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Biology subjects

Morrison, V.

Publications and source records attributed to Morrison, V..

2 recordsLinked to original sources

Loss of Zmiz1 in mice leads to impaired cortical development and autistic-like behaviors

De novo mutations in transcriptional regulators are emerging as key risk factors contributing to the etiology of neurodevelopmental disorders. Human genetic studies have recently identified ZMIZ1 and its de novo mutations as causal of a neurodevelopmental syndrome strongly associated with intellectual disability, autism, ADHD, microcephaly, and other developmental anomalies. However, the role of ZMIZ in brain development or how ZMIZ1 mutations cause neurological phenotypes is unknown. Here, we generated a forebrain-specific Zmiz1 mutant mouse model that develops brain abnormalities, including cortical microcephaly, corpus callosum dysgenesis, and abnormal differentiation of upper-layer cortical neurons. Behaviorally, Zmiz1 mutant mice show alterations in motor activity, anxiety, communication, and social interactions with strong sex differences, resembling phenotypes associated with autism. Molecularly, Zmiz1 deficiency leads to transcriptomic changes disrupting neurogenesis, neuron differentiation programs, and synaptic signaling. We identified Zmiz1-mediated downstream regulation of key neurodevelopmental factors, including Lhx2, Auts2, and EfnB2. Importantly, reactivation of the EfnB2 pathway by exogenous EFNB2 recombinant protein rescues the dendritic outgrowth deficits in Zmiz1 mutant cortical neurons. Overall, our in vivo findings provide insight into Zmiz1 function in cortical development and reveal mechanistic underpinnings of ZMIZ1 syndrome, thereby providing valuable information relevant to future studies on this neurodevelopmental disorder.

neuroscience↗

p53 and TIGAR promote redox control to protect against metabolic dysfunction-associated steatohepatitis

TP53 is a potent tumour suppressor that coordinates diverse stress response programmes within the cell. The activity of p53 is frequently context and cell type-dependent, and ranges from pro-survival activities, including the implementation of transient cell cycle arrest and metabolic rewiring, through to cell death. In addition to tumour suppressor functions, p53 also has established roles in the pathological response to stress that occurs during tissue damage and repair, including within the liver. Metabolic dysfunction-associated steatohepatitis (MASH) is a major driver of hepatocellular carcinoma (HCC), but our understanding of the molecular determinants of MASH development remains incomplete. Here, using a p53 reporter mouse, we report early and sustained activation of hepatic p53 in response to an obesogenic high fat and high sugar diet. In this context, liver-specific loss of p53 accelerates the progression of benign fatty liver disease to MASH that is characterised by high levels of reactive oxygen species (ROS), extensive fibrosis, and chronic inflammation. Using an in vitro culture system, we show that p53 functions to control ROS and protect against the development of MASH, in part through induction of the antioxidant gene TP53-induced glycolysis and apoptosis regulator (TIGAR). Our work demonstrates an important role for the p53-TIGAR axis in protecting against MASH, and identifies redox control as an essential barrier against liver disease progression.

cancer biology↗