解读单细胞景观揭示了RNA的细胞类型特定的功能作用m6在动脉样硬化中发生的一种修饰
Xiaorui Ping1, Xiaoyun Liang2,3,4,5, Wenlu Xing1
1State Key Laboratory of Medicinal Chemical Biology, Frontiers Science Center for Cell Responses, College of Life Sciences, Nankai University, Tianjin 300071, China.
Theranostics
|April 14, 2025
概括
这项研究揭示了N6-甲基氨酸 (m6A) 修饰如何调节动脉样硬化中的特定细胞类型. 像ALKBH5,WTAP和METTL3这样的关键m6A调节器显示出作为这种主要全球疾病的精准医学点的希望.
科学领域:
- 心血管生物学 心血管生物学
- 表观遗传学 在表观遗传学中,表观遗传学是指表观遗传学.
- 单细胞分析 单细胞分析
背景情况:
- 动脉样硬化是全球死亡的主要原因,由慢性炎症驱动.
- 在单细胞水平的动脉样硬化中,N6-甲基氨酸 (m6A) 修饰的确切作用尚未完全理解.
研究的目的:
- 在动脉样硬化中创建m6A修饰的单细胞地图.
- 为了阐明m6A在动脉样硬化中的细胞类型特定的调节机制.
- 为了确定动脉样硬化的潜在治疗点.
主要方法:
- 对从动脉样硬化患者获得的单细胞测序数据的分析.
- 研究m6A调节剂和转录因子.
- 在ALKBH5,WTAP和METTL3功能的体外实验.
主要成果:
- 在内皮细胞中的ALKBH5促进了增殖和迁移.
- 在光滑肌肉细胞中的WTAP增强了增殖,迁移和表型转变.
- 在巨细胞中,METTL3和YTHDF2促进活化和分化.
- m6A调节器参与细胞类型特定的转录因子调节和细胞间通信.
结论:
- 在动脉样硬化中,ALKBH5,WTAP和METTL3协调细胞类型特定的功能.
- 这些m6A调节器代表了精准医学在治疗动脉样硬化的有希望的目标.
相关概念视频
RNA Stability
33.1K
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...
33.1K
Nucleic Acids
43.0K
Nucleic acids are the most important macromolecules for the continuity of life. They carry the cell's genetic blueprint and carry instructions for its functioning.
DNA and RNA
The two main types of nucleic acids are deoxyribonucleic acid (DNA) and ribonucleic acid (RNA). DNA is the genetic material in all living organisms, ranging from single-celled bacteria to multicellular mammals. It is in the nucleus of eukaryotes and in the organelles, chloroplasts, and mitochondria. In prokaryotes,...
DNA and RNA
The two main types of nucleic acids are deoxyribonucleic acid (DNA) and ribonucleic acid (RNA). DNA is the genetic material in all living organisms, ranging from single-celled bacteria to multicellular mammals. It is in the nucleus of eukaryotes and in the organelles, chloroplasts, and mitochondria. In prokaryotes,...
43.0K
Ribosome Profiling
3.4K
Ribosome profiling or ribo-sequencing is a deep sequencing technique that produces a snapshot of active translation in a cell. It selectively sequences the mRNAs protected by ribosomes to get an insight into a cell’s translation landscape at any given point in time.
Applications of ribosome profiling
Ribosome profiling has many applications, including in vivo monitoring of translation inside a particular organ or tissue type and quantifying new protein synthesis levels.
The technique...
Applications of ribosome profiling
Ribosome profiling has many applications, including in vivo monitoring of translation inside a particular organ or tissue type and quantifying new protein synthesis levels.
The technique...
3.4K
Types of RNA
5.5K
Three main types of RNA are involved in protein synthesis: messenger RNA (mRNA), transfer RNA (tRNA), and ribosomal RNA (rRNA). These RNAs perform diverse functions and can be broadly classified as protein-coding or non-coding RNA. Non-coding RNAs play important roles in regulating gene expression in response to developmental and environmental changes. Non-coding RNAs in prokaryotes can be manipulated to develop more effective antibacterial drugs for human or animal use.
RNA Performs Diverse...
RNA Performs Diverse...
5.5K
lncRNA - Long Non-coding RNAs
8.4K
In humans, more than 80% of the genome gets transcribed. However, only around 2% of the genome codes for proteins. The remaining part produces non-coding RNAs which includes ribosomal RNAs, transfer RNAs, telomerase RNAs, and regulatory RNAs, among other types. A large number of regulatory non-coding RNAs have been classified into two groups depending upon their length – small non-coding RNAs, such as microRNA, which are less than 200 nucleotides in length, and long non-coding RNA...
8.4K
Experimental RNAi
6.0K
RNA interference (RNAi) is a cellular mechanism that inhibits gene expression by suppressing its transcription or activating the RNA degradation process. The mechanism was discovered by Andrew Fire and Craig Mello in 1998 in plants. Today, it is observed in almost all eukaryotes, including protozoa, flies, nematodes, insects, parasites, and mammals. This precise cellular mechanism of gene silencing has been developed into a technique that provides an efficient way to identify and determine the...
6.0K


