Aberrant local and global neural activation patterns in pediatric Prader–Willi syndrome

PurposeAlthough cognitive disorders in children with Prader–Willi syndrome (PWS) are linked to abnormalities in spontaneous neural activation and functional connectivity (FC), the specific neural activation patterns remain uncertain, especially in young children with PWS.MethodsThe current study set out to explore specific local and global neural activation in pediatric PWS using the amplitude of low-frequency fluctuations (ALFF), regional homogeneity (ReHo), and seed-based whole brain FC. Information was gathered from 35 pediatric PWS patients and 33 healthy controls (HC). Both groups’ ALFF and ReHo values were computed, and FC were constructed on the basis of altered ALFF and ReHo regions. The relationships between altered ALFF, ReHo, and FC and the Griffiths Developmental Scales (GDS) of the PWS group were analyzed using partial correlation analysis.ResultsBoth ALFF and ReHo exhibited decreases in occipital lobe, temporal lobe, and cingulate gyrus, and altered ReHo was present in parietal lobe, frontal lobe, and basal ganglia areas. Moreover, ALFF and ReHo also exhibited increases in occipital and temporal lobes. Decreased FC was detected in the visual network (VN), sensorimotor network (SMN), salience network (SAN), and default mode network (DMN). The SMN-, cingulate-, and occipital lobe-related neural activation patterns were significantly positively correlated with the GDS score.ConclusionThe PWS group was characterized mainly by decreased neuronal physiological function and the ReHo was similar to ALFF but more extensive. The decreased local and global brain neural activation patterns may serve as early physiological indicators of cognitive abnormalities.

A novel phase-difference transcranial alternating current stimulation system enables precise dual-site neuromodulation

Precise modulation of large-scale brain networks requires neuromodulation technologies capable of delivering frequency-locked stimulation with accurate and stable inter-regional phase control. However, conventional transcranial alternating current stimulation (tACS) systems generally lack robust dual-channel phase regulation and are rarely validated under realistic biological impedance conditions. Here, we present a novel phase-difference tACS system (PD-stim) designed to deliver programmable, high-precision phase offsets between stimulation targets. We performed a comprehensive engineering and in vivo validation of PD-stim, assessing biological impedance stability, waveform fidelity, amplitude stability, and phase-delivery accuracy. Impedance measurements obtained from the medial prefrontal cortex and hippocampus of rats demonstrated stable frequency-dependent profiles during stimulation. Benchmark comparisons against a clinically approved tACS device revealed comparable waveform fidelity and amplitude stability under both a standardised resistive load and in vivo recording conditions. Using simultaneous dual-channel oscilloscope recordings, PD-stim consistently generated stable sinusoidal waveforms with high phase-delivery accuracy across theta (8 Hz), beta (20 Hz), and gamma (40 Hz) frequency bands, under both biological and resistive conditions. Together, these results establish PD-stim as a precise, stable, and biologically robust dual-site neuromodulation platform that overcomes key technical limitations of existing tACS systems. This work provides a rigorously validated engineering framework for future mechanistic investigations of phase-specific modulation in distributed brain networks, while not addressing functional or therapeutic outcomes.

Prefrontal and hippocampal microstructural gray matter following cognitive training under moderate hypoxia in mood disorders: a randomized controlled trial

BackgroundCognitive impairment persists during partial or full remission in 50–70% of individuals with mood disorders and impacts daily functioning and clinical prognosis. Preclinical evidence suggests that extended exposure to moderate hypoxia, combined with motor-cognitive learning, may elevate neuroplasticity and improve cognition. In these individuals with remitted mood disorders, we found that cognitive training under repeated moderate normobaric hypoxia improved executive function, and here investigate neurobiological mechanisms.MethodsParticipants with major depressive disorder (MDD) or bipolar disorder (BD) in partial or full remission were randomized to 3 weeks of 3.5-h daily normobaric hypoxia (12% O2) combined with cognitive training five to 6 days per week or treatment-as-usual (TAU). Participants were assessed with cognitive tests and diffusion-weighted MRI at baseline and 1 month after treatment completion (week 8) as part of the ALTIBRAIN trial (ClinicalTrials.gov: NCT06121206). Prefrontal and hippocampal gray matter microstructure were modelled with Neurite Orientation Dispersion and Density Imaging (NODDI).ResultsFifty-seven participants (mean age 39 years, SD: 13, 70% female) with baseline MRI data were included. No significant effects of hypoxia-cognition training vs. TAU on neurite density index (NDI) or orientation dispersion index (ODI) were observed in either the prefrontal cortex or hippocampus (all p-FDR ≥ 0.832). No significant associations were observed between microstructural changes and changes in cognitive function in either region (all p-FDR ≥ 0.721). At baseline, microstructure in both regions was not associated with executive function or global cognition (all p > 0.40).ConclusionThe absence of detectable microstructural changes, despite selective improvements in executive function, indicates that NODDI-derived metrics did not capture structural correlates of the cognitive response to hypoxia-cognition training. Whether this reflects functional neural mechanisms, measurement insensitivity, or the timing of the single follow-up assessment remains to be determined. Future studies should incorporate multiple imaging time points to capture the dynamic trajectories of putative microstructural brain changes.

How an Alzheimer’s Risk Gene Rewires the Brain Decades Before Symptoms

For millions of people worldwide, carrying the APOE4 gene variant means a significantly higher risk of developing Alzheimer’s disease. Yet one of the biggest unanswered questions has been when, and how, that risk begins to take hold in the brain.

New research from the Gladstone Institutes, published in Nature Aging, suggests that the effects of APOE4 emerge far earlier than previously understood. The study shows that subtle but important changes in brain activity occur long before memory loss begins, offering a potential window for early intervention.

Early changes in a seemingly healthy brain

Alzheimer’s disease is typically diagnosed after cognitive symptoms appear, but growing evidence suggests that the disease process begins decades earlier. The new study adds to this picture by demonstrating that brain circuits in young individuals carrying APOE4 are already functioning differently.

We found fundamental changes in brain circuits occurring in young mice that still had normal learning and memory, and importantly, that those changes predicted the development of cognitive deficits at older ages, ” said Misha Zilberter, PhD, principal staff research scientist at Gladstone and senior author of the study.

The researchers observed increased neuronal activity in the hippocampus, a brain region essential for learning and memory. Similar patterns of hyperactivity have been reported in human APOE4 carriers, even before clinical symptoms arise.

According to the scientists, this suggests that Alzheimer’s risk is not simply a matter of late-stage degeneration, but may instead involve long-term changes in how brain circuits are wired and function.

Smaller neurons, stronger signals

To understand what drives this early hyperactivity, the team examined individual brain cells. They found that neurons in key regions of the hippocampus were physically smaller in APOE4 carriers compared to those with the more common, lower-risk APOE3 variant.

While this might seem like a minor structural difference, it has functional consequences. Smaller neurons are more easily activated, meaning they fire more readily in response to stimuli. This heightened sensitivity can lead to persistent hyperactivity within neural circuits.

Over time, this imbalance may place stress on the brain and contribute to the gradual decline seen in Alzheimer’s disease.

A surprising source of dysfunction

For years, researchers believed that APOE4’s effects were primarily driven by astrocytes, support cells in the brain that produce most of the APOE protein. However, the new findings challenge this assumption.

The team discovered that the disruptive effects on brain activity were instead linked to APOE4 produced directly by neurons themselves. When APOE4 was removed from neurons, their size and activity returned to normal. Removing it from astrocytes, by contrast, had little effect.

This shift in understanding refocuses attention on neurons as key drivers of early disease processes, rather than passive victims of surrounding dysfunction.

A reversible pathway—and a new target

Perhaps the most striking finding of the study is that these early changes may not be permanent.

The researchers identified a protein called Nell2 as a central player in the process. Levels of Nell2 were elevated in APOE4 neurons and appeared to drive both the reduction in cell size and the increase in neuronal activity.

By reducing Nell2 levels in adult mice, the team was able to restore normal neuron structure and function—even after the changes had already occurred.

“What’s exciting about Nell2 is that we were able to reverse the disease manifestations in adult mice by lowering its level,” said Yadong Huang, co-senior author of the study. “That tells us the damage is not irreversible […].”

This raises the possibility of developing therapies that target Nell2, potentially slowing or preventing disease progression in individuals at high genetic risk.

Implications for early intervention

APOE4 is present in roughly one in four people and in the majority of Alzheimer’s patients. Despite this, current treatments largely focus on late-stage symptoms rather than early prevention.

The new findings suggest that intervening earlier, before cognitive decline begins, could be key. If brain circuit changes can be detected and corrected at an early stage, it may be possible to delay or even prevent the onset of Alzheimer’s disease.

The study also highlights the importance of understanding how genetic risk translates into functional changes in the brain. Rather than acting as a simple risk marker, APOE4 appears to actively reshape neural activity over time.

A shift in perspective

More broadly, the work reflects a growing shift in Alzheimer’s research, from focusing solely on hallmark features such as amyloid plaques and tau tangles to examining earlier, subtler changes in brain function.

By identifying a concrete pathway linking genetic risk to altered brain activity, the study provides a clearer framework for understanding how the disease develops.

“This study is a big breakthrough for the field of Alzheimer’s research,” Huang said. “It opens the door to a better understanding of how APOE4 alters the function of neurons at a young age to increase risk of cognitive decline, and to the development of therapies that could block the detrimental effects of APOE4 early on.”

While the findings are based on mouse models, they align closely with observations in humans and offer a strong foundation for future research. The next steps will involve determining whether targeting Nell2 or similar pathways can produce similar benefits in human patients.

If successful, such approaches could transform how Alzheimer’s disease is treated, not as an inevitable consequence of aging, but as a process that can be detected early and potentially reversed.

The post How an Alzheimer’s Risk Gene Rewires the Brain Decades Before Symptoms appeared first on Inside Precision Medicine.

Attenuation of mGluR1/5-dependent synaptic plasticity and ERK pathway dysfunction in the hippocampus of diabetic rats

Streptozotocin-induced diabetic rats (STZ rats), an established animal model of type 1 diabetes mellitus, develop cognitive decline, which has been linked to impairments in hippocampal synaptic plasticity. Long-term depression (LTD) in the hippocampus may be induced by the activation of different types of G protein-coupled receptors, particularly metabotropic glutamate receptors (mGluRs) and muscarinic acetylcholine receptors. We previously demonstrated that acetylcholine receptor activation-dependent LTD was impaired in STZ rats, and herein investigated group I mGluR (mGluR1/5)-dependent LTD in the Schaffer collateral-CA1 synapses of STZ rats. Extracellular field recordings revealed that the chemical activation of mGluR1/5 with (S)-3,5-dihydroxyphenylglycine (DHPG, 50 μM, 10 min) induced sustained LTD in both control and STZ rats; however, the magnitude of DHPG-LTD was significantly smaller in STZ rats. Moreover, the paired-pulse ratio between before and 80 min after the application of DHPG increased in both control and STZ rats, and DHPG-LTD was independent of NMDA receptor activation. A Western blot analysis showed that DHPG-induced extracellular signal-regulated kinase (ERK) phosphorylation was reduced in STZ rats, whereas DHPG-induced phosphoinositide-dependent kinase 1 phosphorylation and the expression level of the scaffold protein, Homer1, were unchanged. Collectively, these results suggest that impaired ERK/MAPK signaling affected hippocampal mGluR1/5-dependent LTD in STZ rats, and the dysregulation of ERK may contribute to diabetes-associated cognitive decline because of its crucial role in protein synthesis-dependent synaptic plasticity.