• 제목/요약/키워드: DNA breakage

검색결과 76건 처리시간 0.057초

Cyanidine-3-glucoside (C3G) 색소의 함유량이 증대된 쌀 신품종(C3GHi)의 항산화 및 항당뇨 활성 (Antioxidative and Anti-diabetic Activity of C3GHi, Novel Black Rice Breed)

  • 김화영;김중학;이성애;류수노;한상준;홍성길
    • 한국작물학회지
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    • 제55권1호
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    • pp.38-46
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    • 2010
  • C3GHi 쌀 품종은 흑진주벼와 수원425호를 교배조합으로 하여 색소 성분인 cyanidine-3-glucoside(C3G)의 함량을 비약적으로 증대시킨 품종이다. C3GHi 벼품종을 활용하여 기능성 제품 및 소재로의 개발 가능성을 타진하기 위하여 본 연구에서는 C3GHi 벼품종의 항산화 활성 및 항당뇨 기능의 검증을 수행하였다. 1. C3GHi 벼품종의 항산화 활성을 비교 분석한 결과에서 C3GHi는 일반 벼 및 흑진주벼보다 매우 우수한 항산화 활성을 가진 것으로 나타났으며, 대표적 항산화 소재인 glutathione과 유사한 활성을 나타내었다. 2. C3GHi 벼품종의 혈당지수를 인체 시험을 통해서 산출한 결과에서도 일반 현미나 백미에 비해서 15%정도 낮은 혈당지수를 나타내 당뇨 환자들의 식사 대용식의 소재로서 활용 가능성이 높을 것으로 사료된다. 3. db/db mice 모델 및 STZ를 통해 당뇨병을 유발한 동물 모델에서 C3GHi 쌀추출물 및 C3GHi쌀 현미의 동결건조 분말이 혈당 상승을 막고, 산화적 손상을 억제하는 것으로 나타났다. 4. 이상의 결과에서 C3GHi쌀은 낮은 혈당지수 및 항산화 활성, 항당뇨 활성 등을 보유하고 있어 이후 당뇨 환자용 기능성 식사 대용식 및 기능성 식품 원료로서의 개발 가능성이 높다고 판단된다.

FISH 기법을 이용한 방사선에 의한 소핵과 이수성 분석 (Analysis of radiation-induced micronuclei and aneuploidy involving chromosome 1 and 4 by FISH technique)

  • 정해원;김태연;조윤희;김수영;강창모;하성환
    • Journal of Radiation Protection and Research
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    • 제29권4호
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    • pp.243-249
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    • 2004
  • 본 연구는 소핵분석과 염색체 1번 및 4번의 DNA probe를 이용한 FISH 기법을 병행하여 방사선에 의한 소핵과 이수성에 관여하는 각 염색체의 감수성을 평가하고자 하였다. 방사선 선량에 따라 소핵의 빈도는 증가하였으며 염색체 1번과 4번의 이수성도 대조군, 1 Gy 및 2 Gy 에서 각각 2000개의 BN세포 당 9개, 47개 및 71개로 유의하게 증가하였다. 염색체 1번의 이수성 빈도는 4번에 비해 높게 관찰되었다. 염색체 1번 및 4번을 포함하는 소핵도 방사선의 선량에 따라 증가하였으며, 소핵내 염색체 1번의 포함빈도가 4번보다 높게 관찰되었다. 또한 방사선에 의한 소핵 중 낮은 빈도의 염색체 signal를 포함하는 소핵이 관찰됨으로써 방사선에 의한 소핵은 대부분 절단에 의한 것임을 확인할 수 있었다. 따라서 본 연구 결과 방사선은 이수성을 유도하며 이에 염색체가 다르게 관여할 수 있음을 보여준다.

Analysis of Genomic Structure of an Aflatoxin Biosynthesis Homologous Gene Cluster in Aspergillus oryzae RIB Strains

  • Lee, Yun-Hae;Tominaga, Mihoko;Hayashi, Risa;Sakamoto, Kazutoshi;Yamada, Osamu;Akita, Osamu
    • 한국균학회소식:학술대회논문집
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    • 한국균학회 2006년도 추계학술대회 및 정기총회
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    • pp.32-44
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    • 2006
  • To investigate non-aflatoxin-production of A. oryzae at the molecular level, an aflatoxin biosynthesis gene homolog cluster of RIB 40 was analyzed. Although most genes in the corresponding cluster exhibited from 97 to 99 % similarity to those of Aspergillus flavus, three genes shared 93 % similarity or less. In addition, although slight expression of aflR, positive transcriptional regulator gene, was detected in some A. oryzae strains having seven aflatoxin biosynthesis homologous genes, other genes related to aflatoxin production were not detected. RIB strains were mainly divided into group 1, having seven aflatoxin biosynthesis homologous genes (aflT, nor-i, aflR, norA, avnA, verB, and vbs), and group 2, having three homologous (avnA, verB, and vbs). Partial aflatoxin homologous gene cluster of RIB62 from group 2 was sequenced and compared with that of RIB40 from group 1. RIB62 showed a large deletion upstream of ver-1 with more than half of the aflatoxin homologous gene cluster missing including aflR, a positive transcriptional regulatory gene. Adjacent to the deletion of the aflatoxin homologous gene cluster, RIB62 has a unique sequence of about 8kb and a telomere. Southern analysis of A. oryzae RIB strains with four kinds of probe derived from the unique sequence of RIB62 showed that all group 2 strains have identical hybridizing signals. Polymerase chain reaction with specific primer set designed to amplify the junction between ver-1 and the unique sequence of RIB62 resulted in the same size of DNA fragment only from group 2 strains. Based on these results, we developed a useful genetic tool that distinguishes A. oryzae group 2 strains from the other groups' strains and propose that it might have differentiated from the ancestral strains due to chromosomal breakage.

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In vivo multiplex gene targeting with Streptococcus pyogens and Campylobacter jejuni Cas9 for pancreatic cancer modeling in wild-type animal

  • Chang, Yoo Jin;Bae, Jihyeon;Zhao, Yang;Lee, Geonseong;Han, Jeongpil;Lee, Yoon Hoo;Koo, Ok Jae;Seo, Sunmin;Choi, Yang-Kyu;Yeom, Su Cheong
    • Journal of Veterinary Science
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    • 제21권2호
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    • pp.26.1-26.14
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    • 2020
  • Pancreatic ductal adenocarcinoma is a lethal cancer type that is associated with multiple gene mutations in somatic cells. Genetically engineered mouse is hardly applicable for developing a pancreatic cancer model, and the xenograft model poses a limitation in the reflection of early stage pancreatic cancer. Thus, in vivo somatic cell gene engineering with clustered regularly interspaced short palindromic repeats is drawing increasing attention for generating an animal model of pancreatic cancer. In this study, we selected Kras, Trp53, Ink4a, Smad4, and Brca2 as target genes, and applied Campylobacter jejuni Cas9 (CjCas9) and Streptococcus pyogens Cas9 (SpCas9) for developing pancreatic cancer using adeno associated virus (AAV) transduction. After confirming multifocal and diffuse transduction of AAV2, we generated SpCas9 overexpression mice, which exhibited high double-strand DNA breakage (DSB) in target genes and pancreatic intraepithelial neoplasia (PanIN) lesions with two AAV transductions; however, wild-type (WT) mice with three AAV transductions did not develop PanIN. Furthermore, small-sized Cjcas9 was applied to WT mice with two AAV system, which, in addition, developed high extensive DSB and PanIN lesions. Histological changes and expression of cancer markers such as Ki67, cytokeratin, Mucin5a, alpha smooth muscle actin in duct and islet cells were observed. In addition, the study revealed several findings such as 1) multiple DSB potential of AAV-CjCas9, 2) peri-ductal lymphocyte infiltration, 3) multi-focal cancer marker expression, and 4) requirement of > 12 months for initiation of PanIN in AAV mediated targeting. In this study, we present a useful tool for in vivo cancer modeling that would be applicable for other disease models as well.

Role of Citrate Synthase in Acetate Utilization and Protection from Stress-Induced Apoptosis

  • Lee, Yong-Joo;Kang, Hong-Yong;Maeng, Pil Jae
    • 한국미생물학회:학술대회논문집
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    • 한국미생물학회 2008년도 International Meeting of the Microbiological Society of Korea
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    • pp.39-41
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    • 2008
  • The yeast Saccharomyces cerevisiae has been shown to contain three isoforms of citrate synthase (CS). The mitochondrial CS, Cit1, catalyzes the first reaction of the TCA cycle, i.e., condensation of acetyl-CoA and oxaloacetate to form citrate [1]. The peroxisomal CS, Cit2, participates in the glyoxylate cycle [2]. The third CS is a minor mitochondrial isofunctional enzyme, Cit3, and related to glycerol metabolism. However, the level of its intracellular activity is low and insufficient for metabolic needs of cells [3]. It has been reported that ${\Delta}cit1$ strain is not able to grow with acetate as a sole carbon source on either rich or minimal medium and that it shows a lag in attaining parental growth rates on nonfermentable carbon sources [2, 4, 5]. Cells of ${\Delta}cit2$, on the other hand, have similar growth phenotype as wild-type on various carbon sources. Thus, the biochemical basis of carbon metabolism in the yeast cells with deletion of CIT1 or CIT2 gene has not been clearly addressed yet. In the present study, we focused our efforts on understanding the function of Cit2 in utilizing $C_2$ carbon sources and then found that ${\Delta}cit1$ cells can grow on minimal medium containing $C_2$ carbon sources, such as acetate. We also analyzed that the characteristics of mutant strains defective in each of the genes encoding the enzymes involved in TCA and glyoxylate cycles and membrane carriers for metabolite transport. Our results suggest that citrate produced by peroxisomal CS can be utilized via glyoxylate cycle, and moreover that the glyoxylate cycle by itself functions as a fully competent metabolic pathway for acetate utilization in S. cerevisiae. We also studied the relationship between Cit1 and apoptosis in S. cerevisiae [6]. In multicellular organisms, apoptosis is a highly regulated process of cell death that allows a cell to self-degrade in order for the body to eliminate potentially threatening or undesired cells, and thus is a crucial event for common defense mechanisms and in development [7]. The process of cellular suicide is also present in unicellular organisms such as yeast Saccharomyces cerevisiae [8]. When unicellular organisms are exposed to harsh conditions, apoptosis may serve as a defense mechanism for the preservation of cell populations through the sacrifice of some members of a population to promote the survival of others [9]. Apoptosis in S. cerevisiae shows some typical features of mammalian apoptosis such as flipping of phosphatidylserine, membrane blebbing, chromatin condensation and margination, and DNA cleavage [10]. Yeast cells with ${\Delta}cit1$ deletion showed a temperature-sensitive growth phenotype, and displayed a rapid loss in viability associated with typical apoptotic hallmarks, i.e., ROS accumulation, nuclear fragmentation, DNA breakage, and phosphatidylserine translocation, when exposed to heat stress. Upon long-term cultivation, ${\Delta}cit1$ cells showed increased potentials for both aging-induced apoptosis and adaptive regrowth. Activation of the metacaspase Yca1 was detected during heat- or aging-induced apoptosis in ${\Delta}cit1$ cells, and accordingly, deletion of YCA1 suppressed the apoptotic phenotype caused by ${\Delta}cit1$ mutation. Cells with ${\Delta}cit1$ deletion showed higher tendency toward glutathione (GSH) depletion and subsequent ROS accumulation than the wild-type, which was rescued by exogenous GSH, glutamate, or glutathione disulfide (GSSG). Beside Cit1, other enzymes of TCA cycle and glutamate dehydrogenases (GDHs) were found to be involved in stress-induced apoptosis. Deletion of the genes encoding the TCA cycle enzymes and one of the three GDHs, Gdh3, caused increased sensitivity to heat stress. These results lead us to conclude that GSH deficiency in ${\Delta}cit1$ cells is caused by an insufficient supply of glutamate necessary for biosynthesis of GSH rather than the depletion of reducing power required for reduction of GSSG to GSH.

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노루궁뎅이 버섯균사체를 이용한 비타민나무 발효물이 생체고분자의 산화적 변형과 세포사멸에 미치는 보호 영향 (Protective Effects of Sea Buckthorn (Hippophae rhamnoides L.) Leaves Fermented with Hericium erinaceum Mycelium against Oxidative Modification of Biological Macromolecules and Cell Death)

  • 김승섭;경인구;이미라;김동구;신지영;양진이;이광호;음원식;강정훈
    • 한국식품영양과학회지
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    • 제44권1호
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    • pp.35-43
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    • 2015
  • 본 연구에서는 노루궁뎅이 버섯균사체를 비타민나무 잎에 배양하여 조제한 노루궁뎅이 버섯균사체-비타민나무 발효물 열수 추출물이 생체고분자의 산화적 손상과 세포사멸을 보호할 수 있는지를 관찰하였다. 노루궁뎅이 버섯균사체-비타민나무 발효물의 항산화 활성을 DPPH radical, ABTS radical, peroxyl radical 소거활성 측정을 통해 알아보았다. 그 결과 노루궁뎅이 버섯균사체-비타민나무 발효물을 처리한 DPPH radical 소거활성은 $500{\mu}g/mL$ 농도에서 65.06%, ABTS radical 소거활성은 $50{\mu}g/mL$ 농도에서 98.83%, peroxyl radical 소거활성은 $100{\mu}g/mL$ 농도에서 44.03%로 높은 항산화 활성을 나타내었다. 노루궁뎅이 버섯균사체-비타민나무 발효물은 DNA의 산화적 손상을 효과적으로 억제하였다. 노루궁뎅이 버섯균사체-비타민나무 발효물 역시 사람의 혈청단백질과 Cu,Zn-SOD의 산화적 손상을 억제하였다. 세포에 $H_2O_2$를 처리하였을 때 세포생존율에 비하여 발효물을 $100{\mu}g/mL$ 농도로 전 처리한 세포생존율은 21.59% 높게 증가되었다. 또한 발효물을 $50{\mu}g/mL$ 농도로 처리했을 경우 세포 내 ROS의 축적이 유의적으로 감소되었다. 따라서 노루궁뎅이 버섯균사체-비타민나무 발효물은 항산화 활성뿐만 아니라 산화적 스트레스에 의해 야기되는 세포 독성에 대한 보호 작용이 뛰어난 것으로 사료된다.