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Heinrich, M. J.

Publications and source records attributed to Heinrich, M. J..

3 recordsLinked to original sources

FMR1 reduction alters cellular and circuit properties in human cortex

Transcriptional silencing of FMR1 results in Fragile X syndrome (FXS), the leading inherited cause of intellectual disability (ID) and autism. The Fmr1-/y mouse model has been used to identify FXS disease mechanisms, whereas mechanistic insights from human brain are lacking. By leveraging organotypic human cortical slices and viral tools to reduce FMR1 expression, we create a new model that captures cell type-specific transcriptomic changes similar to FXS patient cortex that are not seen in the Fmr1-/y mouse. Among these are ion channel subunit changes in deep layer pyramidal neurons, which are consistent with a robust hyperexcitability seen by whole-cell patch-clamp recordings, and increased synchronized activity revealed by 2-photon calcium imaging. Together, this work defines the impact of FMR1 reduction in human cortex and provides a new model for testing therapeutic interventions in FXS.

neuroscience↗

A human electrophysiological biomarker of Fragile X Syndrome is shared in V1 of Fmr1 KO mice and caused by loss of FMRP in cortical excitatory neurons

Predicting clinical therapeutic outcomes from preclinical animal studies remains an obstacle to developing treatments for neuropsychiatric disorders. Electrophysiological biomarkers analyzed consistently across species could bridge this divide. In humans, alpha oscillations in the resting state electroencephalogram (rsEEG) are altered in many disorders, but these disruptions have not yet been characterized in animal models. Here, we employ a uniform analytical method to show in males with fragile X syndrome (FXS) that the slowed alpha oscillations observed in adults are also present in children and in visual cortex of adult and juvenile Fmr1-/y mice. We find that alpha-like oscillations in mice reflect the differential activity of two classes of inhibitory interneurons, but the phenotype is caused by deletion of Fmr1 specifically in cortical excitatory neurons. These results provide a framework for studying alpha oscillation disruptions across species, advance understanding of a critical rsEEG signature in the human brain and inform the cellular basis for a putative biomarker of FXS.

neuroscience↗

Non-ionotropic signaling through the NMDA receptor GluN2B carboxy terminal domain drives morphological plasticity of dendritic spines and reverses fragile X phenotypes in mouse hippocampus

It is well known that activation of NMDA receptors can trigger long-term synaptic depression (LTD) and that a morphological correlate of this functional plasticity is spine retraction and elimination. Recent studies have led to the surprising conclusion that NMDA-induced spine shrinkage proceeds independently of ion flux and requires the initiation of de novo protein synthesis, highlighting an unappreciated contribution of mRNA translation to non-ionotropic NMDAR signaling. Here we used NMDA-induced spine shrinkage in slices of mouse hippocampus as a readout to investigate this novel modality of synaptic transmission. By using selective pharmacological and genetic tools, we find that structural plasticity is dependent on the ligand binding domain (LBD) of GluN2B-containing NMDA receptors and that metabotropic signaling occurs via the GluN2B carboxyterminal domain (CTD). Disruption of signaling by replacing the GluN2B CTD with the GluN2A CTD leads to increased spine density, dysregulated basal protein synthesis, and epileptiform activity in area CA3 reminiscent of phenotypes observed in the Fmr1-/y model of fragile X syndrome. By crossing the Fmr1-/y mice with animals in which the GluN2A CTD has been replaced with the GluN2B CTD, we observe a correction of these core fragile X phenotypes. These findings suggest that non-ionotropic NMDAR signaling through GluN2B may represent a novel therapeutic target for treatment of fragile X and related causes of intellectual disability and autism.

neuroscience↗