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Hall, G. M.

Publications and source records attributed to Hall, G. M..

2 recordsLinked to original sources

Mitochondrial DNA damage in substantia nigra parscompacta astrocytes exacerbates dopaminergic neuron lossin a 6-hydroxydopamine mouse model of parkinsonism

Parkinsons disease (PD) is the fastest growing neurological disorder with no known cure. Our ability to develop disease-modifying treatments that slow down the loss of substantia nigra pars compacta (SNc) dopaminergic (DA) neurons is hindered by a dearth of knowledge on roles for non-neuronal elements such as astrocytes during PD pathogenesis. More specifically, the extent to which mitochondrial DNA (mtDNA) damage in SNc astrocytes contributes to SNc DA neuron loss during PD remains unknown. To address this knowledge gap, we utilized an adeno-associated virus (AAV) called Mito-PstI that expresses the restriction enzyme PstI as an approach to damage mtDNA in SNc astrocytes and assess the effect of astrocytic mtDNA damage on SNc DA neuron function and viability in mice. Mito-PstI-induced mtDNA damage in SNc astrocytes disrupted mitochondrial morphology, caused increased wrapping of SNc astrocytic processes around SNc DA neurons, and abnormally increased dopamine release by SNc DA neuron axonal terminals within the dorsolateral striatum (DLS). In addition, mice injected with Mito-PstI in the SNc showed increased spontaneous and apomorphine-induced rotations contralateral to the side with SNc Mito-PstI injections. In further experiments, we used a parkinsonian mouse model with low dose 6-hydroxydopamine (6-OHDA) injection into the DLS to show that Mito-PstI expression in SNc astrocytes caused a worsening of 6-OHDA-induced spontaneous contralateral rotational behavior, and exacerbated SNc DA neuron loss. These results suggest that mitochondria in SNc astrocytes are not only critical for the function of SNc DA neurons, but are also a new target for developing disease-modifying strategies against PD. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=157 SRC="FIGDIR/small/673287v1_ufig1.gif" ALT="Figure 1"> View larger version (37K): org.highwire.dtl.DTLVardef@b4a98aorg.highwire.dtl.DTLVardef@e6e2fcorg.highwire.dtl.DTLVardef@402b93org.highwire.dtl.DTLVardef@ecdfd2_HPS_FORMAT_FIGEXP M_FIG C_FIG Main PointsO_LIMito-PstI expression in mouse SNc astrocytes increases dopamine release C_LIO_LIMito-PstI expression in SNc astrocytes worsens contralateral rotational behavior in mice C_LIO_LIMito-PstI expression in SNc astrocytes increases DA neuron loss in 6-OHDA mice C_LI

neuroscience↗

Tissue atlas of Cryptosporidium parvum infection reveals contrasts between the natural neonatal calf model and laboratory mouse models

Cryptosporidium is an apicomplexan parasite that causes diarrhoeal disease. The species C. parvum is zoonotic and causes significant morbidity and mortality for both humans and farm animals; most commonly, calves and lambs. A One Health approach that integrates human, animal and environmental health perspectives is required to tackle this disease. Current treatments are limited and ineffective, meaning there is an urgent need to develop new anti-cryptosporidials both for human and animal health. The neonatal calf model is a natural model of infection employed as a tool for drug discovery or generating parasite material. However, the model is seldom utilised to investigate host-parasite interaction. Fundamental information about this model, including the location of the parasite in the gut, is lacking. It is also unclear how the more commonly utilised immunocompromised mouse models of cryptosporidiosis compare to the neonatal calf model. To address this, we established an acute, moderate experimental C. parvum infection in neonatal calves. Using transgenic parasites, we created a tissue atlas of infection for neonatal calf gut and immunocompromised mouse models and mapped and quantified infection to draw robust comparisons between models. Cryptosporidium infection was observed at high levels throughout the neonatal calf gastrointestinal tract and was not limited to the ileal-cecal junction, as previously suggested. This infection pattern is most similar to the acute cryptosporidiosis mouse model, interferon-gamma knockout mice (IFN{gamma}KO). Infection with transgenic parasites allowed us to perform in vivo and ex vivo tissue imaging of the chronic cryptosporidiosis mouse model, NOD SCID Gamma KO (NSG) mice. In contrast, in NSG mice infection is low in the small intestines and highest in the caecum and colon. Understanding the true distribution of infection in the gastrointestinal tract of these three key animal models provides new perspectives on how to interpret and design drug efficacy studies and provides new insight into host-pathogen interaction.

microbiology↗