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    RISS 인기검색어

      Pharmacological preconditioning by TERT inhibitor BIBR1532 confers neuronal ischemic tolerance through TERT‐mediated transcriptional reprogramming

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      https://www.riss.kr/link?id=O108136660

      • 저자
      • 발행기관
      • 학술지명
      • 권호사항
      • 발행연도

        2021년

      • 작성언어

        -

      • Print ISSN

        0022-3042

      • Online ISSN

        1471-4159

      • 등재정보

        SCI;SCIE;SCOPUS

      • 자료형태

        학술저널

      • 수록면

        690-709   [※수록면이 p5 이하이면, Review, Columns, Editor's Note, Abstract 등일 경우가 있습니다.]

      • 구독기관
        • 전북대학교 중앙도서관  
        • 성균관대학교 중앙학술정보관  
        • 부산대학교 중앙도서관  
        • 전남대학교 중앙도서관  
        • 제주대학교 중앙도서관  
        • 중앙대학교 서울캠퍼스 중앙도서관  
        • 인천대학교 학산도서관  
        • 숙명여자대학교 중앙도서관  
        • 서강대학교 로욜라중앙도서관  
        • 계명대학교 동산도서관  
        • 충남대학교 중앙도서관  
        • 한양대학교 백남학술정보관  
        • 이화여자대학교 중앙도서관  
        • 고려대학교 도서관  
      • ⓒ COPYRIGHT THE BRITISH LIBRARY BOARD: ALL RIGHT RESERVED
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      부가정보

      다국어 초록 (Multilingual Abstract)

      After a sublethal ischemic preconditioning (IPC) stimulus, the brain has a remarkable capability of acquiring tolerance to subsequent ischemic insult by establishing precautionary self‐protective mechanism. Understanding this endogenous mechanism wo...

      After a sublethal ischemic preconditioning (IPC) stimulus, the brain has a remarkable capability of acquiring tolerance to subsequent ischemic insult by establishing precautionary self‐protective mechanism. Understanding this endogenous mechanism would reveal novel and effective neuroprotective targets for ischemic brain injury. Our previous study has implied that telomerase reverse transcriptase (TERT) is associated with IPC‐induced tolerance. Here, we investigated the mechanism of TERT‐mediated ischemic tolerance. Preconditioning was modeled by oxygen‐glucose deprivation (OGD) and by TERT inhibitor BIBR1532 in primary neurons. We found that ischemic tolerance was conferred by BIBR1532 preconditioning. We used the Cleavage‐Under‐Targets‐And‐Tagmentation approach, a recently developed method with superior signal‐to‐noise ratio, to comprehensively map the genomic binding sites of TERT in primary neurons, and showed that more than 50% of TERT‐binding sites were located at the promoter regions. Mechanistically, we demonstrated that under normal conditions TERT physically bound to many previously unknown genomic loci in neurons, whereas BIBR1532 preconditioning significantly altered TERT–chromatin‐binding profile. Intriguingly, we found that BIBR1532‐preconditioned neurons showed significant up‐regulation of promoter binding of TERT to the mitochondrial anti‐oxidant genes, which were correlated with their elevated expression. Functional analysis further indicated that BIBR1532‐preconditioning significantly reduced ROS levels and enhanced tolerance to severe ischemia‐induced mitochondrial oxidative stress in neurons in a TERT‐dependent manner. Together, these results demonstrate that BIBR1532 confers neuronal ischemic tolerance through TERT‐mediated transcriptional reprogramming for up‐regulation of mitochondrial anti‐oxidation gene expression, suggesting the translational potential of BIBR1532 as a therapeutic agent for the treatment of cerebral ischemic injury and oxidative stress‐induced neurological disorders.










      Despite TERT is well known to bind to telomeric DNA for maintaining their integrity, emerging findings have revealed many non‐telomeric functions of TERT. However, its roles in neurons remain obscured. We discover that TERT regulates genome‐wide transcription in neurons, especially mitochondrial antioxidant genes, for promoting cellular redox homeostasis. We further found that the specific TERT inhibitor BIBR1532, an anti‐cancer agent, exhibits a novel prophylactic neuroprotective effect against subsequent ischemic insult. Results of this study provide a conceptual advance to the fields and may open a new avenue for the translational potential of BIBR1532 in preventing ischemic injury resulted from neurological disorders.

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