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Retrograde transport of transmissible mink encephalopathy within descending motor tracts
Jason C Bartz1, Anthony E Kincaid, Richard A Bessen
1Department of Medical Microbiology and Immunology, Creighton University, Omaha, Nebraska 68178, USA.
Abstract:
The spread of the abnormal conformation of the prion protein, PrP(Sc), within the spinal cord is central to the pathogenesis of transmissible prion diseases, but the mechanism of transport has not been determined. For this report, the route of transport of the HY strain of transmissible mink encephalopathy (TME), a prion disease of mink, in the central nervous system following unilateral inoculation into the sciatic nerves of Syrian hamsters was investigated. PrP(Sc) was detected at 3 weeks postinfection in the lumbar spinal cord and ascended to the brain at a rate of approximately 3.3 mm per day. At 6 weeks postinfection, PrP(Sc) was detected in the lateral vestibular nucleus and the interposed nucleus of the cerebellum ipsilateral to the site of sciatic nerve inoculation and in the red nucleus contralateral to HY TME inoculation. At 9 weeks postinfection, PrP(Sc) was detected in the contralateral hind limb motor cortex and reticular thalamic nucleus. These patterns of PrP(Sc) brain deposition at various times postinfection were consistent with that of HY TME spread from the sciatic nerve to the lumbar spinal cord followed by transsynaptic spread and retrograde transport to the brain and brain stem along descending spinal tracts (i.e., lateral vestibulospinal, rubrospinal, and corticospinal). The absence of PrP(Sc) from the spleen suggested that the lymphoreticular system does not play a role in neuroinvasion following sciatic nerve infection. The rapid disease onset following sciatic nerve infection demonstrated that HY TME can spread by retrograde transport along specific descending motor pathways of the spinal cord and, as a result, can initially target brain regions that control vestibular and motor functions. The early clinical symptoms of HY TME infection such as head tremor and ataxia were consistent with neuronal damage to these brain areas.
Insights
Transmissible mink encephalopathy (TME) spreads via retrograde transport along spinal motor pathways from the sciatic nerve to the brain. This prion protein (PrPSc) spread explains rapid disease onset and early neurological symptoms.
Area of Science:
- Neuroscience
- Pathology
- Infectious Diseases
Background:
- Transmissible prion diseases involve the spread of abnormal prion protein (PrPSc).
- The transport mechanism of PrPSc within the central nervous system is not fully understood.
- Understanding prion spread is crucial for developing effective treatments.
Purpose of the Study:
- To investigate the transport route of the HY strain of transmissible mink encephalopathy (TME) in the central nervous system.
- To determine the mechanism of PrPSc spread following sciatic nerve inoculation.
- To correlate PrPSc deposition patterns with disease pathogenesis and clinical symptoms.
Main Methods:
- Unilateral sciatic nerve inoculation of Syrian hamsters with the HY strain of TME.
- Detection and localization of PrPSc in the spinal cord and brain at various time points postinfection (3, 6, and 9 weeks).
- Analysis of PrPSc distribution patterns to infer transport pathways.
Main Results:
- PrPSc was detected in the lumbar spinal cord by 3 weeks postinfection and ascended to the brain at approximately 3.3 mm/day.
- PrPSc spread followed specific descending spinal tracts, including lateral vestibulospinal, rubrospinal, and corticospinal tracts.
- PrPSc deposition occurred in brain regions controlling vestibular and motor functions, correlating with early clinical signs like tremor and ataxia.
- The spleen did not show PrPSc, suggesting the lymphoreticular system is not involved in neuroinvasion via the sciatic nerve.
Conclusions:
- HY TME spreads from the sciatic nerve to the spinal cord and then retrogradely transports to the brain along descending motor pathways.
- This retrograde transport mechanism explains the rapid disease progression and early targeting of motor and vestibular centers.
- The findings highlight the importance of descending spinal tracts in prion neuroinvasion and pathogenesis.