铜驱动蛋白相分离,并调节聚合
Mariana Juliani do Amaral1,2, Satabdee Mohapatra2, Aline Ribeiro Passos3
1Faculdade de Farmácia, Universidade Federal do Rio de Janeiro, Rio de Janeiro, Brazil.
Science advances
|November 3, 2023
概括
铜 (Cu2+) 促进子蛋白 (PrP) 凝结,作为细胞缓冲区. 然而,长时间的氧化应激会导致这些凝结物转化为有毒的PrP聚合物,导致子疾病.
科学领域:
- 神经科学是一个神经科学.
- 生物化学 生化学
- 细胞生物学 细胞生物学
背景情况:
- 子疾病涉及子蛋白 (PrP) 聚合和神经退行,与氧化应激有关.
- 质蛋白的功能可能涉及封存铜 (Cu2+),在质蛋白疾病的大脑中观察到Cu2+异常常态.
研究的目的:
- 研究Cu2+在PrP聚合中的作用,特别是其对PrP凝结的影响.
- 阐明Cu2+影响PrP结构和聚合的分子机制.
主要方法:
- 研究了Cu2+诱导的PrP凝结在活细胞和体外使用共分试验.
- 在Cu2+结合时分析了PrP结构的分子变化 (β结构,疏水性暴露).
- 研究了氧化 (H2O2) 对PrP:Cu2+凝聚剂和PrP聚合的影响.
- 研究了PrPC过度表达对细胞Cu2+细胞毒性和聚合的影响.
主要成果:
- 2+促进细胞和体外PrP的凝结,抑制PrPβ结构和疏水性残留物暴露.
- 氧化触发了PrP:Cu2+凝聚物的液体到固体的转变,促进了粉样PrP聚合.
- 过度表达的PrPC最初可以防止Cu2+的毒性,但会导致PrPC在长时间暴露在铜中聚合.
结论:
- PrP凝结物充当铜缓冲剂,防止细胞毒性.
- 长时间的氧化应激可以将PrP凝结物转移到聚合,可能导致子疾病的发病.
相关概念视频
Amyloid Fibrils
9.6K
Amyloid fibrils are aggregates of misfolded proteins. Under most circumstances, misfolded proteins are either refolded by chaperone proteins or degraded by the proteasome. However, in the case of a mutation or a disease, these proteins can accumulate to form large clusters and often further assemble to form elongated fibers, called fibrils.
Amyloid deposits were observed as early as 1639 in the liver and the spleen. In 1854, Rudolph Virchow performed iodine staining,...
Amyloid deposits were observed as early as 1639 in the liver and the spleen. In 1854, Rudolph Virchow performed iodine staining,...
9.6K
Protein Folding
8.1K
Proteins are chains of amino acids linked together by peptide bonds. Upon synthesis, a protein folds into a three-dimensional conformation, critical to its biological function. Interactions between its constituent amino acids guide protein folding, and hence the protein structure is primarily dependent on its amino acid sequence.
Protein Structure Is Critical to Its Biological Function
Proteins perform a wide range of biological functions such as catalyzing chemical reactions, providing...
Protein Structure Is Critical to Its Biological Function
Proteins perform a wide range of biological functions such as catalyzing chemical reactions, providing...
8.1K
Protein Modifications in the RER
5.2K
Modification of secretory and transmembrane proteins entering the rough ER begins in the ER lumen. These modifications aid in protein folding and stabilize the acquired tertiary structure. Protein modifications in the rough ER co-occur at different stages of protein folding.
Broadly, these modifications can be categorized into four main categories — glycosylation, formation of disulfide bonds, assembly of protein subunits, and specific proteolytic cleavages like removal of signal...
Broadly, these modifications can be categorized into four main categories — glycosylation, formation of disulfide bonds, assembly of protein subunits, and specific proteolytic cleavages like removal of signal...
5.2K
Molecular Chaperones and Protein Folding
18.0K
The native conformation of a protein is formed by interactions between the side chains of its constituent amino acids. When the amino acids cannot form these interactions, the protein cannot fold by itself and needs chaperones. Notably, chaperones do not relay any additional information required for the folding of polypeptides; the native conformation of a protein is determined solely by its amino acid sequence. Chaperones catalyze protein folding without being a part of the folded protein.
The...
The...
18.0K
Protein Folding Quality Check in the RER
3.7K
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...
3.7K
Covalently Linked Protein Regulators
6.8K
Proteins can undergo many types of post-translational modifications, often in response to changes in their environment. These modifications play an important role in the function and stability of these proteins. Covalently linked molecules include functional groups, such as methyl, acetyl, and phosphate groups, and also small proteins, such as ubiquitin. There are around 200 different types of covalent regulators that have been identified.
These groups modify specific amino acids in a protein....
These groups modify specific amino acids in a protein....
6.8K


