• 제목/요약/키워드: Histone (H₂B)

검색결과 42건 처리시간 0.026초

AURKA Suppresses Leukemic THP-1 Cell Differentiation through Inhibition of the KDM6B Pathway

  • Park, Jin Woo;Cho, Hana;Oh, Hyein;Kim, Ji-Young;Seo, Sang-Beom
    • Molecules and Cells
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    • 제41권5호
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    • pp.444-453
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    • 2018
  • Aberrations in histone modifications are being studied in mixed-lineage leukemia (MLL)-AF9-driven acute myeloid leukemia (AML). In this study, we focused on the regulation of the differentiation of the MLL-AF9 type AML cell line THP-1. We observed that, upon phorbol 12-myristate 13-acetate (PMA) treatment, THP-1 cells differentiated into monocytes by down-regulating Aurora kinase A (AURKA), resulting in a reduction in H3S10 phosphorylation. We revealed that the AURKA inhibitor alisertib accelerates the expression of the H3K27 demethylase KDM6B, thereby dissociating AURKA and YY1 from the KDM6B promoter region. Using Flow cytometry, we found that alisertib induces THP-1 differentiation into monocytes. Furthermore, we found that treatment with the KDM6B inhibitor GSK-J4 perturbed the PMA-mediated differentiation of THP-1 cells. Thus, we discovered the mechanism of AURKA-KDM6B signaling that controls the differentiation of THP-1 cells, which has implications for biotherapy for leukemia.

EBP1 regulates Suv39H1 stability via the ubiquitin-proteasome system in neural development

  • Kim, Byeong-Seong;Ko, Hyo Rim;Hwang, Inwoo;Cho, Sung-Woo;Ahn, Jee-Yin
    • BMB Reports
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    • 제54권8호
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    • pp.413-418
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    • 2021
  • ErbB3-binding protein 1 (EBP1) is a multifunctional protein associated with neural development. Loss of Ebp1 leads to upregulation of the gene silencing unit suppressor of variegation 3-9 homolog 1 (Suv39H1)/DNA (cytosine 5)-methyltransferase (DNMT1). EBP1 directly binds to the promoter region of DNMT1, repressing DNA methylation, and hence, promoting neural development. In the current study, we showed that EBP1 suppresses histone methyltransferase activity of Suv39H1 by promoting ubiquitin-proteasome system (UPS)-dependent degradation of Suv39H1. In addition, we showed that EBP1 directly interacts with Suv39H1, and this interaction is required for recruiting the E3 ligase MDM2 for Suv39H1 degradation. Thus, our findings suggest that EBP1 regulates UPS-dependent degradation of Suv39H1 to govern proper heterochromatin assembly during neural development.

Twist2 Regulates CD7 Expression and Galectin-1-Induced Apoptosis in Mature T-Cells

  • Koh, Han Seok;Lee, Changjin;Lee, Kwang Soo;Park, Eun Jung;Seong, Rho H.;Hong, Seokmann;Jeon, Sung Ho
    • Molecules and Cells
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    • 제28권6호
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    • pp.553-558
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    • 2009
  • In the periphery, a galectin-1 receptor, CD7, plays crucial roles in galectin-1-mediated apoptosis of activated T-cells as well as progression of T-lymphoma. Previously, we demonstrated that $NF-{\kappa}B$ downregulated CD7 gene expression through the p38 MAPK pathway in developing immature thymocytes. However, its regulatory pathway is not well understood in functional mature T-cells. Here, we show that CD7 expression was downregulated by Twist2 in Jurkat cells, a human acute T-cell lymphoma cell line, and in EL4 cells, a mature murine T-cell lymphoma cell line. Furthermore, ectopic expression of Twist2 in Jurkat cells reduced galectin-1-induced apoptosis. While full-length Twist2 decreased CD7 promoter activity, a C-terminal deletion form of Twist2 reversed its inhibition, suggesting an important role of the C-terminus in CD7 regulation. In addition, CD7 expression was enhanced by histone deacetylase inhibitors such as trichostatin A and sodium butyrate, which indicates that Twist2 might be one of candidate factors involved in histone deacetylation. Based on these results, we conclude that upregulation of Twist2 increases the resistance to galectin-1-mediated-apoptosis, which may have significant implications for the progression of some T-cells into tumors such as Sezary cells.

Bifidobacteria의 allergy 면역 조절과 synergism (Allergy Immunity Regulation and Synergism of Bifidobacteria)

  • 조광근;최인순
    • 생명과학회지
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    • 제27권4호
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    • pp.482-499
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    • 2017
  • Allergy 질환은 지난 십여년 동안 개발도상국을 포함해서 전 세계적으로 증가하고 있다. Allergy 염증 반응은 수지상 세포와 같은 항원제시 세포에 의한 allergy 항원섭취를 시작으로 하여 Th2 면역 반응에 의해서 일어난다. 장내 미생물은 신체의 대사나 생리적 기능을 조절하고, 생애 초기의 면역 체계 성숙과 일생 동안 면역 체계 항상성 및 상피세포 총체성에 기여한다. Bifidobacteria는 Th1/Th2 balance에 strain-specific 한 면역 자극 특성을 가지며, TSLP와 IgE 발현을 억제 시키고 Flg과 FoxP3 발현을 촉진 시켜 allergy를 완화시킨다. 또한 Unmethylated CpG motif ODN은 B 세포와 수지상 세포의 TLR9에 의해 인식 되어 선천성과 적응성 면역 반응을 유도하고, Clostridium butyricum에 의해서 생산된 butyrate는 수지상 세포의 anti-inflammatory 유전자의 발현을 유도하기 위해 GPR109a signaling pathway를 활성화시키고, GPR43 활성화를 통하여 tTreg 세포 proliferation을 직접 자극하거나 HADC 활성을 억제시켜 Foxp3 gene intronic enhancer의 histone H3 acetylation을 통해 naive $CD4^+$ T 세포를 pTreg 세포로 분화시킨다.

Fermented ginseng extract, BST204, disturbs adipogenesis of mesenchymal stem cells through inhibition of S6 kinase 1 signaling

  • Yi, Sang Ah;Lee, Jieun;Park, Sun Kyu;Kim, Jeom Yong;Park, Jong Woo;Lee, Min Gyu;Nam, Ki Hong;Park, Jee Hun;Oh, Hwamok;Kim, Saetbyul;Han, Jihoon;Kim, Bo Kyung;Jo, Dong-Gyu;Han, Jeung-Whan
    • Journal of Ginseng Research
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    • 제44권1호
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    • pp.58-66
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    • 2020
  • Background: The biological and pharmacological effects of BST204, a fermented ginseng extract, have been reported in various disease conditions. However, its molecular action in metabolic disease remains poorly understood. In this study, we identified the antiadipogenic activity of BST204 resulting from its inhibition of the S6 kinase 1 (S6K1) signaling pathway. Methods: The inhibitory effects of BST204 on S6K1 signaling were investigated by immunoblot, nuclear fractionation, immunoprecipitation analyses. The antiadipogenic effect of BST204 was evaluated by measuring mRNA levels of adipogenic genes and by chromatin immunoprecipitation and quantitative real-time polymerase chain reaction analysis. Results: Treatment with BST204 inhibited activation and nuclear translocation of S6K1, further decreasing the interaction between S6K1 and histone H2B in 10T1/2 mesenchymal stem cells. Subsequently, phosphorylation of H2B at serine 36 (H2BS36p) by S6K1 was reduced by BST204, inducing an increase in the mRNA expression of Wnt6, Wnt10a, and Wnt10b, which disturbed adipogenic differentiation and promoted myogenic and early osteogenic gene expression. Consistently, BST204 treatment during adipogenic commitment suppressed the expression of adipogenic marker genes and lipid drop formation. Conclusion: Our results indicate that BST204 blocks adipogenesis of mesenchymal stem cells through the inhibition of S6K1-mediated histone phosphorylation. This study suggests the potential therapeutic strategy using BST204 to combat obesity and musculoskeletal diseases.

마우스 수정란에 있어서 부계 DNA 손상이 부계 DNA 퇴화 및 초기 배발달에 미치는 영향 (Effect of Paternal DNA Damage on Paternal DNA Degradation and Early Embryonic Development in Mouse Embryo: Supporting Evidence by GammaH2AX Expression)

  • 김창진;이경본
    • 한국동물생명공학회지
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    • 제34권3호
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    • pp.197-204
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    • 2019
  • This study was investigated to test whether the zygote recognized the topoisomerase II beta (TOP2B) mediated DNA fragmentation in epididymal spermatozoa or the nuclease degradation in vas deferens spermatozoa by testing for the presence of gammaH2AX (γH2AX). The γH2AX is phosphorylation of histone protein H2AX on serine 139 occurs at sites flanking DNA double-stranded breaks (DSBs). The presence of γH2AX in the pronuclei of mouse zygotes which were injected with DNA broke epididymal spermatozoa was tested by immunohistochemistry at 5 and 9 h post fertilization, respectively. Paternal pronuclei that arose from epididymal spermatozoa treated with divalent cations did not stain for γH2AX at 5 h. On the other hand, in embryos injected with vas deferences spermatozoa that had been treated with divalent cations, γH2AX was only present in paternal pronuclei, and not the maternal pronuclei at 5 h. Interestingly, both pronuclei stained positively for γH2AX for all treatments and controls at 9 h after sperm injection. In conclusion, the embryos recognize DNA that is damaged by nuclease, but not by TOP2B because H2AX in phosphorylated in paternal pronuclei resulting from spermatozoa treated with fragmented DNA from vas deferens spermatozoa treated with divalent cations, but not from epididymal spermatozoa treated the same way.

Gametophytic Abortion in Heterozygotes but Not in Homozygotes: Implied Chromosome Rearrangement during T-DNA Insertion at the ASF1 Locus in Arabidopsis

  • Min, Yunsook;Frost, Jennifer M.;Choi, Yeonhee
    • Molecules and Cells
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    • 제43권5호
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    • pp.448-458
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    • 2020
  • T-DNA insertional mutations in Arabidopsis genes have conferred huge benefits to the research community, greatly facilitating gene function analyses. However, the insertion process can cause chromosomal rearrangements. Here, we show an example of a likely rearrangement following T-DNA insertion in the Anti-Silencing Function 1B (ASF1B) gene locus on Arabidopsis chromosome 5, so that the phenotype was not relevant to the gene of interest, ASF1B. ASF1 is a histone H3/H4 chaperone involved in chromatin remodeling in the sporophyte and during reproduction. Plants that were homozygous for mutant alleles asf1a or asf1b were developmentally normal. However, following self-fertilization of double heterozygotes (ASF1A/asf1a ASF1B/asf1b, hereafter AaBb), defects were visible in both male and female gametes. Half of the AaBb and aaBb ovules displayed arrested embryo sacs with functional megaspore identity. Similarly, half of the AaBb and aaBb pollen grains showed centromere defects, resulting in pollen abortion at the bi-cellular stage of the male gametophyte. However, inheritance of the mutant allele in a given gamete did not solely determine the abortion phenotype. Introducing functional ASF1B failed to rescue the AaBb- and aaBb-mediated abortion, suggesting that heterozygosity in the ASF1B gene causes gametophytic defects, rather than the loss of ASF1. The presence of reproductive defects in heterozygous mutants but not in homozygotes, and the characteristic all-or-nothing pollen viability within tetrads, were both indicative of commonly-observed T-DNA-mediated translocation activity for this allele. Our observations reinforce the importance of complementation tests in assigning gene function using reverse genetics.

Effects of Trichostatin A and 5-aza-2'deoxycytidine on Nuclear Reprogramming in Pig Cloned Embryos

  • Lee, Sung Hyun;Xu, Yong-Nan;Heo, Young-Tae;Cui, Xiang-Shun;Kim, Nam-Hyung
    • Reproductive and Developmental Biology
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    • 제37권4호
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    • pp.269-279
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    • 2013
  • Low efficiency of somatic cell nuclear transfer (SCNT) is attributed to incomplete reprogramming of transfered nuclei into oocytes. Trichostatin A (TSA), histone deacetylase inhibitor and 5-aza-2'deoxycytidine (5-aza-dC), DNA methylation inhibitor has been used to enhance nuclear reprogramming following SCNT. However, it was not known molecular mechanism by which TSA and 5-aza-dC improve preimplantation embryo and fetal development following SCNT. The present study investigates embryo viability and gene expression of cloned porcine preimplantation embryos in the presence and absence of TSA and 5-aza-dC as compared to embryos produced by parthenogenetic activation. Our results indicated that TSA treatment significantly improved development. However 5-aza-dC did not improve development. Presence of TSA and 5-aza-dC significantly improved total cell number, and also decreased the apoptotic and autophagic index. Three apoptotic-related genes, Bak, Bcl-xL, and Caspase 3 (Casp3), and three autophagic-related genes, ATG6, ATG8, and lysosomal-associated membrane protein 2 (LAMP2), were measured by real time RT-PCR. TSA and 5-aza-dC treatment resulted in high expression of anti-apoptotic gene Bcl-xL and low pro-apoptotic gene Bak expression compared to untreated NT embryos or parthenotes. Furthermore, LC3 protein expression was lower in NT-TSA and NT-5-aza-dC embryos than those of NT and parthenotes. In addition, TSA and 5-aza-dC treated embryos displayed a global acetylated histone H3 at lysine 9 and methylated DNA H3 at lysine 9 profile similar to the parthenogenetic blastocysts. Finally, we determined that several DNA methyltransferase genes Dnmt1, Dnmt3a and Dnmt3b. NT blastocysts showed higher levels Dnmt1 than those of the TSA and 5-aza-dC blastocysts. Dnmt3a is lower in 5-aza-dC than NT, NTTSA and parthenotes. However, Dnmt3b is higher in 5-aza-dC than NT and NTTSA. These results suggest that TSA and 5-aza-dC positively regulates nuclear reprogramming which result in modulation of apoptosis and autophagy related gene expression and then reduce apoptosis and autophagy. In addition, TSA and 5-aza-dC affects the acetylated and methylated status of the H3K9.

Ginsenoside Rg1 suppresses cancer cell proliferation through perturbing mitotic progression

  • Hong, Jihee;Gwon, Dasom;Jang, Chang-Young
    • Journal of Ginseng Research
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    • 제46권3호
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    • pp.481-488
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    • 2022
  • Background: Although the tumor-suppressive effects of ginsenosides in cell cycle have been well established, their pharmacological properties in mitosis have not been clarified yet. The chromosomal instability resulting from dysregulated mitotic processes is usually increased in cancer. In this study, we aimed to investigate the anticancer effects of ginsenoside Rg1 on mitotic progression in cancer. Materials and methods: Cancer cells were treated with ginsenoside Rg1 and their morphology and intensity of different protein were analyzed using immunofluorescence microscopy. The level of proteins in chromosomes was compared through chromosomal fractionation and Western blot analyses. The location and intensity of proteins in the chromosome were confirmed through immunostaining of mitotic chromosome after spreading. The colony formation assays were conducted using various cancer cell lines. Results: Ginsenoside Rg1 reduced cancer cell proliferation in some cancers through inducing mitotic arrest. Mechanistically, it inhibits the phosphorylation of histone H3 Thr3 (H3T3ph) mediated by Haspin kinase and concomitant recruitment of chromosomal passenger complex (CPC) to the centromere. Depletion of Aurora B at the centromere led to abnormal centromere integrity and spindle dynamics, thereby causing mitotic defects, such as increase in the width of the metaphase plate and spindle instability, resulting in delayed mitotic progression and cancer cell proliferation. Conclusion: Ginsenoside Rg1 reduces the level of Aurora B at the centromere via perturbing Haspin kinase activity and concurrent H3T3ph. Therefore, ginsenoside Rg1 suppresses cancer cell proliferation through impeding mitotic processes, such as chromosome alignment and spindle dynamics, upon depletion of Aurora B from the centromere.

신경줄기세포(HB1.F3)에서 나트륨옥소 공동수송체 도입유전자 발현 (Expression of Sodium/iodide Symporter Transgene in Neural Stem Cells)

  • 김윤희;이동수;강주현;이용진;정준기;이명철
    • 대한핵의학회지
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    • 제38권1호
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    • pp.99-108
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    • 2004
  • 목적: 생체 내로 이식한 신경 줄기 세포의 이동과 증식을 비침습적으로 추적하는 것은 기초와 임상에서 중요한 것으로 알려져 있다. 신경줄기 세포주(F3)를 생체내로 이식 후, 비침습적으로 추적하기 위해 사람의 hNIS 유전자를 F3 세포에 안정적으로 형질 도입하여 세포 배양 시간 및 조건에 따른 F3-NIS 세포 내에서 hNIS 유전자의 발현 변화를 알아보았다. 방법: HB1.F3는 태아 종뇌에서 신경 줄기 세포를 분리한 후 v-myc유전자로 불멸화한 신경줄기 세포주이다. CMV 프로모터 조절 받도록 hNIS와 하이그로마이신 저항 유전자를 IRES(internal ribosomal entry site)를 이용하여 재조합하였다(pIRES-NIS/Hyg). pIRES-NIS/Hyg를 리포좀을 이용하여 HB1.F3 세포를 형질전환 하였다. 탈메틸화시약(5-Azacytidine)와 히스톤탈아실화효소저해제(trichostatin; TSA)을 세포주에 24시간 처리한 후, hNIS 발현을 I-125 섭취율과 역전사효소 중합효소연쇄반응(RT-PCR)으고 측정하였다. 결과: pIRES-NIS/Hyg 재조합 유전자를 HB1.F3에 형질도입 후, 2주 동안 하이그로마이신 B를 처리해 hNIS 유전자를 안정적으로 발현하는 HB1.F3 세포를 얻었다(F3-NIS III). I-125 섭취율은 HB1.F3에 비해 F3-NIS가 12.9배 높았으며, $KClO_4$를 처리 했을 때 F3-NIS의 I-125 섭취가 완전히 저해되었다. F3-NIS를 계대 배양하면 hNIS 유전자의 발현이 1.9배 까지 서서히 감소하였다. 5-Azacytidine과 TSA를 F3-NIS에 24시간 처리한 결과, I-125 섭취율이 5-Azacytidine과 TSA 농도에 따라 증가되었다. 또한 같은 방법으로 F3-NIS 세포에 5-Azacytidine과 TSA를 처리한 후 hNIS 프라이머로 RT-PCR을 수행한 결과 hNIS mRNA가 농도에 따라 증가 되었다. 결론: hNIS 유전자 이입된 F3 세포는 계대 배양하는 동안 생물학적인 특성이 변화되는 것으로 관찰되었으며, 이는 줄기 세포에 이입된 외래 유전자의 발현이 DNA 탈메틸화나 히스혼아세틸화를 통한 에피지네틱 조율 때문이라고 생각한다.