of prognosis, the recognition of gastric cancer driver genes, and the discovery of potential therapeutic targets. Not only have we deeper insights for the molecular diversity of gastric cancer, but we have also prospected both affirmative potentials and hurdles to molecular diagnostics. New paradigm of transdisciplinary team science, which is composed of innovative explorations and clinical investigations of oncologists, geneticists, pathologists, biologists, and bio-informaticians, is mandatory to recognize personalized target therapy.

조직 특이 발현 Sodium Iodide Symporter 유전자 이입에 의한 방사성옥소 간암세포 치료와 광학영상을 이용한 치료효과 평가 (Radioiodine Therapy of Liver Cancer Cell Following Tissue Specific Sodium Iodide Symporter Gene Transfer and Assessment of Therapeutic Efficacy with Optical Imaging)

  • 장병국;이유라;이용진;안손주;류민정;윤선미;이상우;유정수;조제열;이재태;안병철
    • Nuclear Medicine and Molecular Imaging
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    • 제42권5호
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    • pp.383-393
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    • 2008
  • 목적: 조직 특이 프로모터를 이용하면 특정 암조직내에서만 원하는 치료유전자를 발현시킬 수 있다. 나트륨 옥소 공동 수송체(sodium iodide symporter: NIS) 유전자는 옥소를 섭취하는 특성을 가져 방사성옥소를 이용한 치료용 유전자로 사용될 수 있다. 광학 영상용 유전자인 luciferase (Luc) 유전자를 세포에 이입하면 비침습적으로 유전자가 이입된 세포의 상태를 평가할 수 있다. 본 연구는 간암 특이성을 나타내는 AFP 프로모터에 의해 발현이 조절되는 NIS유전자와 CMV프로모터에 의해 발현되는 Luc유전자를 간암세포에 이입하여 NIS유전자 이입에 의한 방사성옥소 유전자치료의 효과를 알아보고, 종양사멸 정도를 광학 리포터 유전자 발현으로 알아보고자 하였다. 대상 및 방법: AFP enhancer와 GSTP 프로모터를 연결하여 AFP프로모터를 제작하였으며 이를 NIS유전자와 연결하였다. 또한 CMV 프로모터에 조절 받는 Luc 유전자를 동시에 삽입하여 AFP-NIS-CMV-Luc 유전자 발현 벡터를 생산하였다. 실험 대상 세포주로는 간암세포주인 HepG2와 Huh-7 세포와 사람 대장암세포주인 HCT-15 세포를 이용하였다. AFP-NIS-CMV-Luc 발현벡터를 Liposome을 이용해 실험대상 세포주 내로 이입하였으며, 방사성옥소 섭취율과 방사성옥소의 유출량을 측정하였다. 또한 Luciferase 발현 정도를 luminometer로 측정하였으며, clonogenic assay를 통하여 I-131에 대한 세포주에 따른 사멸효과 차이를 알아보았다. AFP-NIS-CMV-Luc 유전자 이입 세포주를 누드마우스에 대퇴부 피하에 주입하여 I-131 축적여부를 감마카메라 영상을 획득하였다. 결과: AFP-NIS-CMV-Luc 유전자 발현 벡터를 제작하였다. AFP-NIS-CMV-Luc 유전자가 이입된 HepG2와 Huh-7 세포의 방사성옥소 섭취율은 유전자 이입이 되지 않은 대조군 HepG2와 Huh-7 세포에 비하여 높았으며, $KClO_4$를 처리시 옥소 섭취가 저해되었다. 대장암 세포주인 HCT-15세포에 AFP-NIS-CMV-Luc유전자를 이입 시 방사성옥소의 섭취률은 증가되지 않았다. 30분간 방사성옥소를 섭취시킨 AFP-NIS-Luc 유전자가 이입된 HepG2와 Huh-7 세포에서의 방사성옥소의 유출반감기는 약 4분과 6분으로 각각 나타났다. AFP-NIS-CMV-Luc 유전자가 이입된 HepG2, Huh-7세포의 Luc 유전자의 발현은 241, 441 $RLU/2\;{\times}\;10^5$ cells로 나타났으며, 대조군 HepG2와 Huh구세포에서의 Luc 유전자의 발현은 74, $RLU/2\;{\times}\;10^5$ cells로 나타났다. HCT-15 세포는 AFP-NIS-CMV-Luc 유전자 이입에 따라 I-131에 의한 세포 사멸능이 증가되지 않았으나, HepG2 및 Huh-7 세포는 FP-NIS-CMV-Luc 유전자 이 입에 따라 I-131에 의한 세포 사멸능이 증가되었으며, Huh-7세포의 경우 0.5mCi의 I-131을 투여한 경우 모든 세포가 사멸하였다. AFP-NIS-CMV-Luc 유전자가 이입된 Huh-7 세포수가 많을수록 방사성옥소 섭취율이 증가하며 luciferase활성도도 높게 나타났다. AFP-NIS-CMV-Luc 유전자가 이입된 Huh-7 세포를 이식한 누드마우스에 I-131 감마카메라 영상에서 종양이식부위에 방사능 축적을 관찰 할 수 있었다. 결론: AFP프로모터의 의하여 NIS유전자가 발현되며, CMV프로모터에 의한 Luc 유전자가 발현되는 벡터를 제작하였으며, 이 벡터를 이입한 경우 간암세포에서만 I-131의 세포 독성이 증가하는 효과를 나타내었다. 또한 Luc유전자를 이용하여 비침습적인 광학 영상으로 세포사멸 효과를 확인할 수 있었다. 간암특이 프로모터에 조절되는 치료 유전자와 광학리포터 유전자를 한 벡터에 동시에 이입하면 간암 특이 유전자 치료와 그 치료효과를 비침습적으로 평가할 수 있을 것으로 생각된다.

폐암세포주에서 아데노바이러스 매개 p16 유전자 전달로 인한 유전자 발현의 변화 (Differential Gene Expression after Adenovirus-Mediated p16 Gene Transfer in Human Non-Small Cell Lung Cancer Cells)

  • 박미선;김옥희;박현신;지승완;엄미옥;염태경;강호일
    • Toxicological Research
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    • 제20권2호
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    • pp.109-116
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    • 2004
  • For the safety evaluation of adenovirus-mediated gene transfer, we investigated differential gene expressions after transfecting adenoviral vector containing p16 tumor suppressor gene (Ad5CMV-p16) into human non-small cell lung cancer cells. In the previous study, we showed adenovirus-mediated $p16^{INK4a}$ gene transfer resulted in significant inhibition of cancer cell growth. We investigated gene expression changes after transfecting Ad5CMV-p16, Ad5CMV (null type, a mock vector) into A549 cells by using cDNA chip and oligonucleotide microarray chip (1200 genes) which carries genes related with signal transduction pathways, cell cycle regulations, oncogenes and tumor suppressor genes. We found that $p16^{INK4a}$ gene transfer down regulated 5 genes (cdc2, cyclin D3, cyclin B, cyclin E, cdk2) among 26 genes involved in cell cycle regulations. Compared with serum-free medium treated cells, Ad5CMV-p16 changed 27 gene expressions, two fold or more on oligonucleotide chip. In addition, Ad5CMV-p16 did not seem to increase the tumorigenicity-related gene expression in A549 cells. Further studies will be needed to investigate the effect of Ad5CMV-p16 on normal human cells and tissues for safety evaluation.

Gene Therapy for Mice Sarcoma with Oncolytic Herpes Simplex Virus-1 Lacking the Apoptosis-inhibiting Gene, icp34.5

  • Lan, Ping;Dong, Changyuan;Qi, Yipeng;Xiao, Gengfu;Xue, Feng
    • BMB Reports
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    • 제36권4호
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    • pp.379-386
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    • 2003
  • A mutant herpes simplex virus 1, mtHSV, was constructed by inserting the E. coli beta-galactosidase gene into the loci of icp34.5, the apoptosis-inhibiting gene of HSV. The mtHSV replicated in and lysed U251 (human glioma cells), EJ (human bladder cells), and S-180 (mice sarcoma cells), but not Wish (human amnion cells) cells. With its intact tk (thymidine kinase) gene, mtHSV exhibited susceptibility to acyclovir (ACV), which provided an approach to control viral replication. An in vivo test with mtHSV was conducted in immune-competent mice bearing sarcoma S-180 tumors, which were treated with a single intratumoral injection of mtHSV or PBS. Tumor dimensions then were measured at serial time points, and the tumor volumes were calculated. Sarcoma growth was significantly inhibited with prolonged time and reduced tumor volume. There was microscopic evidence of necrosis of tumors in treated mice, whereas no damage was found in other organs. Immunohistochemical staining revealed that virus replication was exclusively confined to the treated tumor cells. HSV-1 DNA was detected in tumors, but not in the other organs by a polymerase chain reaction analysis. From these experiments, we concluded that mtHSV should be a safe and promising oncolytic agent for cancer treatment.

Engineered adult stem cells: a promising tool for anti-cancer therapy

  • Youngdong Choi;Hong Kyu Lee;Kyung-Chul Choi
    • BMB Reports
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    • 제56권2호
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    • pp.71-77
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    • 2023
  • Cancers are one of the most dreaded diseases in human history and have been targeted by numerous trials including surgery, chemotherapy, radiation therapy, and anti-cancer drugs. Adult stem cells (ASCs), which can regenerate tissues and repair damage, have emerged as leading therapeutic candidates due to their homing ability toward tumor foci. Stem cells can precisely target malicious tumors, thereby minimizing the toxicity of normal cells and unfavorable side effects. ASCs, such as mesenchymal stem cells (MSCs), neural stem cells (NSCs), and hematopoietic stem cells (HSCs), are powerful tools for delivering therapeutic agents to various primary and metastatic cancers. Engineered ASCs act as a bridge between the tumor sites and tumoricidal reagents, producing therapeutic substances such as exosomes, viruses, and anti-cancer proteins encoded by several suicide genes. This review focuses on various anti-cancer therapies implemented via ASCs and summarizes the recent treatment progress and shortcomings.

CDRgator: An Integrative Navigator of Cancer Drug Resistance Gene Signatures

  • Jang, Su-Kyeong;Yoon, Byung-Ha;Kang, Seung Min;Yoon, Yeo-Gha;Kim, Seon-Young;Kim, Wankyu
    • Molecules and Cells
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    • 제42권3호
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    • pp.237-244
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    • 2019
  • Understanding the mechanisms of cancer drug resistance is a critical challenge in cancer therapy. For many cancer drugs, various resistance mechanisms have been identified such as target alteration, alternative signaling pathways, epithelial-mesenchymal transition, and epigenetic modulation. Resistance may arise via multiple mechanisms even for a single drug, making it necessary to investigate multiple independent models for comprehensive understanding and therapeutic application. In particular, we hypothesize that different resistance processes result in distinct gene expression changes. Here, we present a web-based database, CDRgator (Cancer Drug Resistance navigator) for comparative analysis of gene expression signatures of cancer drug resistance. Resistance signatures were extracted from two different types of datasets. First, resistance signatures were extracted from transcriptomic profiles of cancer cells or patient samples and their resistance-induced counterparts for >30 cancer drugs. Second, drug resistance group signatures were also extracted from two large-scale drug sensitivity datasets representing ~1,000 cancer cell lines. All the datasets are available for download, and are conveniently accessible based on drug class and cancer type, along with analytic features such as clustering analysis, multidimensional scaling, and pathway analysis. CDRgator allows meta-analysis of independent resistance models for more comprehensive understanding of drug-resistance mechanisms that is difficult to accomplish with individual datasets alone (database URL: http://cdrgator.ewha.ac.kr).

Herpes simplex virus-thymidine kinase 유전자가 전이된 종양 세포에서 Gancyclovir와 방사선 조사에 의한 항 종양 효과 (Antitunor Effect of Carcinoma cells Ttransduced with Herpes simplex virus-thymidine kinase by Gancyclovir and Radiation)

  • 이재우;오승택;안창혁;임근우;조현일;김금용;김태규
    • IMMUNE NETWORK
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    • 제1권1호
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    • pp.45-52
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    • 2001
  • Background: Many types of cancer become resistant to current chemotherapeutic and radiotherapeutic intervention. To overcome this situation application of gene therapy by the introduction of suicide genes followed by their prodrugs may be promising. A viral enzyme, Herpes simplex thymidine kinase (HSV-tk), which converts ganciclovir from an inactive prodrug to a cytotoxic agent by phosphorylation, are being actively investigated for use in gene therapy for cancer. The purpose of this study was to determine whether combining prodrug-activating gene therapy and irradiation might result in enhanced antitumor effects. Methods: The HSV-tk gene was cloned into the retroviral vector, pLXSN and established the clones producing retroviruses carrying the HSV-tk gene. The carcinoma cell line, HCT116 and Huh-7 were transduced with high-titer recombinant retroviruses. These cell lines were treated with ganciclovir before or after irradiation for the defining combinational effect of suicide gene therapy and radiotherapy. Results: The titers of cloned PA3 17 amphotropic retroviruses ranged from 4 to 6 X $10^6CFU/ml4$. After selectional periods, the expression of HSV-tk was confirmed by reverse-transcriptase polymerase chain reaction (RT-PCR). The growth of cells expressing HSV-tk was inhibited as increase of GCV dose after 48 hr and the growth inhibitory effect of GCV was much higher after 72 hr. When the cells transduced with HSV-tk gene were exposed to radiation, the growth inhibitory effect of GCV was significantly increased, as compared with non-transduced parental cells. Conclusions: The results suggest that the addition of HSV-tk gene therapy to standard radiation therapy may improve the effectiveness of treatment for solid tumors.

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Histone deacetylase inhibitor Trichostatin A enhanced the efficiency of adenovirus mediated gene transfer into non-small cell lung cancer cells

  • Park, Mi-Sun;Kang, Ho-Il;Lim, Sin-Ae;Jee, Seung-Wan;Eom, Mi-Ok;Ryeom, Tai-Kyung;Kim, Ok-Hee
    • 대한약학회:학술대회논문집
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    • 대한약학회 2003년도 Proceedings of the Convention of the Pharmaceutical Society of Korea Vol.2-2
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    • pp.99.2-99.2
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    • 2003
  • One of the major limitations in using adenoviral vector for gene therapy is inefficient infection of host cells. The presence of coxsackievirus and adenovirus receptor (CAR) and ${\alpha}$-integrin on cell surfaces is required for efficient adenovirus infection. In this study, we investigated the effect of trichostatin A, a histone deacetylase inhibitor, on transfection efficiency after transduction of adenovirus mediated p16$\^$INK4a/ gene transfer. In our previous study, p16$\^$INK4a/ tumor suppressor gene transfer in the non-small cell lung cancer cells (A549 cells) by transduction of recombinant adenovirus (Ad5CMV-p16) resulted in significant inhibition of cancer cell proliferation. (omitted)

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