Search bioRxiv⌕ Search

Biology subjects

Zimmer, T. S.

Publications and source records attributed to Zimmer, T. S..

2 recordsLinked to original sources

Mitochondrial complex III-derived ROS amplify immunometabolic changes in astrocytes and promote dementia pathology

Neurodegenerative disorders alter mitochondrial functions, including the production of reactive oxygen species (ROS). Mitochondrial complex III (CIII) generates ROS implicated in redox signaling, but its triggers, targets, and disease relevance are not clear. Using site-selective suppressors and genetic manipulations together with mitochondrial ROS imaging and multiomic profiling, we found that CIII is the dominant source of ROS production in astrocytes exposed to neuropathology-related stimuli. Astrocytic CIII-ROS production was dependent on nuclear factor-{kappa}B (NF-{kappa}B) and the mitochondrial sodium-calcium exchanger (NCLX) and caused oxidation of select cysteines within immune and metabolism-associated proteins linked to neurological disease. CIII-ROS amplified metabolomic and pathology-associated transcriptional changes in astrocytes, with STAT3 activity as a major mediator, and facilitated neuronal toxicity in a non-cell- autonomous manner. As proof-of-concept, suppression of CIII-ROS in mice decreased dementia-linked tauopathy and neuroimmune cascades and extended lifespan. Our findings establish CIII-ROS as an important immunometabolic signal transducer and tractable therapeutic target in neurodegenerative disease.

neuroscience↗

Astrocytes regulate spatial memory in a sex-specific manner

Cognitive processes and neurocognitive disorders are regulated by astrocytes and have prominent sex differences. However, the contribution of astrocytes to sex differences is not known. We leveraged astrocyte-targeted gene editing and chemogenetics in adult mice to reveal that astrocytic glutamate receptors and other G protein-coupled receptors (GPCRs) modulate hippocampus-dependent cognitive function in a sexually dimorphic manner. In females, spatial memory was improved by increasing metabotropic glutamate receptor 3 (mGluR3) in astrocytes or stimulating astrocytic Gi/o-coupled signaling, whereas stimulating Gs-coupled signaling impaired memory. However, in males, memory was improved by reducing mGluR3 or stimulating Gs-coupled signaling, whereas stimulating Gi/o-coupled signaling impaired memory. Thus, memory requires a sex-specific balance of astrocytic Gs-coupled and Gi/o-coupled receptor activities, and disease-associated alterations or therapeutic targeting of these pathways may cause opposing sex-dependent effects on cognitive function. SummaryGlia cause sex-specific changes in cognition

neuroscience↗