作为潜在的治疗点的多体尾巴长度的细胞质调节
Mercedes Fernandez1, Raul Mendez2,3
1FRCB-IDIBAPS Biomedical Research Institute, 08036 Barcelona, Spain.
概括
细胞质多化,由细胞质多化元素结合蛋白 (CPEBs) 调节,控制基因表达. 失调与疾病有关,提供治疗点.
科学领域:
- 分子生物学分子生物学
- 基因规则 基因规则
- 生物化学 生物化学
背景情况:
- 在细胞质中,mRNA多甲基尾的长度是动态调节的,影响翻译,稳定性和局部化.
- 这种调节对于转录后基因表达程序和细胞反应至关重要.
- 尾长度的调节失调与癌症和神经系统疾病等疾病有关.
研究的目的:
- 审查细胞质多基解离的机制和调节.
- 要突出细胞质多化元素结合蛋白 (CPEBs) 的作用.
- 探索针对细胞质多基解的治疗潜力.
主要方法:
- 文献综述,重点关注细胞质多化和CPEBs.
- 对基因表达中的CPEB功能的现有研究进行分析.
- 检查疾病关联和治疗策略.
主要成果:
- CPEBs在基因表达中表现出双重作用,作为促进剂或抑制剂.
- 细胞质聚氨基化在治疗上较少被探索,与死亡化相比.
- CPEBs参与瘤进展和转移.
结论:
- 细胞质多化是具有重大疾病影响的关键调节机制.
- CPEBs是具有治疗点潜力的关键调节器.
- 对细胞质多基解离的进一步研究为新型治疗提供了有前途的途径.
相关概念视频
Regulation of Expression at Multiple Steps
868
The gene expression in cells is regulated at different stages: (i) transcription, (ii) RNA processing, (iii) RNA localization, and (iv) translation. Transcriptional regulation is mediated by regulatory proteins such as transcription factors, activators, or repressors—these control gene expression by initiating or inhibiting the transcription of genes. Once a precursor or pre-mRNA is produced, it undergoes post-transcriptional modification, including 5' capping, splicing, and the...
868
Regulation of Expression Occurs at Multiple Steps
22.4K
Gene expression can be regulated at almost every step from gene to protein. Transcription is the step that is most commonly regulated. This involves the binding of proteins to short regulatory sequences on the DNA. This association can either promote or inhibit the transcription of a gene associated with the respective sequence.
Transcription results in the generation of precursor (pre-mRNA) that consists of both exons and introns, which needs further processing before being translated to a...
Transcription results in the generation of precursor (pre-mRNA) that consists of both exons and introns, which needs further processing before being translated to a...
22.4K
mRNA Stability and Gene Expression
5.5K
The structure and stability of mRNA molecules regulates gene expression, as mRNAs are a key step in the pathway from gene to protein. In eukaryotes, the half-life of mRNA varies from a few minutes up to several days. mRNA stability is essential in growth and development. The absence of the proteins regulating its stability, such as tristetraprolin in mice, can cause systemic issues, including bone marrow overgrowth, inflammation, and autoimmunity.
Cis-acting Elements involved in mRNA stability
Cis-acting Elements involved in mRNA stability
5.5K
Chromatin Structure Regulates pre-mRNA Processing
6.9K
In eukaryotic cells, nascent mRNA transcripts need to undergo many post-transcriptional modifications to reach the cell cytoplasm and translate into functional proteins. For a long time, transcription and pre-mRNA processing were considered two independent events that occur sequentially in the cell. However, it has now been well established that transcription and pre-mRNA processing are two simultaneous processes that are precisely regulated inside the cell.
The chromatin structure, especially...
The chromatin structure, especially...
6.9K
Pre-mRNA Processing: Modification of pre-mRNA Ends
9.2K
In eukaryotic cells, transcripts made by RNA polymerase are modified and processed before exiting the nucleus. Unprocessed RNA is called precursor mRNA or pre-mRNA to distinguish it from mature mRNA.
Once about 20-40 ribonucleotides have been joined together by RNA polymerase, a group of enzymes adds a cap to the 5' end of the growing transcript. In this process, a 5' phosphate is replaced by modified guanosine that has a methyl group attached (7-methyl guanosine). This 5' cap helps...
Once about 20-40 ribonucleotides have been joined together by RNA polymerase, a group of enzymes adds a cap to the 5' end of the growing transcript. In this process, a 5' phosphate is replaced by modified guanosine that has a methyl group attached (7-methyl guanosine). This 5' cap helps...
9.2K
RNA Stability
33.2K
Intact DNA strands can be found in fossils, while scientists sometimes struggle to keep RNA intact under laboratory conditions. The structural variations between RNA and DNA underlie the differences in their stability and longevity. Because DNA is double-stranded, it is inherently more stable. The single-stranded structure of RNA is less stable but also more flexible and can form weak internal bonds. Additionally, most RNAs in the cell are relatively short, while DNA can be up to 250 million...
33.2K


