破解代码:重编程 Prokaryotes 和 Eukaryotes 中的遗传脚本,以利用非正规氨基酸的力量
Cosimo Jann1,2, Sabrina Giofré1,2, Rajanya Bhattacharjee1,3
1Biocenter, Johannes Gutenberg University Mainz, 55128 Mainz, Germany.
Chemical reviews
|August 9, 2024
概括
遗传密码扩展使超过500种非正规氨基酸可用于各种应用. 挑战仍然存在,但新技术在 prokaryotes 和eukaryotes 承诺未来的进步在生物技术和医学.
科学领域:
- 生物化学和分子生物学
- 合成生物学 合成生物学
- 生物技术是生物技术.
背景情况:
- 超过500种天然和合成的氨基酸已被遗传编码.
- 遗传密码扩展在研究,生物技术,材料科学和医学方面提供了强大的应用.
- 显著的挑战阻碍了跨学科遗传密码扩展的全部潜力.
研究的目的:
- 提供遗传密码扩展方法和系统的概述.
- 讨论对 prokaryotes (例如,大肠杆菌) 和eukaryotes (例如,哺乳动物细胞) 的应用.
- 突出技术的转移从简单到复杂的生物系统.
主要方法:
- 对各种遗传密码扩展方法的概述.
- 使用大肠杆菌和哺乳动物细胞作为模型系统.
- 在细菌中探索全基因组工程,以实现转录特异性扩张.
- 研究真核系统的新方法,包括新的基对和直角翻译有机体.
主要成果:
- 简单系统中的既定技术可以转移到复杂的系统中.
- 细菌中的全基因组工程使得精确的,没有目标的转录特异性遗传密码扩展.
- 细胞的复杂性需要新的策略,如新的基对和有机体工程.
- 里程碑将遗传代码扩展与优化氨基酸特性和*in vivo*结合技术联系起来.
结论:
- 遗传码扩展是一个快速发展的领域,具有广泛的适用性.
- 技术进步正在克服 prokaryotic 和 eukaryotic 系统中的挑战.
- 未来的发展有望扩大在活细胞中编码新化学功能的能力.
更多相关视频
11:51Engineering 'Golden' Fluorescence by Selective Pressure Incorporation of Non-canonical Amino Acids and Protein Analysis by Mass Spectrometry and Fluorescence
Published on: April 27, 2018
11.9K
11:56Antimicrobial Peptides Produced by Selective Pressure Incorporation of Non-canonical Amino Acids
Published on: May 4, 2018
12.4K
相关概念视频
The Central Dogma
124.7K
Overview
124.7K
From DNA to Protein
18.2K
The flow of genetic information in cells from DNA to mRNA to protein is described by the central dogma, which states that genes specify the sequence of mRNAs, which in turn specify the sequence of amino acids making up all proteins. The decoding of one molecule to another is performed by specific proteins and RNAs. Because the information stored in DNA is so central to cellular function, it makes intuitive sense that the cell would make mRNA copies of this information for protein synthesis...
18.2K
Prokaryotic Transcriptional Activators and Repressors
20.9K
The organization of prokaryotic genes in their genome is notably different from that of eukaryotes. Prokaryotic genes are organized, such that the genes for proteins involved in the same biochemical process or function are located together in groups. This group of genes, along with their regulatory elements, are collectively known as an operon. The functional genes in an operon are transcribed together to give a single strand of mRNA known as polycistronic mRNA.
Transcription of prokaryotic...
Transcription of prokaryotic...
20.9K
Types of RNA
63.4K
Overview
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 the regulation of 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...
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 the regulation of 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...
63.4K
Leaky Scanning
5.1K
During most eukaryotic translation processes, the small 40S ribosome subunit scans an mRNA from its 5' end until it encounters the first start AUG codon. The large 60S ribosomal subunit then joins the smaller one to initiate protein synthesis. The location of the translation initiation is largely determined by the nucleotides near the start codon as there may be multiple translation initiation sites present on the mRNA. Marilyn Kozak discovered that the sequence RCCAUGG (where R...
5.1K
tRNA Activation
19.1K
Aminoacyl-tRNA synthetases are present in both eukaryotes and bacteria. Though eukaryotes have 20 different aminoacyl-tRNA synthetases to couple to 20 amino acids, many bacteria do not have genes for all of these aminoacyl-tRNA synthetases. Despite this, they still use all 20 amino acids to synthesize their proteins. For instance, some bacteria do not have the gene encoding the enzyme that couples glutamine with its partner tRNA. In these organisms, one enzyme adds glutamic acid to all of the...
19.1K
