Ex vivo delivery of GDNF maintains motor function and prevents neuronal loss in a transgenic mouse model of Huntington's disease

AD Ebert, AE Barber, BM Heins, CN Svendsen - Experimental neurology, 2010 - Elsevier
AD Ebert, AE Barber, BM Heins, CN Svendsen
Experimental neurology, 2010Elsevier
Huntington's disease (HD) is an autosomal dominant disorder caused by expansion of
polyglutamine repeats in the huntingtin gene leading to loss of striatal and cortical neurons
followed by deficits in cognition and choreic movements. Growth factor delivery to the brain
has shown promise in various models of neurodegenerative diseases, including HD, by
reducing neuronal death and thus limiting motor impairment. Here we used mouse neural
progenitor cells (mNPCs) as growth factor delivery vehicles in the N171-82Q transgenic …
Huntington's disease (HD) is an autosomal dominant disorder caused by expansion of polyglutamine repeats in the huntingtin gene leading to loss of striatal and cortical neurons followed by deficits in cognition and choreic movements. Growth factor delivery to the brain has shown promise in various models of neurodegenerative diseases, including HD, by reducing neuronal death and thus limiting motor impairment. Here we used mouse neural progenitor cells (mNPCs) as growth factor delivery vehicles in the N171-82Q transgenic mouse model of HD. mNPCs derived from the developing mouse striatum were isolated and infected with lentivirus expressing either glial cell line-derived neurotrophic factor (GDNF) or green fluorescent protein (GFP). Next, mNPCsGDNF or mNPCsGFP were transplanted bilaterally into the striatum of pre-symptomatic N171-82Q mice. We found that mNPCsGDNF, but not mNPCsGFP, maintained rotarod function and increased striatal neuron survival out to 3months post-transplantation. Importantly, histological analysis showed GDNF expression through the duration of the experiment. Our data show that mNPCsGDNF can survive transplantation, secrete GDNF for several weeks and are able to maintain motor function in this model of HD.
Elsevier