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Related Concept Videos

Protein Folding01:25

Protein Folding

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 Folding01:22

Protein Folding

Overview
Amyloid Fibrils03:03

Amyloid Fibrils

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, normally used to...
Protein Complex Assembly02:41

Protein Complex Assembly

Proteins can form homomeric complexes with another unit of the same protein or heteromeric complexes with different types.  Most protein complexes self-assemble spontaneously via ordered pathways, while some proteins need assembly factors that guide their proper assembly. Despite the crowded intracellular environment, proteins usually interact with their correct partners and form functional complexes.
Many viruses self-assemble into a fully functional unit using the infected host cell to...
Directing Proteins to the Rough Endoplasmic Reticulum01:34

Directing Proteins to the Rough Endoplasmic Reticulum

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...
Molecular Chaperones and Protein Folding03:00

Molecular Chaperones and Protein Folding

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...

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Related Experiment Video

Updated: Jun 8, 2026

Real-time Quaking-induced Conversion Assay for Detection of CWD Prions in Fecal Material
09:50

Real-time Quaking-induced Conversion Assay for Detection of CWD Prions in Fecal Material

Published on: September 29, 2017

Structural requirements for efficient prion protein conversion: cofactors may promote a conversion-competent

Andrew C Gill1, Sonya Agarwal, Teresa J T Pinheiro

  • 1The Roslin Institute and R(D)SVS, University of Edinburgh, Easter Bush Veterinary Centre, Edinburgh, UK. Andrew.gill@roslin.ed.ac.uk

Prion
|September 25, 2010
PubMed
Summary

Prion protein structure, not just sequence, is key for efficient prion disease transmission. Cofactors stabilize the cellular prion protein (PrP(C)) structure, aiding conversion to the infectious PrP(Sc) form.

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Assessing Transmissible Spongiform Encephalopathy Species Barriers with an In Vitro Prion Protein Conversion Assay
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Assessing Transmissible Spongiform Encephalopathy Species Barriers with an In Vitro Prion Protein Conversion Assay

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Protein Misfolding Cyclic Amplification of Prions
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Protein Misfolding Cyclic Amplification of Prions

Published on: November 7, 2012

Related Experiment Videos

Last Updated: Jun 8, 2026

Real-time Quaking-induced Conversion Assay for Detection of CWD Prions in Fecal Material
09:50

Real-time Quaking-induced Conversion Assay for Detection of CWD Prions in Fecal Material

Published on: September 29, 2017

Assessing Transmissible Spongiform Encephalopathy Species Barriers with an In Vitro Prion Protein Conversion Assay
11:41

Assessing Transmissible Spongiform Encephalopathy Species Barriers with an In Vitro Prion Protein Conversion Assay

Published on: March 10, 2015

Protein Misfolding Cyclic Amplification of Prions
10:12

Protein Misfolding Cyclic Amplification of Prions

Published on: November 7, 2012

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Neuroscience

Background:

  • Cross-species prion disease transmission is often inefficient due to factors beyond PrP sequence.
  • Limited research has explored the role of PrP(C) structural differences and secondary structure requirements in prion conversion.
  • Molecular chaperones highlight the importance of secondary/tertiary structure in prion formation in non-mammalian systems.

Purpose of the Study:

  • To investigate the role of secondary/tertiary structural motifs and their stability in prion protein conversion efficiency.
  • To build upon the hypothesis that the stability of specific prion protein regions is crucial for in vivo conversion.
  • To elucidate the function of molecular cofactors in stabilizing PrP(C) for conversion to PrP(Sc).

Main Methods:

  • Analysis of cellular prion protein (PrP(C)) structure and secondary structural requirements.
  • Investigation of prion cofactors and their cellular localization.
  • Experimental data supporting the role of structural motifs and stability in prion conversion efficiency.

Main Results:

  • Specific secondary structural motifs and their stability critically influence the efficiency of disease-specific prion protein conversion.
  • Cellular location of disease-specific prion cofactors supports their role in the conversion process.
  • Evidence suggests that prion protein structure stability is crucial for conversion to abnormal isoforms in vivo.

Conclusions:

  • Prion protein structure, particularly the stability of certain regions, is a critical determinant of conversion efficiency.
  • Molecular cofactors may function by stabilizing PrP(C) into a conformation permissive for conversion to PrP(Sc).
  • Understanding PrP(C) structural dynamics is essential for comprehending prion disease transmission and developing therapeutic strategies.