ArticleFASEB journal : official publication of the Federation of American Societies for Experimental Biology2024
Neuronal connectivity, behavioral, and transcriptional alterations associated with the loss of MARK2.
Article in FASEB journal : official publication of the Federation of American Societies for Experimental Biology, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 5 papers.
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Who cites it
5 citing papers in PubMed.
- Cryptic redundancy between PAR1b and PAR1a, two members of the PAR1 kinase family, in the survival of PAR1b-knockout mice.Scientific reports · 2026Article
- Clinical Insights Into the Mechanistic Crossroads of Lamotrigine and Therapeutic Ketosis in Bipolar Depression.Biological psychiatry global open science · 2026Review
- Identification of a de Novo MARK2 gene variant in a patient with autism spectrum disorder, epilepsy, and neurodevelopmental delay.Neurogenetics · 2025Article
- Gene-level connections between anxiety disorders, ADHD, and head and neck cancer: insights from a computational biology approach.Frontiers in psychiatry · 2025Article
- MARK2 variants cause autism spectrum disorder via the downregulation of WNT/β-catenin signaling pathway.American journal of human genetics · 2024Article
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Abstract
Neuronal connectivity is essential for adaptive brain responses and can be modulated by dendritic spine plasticity and the intrinsic excitability of individual neurons. Dysregulation of these processes can lead to aberrant neuronal activity, which has been associated with numerous neurological disorders including autism, epilepsy, and Alzheimer's disease. Nonetheless, the molecular mechanisms underlying abnormal neuronal connectivity remain unclear. We previously found that the serine/threonine kinase Microtubule Affinity Regulating Kinase 2 (MARK2), also known as Partitioning Defective 1b (Par1b), is important for the formation of dendritic spines in vitro. However, despite its genetic association with several neurological disorders, the in vivo impact of MARK2 on neuronal connectivity and cognitive functions remains unclear. Here, we demonstrate that the loss of MARK2 in vivo results in changes to dendritic spine morphology, which in turn leads to a decrease in excitatory synaptic transmission. Additionally, the loss of MARK2 produces substantial impairments in learning and memory, reduced anxiety, and defective social behavior. Notably, MARK2 deficiency results in heightened seizure susceptibility. Consistent with this observation, electrophysiological analysis of hippocampal slices indicates underlying neuronal hyperexcitability in MARK2-deficient neurons. Finally, RNAseq analysis reveals transcriptional changes in genes regulating synaptic transmission and ion homeostasis. These results underscore the in vivo role of MARK2 in governing synaptic connectivity, neuronal excitability, and cognitive functions.
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