• 제목/요약/키워드: RING-domain

검색결과 213건 처리시간 0.017초

MMPP is a novel VEGFR2 inhibitor that suppresses angiogenesis via VEGFR2/AKT/ERK/NF-κB pathway

  • Na-Yeon Kim;Hyo-Min Park;Jae-Young Park;Uijin Kim;Ha Youn Shin;Hee Pom Lee;Jin Tae Hong;Do-Young Yoon
    • BMB Reports
    • /
    • 제57권5호
    • /
    • pp.244-249
    • /
    • 2024
  • Many types of cancer are associated with excessive angiogenesis. Anti-angiogenic treatment is an effective strategy for treating solid cancers. This study aimed to demonstrate the inhibitory effects of (E)-2-methoxy-4-(3-(4-methoxyphenyl) prop-1-en-1-yl) phenol (MMPP) in VEGFA-induced angiogenesis. The results indicated that MMPP effectively suppressed various angiogenic processes, such as cell migration, invasion, tube formation, and sprouting of new vessels in human umbilical vein endothelial cells (HUVECs) and mouse aortic ring. The inhibitory mechanism of MMPP on angiogenesis involves targeting VEGFR2. MMPP showed high binding affinity for the VEGFR2 ATP-binding domain. Additionally, MMPP improved VEGFR2 thermal stability and inhibited VEGFR2 kinase activity, suppressing the downstream VEGFR2/AKT/ERK pathway. MMPP attenuated the activation and nuclear translocation of NF-κB, and it downregulated NF-κB target genes such as VEGFA, VEGFR2, MMP2, and MMP9. Furthermore, conditioned medium from MMPP-treated breast cancer cells effectively inhibited angiogenesis in endothelial cells. These results suggested that MMPP had great promise as a novel VEGFR2 inhibitor with potent anti-angiogenic properties for cancer treatment via VEGFR2/AKT/ERK/NF-κB signaling pathway.

액정 디스플레이 배향막을 위한 이온빔 표면조사에 관한 연구 (Ion beam irradiation for surface modification of alignment layers in liquid crystal displays)

  • 오병윤;김병용;이강민;김영환;한정민;이상극;서대식
    • 한국전기전자재료학회:학술대회논문집
    • /
    • 한국전기전자재료학회 2008년도 춘계학술대회 및 기술 세미나 논문집 디스플레이 광소자
    • /
    • pp.41-41
    • /
    • 2008
  • In general, polyimides (PIs) are used in alignment layers in liquid crystal displays (LCDs). The rubbing alignment technique has been widely used to align the LC molecules on the PI layer. Although this method is suitable for mass production of LCDs because of its simple process and high productivity, it has certain limitations. A rubbed PI surface includes debris left by the cloth, and the generation of electrostatic charges during the rubbing induces local defects, streaks, and a grating-like wavy surface due to nonuniform microgrooves that degrade the display resolution of computer displays and digital television. Additional washing and drying to remove the debris, and overwriting for multi-domain formation to improve the electro-optical characteristics such as the wide viewing angle, reduce the cost-effectiveness of the process. Therefore, an alternative to non-rubbing techniques without changing the LC alignment layer (i.e, PI) is proposed. The surface of LC alignment layers as a function of the ion beam (IE) energy was modified. Various pretilt angles were created on the IB-irradiated PI surfaces. After IB irradiation, the Ar ions did not change the morphology of the PI surface, indicating that the pretilt angle was not due to microgrooves. To verify the compositional behavior for the LC alignment, the chemical bonding states of the ill-irradiated PI surfaces were analyzed in detail by XPS. The chemical structure analysis showed that ability of LCs to align was due to the preferential orientation of the carbon network, which was caused by the breaking of C=O double bonds in the imide ring, parallel to the incident 18 direction. The potential of non-rubbing technology for fabricating display devices was further conformed by achieving the superior electro-optical characteristics, compared to rubbed PI.

  • PDF

PVDF를 포함한 고분자 블렌드와 탄소섬유/탄소나노튜브를 이용한 복합재료의 특성 (Properties of Nanocomposites Based on Polymer Blend Containing PVDF, Carbon Fiber and Carbon Nanotube)

  • 김정호;손권상;이민호
    • 공업화학
    • /
    • 제25권1호
    • /
    • pp.14-19
    • /
    • 2014
  • 본 연구에서는 탄소섬유(carbon fiber, CF)와 탄소나노튜브(carbon nanotube, CNT)를 포함하는 PMMA/PVDF 및 PET/PVDF 블렌드 나노복합재료를 이축성형 압출기를 이용하여 용융삽입법으로 제조하였다. SEM을 이용하여 PMMA/PVDF/CF/CNT 나노복합재료의 모폴로지를 관찰한 결과, CNT가 matrix에서 효과적으로 분산되지 못한 반면 PET/PVDF/CF/CNT 나노복합재료에서는 CNT가 잘 분산된 것으로 관찰되었다. 상분리된 PET/PVDF 블렌드에서 CNT가 PET 상에 효과적으로 분산된 것으로 보였는데 이는 PET의 페닐렌기와 CNT 표면의 그라파이트 시트가 ${\pi}-{\pi}$ interaction에 의한 것으로 판단되었다. 또한 CF도 PET와의 계면 접착성이 우수한 것으로 나타났다. PET/PVDF/CF 나노복합재료의 전기전도도는 CNT를 첨가함으로써 증가하였으나 PMMA/PVDF/CF 나노복합재료에 CNT를 첨가한 경우 전기전도도가 향상되지 않았다. 모폴로지 관찰결과에서 CNT의 분산 정도는 전기전도도 물성 결과와 일치하였다. DSC 분석 결과, PET/PVDF/CF/CNT 나노복합재료에서는 결정화 온도가 증가하였는데, 이는 CF 및 CNT가 PET의 결정화를 촉진 시키는 조핵제 역할을 하기 때문인 것으로 보였다. 굴곡물성 결과, PET/PVDF/CF/CNT 나노복합재료에서 PET와 CF의 친화성이 우수하여 굴곡탄성률이 크게 증가하였다.