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result(s) for
"Bozdagi-Gunal, Ozlem"
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Oxytocin improves behavioral and electrophysiological deficits in a novel Shank3-deficient rat
2017
Mutations in the synaptic gene SHANK3 lead to a neurodevelopmental disorder known as Phelan-McDermid syndrome (PMS). PMS is a relatively common monogenic and highly penetrant cause of autism spectrum disorder (ASD) and intellectual disability (ID), and frequently presents with attention deficits. The underlying neurobiology of PMS is not fully known and pharmacological treatments for core symptoms do not exist. Here, we report the production and characterization of a Shank3-deficient rat model of PMS, with a genetic alteration similar to a human SHANK3 mutation. We show that Shank3-deficient rats exhibit impaired long-term social recognition memory and attention, and reduced synaptic plasticity in the hippocampal-medial prefrontal cortex pathway. These deficits were attenuated with oxytocin treatment. The effect of oxytocin on reversing non-social attention deficits is a particularly novel finding, and the results implicate an oxytocinergic contribution in this genetically defined subtype of ASD and ID, suggesting an individualized therapeutic approach for PMS. Phelan-McDermid syndrome is a genetic disorder on the autism spectrum that affects how children develop in several ways, with additional symptoms including attention deficits, delays in learning to speak and motor problems. This syndrome is known to be caused by changes in a single gene known as SHANK3 that disrupt communication between brain cells involved in memory and learning. However, we do not know how these changes relate to the symptoms of Phelan-McDermid syndrome. To understand how genetic changes affect the human brain, researchers often carry out experiments in rats or other small rodents because they have brains that are similar to ours. Harony-Nicolas et al. genetically modified rats to carry changes in the SHANK3 gene that reflect those found in people with Phelan-McDermid syndrome. The rats had disabilities related to those seen in Phelan-McDermid syndrome, including limits in long-term social memory and reduced attention span. They also showed changes in the connections between important parts of the brain. Therefore, studying these rats could help us to understand the link between molecular and cellular changes in the brain and how they affect people with Phelan-McDermid syndrome, and associated symptoms. Previous studies have shown that a chemical called oxytocin, which is naturally produced by the brain, helps to form bonds between individuals and can cause positive feelings in relation to certain memories. Harony-Nicolas et al. found treating the rats with oxytocin boosted social memory and led to improvements in other symptoms of Phelan-McDermid syndrome. In particular, oxytocin treatment helped to increase the attention span of the rats. Rats with changes in the SHANK3 gene will be a useful tool for future research into Phelan-McDermid syndrome, particularly in understanding how it affects the connections between brain cells, leading to the symptoms of Phelan-McDermid syndrome. A future challenge will be to find out whether oxytocin has the potential to be developed into a therapy to treat Phelan-McDermid syndrome in humans. Since there is evidence that SHANK3 is involved in other forms of autism, these rats will also be useful in understanding the other ways in which autism can develop.
Journal Article
Autophagy protein NRBF2 has reduced expression in Alzheimer’s brains and modulates memory and amyloid-beta homeostasis in mice
by
Lachance, Véronik
,
Cai, Cui-Zan
,
Sweet, Eric
in
Advertising executives
,
Alzheimer Disease - metabolism
,
Alzheimer's disease
2019
Background
Dysfunctional autophagy is implicated in Alzheimer’s Disease (AD) pathogenesis. The alterations in the expression of many autophagy related genes (ATGs) have been reported in AD brains; however, the disparity of the changes confounds the role of autophagy in AD.
Methods
To further understand the autophagy alteration in AD brains, we analyzed transcriptomic (RNAseq) datasets of several brain regions (BA10, BA22, BA36 and BA44 in 223 patients compared to 59 healthy controls) and measured the expression of 130 ATGs. We used autophagy-deficient mouse models to assess the impact of the identified ATGs depletion on memory, autophagic activity and amyloid-β (Aβ) production.
Results
We observed significant downregulation of multiple components of two autophagy kinase complexes
BECN1-PIK3C3
and
ULK1/2-FIP200
specifically in the parahippocampal gyrus (BA36). Most importantly, we demonstrated that deletion of
NRBF2
, a component of the BECN1-PIK3C3 complex, which also associates with ULK1/2-FIP200 complex, impairs memory in mice, alters long-term potentiation (LTP), reduces autophagy in mouse hippocampus, and promotes Aβ accumulation. Furthermore, AAV-mediated
NRBF2
overexpression in the hippocampus not only rescues the impaired autophagy and memory deficits in NRBF2-depleted mice, but also reduces β-amyloid levels and improves memory in an AD mouse model.
Conclusions
Our data not only implicates
NRBF2
deficiency as a risk factor for cognitive impairment associated with AD, but also support the idea of
NRBF2
as a potential therapeutic target for AD.
Journal Article
Evaluation of a Pilot Medical Student-Resident Liaison Program in Psychiatry
by
Levounis, Petros
,
Gunal, Ozlem Bozdagi
,
Colombo, Daniella
in
Education
,
Focus groups
,
Graduate Medical Education
2025
Objective
As psychiatry residency programs grow increasingly competitive, innovative mentorship models are needed to support medical students’ academic development. This study evaluates the Medical Student Resident Liaison (MSRL) Program, implemented in the academic year 2023–2024, aimed at connecting medical students to psychiatry-related scholarly opportunities, including research, teaching, and networking.
Methods
Eighteen participants completed surveys assessing changes in knowledge, interest, project access, and confidence in their residency applications. Additionally, a focus group interview with medical students provided qualitative insights, analyzed through thematic analysis to identify key experiences and areas for improvement.
Results
Survey analysis revealed significant increases in students’ perceived knowledge (
p
=0.001), access to psychiatry projects (
p
=0.004), and confidence in their residency application CVs (
p
=0.039). The focus group identified key benefits of the program, such as enhanced access to research opportunities, networking, and autonomy in project involvement.
Conclusion
The MSRL program effectively enhanced students’ academic growth, confidence, and engagement with psychiatry. It serves as an adaptable model for addressing limited faculty availability and increasing interest in psychiatry residency. Implementing structured mentorship programs as early as the first or second year of medical school may further enhance student preparedness, particularly if coupled with faculty-led networking opportunities. As previous research indicates, residents’ unique position in mentorship is associated with better medical student outcomes, and we advise the implementation of the MSRL program to all interested specialties.
Journal Article
Ultrastructural analyses in the hippocampus CA1 field in Shank3-deficient mice
2015
Background
The genetics of autism spectrum disorder (hereafter referred to as “autism”) are rapidly unfolding, with a significant increase in the identification of genes implicated in the disorder. Many of these genes are part of a complex landscape of genetic variants that are thought to act together to cause the behavioral phenotype associated with autism. One of the few single-locus causes of autism involves a mutation in the SH3 and multiple ankyrin repeat domains 3 (
SHANK3
) gene. Previous electrophysiological studies in mice with
Shank3
mutations demonstrated impairment in synaptic long-term potentiation, suggesting a potential disruption at the synapse.
Methods
To understand how variants in
SHANK3
would lead to such impairments and manifest in the brain of patients with autism, we assessed the presence of synaptic pathology in
Shank3-
deficient mice at 5 weeks and 3 months of age, focusing on the stratum radiatum of the CA1 field. This study analyzed both
Shank3
heterozygous and homozygous mice using an electron microscopy approach to determine whether there is a morphological correlate to the synaptic functional impairment.
Results
As both synaptic strength and plasticity are affected in
Shank3-
deficient mice, we hypothesized that there would be a reduction in synapse density, postsynaptic density length, and perforated synapse density. No differences were found in most parameters assessed. However,
Shank3
heterozygotes had significantly higher numbers of perforated synapses at 5 weeks compared to 3 months of age and significantly higher numbers of perforated synapses compared to 5-week-old wildtype and
Shank3
homozygous mice.
Conclusions
Although this finding represents preliminary evidence for ultrastructural alterations, it suggests that while major structural changes seem to be compensated for in
Shank3-
deficient mice, more subtle morphological alterations, affecting synaptic structure, may take place in an age-dependent manner.
Journal Article
Single-cell Sequencing Reveals Brain/Spinal Cord Oligodendrocyte Precursor Heterogeneity and Requirement for mTOR in Cholesterol Biosynthesis and Myelin Maintenance
2020
Abstract Brain and spinal cord oligodendroglia have distinct functional characteristics, and cell autonomous loss of individual genes can result in different regional phenotypes. However, sequencing studies to date have not revealed distinctions between brain and spinal cord oligodendroglia. Using single-cell analysis of oligodendroglia during myelination, we demonstrate that brain and spinal cord precursors are transcriptionally distinct, defined predominantly by cholesterol biosynthesis. We further identify mechanistic target of rapamycin (mTOR) as a major regulator promoting cholesterol biosynthesis in oligodendroglia. Oligodendroglial-specific loss of mTOR compromises cholesterol biosynthesis in both the brain and spinal cord. Importantly, mTOR loss has a greater impact on cholesterol biosynthesis in spinal cord oligodendroglia that corresponds with more pronounced developmental deficits. However, loss of mTOR in brain oligodendroglia ultimately results in oligodendrocyte death, spontaneous demyelination, and impaired axonal function, demonstrating that mTOR is required for myelin maintenance in the adult brain. Competing Interest Statement The authors have declared no competing interest.