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Biology subjects

Lettman, M. M.

Publications and source records attributed to Lettman, M. M..

2 recordsLinked to original sources

Multiple roles for TFG ring complexes in neuronal cargo trafficking

Pathological variants in Trk-fused gene (TFG) have been implicated in a variety of neurodegenerative conditions. In particular, mutations within its amino-terminal PB1 domain have been suggested to cause hereditary spastic paraplegia (HSP), resulting in progressive lower limb spasticity and weakness. The structural basis for this effect is unknown. Here, we combine X-ray crystallography and cryo-electron microscopy to determine a structural model of TFG, demonstrating the mechanism by which it forms octameric ring complexes. A network of electrostatic and hydrophobic interactions defines the interface between protomers. Moreover, we show that mutations identified previously in HSP patients disrupt this interface, destabilizing octamers, which ultimately leads to axonopathy. Surprisingly, the impacts of these variants are not equivalent in vivo, highlighting the existence of multiple, distinct mechanisms by which TFG mutations contribute to neurodegenerative disease.

biochemistry↗

Toxoplasma gondii infection accelerates the progression of hereditary spastic paraplegia

The parasitic protozoa Toxoplasma gondii chronically infects the central nervous system of an estimated one-third of the human population. Infection is generally subclinical, but immunocompromised individuals can experience a variety of neurological symptoms. Meta-analyses of T. gondii seropositivity have suggested a correlation between T. gondii infection and neurologic disease. While mechanistic studies on the relationship between T. gondii infection and neurologic disease have been attempted in mice, mice are particularly susceptible to T. gondii, making them an effective model for investigating mechanisms of infection, but not ideal for examining the relationship between long-term chronic T. gondii infection and neurologic disease. Rats more closely mimic human clearance of T. gondii after acute infection, but a lack of rat models of neurologic disease has limited studies on the interplay between T. gondii infection and neurologic disease progression. We have employed a previously characterized rat model of a complex form of hereditary spastic paraplegia (HSP), a class of neurodegenerative disorders which cause axonal degeneration and lower limb spasticity, in order to assess the effect of chronic T. gondii infection on neurodegenerative disease. We find that infected rats with hereditary spastic paraplegia exhibit significantly exacerbated behavioral and neuromorphological HSP symptoms compared to uninfected HSP mutant rats, with little correlative effect in infected versus uninfected control animals. We further find that all infected rats regardless of genotype exhibit a robust immune response to T. gondii infection, effectively clearing the parasite below the limit of detection of multiple assays of parasitemia and exhibiting no detectable increase in neuroinflammation seven weeks post-infection. These results suggest that chronic undetected T. gondii infection may exacerbate neurodegenerative disease even in immunocompetent individuals and may contribute to neurodegenerative disease heterogeneity. Author SummaryThe long-term consequences of previous acute infections are poorly understood, but are becoming increasingly appreciated, particularly in the era of long Covid. Altered progression of other diseases later in life may be among the long-term consequences of previous infections. Here we investigate the relationship between previous infection with the parasite Toxoplasma gondii, which infects [~]30% of the global population, and neurodegenerative disease using a rat model of hereditary spastic paraplegia (HSP). We find that previous infection with T. gondii accelerates motor dysfunction in HSP rats, despite robust clearance of the parasite by infected rats. Our results suggest that previously cleared infections may alter the progression of other diseases later in life and contribute to neurodegenerative disease heterogeneity.

microbiology↗