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Myers, A. K.

Publications and source records attributed to Myers, A. K..

2 recordsLinked to original sources

Anxiety-associated behaviors following ablation of Miro1 from cortical excitatory neurons

Autism spectrum disorder, schizophrenia, and bipolar disorder are neuropsychiatric disorders that manifest early in life with a wide range of phenotypes, including repetitive behavior, agitation, and anxiety (American Psychological Association, 2013). While the etiology of these disorders is not completely understood, recent data implicate a role for mitochondrial dysfunction. To function optimally mitochondria must translocate to metabolically active intracellular compartments to support energetics and free-radical buffering; failure to achieve this localization results in cellular dysfunction (Picard et al., 2016). Mitochondrial Rho-GTPase 1 (Miro1) resides on the outer mitochondrial membrane and participates in neuronal microtubule-mediated mitochondrial motility and homeostasis (Fransson et al., 2003). Previous research implicates the loss of MIRO1 as a contributor to the onset/progression of neurodegenerative diseases including amyotrophic lateral sclerosis, Alzheimers disease, and Parkinsons disease (Kay et al., 2018). We have hypothesized that MIRO1 also has a role in nervous system development and function (Lin-Hendel et al., 2016). To test this, we ablated Miro1 from cortical excitatory progenitors by crossing floxed Miro1 mice with Emx1-cre mice. We found that mitochondrial mis-localization in migrating excitatory neurons was associated with reduced brain weight, decreased cortical volume, and subtle disruptions in cortical organization. Adult Miro1 conditional mutants exhibit agitative-like behaviors, including decreased nesting behavior and abnormal home cage activity. Open field testing revealed anxiety-like behavior and elevated plus maze and wide/narrow box testing found the mice avoided confined spaces. Our data link MIRO1 function with mitochondrial dynamics in the pathogenesis of several neuropsychiatric disorders and implicate mitochondrial localization in anxiety-like behaviors. SignificanceNeuropsychological disorders such as autism spectrum disorder, schizophrenia, and bipolar disorder have overlapping symptoms and behaviors. While the mechanisms underlying these disorders are not completely understood, recent evidence suggests mitochondrial dysfunction and mis-localization within a cell could play a role. Mitochondria are organelles that provide energy and other self-regulating processes to the cell. Previous research from our lab has shown distinct dynamic localization patterns within migrating excitatory and inhibitory neurons may be important during development. To further examine the importance of mitochondrial localization, we ablated MIRO1, a protein important for coupling mitochondria to motor proteins, in excitatory neurons. Mitochondria mis-localize in migrating excitatory neurons, and this is associated with a loss of motor skills and anxiety-like behavior in post-natal mice.

neuroscience↗

ARX regulates interneuron subtype differentiation and migration

Mutations in aristaless-related homeobox (ARX) are associated with neurodevelopmental disorders including developmental epilepsies, intellectual disabilities, and autism spectrum disorders, with or without brain malformations. Aspects of these disorders have been linked to abnormal cortical interneuron (cIN) development and function. To further understand ARXs role in cIN development, multiple Arx mutant mouse lines were interrogated. We found that ARX is critical for controlling cIN numbers and distribution, especially, in the developing marginal zone (MZ). Single cell transcriptomics and ChIP-seq, combined with functional studies, revealed ARX directly or indirectly regulates genes involved in proliferation and the cell cycle (e.g., Bub3, Cspr3), fate specification (e.g., Nkx2.1, Maf, Mef2c), and migration (e.g., Nkx2.1, Lmo1, Cxcr4, Nrg1, ErbB4). Our data suggest that the MZ stream defects primarily result from disordered cell-cell communication. Together our findings provide new insights into the mechanisms underlying cIN development and migration and how they are disrupted in several disorders.

neuroscience↗