α-Synuclein的脂质折叠途径通过有毒的寡合体
Vrinda Sant1, Dirk Matthes2, Hisham Mazal3,4
1NMR Based Structural Biology, Max Planck Institute for Multidisciplinary Sciences, Göttingen, Germany.
Nature communications
|January 17, 2025
概括
研究人员描述了有毒的α-Synuclein (αS) 寡合体,揭示了前纤维中间体中的反平行β链,这对于神经退行性疾病中粉样纤维的形成至关重要.
科学领域:
- 神经科学是一个神经科学.
- 结构生物学 结构生物学
- 生物化学 生化学
背景情况:
- 粉样纤维素与神经退行性疾病有关.
- 纤维前α-Synuclein (αS) 寡合体是amyloidogenesis的关键,但在结构上没有特征.
- 丝状中间体得到了很好的研究,但较小的寡合体却没有.
研究的目的:
- 从结构上描述一个有毒的前纤维状αS聚合中间体 (I1).
- 了解从I1转变为成熟的脂质纤维的过程.
- 调查抗平行β链在αS寡合体毒性的作用.
主要方法:
- 原子分辨率的结构特征.
- 超高分辨率显微镜揭示了寡合体状态.
- 时间解析的核磁共振 (NMR) 来追踪结构变化.
主要成果:
- 毒性预纤维中间体I1的原子分辨率结构确定.
- 超分辨率显微镜显示了早期寡合体的四度态状态.
- 核磁共振显示结构重组,从反平行β链 (I1) 到β弧 (L2纤维).
- 这种保存的结构内核可以在各种αS纤维分子多态中找到.
结论:
- 反平行β链是有毒αS寡合体的一个关键特征.
- I1的结构解释了其神经毒性作用,包括膜破坏和流入.
- 这些发现将有毒的寡合体结构与粉样蛋白组合和疾病病原性联系起来.
相关概念视频
Amyloid Fibrils
9.2K
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,...
9.2K
Protein Folding
7.7K
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...
7.7K
Molecular Chaperones and Protein Folding
17.7K
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...
17.7K
Export of Misfolded Proteins out of the ER
3.5K
After folding, the ER assesses the quality of secretory and membrane proteins. The correctly folded proteins are cleared by the calnexin cycle for transport to their final destination, while misfolded proteins are held back in the ER lumen. The ER chaperones attempt to unfold and refold the misfolded proteins but sometimes fail to achieve the correct native conformation. Such terminally misfolded proteins are then exported to the cytosol by ER-associated degradation or ERAD pathway for...
3.5K
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
Proteins: From Genes to Degradation
12.0K
Within a biological system, the DNA encodes the RNA, and the nucleotide sequence in the RNA further defines the amino acid sequence in the protein. This is referred to as “The Central Dogma of Molecular Biology” - a term coined by Francis Crick. Central dogma is a firm principle in biology that defines the flow of genetic information within any life form. The two fundamental steps in central dogma are - transcription and translation.
Transcription is the synthesis of RNA...
Transcription is the synthesis of RNA...
12.0K


