• 제목/요약/키워드: CYLD

검색결과 4건 처리시간 0.015초

MiR-454 Prompts Cell Proliferation of Human Colorectal Cancer Cells by Repressing CYLD Expression

  • Liang, Hong-Liang;Hu, Ai-Ping;Li, Sen-Lin;Xie, Jia-Ping;Ma, Qing-Zhu;Liu, Ji-Yong
    • Asian Pacific Journal of Cancer Prevention
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    • 제16권6호
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    • pp.2397-2402
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    • 2015
  • Previous studies have shown that miR-454 plays an important role in a variety of biological processes in various human cancer cells. However, the underlying mechanisms of this microRNA in colorectal cancer (CRC) cells remain largely unknown. In the present study, we investigated the miR-454 role in CRC cell proliferation. We found that miR-454 expression is markedly upregulated in CRC tissues and CRC cells compared with the matched tumor adjacent tissues and the FHC normal colonic cell line. Ectopic expression of miR-454 promoted the proliferation and anchorage-independent growth of CRC cells, whereas inhibition of miR-454 reduced this effect. Bioinformatics analysis further revealed cylindromatosis (CYLD), a putative tumor suppressor as a potential target of miR-454. Data from luciferase reporter assays showed that miR-454 directly binds to the 3'-untranslated region (3'-UTR) of CYLD mRNA and repressed expression at both transcriptional and translational levels. In functional assays, CYLD-silenced in miR-454-in-transfected SW480 cells have positive effect to promote cell proliferation, suggesting that direct CYLD downregulation is required for miR-454-induced CRC cell proliferation. In sum, our data provide compelling evidence that miR-454 functions as an onco-miRNA, playing a crucial role in the promoting cell proliferation in CRC, and its oncogenic effect is mediated chiefly through direct suppression of CYLD expression.

MicroRNA-301b promotes cell proliferation and apoptosis resistance in triple-negative breast cancer by targeting CYLD

  • Song, Hongming;Li, Dengfeng;Wu, Tianqi;Xie, Dan;Hua, Kaiyao;Hu, Jiashu;Deng, Xiaochong;Ji, Changle;Deng, Yijun;Fang, Lin
    • BMB Reports
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    • 제51권11호
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    • pp.602-607
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    • 2018
  • Aberrant expression of microRNAs (miRNAs) plays important roles in carcinogenesis and tumor progression. However, the expression and biological role of miR-301b in triple-negative breast cancer (TNBC) remains unclear. Here we aimed to evaluate the roles and mechanisms of miR-301b in TNBC cells. miR-301b expression was assessed in TNBC specimens and cell lines by quantitative Real-Time PCR (qRT-PCR). TNBC cells were transfected with miR-301b mimics, inhibitors or Cylindromatosis (CYLD) small interfering RNA (siRNA) using Lipofectamine 2000. The functional roles of miR-301b were determined by cell proliferation, colony formation, and apoptosis assays. Western blots and qRT-PCR were used to measure the expression of mRNAs and proteins in the cells. We found that miR-301b was upregulated in TNBC specimens and cell lines. Overexpression of miR-301b promoted cell proliferation in TNBC cells, while inhibited the apoptosis induced by 5-FU. CYLD was downregulated by miR-301b at both mRNA and protein levels in TNBC cells. Dual-luciferase report assay confirmed that miR-301b downregulated CYLD by direct interaction with the 3'-untranslated region(3'-UTR) of CYLD mRNA. $NF-{\kappa}B$ activation was mechanistically associated with miR-301b-mediated downregulation of CYLD. However, inhibition of miR-301b reversed all the effects of miR-301b. In conclusion, miR-301b plays an oncogenic role in TNBC possibly by downregulating CYLD and subsequently activating $NF-{\kappa}B$ p65, and this may provide a novel therapeutic approach for TNBC.

탈유비퀴틴화 효소 DUBs의 비만 및 대사 관련 질환에서 병태생리학적 기능 (Pathophysiological Functions of Deubiquitinating Enzymes in Obesity and Related Metabolic Diseases)

  • 이슬기;권택규
    • 생명과학회지
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    • 제32권6호
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    • pp.476-481
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    • 2022
  • 유비퀴틴화는 단백질 안정성 조절을 통해 진핵세포 내 광범위한 과정에서 주요한 역할을 한다. 이 과정에서 탈유비퀴틴화 효소인 deubiquitinating enzymes (DUBs)은 표적단백질의 유비퀴틴 혹은 ubiquitin-like proteins에 결합하여 표적단백질의 분해를 억제하는 기능을 한다. DUBs의 역할은 주로 암생물학에서 다루어져 왔으며, 이를 통해 다양한 암 치료용 DUBs 억제제가 개발 중인 상황이다. 한편, 최근의 연구는 이러한 DUBs가 비만, 당뇨, 지방간을 포함한 대사질환에서 주요한 역할을 할 수 있을 것이라고 보고했다. 대사질환의 발생 및 진행에 있어 각기 다른 종류의 DUBs는 양적 혹은 음적 조절 작용을 갖음을 제시하였다. DUBs는 세포 내 다양한 전사인자의 단백질 발현 등 조절함으로써 대사질환의 발생 및 진행에 기여할 수 있음 생체 내, 외 및 인간 조직을 활용한 연구에서 입증되었다. UCH, USP7 및 USP19는 지방세포의 분화, 체중 증가, 및 인슐린 저항성에 관련이 있음을 식이 혹은 유전자조작으로 인한 비만 유도 마우스에서 검증하였다. CYLD, USP4 및 USP18의 경우 지방간의 발생과 밀접한 관계를 갖는다고 보고되었으며 이는 경우에 따라 체중 변화를 동반한다. 종합적으로, 본 총설에서는 비만 및 이와 관련한 대사질환에서 DUBs의 역할에 대한 최신 연구 결과 및 동향에 대해 기술하였다. 또한 DUBs에 새로운 역할에 관한 기초지식 및 분자적메커니즘을 제공함으로써 궁극적으로는 DUBs가 대사질환의 새로운 유전자 타겟이 될 수 있음을 시사한다.

STP-C, an Oncoprotein of Herpesvirus saimiri Augments the Activation of NF-κB through Ubiquitination of TRAF6

  • Chung, Young-Hwa;Jhun, Byung-Hak;Ryu, Su-Chak;Kim, Heui-Soo;Kim, Cheol-Min;Kim, Bong-Seok;Kim, Young-Ok;Lee, Sang-Jun
    • BMB Reports
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    • 제40권3호
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    • pp.341-348
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    • 2007
  • Herpesvirus saimiri (HVS), a member of the $\delta$-herpesvirus family, encodes an oncoprotein called Saimiri Transforming Protein (STP) which is required for lymphoma induction in non-human primates. Previous study has shown that STP-C, an oncoprotein of HVS, activates NF-$\kappa$B signaling pathway. However, the detailed mechanism of STP-Cmediated NF-$\kappa$B activation has not been reported yet. We first report that STP-C interacts with TRAF6 protein in vivo and in vitro and further investigation shows that $Glu_{12}$ residue of STP-C is critical for binding to TRAF6. Introduction of ubiquitin together with STP-C augments NF-$\kappa$B activity compared to that of STP-C expression alone. STP-C expression further induces ubiquitination of endogenous TRAF6. In addition, either a deubiquitination enzyme, CYLD or a dominant negative E2-conjugation enzyme reduced NF-$\kappa$B activity in spite of the presence of STP-C, supporting that the interaction between STP-C and TRAF6 induces ubiquitination of TRAF6. NF-$\kappa$B activation by STP-C through the ubiquitinated TRAF6 causes the increased production of IL-8, an inflammatory chemokine and the enhanced expression of costimulatory molecule ICAM, which might ultimately contribute cellular transformation by the exposure of HVS-infected cells with inflammatory microenvironment and chronic activation.