Related Experiment Video
Updated: Jul 30, 2026

Monitoring Immune Cells Trafficking Fluorescent Prion Rods Hours after Intraperitoneal Infection
Published on: November 19, 2010
Unexpected decrease of full-length prion protein in macaques inoculated with prion-contaminated blood products
Nina Jaffré1, Jérôme Delmotte1, Jacqueline Mikol1
1Commissariat à l'Energie Atomique, DRF/IBFJ/SEPIA, Fontenay-aux-Roses, France.
Abstract:
The presence of prion infectivity in the blood of patients affected by variant Creutzfeldt-Jakob disease (v-CJD), the human prion disease linked to the bovine spongiform encephalopathy (BSE), poses the risk of inter-human transmission of this fatal prion disease through transfusion. In the frame of various experiments, we have previously described that several cynomolgus macaques experimentally exposed to prion-contaminated blood products developed c-BSE/v-CJD, but the vast majority of them developed an unexpected, fatal disease phenotype focused on spinal cord involvement, which does not fulfill the classical diagnostic criteria of v-CJD. Here, we show that extensive analyses with current conventional techniques failed to detect any accumulation of abnormal prion protein (PrPv-CJD) in the CNS of these myelopathic animals, i.e., the biomarker considered responsible for neuronal death and subsequent clinical signs in prion diseases. Conversely, in the spinal cord of these myelopathic primates, we observed an alteration of their physiological cellular PrP pattern: PrP was not detectable under its full-length classical expression but mainly under its physiological terminal-truncated C1 fragment. This observed disappearance of the N-terminal fragment of cellular PrP at the level of the lesions may provide the first experimental evidence of a link between loss of function of the cellular prion protein and disease onset. This original prion-induced myelopathic syndrome suggests an unexpected wide extension in the field of prion diseases that is so far limited to pathologies associated with abnormal changes of the cellular PrP to highly structured conformations.
Insights
Blood-borne prion disease (v-CJD) transmission risk is highlighted. Unexpectedly, most macaques exposed to infected blood developed spinal cord disease without the typical prion protein marker, suggesting a new disease mechanism.
Area of Science:
- Neuroscience
- Infectious Diseases
- Biochemistry
Background:
- Variant Creutzfeldt-Jakob disease (v-CJD) is a fatal human prion disease linked to bovine spongiform encephalopathy (BSE).
- Prion infectivity in blood poses a transfusion-related transmission risk.
- Previous studies showed experimental v-CJD in macaques, but most developed an atypical myelopathic syndrome.
Purpose of the Study:
- Investigate the pathology of the unexpected myelopathic syndrome in macaques exposed to v-CJD prions.
- Determine if abnormal prion protein (PrPv-CJD) accumulation occurs in the central nervous system (CNS) of these animals.
- Explore the role of cellular prion protein (PrP) alterations in disease pathogenesis.
Main Methods:
- Experimental exposure of cynomolgus macaques to prion-contaminated blood products.
- Extensive analysis of the central nervous system (CNS) for abnormal prion protein (PrPv-CJD) using conventional techniques.
- Detailed examination of cellular prion protein (PrP) patterns in the spinal cord.
Main Results:
- Most macaques developed a fatal myelopathic syndrome, not classical v-CJD.
- Abnormal prion protein (PrPv-CJD) was undetectable in the CNS of myelopathic animals.
- Cellular PrP showed altered patterns, with a truncated C1 fragment predominant and loss of the N-terminal fragment.
Conclusions:
- The myelopathic syndrome suggests a broader spectrum of prion diseases beyond classical v-CJD.
- Loss of cellular prion protein (PrP) function, indicated by N-terminal fragment disappearance, may be linked to disease onset.
- This finding challenges the current understanding of prion disease pathogenesis, focusing on abnormal PrP conformations.
Related Concept Videos
Amyloid 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...
Subviral Agents

