A brain-specific pgc1α fusion transcript affects gene expression and behavioural outcomes in mice

Author:

Lozoya Oswaldo A1,Xu Fuhua1,Grenet Dagoberto1,Wang Tianyuan2,Stevanovic Korey D3ORCID,Cushman Jesse D3,Hagler Thomas B4,Gruzdev Artiom4ORCID,Jensen Patricia5,Hernandez Bairon6,Riadi Gonzalo6,Moy Sheryl S7,Santos Janine H1ORCID,Woychik Richard P1ORCID

Affiliation:

1. Genomic Integrity and Structural Biology Laboratory, National Institutes of Health, Durham, NC, USA

2. Integrative Bioinformatics Branch, National Institutes of Health, Durham, NC, USA

3. Neurobehavioral Core Laboratory, National Institutes of Health, Durham, NC, USA

4. Knockout Mouse Core Facility, National Institutes of Health, Durham, NC, USA

5. Neurobiology Laboratory, National Institute of Environmental Health Sciences, National Institutes of Health, Durham, NC, USA

6. Centro de Bioinformática y Simulación Molecular, Facultad de Ingeniería, Universidad de Talca, Talca, Chile

7. Department of Psychiatry, Carolina Institute for Developmental Disabilities, University of North Carolina at Chapel Hill, Chapel Hill, NC, USA

Abstract

PGC1α is a transcriptional coactivator in peripheral tissues, but its function in the brain remains poorly understood. Various brain-specific Pgc1α isoforms have been reported in mice and humans, including two fusion transcripts (FTs) with non-coding repetitive sequences, but their function is unknown. The FTs initiate at a simple sequence repeat locus ∼570 Kb upstream from the reference promoter; one also includes a portion of a short interspersed nuclear element (SINE). Using publicly available genomics data, here we show that the SINE FT is the predominant form of Pgc1α in neurons. Furthermore, mutation of the SINE in mice leads to altered behavioural phenotypes and significant up-regulation of genes in the female, but not male, cerebellum. Surprisingly, these genes are largely involved in neurotransmission, having poor association with the classical mitochondrial or antioxidant programs. These data expand our knowledge on the role of Pgc1α in neuronal physiology and suggest that different isoforms may have distinct functions. They also highlight the need for further studies before modulating levels of Pgc1α in the brain for therapeutic purposes.

Funder

Intramural Research Program

Eunice Kennedy Shriver National Institute of Child Health and Human Development

Chilean National Agency for Research and Development

Fondecyt

Publisher

Life Science Alliance, LLC

Subject

Health, Toxicology and Mutagenesis,Plant Science,Biochemistry, Genetics and Molecular Biology (miscellaneous),Ecology

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