• 제목/요약/키워드: Tissue-specific promoter

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Bacillus thuringiensis 살충성 결정단백질 유전자(cry II A)의 형질전환 식물 제작 (Generation of Transgenic Plant (Nicotiana tabacum var. Petit Havana SR1) harboring Bacillus thuringiensis Insecticidal Crystal Protein Gene, cry II A)

  • 이정민;류종석;권무식
    • 식물조직배양학회지
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    • 제24권5호
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    • pp.305-311
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    • 1997
  • Bacillus thuringiensis는 그람 양성 토양 세균으로 포자형성시 결정화된 내포체를 형성하는데, 이 내포체를 구성하는 결정단백질은 각 곤충에 대하여 특이적인 독성을 나타낸다. 살충성 결정단백질 중 Cry II A 결정단백질은 인시류와 쌍시류 곤충에 모두 특이적으로 작용한다. 결정단백질은 살충제로서 불안정하고 포장에서 지속성이 낮은 단점을 가지고 있으므로, 본 연구에서는 Cry II A 결정단백질 유전자가 형질전환된 담배 식물을 제작하고자 하였다. cry IIA 유전자가 삽입된 벡터를 대장균에 형질전환한 후, 알칼리 용액에 대한 용해도의 차이를 이용하여 Cry II A 결정단백질(70 kDa)을 분리하였고, 분리한 Cry II A 결정단백질을 trypsin 처리하여 활성화된 Cry II A (50 kDa)를 확인하였다. 식물 형질전환을 위하여 두 개의 CaMV 35S promoters에 의해 발현이 조절되는 식물 발현 벡터에 cry II A 유전자를 클로닝 하였다. 이 식물 발현 벡터를 Agrobacterium을 이용한 엽편형질 전환을 통해 담배(N. tabacum var. Petit Havana SRI)에 형질전환 시켰으며, 재분화 과정을 거쳐 여섯 개체의 형질전환 식물체를 얻었다. Southern blot을 통하여 분석한 결과 세 개체 내에 cry II A 유전자가 존재하였는데, 한 개체에는 하나의 cry II A 유전자가, 또 한 개체에는 두 개의 cry II A 유전자가, 다른 한 개체에는 잘려진 형태의 cry II A 유전자가 존재함을 확인할 수 있었다. 본 연구를 통하여 얻어진 cry II A 형질전환 식물체는 살충성 검정 등을 거친 후 내충성 식물 생산 및 후대 유전 양상 분석을 위한 기초 자료로 이용될 수 있을 것이다.

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형질전환 생쥐에서 Antisense 비만유전자의 발현 (Expression of Antisense Mouse Obese Gene in Transgenic Mice)

  • 권범섭;홍권호;장정원;이훈택;정길생
    • 한국가축번식학회지
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    • 제24권4호
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    • pp.419-428
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    • 2000
  • 랩틴은 지방세포의 비만유전자에서 분비되는 포식인자로써 음식섭취, 에너지대사, 체중, 번식생리 및 신경호르몬 분비를 조절하는 역할을 한다. 본 연구는 antisense 비만유전자를 발현하는 형질전환 생쥐를 생산하기 위하여 실시하였다. 먼저 랩틴을 분비하는 지방세포에서 RNA 를 추출한 후 역전사 PCR을 실시하여 303 bp의 anti I과 635 bp의 anti II cDNA 들을 합성하였다. 이러한 cDNA 들을 지방세포 특이적 발현 프로모터인 aP2 프로모터와 SV40 poly(A) 사이에 역방향으로 결합하여 미세주입용 유전자를 구축하였다. 생쥐의 수정란전핵에 antisense 비만유전자를 미세 주입하여 14 마리의 형질전환 생쥐를 생산하였으며, anti I 을 지닌 4 마리의 형질전환 생쥐와 anti II를 지닌 5마리의 형질전환 생쥐계통을 확립하였다. 그리고 형질전환 생쥐의 지방세포를 추출하여 RT -PCR을 실시한 결과 antisense 비만유전자 mRNA발현을 확인하였다. 따라서, 본 연구에서 생산된 형질전환생쥐는 생체 랩틴저하에 의해 비만을 일으키는 질환모텔동물로써의 사용가능성을 나타내었다.

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구강 편평세포암종에서 $P16^{ink4}$ 유전자의 Methylation에 대한 연구 (($P16^{ink4}$ Methylation in Squamous Cell Carcinoma of the Oral Cavity.)

  • 강진원;김경욱;류진우;김창진
    • Maxillofacial Plastic and Reconstructive Surgery
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    • 제22권2호
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    • pp.164-173
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    • 2000
  • The p16 protein is a cyclin dependent kinase inhibitor that inhibits cell cycle progression from $G_1$ phase to S phase in cell cycle. Many p16 gene mutations have been noted in many cancer-cell lines and in some primary cancers, and alterations of p16 gene function by DNA methylation have been noticed in various kinds of cancer tissues and cell-lines. There have been a large body of literature has accumulated indicating that abnormal patterns of DNA methylation (both hypomethylation and hypermethylation) occur in a wide variety of human neoplasma and that these aberrations of DNA methylation may play an important epigenetic role in the development and progression of neoplasia. DNA methylation is a part of the inheritable epigenetic system that influences expression or silencing of genes necessary for normal differentiation and proliferation. Gene activity may be silenced by methylation of up steream regulatory regions. Reactivation is associated with demethylation. Although evidence or a high incidence of p16 alterations in a variety of cell lines and primary tumors has been reported, that has been contested by other investigators. The precise mechanisms by which abnormal methylation might contribute to carcinogenesis are still not fully elucidated, but conceivably could involve the modulation of oncogene and other important regulatory gene expression, in addition to creating areas of genetic instability, thus predisposing to mutational events causing neoplasia. There have been many variable results of studies of head and neck squamous cell carcinoma(HNSCC). This investigation was studied on 13 primary HNSCC for p16 gene status by protein expression in immunohistochemistry, and DNA genetic/epigenetic analyzed to determine the incidence, the mechanisms, and the potential biological significance of its Inactivation. As methylation detection method of p16 gene, the methylation specific PCR(MSP) is sensitive and specific for methylation of any block of CpG sites in a CpG islands using bisulfite-modified DNA. The genomic DNA is modified by treatment with sodium bisulfate, which converts all unmethylated cytosines to uracil(thymidine). The primers designed for MSP were chosen for regions containing frequent cytosines (to distinguish unmodified from modified DNA), and CpG pairs near the 5' end of the primers (to provide maximal discrimination in the PCR between methylated and unmethylated DNA). The two strands of DNA are no longer complementary after bisulfite treatment, primers can be designed for either modified strand. In this study, 13 paraffin embedded block tissues were used, so the fragment of DNA to be amplified was intentionally small, to allow the assessment of methylation pattern in a limited region and to facilitate the application of this technique to samlples. In this 13 primary HNSCC tissues, there was no methylation of p16 promoter gene (detected by MSP and automatic sequencing). The p16 protein-specific immunohistochemical staining was performed on 13 paraffin embedded primary HNSCC tissue samples. Twelve cases among the 13 showed altered expression of p16 proteins (negative expression). In this study, The author suggested that low expression of p16 protein may play an important role in human HNSCC, and this study suggested that many kinds of genetic mechanisms including DNA methylation may play the role in carcinogenesis.

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조직.기관의 분화와 유전자 발현의 조절, 최근의 진보 (Recent Advancement in the Differentiation of Tissues and Organs and Regulation of Gene Expression)

  • Harn, Chang-Yawl
    • 식물조직배양학회지
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    • 제24권1호
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    • pp.1-35
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    • 1997
  • Fertilized egg, by successive cell divisions, differentiates into different tissues and organs with various structures and functions. Different cells and tissues contain different proteins, products of selective gene expression. Not all the genes in any genomes are equally active, temporal and spatial gene expression being the general rule. Present paper attempts to review the tanscriptional mechanisms or the initiations of transcription from several angles. In some of the organisms the genes in the process of transcription or the genes in the inactive state can be seen under the light microscope. Some bands of Drosophila polytene chromosomes may exhibit a swollen or puff appearance under certain conditions. A puff, unfolded or decondensed form of chromomere, represents sets of intense transcriptional activity or RNA synthesis. The heterochromatic X chromosome whose genes remain inactive in the female mammals can be visualized as a dark staining structure called Barr body, Configuration of chromatin differs between transcribed and nontranscribed chromatin. Modification to the chromatin facilitates RNA synthesis. The movement of large polymerase molecule along the DNA would probably be facilitated if some modifications of the chromatin configuration is effected. Methylation of cytosines in CG sequences is associated with inactive genes. Methylation can play a role in determination of mammalian cells during embryogenesis. Demethylation is necessary for the gene to be expressed during development A histone modification that is also known to be correlated with transcriptional capacity of chromatin is acetylation of the lysine residues of the core histones. Chromatin containing a high level of histone acetylation is very sensitive to DNase 1. For the transcription to occur TBP must first bind to the TATA box. Another TF, TF IIB, then binds to the promoter-TBP complex, facilitating the access of RNA polymerase to the transcription initiation site. As recently as eight years ago researchers assumed that histones were irrelevant to the regulation of gene expression. Histones combine with the DNA to form nucleosome of the chromatin. Histones are vital participant in gene regulation. Histone and basal factors compete for access to TATA box. When DNA is exposed to basal factors before histones are introduced, the basal factors assemble on TATA boxes preventing the access of histones, allowing transcription to occur, for transcription to begin, activator protein at the upstream activation sequence or enhancer must interact with the tail of histone H4 at TATA box and cause the histone role particle to dissociate from the TATA box leading to partial breakup of the histone core particle and allowing the basal factors to bind to the TATA box. New concept of genomic flux in contrast to the old concept of static genome has been developed based on the powerful new molecular techniques. Genomic changes such as repetitive DNAs and transposable elements, it is assumed but not yet proved, may affect some of the developmental patterns that characterize particular cells, tissues, organs, and organisms. In the last decade or so remarkable achievement have been made in the researches of the structures and functions of TFs and the specific target sequences located in promoters or enhancers where these TFs bind. TFs have independent domains that bind DNA and that activate transcription. DNA binding domain of TFs serves to bring the protein into the right location. There are many types of DNA binding domains. Common types of motifs can be found that are responsible for binding to DNA. The motifs are usually quite short and comprise only a small part of the protein structure. Steroid receptors have domains for hormone binding, DNA binding, and activating transcription. The zinc finger motif comprises a DNA binding domain. Leucine zipper consist of a stretch of amino acids with a leucine residue in every seventh position Two proteins form a dimer because they interact by means of leucine zippers on similar α-helical domain. This positions their DNA binding basic domains for interaction with the two halves of a DNA sequence with dyad symmetry of TGACTCA, ACTGAGT.

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돼지 $\beta$-Casein 유전자의 3' 말단 부위의 cis-Acting Element가 유선 상피 세포내의 발현에 미치는 영향 (Effects of the cis-Acting Element in the 3' End of Porcine $\beta$-Casein Gene on the Expression in Mammary Epithelial Cells)

  • 이휘철;김병주;변승준;이승훈;김민지;정희경;이현기;조수진;장원경;박진기;이풍연
    • Reproductive and Developmental Biology
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    • 제32권3호
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    • pp.153-158
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    • 2008
  • 형질 전환 동물 생산에는 조직 및 시기 특이적 발현 조절이 가능하다는 장점 때문에 유즙 내로 외부 유전자를 발현시키는 시스템이 널리 이용되고 있다. 유전자 발현 즉, 단백질 생산은 프로모터의 강도뿐만 아니라 mRNA의 안정성에 의해서도 조절된다. 특히, polyadenylation에 의한 poly A의 길이는 in vivo와 올 in vitro에서 mRNA 안정성 및 목적 유전자의 번역효율에 영향을 준다. 본 연구에서는 이러한 mRNA 안정성이 목적 유전자의 발현에 미치는 영향을 알아보기 위해 3'-UTR 염기 서열을 분석하였다. 이 3'-untranslated region(UTR) 내의 poly A signal을 기준으로 putative cytoplasmic polyadenylation element(CPE) 부위와 downstream elements(DSE: U-rich, G-rich, GU-rich)의 염기 서열을 분석하고, 각각의 element를 기준으로 15 종의 luciferase reporter vector를 제작하여, 생쥐 유선 세포주(HC11)와 돼지 유선 세포주(PMGC)에 각각 transfection시킨 후 48시간 동안 배양하고 luciferase 발현량을 분석하였다. PMGC의 경우, luciferase의 발현은 exon 9의 CPE 2,3 및 DSE 1을 포함한 #6 construct에서 유의적으로 높은 발현량을 보였으며, exon 9의 CPE 2, 3과 DSE를 모두 포함하고 있는 #11 construct에서도 유의적으로 높은 발현량을 보였다. 이러한 결과는 형질 전환 돼지 생산에 있어 #6 및 11 construct의 사용은 목적의 유전자를 효과적으로 발현시키는데 기여할 것으로 사료된다.