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Principal Investigator: Monica Banez-Coronel
Organization: UNIVERSITY OF FLORIDA
Fiscal Year: 2022
Award: $72,556
Funding agency: National Institute of Neurological Disorders and Stroke
Project Summary
Repeat expansion mutations cause more than 50 neurodegenerative diseases, including Huntington disease
(HD) and C9orf72 amyotrophic lateral sclerosis. Despite intense research, there are no effective treatments for
any of these disorders. Repeat expansion mutations are often bidirectionally transcribed and can undergo repeat
associated non-AUG (RAN) translation1. This process results in the expansion RNAs being translated into toxic
RAN proteins across all reading frames without the requirement for AUG, or AUG-like initiation codons2. Because
both sense and antisense expansion RNAs can be translated in each reading frame, up to six toxic proteins can
be produced from a single mutation. RAN proteins have been reported to accumulate in disease-affected tissues
of patients for 11 expansion diseases1,3,4, including Huntington’s disease (HD)5 and spinocerebellar ataxia type
86 which are caused by CAG•CTG expansion mutations and C9orf72 which is caused by a G4C2•G2C4
expansion7-9. There is strong evidence that RAN proteins are toxic and contribute to a growing number of repeat-
expansion disorders and could be an attractive therapeutic target. Strong preclinical data in C9-ALS BAC
transgenic mice show that passive immunotherapy reduced RAN proteins, improved behavior, increased
longevity, and improved neuropathological phenotypes including motor neuronal survival in C9-BAC transgenic
mice10. While promising, passive immunotherapy comes with many disadvantages including that it is expensive
to produce these antibodies and that patients must receive frequent injections. The central hypothesis of this
proposal is that vaccination against RAN proteins will be an effective strategy to elicit a beneficial immune
response and mitigate disease in C9orf72 ALS and HD mice. I propose to test this hypothesis by determining if
RNA-based liposome vaccines can elicit beneficial immune responses that reduce RAN protein levels and
improve disease in mouse models of C9-ALS and HD.
Terms: <Affect><Amyotrophic Lateral Sclerosis><Amyotrophic Lateral Sclerosis Motor Neuron Disease><Antibodies><BAC clone><BACs><Bacterial Artificial Chromosomes><Behavior><Body Tissues><C9ORF72><Data><Degenerative Neurologic Diseases><Degenerative Neurologic Disorders><Disadvantaged><Disease><Disorder><Dominantly-Inherited Spinocerebellar Ataxias><Gehrig's Disease><Genetic Alteration><Genetic Change><Genetic defect><Huntington Chorea><Huntington Disease><Huntington's><Huntington's Disease><Huntington's Disease Pathway><Huntingtons Disease><Immune mediated therapy><Immune response><Immunological response><Immunologically Directed Therapy><Immunotherapy><Injections><Length of Life><Liposomal><Liposomes><Longevity><Lou Gehrig Disease><Mice><Mice Mammals><Motor><Murine><Mus><Mutation><Nervous System Degenerative Diseases><Neural Degenerative Diseases><Neural degenerative Disorders><Neurodegenerative Diseases><Neurodegenerative Disorders><Neurologic Degenerative Conditions><Non-Polyadenylated RNA><Passive Immunotherapy><Patients><Phenotype><Process><Proteins><RNA><RNA Gene Products><RNA vaccine><RNA-based vaccine><Reading Frames><Reporting><Research><Ribonucleic Acid><Spinocerebellar Ataxias><Spinocerebellar Atrophies><Testing><Tissues><Transgenic Mice><Transgenic Organisms><Translating><Vaccination><Vaccines><base><chromosome 9 open reading frame 72><degenerative diseases of motor and sensory neurons><degenerative neurological diseases><effective therapy><effective treatment><genome mutation><host response><immune system response><immune therapeutic approach><immune therapeutic interventions><immune therapeutic regimens><immune therapeutic strategy><immune therapy><immune-based therapies><immune-based treatments><immuno therapy><immunoresponse><improved><life span><lifespan><mRNA vaccine><mRNA-based vaccine><mouse model><murine model><neurodegenerative illness><neuronal survival><passive immune therapy><passive immunotherapeutics><pre-clinical><preclinical><therapeutic target><transgenic>