• 제목/요약/키워드: splicing factors

검색결과 32건 처리시간 0.027초

Pressure-Overload Cardiac Hypertrophy Is Associated with Distinct Alternative Splicing Due to Altered Expression of Splicing Factors

  • Kim, Taeyong;Kim, Jin Ock;Oh, Jae Gyun;Hong, Seong-Eui;Kim, Do Han
    • Molecules and Cells
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    • 제37권1호
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    • pp.81-87
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    • 2014
  • Chronic pressure-overload cardiac hypertrophy is associated with an increased risk of morbidity/mortality, largely due to maladaptive remodeling and dilatation that progresses to dilated cardiomyopathy. Alternative splicing is an important biological mechanism that generates proteomic complexity and diversity. The recent development of next-generation RNA sequencing has improved our understanding of the qualitative signatures associated with alternative splicing in various biological conditions. However, the role of alternative splicing in cardiac hypertrophy is yet unknown. The present study employed RNA-Seq and a bioinformatic approach to detect the RNA splicing regulatory elements involved in alternative splicing during pressure-overload cardiac hypertrophy. We found GC-rich exonic motifs that regulate intron retention in 5' UTRs and AT-rich exonic motifs that are involved in exclusion of the AT-rich elements that cause mRNA instability in 3' UTRs. We also identified motifs in the intronic regions involved in exon exclusion and inclusion, which predicted splicing factors that bind to these motifs. We found, through Western blotting, that the expression levels of three splicing factors, ESRP1, PTB and SF2/ASF, were significantly altered during cardiac hypertrophy. Collectively, the present results suggest that chronic pressure-overload hypertrophy is closely associated with distinct alternative splicing due to altered expression of splicing factors.

Alternative Splicing and Its Impact as a Cancer Diagnostic Marker

  • Kim, Yun-Ji;Kim, Heui-Soo
    • Genomics & Informatics
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    • 제10권2호
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    • pp.74-80
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    • 2012
  • Most genes are processed by alternative splicing for gene expression, resulting in the complexity of the transcriptome in eukaryotes. It allows a limited number of genes to encode various proteins with intricate functions. Alternative splicing is regulated by genetic mutations in cis-regulatory factors and epigenetic events. Furthermore, splicing events occur differently according to cell type, developmental stage, and various diseases, including cancer. Genome instability and flexible proteomes by alternative splicing could affect cancer cells to grow and survive, leading to metastasis. Cancer cells that are transformed by aberrant and uncontrolled mechanisms could produce alternative splicing to maintain and spread them continuously. Splicing variants in various cancers represent crucial roles for tumorigenesis. Taken together, the identification of alternative spliced variants as biomarkers to distinguish between normal and cancer cells could cast light on tumorigenesis.

Splicing and alternative splicing in rice and humans

  • E, Zhiguo;Wang, Lei;Zhou, Jianhua
    • BMB Reports
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    • 제46권9호
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    • pp.439-447
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    • 2013
  • Rice is a monocot gramineous crop, and one of the most important staple foods. Rice is considered a model species for most gramineous crops. Extensive research on rice has provided critical guidance for other crops, such as maize and wheat. In recent years, climate change and exacerbated soil degradation have resulted in a variety of abiotic stresses, such as greenhouse effects, lower temperatures, drought, floods, soil salinization and heavy metal pollution. As such, there is an extremely high demand for additional research, in order to address these negative factors. Studies have shown that the alternative splicing of many genes in rice is affected by stress conditions, suggesting that manipulation of the alternative splicing of specific genes may be an effective approach for rice to adapt to abiotic stress. With the advancement of microarrays, and more recently, next generation sequencing technology, several studies have shown that more than half of the genes in the rice genome undergo alternative splicing. This mini-review summarizes the latest progress in the research of splicing and alternative splicing in rice, compared to splicing in humans. Furthermore, we discuss how additional studies may change the landscape of investigation of rice functional genomics and genetically improved rice.

Tetrahymena thermophila의 group I intron에 의한 trans-splicing 반응에 미치는 표적 RNA 구조의 영향분석 (Effects of Substrate RNA Structure on the Trans-splicing Reaction by Group I Intron of Tetrahymena thermophila)

  • 이성욱
    • 미생물학회지
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    • 제35권3호
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    • pp.211-217
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    • 1999
  • 표적 RNA 의 구조가 Tetrahymena thermophila 의 group I intron 에 의한 trans-splicing 반응에 미치는 영향을 분석하기 위해 강력한 stem-loop 형태의 안정된 구조를 갖고 있는 표적 RNA mapping 분석 방법을 이용한 결과 in vitro 뿐만 아니라 in vivo 에서도 stem 부위의 염기들에 반해 loop 부위의 염기들이 ribozyme 에 의해 잘 인지되었으며 이러한 결과는 그러한 부위들을 인지할 수 있는 ribozyme 들에 의한 trans-cleavage 그리고 trans-splicing 반응을 수행함으로써 검증하였다. 또한 이러한 trans-splicing 반응은 정확하게 일어남을 반응 산물의 염기서열 결정을 통해 확인하였다. 따라서 표적 RNA 의 구조가 in vitro 및 in vivo 에서의 ribozyme 활성에 매우 중요한 요인임을 확인하였다.

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Tau mis-splicing in the pathogenesis of neurodegenerative disorders

  • Park, Sun Ah;Ahn, Sang Il;Gallo, Jean-Marc
    • BMB Reports
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    • 제49권8호
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    • pp.405-413
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    • 2016
  • Tau proteins, which stabilize the structure and regulate the dynamics of microtubules, also play important roles in axonal transport and signal transduction. Tau proteins are missorted, aggregated, and found as tau inclusions under many pathological conditions associated with neurodegenerative disorders, which are collectively known as tauopathies. In the adult human brain, tau protein can be expressed in six isoforms due to alternative splicing. The aberrant splicing of tau pre-mRNA has been consistently identified in a variety of tauopathies but is not restricted to these types of disorders as it is also present in patients with non-tau proteinopathies and RNAopathies. Tau mis-splicing results in isoform-specific impairments in normal physiological function and enhanced recruitment of excessive tau isoforms into the pathological process. A variety of factors are involved in the complex set of mechanisms underlying tau mis-splicing, but variation in the cis-element, methylation of the MAPT gene, genetic polymorphisms, the quantity and activity of spliceosomal proteins, and the patency of other RNA-binding proteins, are related to aberrant splicing. Currently, there is a lack of appropriate therapeutic strategies aimed at correcting the tau mis-splicing process in patients with neurodegenerative disorders. Thus, a more comprehensive understanding of the relationship between tau mis-splicing and neurodegenerative disorders will aid in the development of efficient therapeutic strategies for patients with a tauopathy or other, related neurodegenerative disorders.

식물에서 선택적 스플라이싱에 의한 스트레스 반응 조절 (Regulation of Abiotic Stress Response by Alternative Splicing in Plants)

  • 석혜연;이선영;문용환
    • 생명과학회지
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    • 제30권6호
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    • pp.570-579
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    • 2020
  • Pre-mRNA의 스플라이싱은 진핵생물 유전자의 적절한 발현에 매우 중요한 역할을 한다. 선택적 스플라이싱은 스플라이싱 위치가 서로 다르게 인식될 때 발생하며 동일한 pre-mRNA로부터 둘 이상의 전사체와 단백질을 생성할 수 있다. 스플라이싱 위치의 결정은 스플라이소솜과 SR 단백질, hnRNP, CBP 등의 스플라이싱 인자에 의해 조절된다. 고온, 저온, 고염, 건조, 저산소 등 다양한 환경 스트레스 조건에서 식물의 많은 스트레스 반응 유전자에 대해 선택적 스플라이싱이 일어나는 것이 알려져 있으며, 이러한 선택적 스플라이싱은 식물이 환경 변화에 적응하기 위한 중요한 기작 중 하나로 여겨진다. 저온, 고온, 고염, 건조 스트레스 조건에서는 스플라이싱 인자의 발현이 변하거나 또는 정상 조건에서와는 다른 스플라이싱 활성을 가짐으로써 선택적 스플라이싱이 일어난다. 환경 스트레스 반응 유전자의 스플라이싱 이소형은 각각 환경 스트레스에 대해 서로 다른 반응을 보이는데 생성되는 조직이 서로 다르기도 하고, 일부 이소형은 넌센스-매개 분해에 의해 분해되기도 한다. 스플라이싱 이소형의 단백질은 환경 스트레스 조건에서 정상 조건과 비교하여 세포 내 위치가 다르기도 하고, 전사인자 또는 효소로서 다른 활성을 가지기도 한다. 이러한 다양한 연구에도 불구하고 식물의 환경 스트레스 반응에서 선택적 스플라이싱에 대한 연구는 일부 스트레스와 유전자에 국한 되어 있고, 아직 분자 기전이 제대로 밝혀지지 않은 부분이 많아 앞으로 더 많은 연구가 필요하다.

Yeast Small Ubiquitin-Like Modifier (SUMO) Protease Ulp2 is Involved in RNA Splicing

  • Jeong-Min Park;Seungji Choi;Dong Kyu Choi;Hyun-Shik Lee;Dong-Hyung Cho;Jungmin Choi;Hong-Yeoul Ryu
    • 한국발생생물학회지:발생과생식
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    • 제28권2호
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    • pp.47-54
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    • 2024
  • In eukaryotes, RNA splicing, an essential biological process, is crucial for precise gene expression. Inaccurate RNA splicing can cause aberrant mRNA production, disrupting protein synthesis. To regulate splicing efficiency, some splicing factors are reported to undergo Ubiquitin-like Modifier (SUMO)ylation. Our data indicate that in Saccharomyces cerevisiae, the SUMO protease, Ulp2, is involved in splicing. In the ulp2Δ mutant, some ribosomal protein (RP) transcripts exhibited a significant increase in the levels of intron-containing pre-mRNA because of improper splicing. Moreover, we confirmed Ulp2 protein binding to the intronic regions of RP genes. These findings highlight a critical Ulp2 role in RP transcript splicing.

Comparative study of factors influencing tension lap splices in reinforced concrete beams

  • Karkarna, Yakubu M.;Bahadori-Jahromi, Ali;Jahromi, Hamid Zolghadr;Bonner, Emily;Goodchild, Charles
    • Advances in concrete construction
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    • 제10권4호
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    • pp.279-287
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    • 2020
  • The practice of splicing reinforcing bars in reinforced concrete structures to manage insufficient bar length is a common approach, which is mainly due to transportation limitations on bar length. The splicing of reinforcing bars side by side offers a simple and economical solution to the problem of continuity. This paper examines the influence of different structural parameters such as concrete cover, lap splice length, shear links confinement and concrete strength on the lap splices based on an extensive experimental database of laps and anchorage. The current study shows that increasing the lap splices beyond 50Ø has no additional benefit for increasing its strength. The results also show that relative to the measured stress, specimens with larger concrete side covers shows higher splice stress compared to the samples with smaller concrete covers.

Investigation of the effect of SRSF9 overexpression on HIV-1 production

  • Ga-Na, Kim;Kyung-Lee, Yu;Hae-In, Kim;Ji Chang, You
    • BMB Reports
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    • 제55권12호
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    • pp.639-644
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    • 2022
  • Serine-arginine-rich splicing factors (SRSFs) are members of RNA processing proteins in the serine-arginine-rich (SR) family that could regulate the alternative splicing of the human immunodeficiency virus-1 (HIV-1). Whether SRSF9 has any effect on HIV-1 regulation requires elucidation. Here, we report for the first time the effects and mechanisms of SRSF9 on HIV-1 regulation. The overexpression of SRSF9 inhibits viral production and infectivity in both HEK293T and MT-4 cells. Deletion analysis of SRSF9 determined that the RNA regulation motif domain of SRSF9 is important for anti-HIV-1 effects. Furthermore, overexpression of SRSF9 increases multiple spliced forms of viral mRNA, such as Vpr mRNA. These data suggest that SRSF9 overexpression inhibits HIV-1 production by inducing the imbalanced HIV-1 mRNA splicing that could be exploited further for a novel HIV-1 therapeutic molecule.

The effect of heat stress on frame switch splicing of X-box binding protein 1 gene in horse

  • Lee, Hyo Gun;Khummuang, Saichit;Youn, Hyun-Hee;Park, Jeong-Woong;Choi, Jae-Young;Shin, Teak-Soon;Cho, Seong-Keun;Kim, Byeong-Woo;Seo, Jakyeom;Kim, Myunghoo;Park, Tae Sub;Cho, Byung-Wook
    • Asian-Australasian Journal of Animal Sciences
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    • 제32권8호
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    • pp.1095-1103
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    • 2019
  • Objective: Among stress responses, the unfolded protein response (UPR) is a well-known mechanism related to endoplasmic reticulum (ER) stress. ER stress is induced by a variety of external and environmental factors such as starvation, ischemia, hypoxia, oxidative stress, and heat stress. Inositol requiring enzyme $1{\alpha}$ ($IRE1{\alpha}$)-X-box protein 1 (XBP1) is the most conserved pathway involved in the UPR and is the main component that mediates $IRE1{\alpha}$ signalling to downstream ER-associated degradation (ERAD)- or UPR-related genes. XBP1 is a transcription factor synthesised via a novel mechanism called 'frame switch splicing', and this process has not yet been studied in the horse XBP1 gene. Therefore, the aim of this study was to confirm the frame switch splicing of horse XBP1 and characterise its dynamics using Thoroughbred muscle cells exposed to heat stress. Methods: Primary horse muscle cells were used to investigate heat stress-induced frame switch splicing of horse XBP1. Frame switch splicing was confirmed by sequencing analysis. XBP1 amino acid sequences and promoter sequences of various species were aligned to confirm the sequence homology and to find conserved cis-acting elements, respectively. The expression of the potential XBP1 downstream genes were analysed by quantitative real-time polymerase chain reaction. Results: We confirmed that splicing of horse XBP1 mRNA was affected by the duration of thermal stress. Twenty-six nucleotides in the mRNA of XBP1 were deleted after heat stress. The protein sequence and the cis-regulatory elements on the promoter of horse XBP1 are highly conserved among the mammals. Induction of putative downstream genes of horse XBP1 was dependent on the duration of heat stress. We confirmed that both the mechanisms of XBP1 frame switch splicing and various binding elements found in downstream gene promoters are highly evolutionarily conserved. Conclusion: The frame switch splicing of horse XBP1 and its dynamics were highly conserved among species. These results facilitate studies of ER-stress in horse.