• 제목/요약/키워드: RNA-binding protein (RBP)

검색결과 13건 처리시간 0.03초

Protein Kinase A Increases DNA-Binding Activity of Testis-Brain RNA-Binding Protein

  • ;길성호
    • 대한의생명과학회지
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    • 제14권2호
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    • pp.77-81
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    • 2008
  • Testis brain RNA-binding protein (TB-RBP) is a DNA/RNA binding protein. TB-RBP is mainly expressed in testis and brain and highly conserved protein with several functions, including chromosomal translocations, DNA repair, mitotic cell division, and mRNA transport, stabilization, and storage. In our previous study, we identified TB-RBP as an interacting partner for the catalytic subunit $(C{\alpha})$ of protein kinase A(PKA) and verified their interaction with several biochemical analyses. Here, we confirmed interaction between $C{\alpha}$. and TB-RBP in mammalian cells and determined the effect of $C{\alpha}$. on the function of TB-RBP. The activation of $C{\alpha}$. increased the TB-RBP function as a DNA-binding protein. These results suggest that the function of TB-RBP can be modulated by PKA and provide insights into the diverse role of PKA.

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조피볼락(Sebastes schlegeli)의 Retinol-Binding Protein의 유전자 발현에 미치는 4-Nonylphenol의 영향 (Effect of 4-Nonylphenol on the Gene Expression of Retinol-Binding Protein in the Rockfish, Sebastes schlegeli)

  • 조형구;정지현;이재용;김명희;한창희
    • 한국발생생물학회지:발생과생식
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    • 제10권3호
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    • pp.177-184
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    • 2006
  • 레티놀 결합 단백질(retinol-binding protein, RBP)은 고등 척추동물에서 혈류를 통해 특이적으로 레티놀을 표적세포에 운반해 주는 중요한 역할을 한다. 우리나라의 연안에 서식하고 있으며 산업적으로 중요한 조피볼락(Sebastes schlegeli)을 대상으로 4-nonylphenol(NP)가 RBP mRNA 발현에 미치는 영향을 구명하기 위해 간으로부터 cDNA library를 제작하고 RBP 단편의 염기서열을 분석하였다. 분석된 RBP mRNA 서열로부터 아미노산 서열을 추정하여 다른 종의 RBP 아미노산 서열과 비교한 결과 Sparus aurata와는 80%, 무지개 송어(Oncorhynchus mykiss)와는 72%, 유럽 뱀장어(Anguilla anguilla)와는 78%의 높은 상동성을 보였다. 조피볼락에서 4-NP에 대한 RBP와 VTG mRNAs 발현에 미치는 영향을 northern blot 분석 방법에 의해 조사하였다. 4-NP를 10 mg/kg BW로 주사한 실험구에서는 암수 모두 VTG mRNA 발현에 영향을 주지 않았으나, RBP mRNA 발현은 수컷에서 48시간 후에 감소하였다. 4-NP를 25 mg/kg BW으로 주사한 실험구에서는 24시간 후에 암수 모두 VTG mRNA 발현이 증가하였으며, RBP mRNA 발현은 48시간 후에 암수 모두 감소하였다. 이들 결과로부터 조피볼락에서는 4-NP 등의 에스트로겐 유사물질이 RBP와 VTG 유전자 발현에 상반되는 효과를 유도함을 알 수 있었다.

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누에 견사선에서 분리한 RNA binding protein-1 유전자 프로모터 분석 (Characterization of the RNA binding protein-1 gene promoter of the silkworm silk grands)

  • 최광호;김성렬;김성완;구태원;강석우;박승원
    • 한국잠사곤충학회지
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    • 제52권1호
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    • pp.39-44
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    • 2014
  • 효율적인 형질전환 누에 시스템 구축을 위해서는 새로운 전이인자의 개발과 함께 선발을 위한 마커 유전자 및 transposase 발현을 효과적으로 조절할 수 있는 다양한 유전자 프로모터 개발이 필수적이다. 이와 관련하여 선행연구를 통해 누에 후부실샘으로부터 고발현하는 RNA binding protein-1 homologue(RBP-1) 유전자를 선발한 바 있다. 본 연구에서는 RBP-1유전자의 누에 발육시기별 및 유충 조직별 발현양상을 Northen blot hybridization 방법으로 분석한 결과, RBP-1 유전자는 유충기로부터 번데기 후기까지의 전기간에 걸쳐 발현하였으며, 두부, 표피, 중장, 지방체 및 견사선 등 실험한 모든 유충 조직에서 고발현 하는 것으로 관찰되었다. 또한, 누에 게놈 유전자은행을 제작한 후 RBP-1 cDNA 유전자를 탐침으로 5'-UTR 영역을 클로닝하고 luciferase assay 방법으로 RBP-1 유전자 프로모터의 활성을 분석하였다. 실험 결과, RBP-1 cDNA를 탐침으로 RBP-1 유전자 ORF와 5'-UTR이 포함된 약 1,660 bp 영역의 게놈 유전자를 클로닝하였다. RBP-1 유전자 프로모터 활성검정을 위해 전사 개시점(+ 30)으로부터 상류의 -740 bp 영역을 PCR로 분리한 후 pGL3 basic vector에 도입하여 luciferase 활성 측정을 위한 전이벡터, pGL-RBP1를 제작하였다. 제작된 pGL-RBP1는 곤충 세포주(Sf9)에 transfection 한 후 luciferase 발현량을 측정한 결과, 기존의 BmA3 유전자 프로모터 대비 10% 가량 높은 발현 효율을 확인할 수 있었다.

Emerging roles of RNA and RNA-binding protein network in cancer cells

  • Kim, Mee-Young;Hur, Jung;Jeong, Sun-Joo
    • BMB Reports
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    • 제42권3호
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    • pp.125-130
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    • 2009
  • Recent advances in RNA biology reveal unexpected diversity and complexity of cellular RNA metabolism. RNA-binding proteins (RBPs) are essential players in RNA metabolism, regulating RNA splicing, transport, surveillance, decay and translation. Aberrant expression of RBPs affects many steps of RNA metabolism, significantly altering expression of RNA. Thus, altered expression and dysfuncting of RBPs are implicated in the development of various diseases including cancer. In this minireview, we briefly describe emerging roles of RBPs as a global coordinator of post-transcriptional steps and altered RBP as a global generator of cancer related RNA alternative splicing. Identification and characterization of the RNA-RBP network would expand the scope of cellular RNA metabolism and provide novel anti-cancer therapeutic targets based on cancer specific RNA-RBP interaction.

The Catalytic Subunit of Protein Kinase A Interacts with Testis-Brain RNA-Binding Protein (TB-RBP)

  • ;길성호
    • 대한의생명과학회지
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    • 제13권4호
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    • pp.305-311
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    • 2007
  • cAMP-dependent protein kinase A (PKA) is the best-characterized protein kinases and has served as a model of the structure and regulation of cAMP-binding protein as well as of protein kinases. To determine the function of PKA in development, we employed the yeast two-hybrid system to screen for catalytic subunit of PKA $(C\alpha)$ interacting partners in a cDNA library from mouse embryo. A Testis-brain RNA-binding protein (TB-RBP), specifically bound to $C\alpha$. This interaction was verified by several biochemical analysis. Our findings indicate that $C\alpha$ can modulate nucleic acid binding proteins of TB-RBP and provide insights into the diverse role of PKA.

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Emerging Roles of RNA-Binding Proteins in Plant Growth, Development, and Stress Responses

  • Lee, Kwanuk;Kang, Hunseung
    • Molecules and Cells
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    • 제39권3호
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    • pp.179-185
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    • 2016
  • Posttranscriptional regulation of RNA metabolism, including RNA processing, intron splicing, editing, RNA export, and decay, is increasingly regarded as an essential step for fine-tuning the regulation of gene expression in eukaryotes. RNA-binding proteins (RBPs) are central regulatory factors controlling posttranscriptional RNA metabolism during plant growth, development, and stress responses. Although functional roles of diverse RBPs in living organisms have been determined during the last decades, our understanding of the functional roles of RBPs in plants is lagging far behind our understanding of those in other organisms, including animals, bacteria, and viruses. However, recent functional analysis of multiple RBP family members involved in plant RNA metabolism and elucidation of the mechanistic roles of RBPs shed light on the cellular roles of diverse RBPs in growth, development, and stress responses of plants. In this review, we will discuss recent studies demonstrating the emerging roles of multiple RBP family members that play essential roles in RNA metabolism during plant growth, development, and stress responses.

RNA Binding Protein as an Emerging Therapeutic Target for Cancer Prevention and Treatment

  • Hong, Suntaek
    • Journal of Cancer Prevention
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    • 제22권4호
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    • pp.203-210
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    • 2017
  • After transcription, RNAs are always associated with RNA binding proteins (RBPs) to perform biological activities. RBPs can interact with target RNAs in sequence- and structure-dependent manner through their unique RNA binding domains. In development and progression of carcinogenesis, RBPs are aberrantly dysregulated in many human cancers with various mechanisms, such as genetic alteration, epigenetic change, noncoding RNA-mediated regulation, and post-translational modifications. Upon deregulation in cancers, RBPs influence every step in the development and progression of cancer, including sustained cell proliferation, evasion of apoptosis, avoiding immune surveillance, inducing angiogenesis, and activating metastasis. To develop therapeutic strategies targeting RBPs, RNA interference-based oligonucleotides or small molecule inhibitors have been screened based on reduced RBP-RNA interaction and changed level of target RNAs. Identification of binding RNAs with high-throughput techniques and integral analysis of multiple datasets will help us develop new therapeutic drugs or prognostic biomarkers for human cancers.

고지방 식이내 식이섬유질이 흰쥐의 레티놀 결합 단백질 (RBP, cRBP I, cRBP II) 유전자 발현에 미치는 영향 (Effect of Dietary Fibers on Retinol Binding Protein (RBP, cRBP I, cRBP II) Gene Expression in Rats Fed High Fat Diet)

  • 조민화;신동순
    • Journal of Nutrition and Health
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    • 제38권10호
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    • pp.817-826
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    • 2005
  • Recently it has been reported that vitamin A and retinol binding proteins (RBPs) in blood and urine were changed in the condition of diabetes mellitus or hyperlipidemia. Fruits and vegetables are recommended to consume for the people suffered from these chronic degenerative diseases. The main components of fruits and vegetables are dietary fibers, for example cellulose and pectin, of which function to affect the absorption and excretion of dietary fat and fat-soluble substances. This study was conducted to investigate the effect of dietary fibers on RBPs mRNA expression in liver, small intestine and serum of rat fed high fat diet during 4 weeks. Sprague-Dawley rats, weighing 121g on average, were divided into four groups; (Control; $17\%$ fat & cellulose supplement diet, HF0: $25\%$ fat & fiber free diet, B:.Uc: $25\%$ fat & cellulose supplement diet and HF0: $25\%$ fat & pectin supplement diet) . The rats fed high fat diet groups (HF0, HFC, HFP) tended to consume the food less than the control group, but FER of HF0 groups was significantly higher than the control (p < 0.05) . The weight of adrenal gland in high fat diet groups (HF0, HFC, HFP) was significantly less than the control. Total lipid in feces daily excreted and in liver did not show any significant differences among the groups. Total cholesterol in HFP group was significantly different from that of HFC group. Serum total cholesterol and triglyceride in other group tended to lower than other groups and HDL cholesterol higher. Consequently, AI (atherogenic index) was the lowest in HFP group. Vit A contents in feces daily excreted tended to lower in high fat diet groups (HF0, HFP) compared to the control group. That content in adrenal gland was the lowest in HF0 group, but not in liver. In HFP group were down-regulated cRBPI mRNA in liver and cRBPII mRNA in small intestine and up-regulated RBP and transthyretin expression in serum compared to the other groups. In conclusion, dietary fibers, especially pectin, in high fat diet might down-regulate the expression of CRBP I, CRBP II mRNA in liver and small intestine, but increase the secretion of RBP into serum and therefore inhance the bioavailability of Vit A through the body. (Korean J Nutrition 38(10): 817$\sim$826,2005)

Ataxin-2 Dysregulation Triggers a Compensatory Fragile X Mental Retardation Protein Decrease in Drosophila C4da Neurons

  • Cha, In Jun;Lee, Davin;Park, Sung Soon;Chung, Chang Geon;Kim, Seung Yeon;Jo, Min Gu;Kim, Seung Yeol;Lee, Byung-Hoon;Lee, Young-Sam;Lee, Sung Bae
    • Molecules and Cells
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    • 제43권10호
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    • pp.870-879
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    • 2020
  • Dendrites require precise and timely delivery of protein substrates to distal areas to ensure the correct morphology and function of neurons. Many of these protein substrates are supplied in the form of ribonucleoprotein (RNP) complex consisting of RNA-binding proteins (RBPs) and mRNAs, which are subsequently translated in distal dendritic areas. It remains elusive, however, whether key RBPs supply mRNA according to local demands individually or in a coordinated manner. In this study, we investigated how Drosophila sensory neurons respond to the dysregulation of a disease-associated RBP, Ataxin-2 (ATX2), which leads to dendritic defects. We found that ATX2 plays a crucial role in spacing dendritic branches for the optimal dendritic receptive fields in Drosophila class IV dendritic arborization (C4da) neurons, where both expression level and subcellular location of ATX2 contribute significantly to this effect. We showed that translational upregulation through the expression of eukaryotic translation initiation factor 4E (eIF4E) further enhanced the ATX2-induced dendritic phenotypes. Additionally, we found that the expression level of another disease-associated RBP, fragile X mental retardation protein (FMRP), decreased in both cell bodies and dendrites when neurons were faced with aberrant upregulation of ATX2. Finally, we revealed that the PAM2 motif of ATX2, which mediates its interaction with poly(A)-binding protein (PABP), is potentially necessary for the decrease of FMRP in certain neuronal stress conditions. Collectively, our data suggest that dysregulation of RBPs triggers a compensatory regulation of other functionally-overlapping RBPs to minimize RBP dysregulation-associated aberrations that hinder neuronal homeostasis in dendrites.

RNA Binding Protein Rbms1 Enables Neuronal Differentiation and Radial Migration during Neocortical Development by Binding and Stabilizing the RNA Message for Efr3a

  • Habib, Khadija;Bishayee, Kausik;Kang, Jieun;Sadra, Ali;Huh, Sung-Oh
    • Molecules and Cells
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    • 제45권8호
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    • pp.588-602
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    • 2022
  • Various RNA-binding proteins (RBPs) are key components in RNA metabolism and contribute to several neurodevelopmental disorders. To date, only a few of such RBPs have been characterized for their roles in neocortex development. Here, we show that the RBP, Rbms1, is required for radial migration, polarization and differentiation of neuronal progenitors to neurons in the neocortex development. Rbms1 expression is highest in the early development in the developing cortex, with its expression gradually diminishing from embryonic day 13.5 (E13.5) to postnatal day 0 (P0). From in utero electroporation (IUE) experiments when Rbms1 levels are knocked down in neuronal progenitors, their transition from multipolar to bipolar state is delayed and this is accompanied by a delay in radial migration of these cells. Reduced Rbms1 levels in vivo also reduces differentiation as evidenced by a decrease in levels of several differentiation markers, meanwhile having no significant effects on proliferation and cell cycle rates of these cells. As an RNA binding protein, we profiled the RNA binders of Rbms1 by a cross-linked-RIP sequencing assay, followed by quantitative real-time polymerase chain reaction verification and showed that Rbms1 binds and stabilizes the mRNA for Efr3a, a signaling adapter protein. We also demonstrate that ectopic Efr3a can recover the cells from the migration defects due to loss of Rbms1, both in vivo and in vitro migration assays with cultured cells. These imply that one of the functions of Rbms1 involves the stabilization of Efr3a RNA message, required for migration and maturation of neuronal progenitors in radial migration in the developing neocortex.