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相关概念视频

GPI Anchoring of Proteins in the ER Membrane01:29

GPI Anchoring of Proteins in the ER Membrane

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GPI-anchoring is a post-translational, reversible protein modification that is ubiquitous in eukaryotes. Such proteins are primarily present on the exoplasmic leaflet of the plasma membrane.
GPI-anchor structure
A sequence of 11 enzymatic reactions results in the synthesis of the complete GPI anchor consisting of a hydrophobic and a hydrophilic portion. The hydrophobic portion comprises phosphatidylinositol, while the hydrophilic part comprises polar groups like phosphoethanolamine,...
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Translocation of Proteins into the Mitochondria01:19

Translocation of Proteins into the Mitochondria

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Mitochondrial precursors are translocated to the internal subcompartments via independent mechanisms involving distinct protein machineries called translocases.
Sorting of outer membrane proteins:
Mitochondrial outer membrane proteins are of two types: the transmembrane, beta-barrel porins, and the membrane-anchored, alpha-helical proteins. Beta-barrel porin precursors are translocated by the TOM complex and inserted into the outer mitochondrial membrane by the SAM complex. In contrast,...
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Post-translational Translocation of Proteins to the RER01:27

Post-translational Translocation of Proteins to the RER

8.0K
A sizable fraction of proteins destined for ER are first synthesized in the cell cytosol and then transported across the ER membrane–a process called post-translational translocation. Similar to cotranslationally translocated proteins, these proteins also use the Sec translocon complex to enter the ER lumen.
Targeting proteins to the ER
Hsp40 and Hsp70 chaperone molecules bind the translated proteins in the cytosol to prevent their folding. The chaperone binding helps to keep the signal...
8.0K
Directing Proteins to the Rough Endoplasmic Reticulum01:34

Directing Proteins to the Rough Endoplasmic Reticulum

18.1K
The organelle-specific signaling sequences direct proteins synthesized in the cytosol to their final destination like ER, mitochondria, peroxisomes, etc. Some of the proteins directed to ER are then trafficked via vesicles to other organelles within the cell or the extracellular environment through the Golgi complex. For example, the rough ER synthesizes soluble proteins for transportation to the lysosomes or secretion out of the cell. It can also synthesize transmembrane proteins that can...
18.1K
Protein Folding Quality Check in the RER01:29

Protein Folding Quality Check in the RER

5.4K
ER is the primary site for the maturation and folding of soluble and transmembrane secretory proteins. The calnexin cycle is a specific chaperone system that folds and assesses the confirmation of N-glycosylated proteins before they can exit the ER lumen. The primary players of this quality check pipeline are the lectins, ER-resident chaperones, and a glucosyl transferase enzyme. In case the calnexin system in the lumen fails to salvage a misfolded protein, it is transported to the cytoplasm...
5.4K
Lipids as Anchors01:32

Lipids as Anchors

7.8K
In the plasma membrane, the lipids forming the bilayer can also act as an anchor to tether proteins to the membrane. The three main types of lipid anchors found in eukaryotes are – prenyl groups, fatty acyl groups, and glycosylphosphatidylinositol or GPI groups. Prenyl and fatty acyl groups act as anchors on the cytosolic surface of the membrane, whereas GPI anchors proteins on the extracellular side.
The carboxy-terminal of most of the prenylated proteins, such as Ras proteins, contains...
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Updated: Mar 7, 2026

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在草生物合成中重新定位领导.

Toby G Johnson1,2, Dean M Miller1, Drew V Carson1

  • 1Department of Chemical and Biological Engineering, Princeton University, Princeton, New Jersey 08544, United States.

Journal of the American Chemical Society
|March 6, 2026
PubMed
概括

合成生物学通过将领导序列重新定位在核糖体合成和翻译后修饰 (RiPPs) 中,使新的产物成为可能. 这一策略产生了新的,机械互锁的RiPPs,具有独特的修改.

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科学领域:

  • 合成生物学 合成生物学
  • 生物化学 生物化学
  • 自然产品的合成方法

背景情况:

  • 核糖体合成和翻译后修饰的 (RiPPs) 呈现出多样化的结构,包括机械互锁的架构.
  • 定制酶修改由N端领导序列指导的前体,以产生成熟的RiPPs.

研究的目的:

  • 为了研究从N终端到C终端重新定位西米迪前体的领导序列的效果.
  • 探索使用领先基工程生成新RiPP结构.

主要方法:

  • 用原生和C端领导序列的前体的酶修饰和循环.
  • 在纤维素和体外测试中使用草酸合成酶ThfB.
  • 使用工程前体来生成仿真RiPPs.

主要成果:

  • 通过ThfB进行的基质选择性翻译后修改被保留在C终端领导序列中.
  • 在领导序列重新定位后,观察到修改率的适度降低2倍.
  • 化学RiPPs被成功生成,结合了拉索和草家族的修改.

结论:

  • 重定位RiPP领导序列是产生新产品的可行策略.
  • 这种方法扩大了RiPPs的结构多样性,使其能够获得新的机械互锁分子.
  • 领袖体工程为创建新到自然的体架构提供了一个强大的工具.