Extracellular vesicles (EVs) are increasingly recognized as key mediators of intercellular communication in neurodegenerative disorders, yet their mechanistic contribution to Alzheimer’s disease (AD)-related molecular changes remains poorly understood. Neural progenitor cells (NPCs) are particularly relevant because deficits in their proliferation and differentiation impair neurogenesis and brain repair. To investigate how EVs may influence these processes, we isolated EVs through size exclusion chromatography (SEC) from induced pluripotent stem cells (iPSCs)- derived NPCs carrying the AD-associated PSEN1 ΔE9 mutation and from isogenic controls. EV formulations were characterized by nanoparticle tracking analysis, cryogenic transmission electron microscopy, immunoblotting, and liquid chromatography–tandem mass spectrometry-based proteomics. Their effects on iPSC-derived brain organoids (BOs) were assessed by transcriptomic profiling. AD NPC EVs showed increased 6E10-reactive Aβ-related signal and contained AD-associated protein signatures, including PZP, ALPL, POSTN, APOC3, and transferrin. Application of AD EV preparations to healthy BOs induced transcriptomic changes that partially overlapped with AD BO transcriptomic signatures, including altered developmental and synapse-associated gene programs and downregulation of metabolic pathways. Consistently, PSEN1 ΔE9 NPCs showed reduced oxidative phosphorylation and glycolysis in Seahorse extracellular flux assays, while PSEN1 ΔE9 EV-treated BOs displayed downregulation of TCA cycle and glycolytic pathways at the transcriptomic level. Together, our findings suggest that NPC-derived SEC-enriched EV preparations contain AD-associated molecular signatures that could affect developmental, synapse-associated, and metabolic gene programs in recipient BOs, providing insight into cell-cell communication in AD.
BACKGROUND:Stressful life events (SLEs) across the life course have been associated with cognitive decline, but evidence on their cumulative impact and potential modifiers remains limited. We aimed to examine the associations between SLE exposure in childhood, adulthood, or both life stages and cognitive trajectories, and to investigate whether these associations vary by sex and education. METHODS:We used data from the China Health and Retirement Longitudinal Study, a nationally representative cohort of adults aged ≥45 years. Participants with complete data on SLEs, cognition, and covariates were included (n = 5922). SLEs were retrospectively assessed for childhood and adulthood. Cognitive function was measured using a composite score (range 0-21) across three waves (2011-2015). Linear mixed-effects models examined longitudinal associations, adjusting for sociodemographic factors, health behaviors, and chronic conditions, with interaction analyses for sex and education. RESULTS:Compared with participants reporting no SLEs, cumulative exposure showed the strongest association with cognitive decline (β = -0.52, 95% CI -0.69 to -0.35), followed by childhood-only (β = -0.34, -0.48 to -0.20) and adulthood-only exposure (β = -0.22, -0.37 to -0.07). Sex significantly moderated the associations for childhood and cumulative exposure, with women exhibiting greater cognitive vulnerability. Higher educational attainment attenuated the associations between single-period stress and cognitive decline, with only partial protection observed against cumulative adversity. CONCLUSION:Cumulative life-course stress is associated with accelerated cognitive decline in Chinese middle-aged and older adults. Women appear more vulnerable to stress-related cognitive effects, whereas higher education confers partial resilience, highlighting the need for sex-sensitive and education-informed prevention strategies.
BackgroundLecanemab, a monoclonal antibody targeting amyloid-β plaques, is FDA-approved for early Alzheimer's disease (AD) treatment. However, safety data from daily clinical practice is limited.ObjectiveThis study aims to assess the adverse events (AEs) linked to lecanemab using the FDA Adverse Event Reporting System (FAERS) to inform better safety management.MethodsA retrospective pharmacovigilance study was conducted using FAERS data from Q1 2023 to Q2 2024. Disproportionality analysis, including reporting odds ratio (ROR), proportional reporting ratio (PRR), Bayesian confidence propagation neural network (BCPNN), and multi-item gamma Poisson shrinker (MGPS), was applied to evaluate AEs where lecanemab was the primary suspect drug.ResultsFrom Q1 2023 to Q2 2024, 917 AEs related to lecanemab were recorded in the FAERS database, with 67.2% of patients aged between 65 and 85 years and 54.5% involving women. Disproportionality analysis identified significant AEs across 22 organ systems, particularly nervous system and psychiatric disorders. Common AEs included headache, amyloid-related imaging abnormalities, and infusion-related reactions, while sleep-related issues like somnolence, abnormal dreams, and poor-quality sleep were notable. Median onset time was 48 days, with serious outcomes in 14.3% of cases, including 70 hospitalizations and 15 deaths.ConclusionsThis pharmacovigilance analysis confirms known AEs of lecanemab and highlights new safety concerns, particularly its impact on sleep. These findings underscore the importance of ongoing monitoring and research to enhance lecanemab's safety profile in AD treatment. However, due to the limitations of FAERS, our analysis is imperfect in terms of important AEs such as therapy-related brain loss and death.
OBJECTIVES:Prevention of dementia is considered a healthcare priority. We aimed to identify potentially modifiable risk factors and mechanisms within the social health domain to find novel avenues to prevent cognitive decline and dementia. DESIGN:We integrated the results of eight sub-studies of the Social Health in Mice and Men (SHiMMy) project that were separately published in specialized journals, but not yet jointly considered. We followed the integrative methodology of Whittemore and Knafl, using the conceptual framework for social health to structure and integrate the results of human epidemiological and qualitative studies and experimental mice studies. This is a novel multi-method approach. PARTICIPANTS:Participants of the population-based longitudinal cohort Rotterdam study were included in the epidemiolocal studies (ranging from N = 1259 to N = 3.720) and in the qualitative study (n = 17). Mice intervention studies were performed using a transgenic mouse model for Alzheimer's pathology and matched controls, under group and single housed conditions. MEASUREMENTS:Epidemiological studies include social health markers (loneliness, perceived social support, marital status) and magnetic resonance imaging of the brain. The semi-structured qualitative study used an interview guide. The mice study assessed behavioral and histological markers. RESULTS:In human and mice studies, we identified several similar potentially modifiable risk (e.g. marital status, social group size) and protective (e.g. perceived social support, behavioral responses) factors. This alignment of findings showing that social health may impact brain health lend further support to our social health hypothesis. CONCLUSION:These results allow us to propose evidence-based social health targets for preventive interventions.
Impaired memory retrieval is one of the cognitive markers in the early stage of Alzheimer's Disease (AD). Previous studies report that exchange protein directly activated by cAMP 2 (Epac2) plays a specific and time-limited role in promoting memory retrieval. In this study, we investigated the effect of a novel Epac2 activator, S220, on neuronal and synaptic activities, and memory impairment in an acute AD mouse model. S220 treatment increased the firing rate of action potential and intracellular calcium in primary neuronal cultures. Moreover, S220 treatment increased synaptic currents in CA1 neurons. In the acute AD mouse model, intrahippocampal injection of amyloid-β (Aβ) oligomers impaired memory performance. Notably, administering S220 20 min before retention of contextual fear conditioning recovered the Aβ-induced memory impairment, suggesting an enhancing effect on memory retrieval. Collectively, our data demonstrate that the novel Epac2 activator S220 promotes synaptic communication and neuronal firing, and thereby improves Aβ-induced memory impairment via enhancing memory retrieval, indicating the role of Epac2 as a potential treatment target for AD.
The development of therapeutics that enhances the regeneration of myelin sheaths following demyelination is predicted to prevent neurodegeneration. A promising target to enhance remyelination is the immunomodulatory cytokine tumor necrosis factor alpha (TNFα) and its receptors TNFR1 and TNFR2. TNFR2 on oligodendrocyte lineage cells and microglia coordinates different protective functions, such as proliferation of oligodendrocyte progenitor cells, survival of mature oligodendrocytes, and release of anti-inflammatory cytokines, in animal models of inflammation and demyelination. Here, we find in the cuprizone model that following demyelination, fewer axons are unmyelinated in the corpus callosum at an early stage of remyelination after single TNFR2 agonist delivery in the lateral ventricle, while astrocyte and microglia number and coverage are unchanged. Towards later stages of remyelination, TNFR2 agonist treatment maintains the number of oligodendrocyte lineage cells, and large caliber axons have thinner myelin. Hence, even short-term stimulation of TNFR2 has a positive impact on the remyelination processes. This study informs further on the beneficial implications of TNFR2 signaling on oligodendrocyte lineage cells and remyelination, emphasizing its potential therapeutic value for demyelinating diseases, including multiple sclerosis. KEY MESSAGES: Single TNFR2 agonist treatment in the lateral ventricle following cuprizone-induced demyelination impacts remyelination by: Leading to a lower percentage of unmyelinated axons at early stages. Preserving the number of oligodendrocyte lineage cells in the corpus callosum at later stages. Covering large calibre axons with thinner myelin sheaths at later stages.
Background: Growing evidence suggests that psychosocial stressors—such as financial strain, caregiving responsibilities, disability, and limiting long-term illnesses—may contribute to accelerated cognitive decline in older adults. However, the heterogeneity of stressor profiles and their distinct impact on specific cognitive domains remain poorly understood. Objective: To examine the associations between varying burdens of psychosocial stressors and cognitive function over a 10-year period using data from the English Longitudinal Study of Ageing (ELSA). Methods: We used longitudinal data from wave 4 (2008–2009) to wave 9 (2018–2019) of ELSA, comprising 10,893 participants aged ≥50 years at baseline who had valid measurements of psychosocial stressors and cognitive outcomes. Psychosocial stressors—financial strain, caregiving, disability, and limiting long-term illness—were assessed as binary indicators and summed into three categories (No Stressors, One Stressor, Multiple Stressors). Cognitive function was assessed using an overall global cognition score and scores of three specific domains: memory, executive function, and orientation. Baseline associations were examined via multiple linear regression, while linear mixed-effects models evaluated longitudinal trajectories of cognitive change. All models were progressively adjusted for demographic, lifestyle, and clinical covariates. Results: At baseline, participants reporting multiple stressors (18.2 % of the sample) had significantly lower global cognitive and executive function scores compared to those with no stressors (43.3 %). Over the 10-year follow-up, a higher stress burden predicted faster declines in global cognition, memory, and executive function. These associations remained robust after adjusting for sociodemographic characteristics, health behaviors, and chronic conditions. Random intercept and random slope models yielded consistent findings, indicating a dose–response relationship between stress burden and cognitive deterioration. Conclusion: Older adults experiencing multiple psychosocial stressors face an elevated risk of both lower initial cognitive function and accelerated decline over time. These findings underscore the importance of identifying and mitigating modifiable stressors—such as financial strain and caregiving demands—to potentially preserve cognitive health in later life. Interventions tailored to individuals with higher stress burdens may be especially beneficial in slowing cognitive deterioration.
Alzheimer’s disease (AD) is an age-related neurodegenerative disorder and the most common cause of dementia. While the amyloid cascade hypothesis has long dominated AD research, emerging evidence suggests that neuroinflammation may play a more central role in disease onset and progression. Increasingly, AD is recognized as a multifactorial disorder influenced by systemic inflammation and immune dysregulation, shifting focus toward peripheral immune mechanisms as potential contributors to neurodegeneration. This review explores the hypothesis that inflammaging, the age-related increase in pro-inflammatory mediators, combined with lifelong exposure to infections, injuries, metabolic changes, and chronic diseases, among others, may prime the immune system, amplifying neuroinflammation and influencing the progression and exacerbation of AD pathology. To this end, we examined how systemic immune disturbances, including chronic pain, post-operative cognitive dysfunction, viral and bacterial infections, gut microbiome dysregulation, and cardiovascular disease, may act as risk factors for AD. Overall, evidence suggests that modulating peripheral inflammation, accompanied by early diagnosis, could significantly reduce the risk of developing AD. Furthermore, we highlight key immune signaling pathways involved in both central and peripheral immune responses, such as the NLRP3 inflammasome and TREM2, which represent promising therapeutic targets for modulating inflammation while preserving protective immune functions. Strategies aimed at reducing systemic inflammation, identifying early biomarkers, and intervening before significant neurodegeneration occurs may provide novel approaches to delay or prevent AD onset. In conclusion, this review underscores the crucial role of systemic inflammation in AD pathogenesis and progression. By targeting peripheral immune dysfunction, we may advance our understanding of AD mechanisms and develop more effective therapeutic interventions to mitigate disease risk and progression.
Alzheimer's disease (AD) is a progressive neurodegenerative disease which accounts for the most cases of dementia worldwide. Impaired memory, including acquisition, consolidation, and retrieval, is one of the hallmarks in AD. At the cellular level, dysregulated synaptic plasticity partly due to reduced long-term potentiation (LTP) and enhanced long-term depression (LTD) underlies the memory deficits in AD. GluA3 containing α-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid receptors (AMPARs) are one of key receptors involved in rapid neurotransmission and synaptic plasticity. Recent studies revealed a novel form of GluA3 involved in neuronal plasticity that is dependent on cyclic adenosine monophosphate (cAMP), rather than N-methyl-d-aspartate (NMDA). However, this cAMP-dependent GluA3 pathway is specifically and significantly impaired by amyloid beta (Aβ), a pathological marker of AD. cAMP is a key second messenger that plays an important role in modulating memory and synaptic plasticity. We previously reported that exchange protein directly activated by cAMP 2 (Epac2), acting as a main cAMP effector, plays a specific and time-limited role in memory retrieval. From electrophysiological perspective, Epac2 facilities the maintenance of LTP, a cellular event closely associated with memory retrieval. Additionally, Epac2 was found to be involved in the GluA3-mediated plasticity. In this review, we comprehensively summarize current knowledge regarding the specific roles of GluA3 and Epac2 in synaptic plasticity and memory, and their potential association with AD.
Bacterial respiratory infections are a major global health concern, often leading to lung injury and triggering lung repair mechanisms. Endogenous epithelial progenitor cells are crucial in this repair, yet the mechanisms remain poorly understood. This study investigates the response of lung epithelial progenitor cells to injury induced by lipopolysaccharide (LPS), a component of gram-negative bacteria, focusing on their regulation during lung repair. Lung epithelial cells (CD31-CD45-Epcam+) from wild-type and tumor necrosis factor (TNF) receptor 1/2 knock-out mice were co-cultured with wild-type fibroblasts. Organoid numbers and size were measured after 14 days of exposure to 100 ng/mL LPS. Immunofluorescence was used to assess differentiation (after 14 days), RNA sequencing analyzed gene expression changes (after 72 hours), and MTS assay assessed proliferative effects of LPS on individual cell types (after 24 hours). LPS treatment increased the number and size of wild-type lung organoids and promoted alveolar differentiation, indicated by more SPC+ organoids. RNA sequencing revealed upregulation of inflammatory and fibrosis-related markers, including Cxcl3, Cxcl5, Ccl20, Mmp13, and Il33, and enrichment of TNF-α signaling and epithelial-mesenchymal transition pathways. TNF receptor 1 deficiency inhibited LPS-induced progenitor cell activation and organoid growth. In conclusion, LPS enhances lung epithelial progenitor cell proliferation and differentiation via TNF receptor 1 signaling, highlighting potential therapeutic targets for bacterial lung injury.
In humans, social factors (e.g., loneliness) have been linked to the risk of developing Alzheimer's Disease (AD). To date, AD pathology is primarily characterized by amyloid-β plaques and tau tangles. We aimed to assess the effect of single- and group-housing on AD-related pathology in a mouse model for amyloid pathology (J20, and WT controls) and a mouse model for tau pathology (P301L) with and without seeding of synthetic human tau fragments (K18). Female mice were either single housed (SH) or group housed (GH) from the age of 6-7 weeks onwards. In 12-week-old P301L mice, tau pathology was induced through seeding by injecting K18 into the dorsal hippocampus (P301LK18), while control mice received a PBS injection (P301LPBS). P301L mice were sacrificed at 4 months of age and J20 mice at 10 months of age. In all mice brain pathology was histologically assessed by examining microglia, the CA1 pyramidal cell layer and specific AD pathology: analysis of plaques in J20 mice and tau hyperphosphorylation in P301L mice. Contrary to our expectation, SH-J20 mice interestingly displayed fewer plaques in the hippocampus compared to GH-J20 mice. However, housing did not affect tau hyperphosphorylation at Ser202/Thr205 of P301L mice, nor neuronal cell death in the CA1 region in any of the mice. The number of microglia was increased by the J20 genotype, and their activation (based on cell body to cell size ratio) in the CA1 was affected by genotype and housing condition (interaction effect). Single housing of P301L mice was linked to the development of stereotypic behavior (i.e. somersaulting and circling behavior). In P301LK18 mice, an increased number of microglia were observed, among which were rod microglia. Taken together, our findings point to a significant effect of social housing conditions on amyloid plaques and microglia in J20 mice and on the development of stereotypic behavior in P301L mice, indicating that the social environment can modulate AD-related pathology.
BACKGROUND:Altered social behavior is one of the symptoms of Alzheimer's disease (AD) that results in social withdrawal and loneliness and provides a major burden on patients and their relatives. Furthermore, loneliness is associated with an increased risk to develop AD and related dementias.OBJECTIVE:We aimed to investigate if altered social behavior is an early indicator of amyloid-β (Aβ) pathology in J20 mice, and if co-housing with wild type (WT) mice can positively influence this social phenotype.METHODS:The social phenotype of group-housed mice was assessed using an automated behavioral scoring system for longitudinal recordings. Female mice were housed in a same-genotype (4 J20 or WT mice per colony) or mixed-genotype (2 J20 mice + 2 WT mice) colony. At 10 weeks of age, their behavior was assessed for five consecutive days.RESULTS:J20 mice showed increased locomotor activity and social sniffing, and reduced social contact compared to WT mice housed in same-genotype colonies. Mixed-genotype housing reduced the social sniffing duration of J20 mice, increased social contact frequency of J20 mice, and increased nest hide by WT mice.CONCLUSION:Thus, altered social behavior can be used as an early indicator of Aβ-pathology in female J20 mice. Additionally, when co-housed with WT mice, their social sniffing phenotype is not expressed and their social contact phenotype is reduced. Our findings highlight the presence of a social phenotype in the early stages of AD and indicate a role for social environment variation in the expression of social behavior of WT and J20 mice.
Alzheimer's disease (AD) and Parkinson's disease (PD) represent the most prevalent neurodegenerative disorders severely impacting life expectancy and quality of life of millions of people worldwide. AD and PD exhibit both a very distinct pathophysiological disease pattern. Intriguingly, recent researches, however, implicate that overlapping mechanisms may underlie AD and PD. In AD and PD, novel cell death mechanisms, encompassing parthanatos, netosis, lysosome-dependent cell death, senescence and ferroptosis, apparently rely on the production of reactive oxygen species, and seem to be modulated by the well-known, "old" second messenger cAMP. Signaling of cAMP via PKA and Epac promotes parthanatos and induces lysosomal cell death, while signaling of cAMP via PKA inhibits netosis and cellular senescence. Additionally, PKA protects against ferroptosis, whereas Epac1 promotes ferroptosis. Here we review the most recent insights into the overlapping mechanisms between AD and PD, with a special focus on cAMP signaling and the pharmacology of cAMP signaling pathways.
Tumor necrosis factor alpha (TNF-α) and its key role in modulating immune responses has been widely recognized as a therapeutic target for inflammatory and neurodegenerative diseases. Even though inhibition of TNF-α is beneficial for the treatment of certain inflammatory diseases, total neutralization of TNF-α largely failed in the treatment of neurodegenerative diseases. TNF-α exerts distinct functions depending on interaction with its two TNF receptors, whereby TNF receptor 1 (TNFR1) is associated with neuroinflammation and apoptosis and TNF receptor 2 (TNFR2) with neuroprotection and immune regulation. Here, we investigated the effect of administering the TNFR1-specific antagonist Atrosimab, as strategy to block TNFR1 signaling while maintaining TNFR2 signaling unaltered, in an acute mouse model for neurodegeneration. In this model, a NMDA-induced lesion that mimics various hallmarks of neurodegenerative diseases, such as memory loss and cell death, was created in the nucleus basalis magnocellularis and Atrosimab or control protein was administered centrally. We showed that Atrosimab attenuated cognitive impairments and reduced neuroinflammation and neuronal cell death. Our results demonstrate that Atrosimab is effective in ameliorating disease symptoms in an acute neurodegenerative mouse model. Altogether, our study indicates that Atrosimab may be a promising candidate for the development of a therapeutic strategy for the treatment of neurodegenerative diseases.
Ferroptosis is a type of oxidative cell death that can occur in neurodegenerative diseases and involves damage to mitochondria. Previous studies demonstrated that preventing mitochondrial dysfunction can rescue cells from ferroptotic cell death. However, the complexity of mitochondrial dysfunction and the timing of therapeutic interventions make it difficult to develop an effective treatment strategy against ferroptosis in neurodegeneration conditions. In this study, we explored the use of mitochondrial transplantation as a novel therapeutic approach for preventing ferroptotic neuronal cell death. Our data showed that isolated exogenous mitochondria were incorporated into both healthy and ferroptotic immortalized hippocampal HT-22 cells and primary cortical neurons (PCN). The mitochondrial incorporation was accompanied by increased metabolic activity and cell survival through attenuating lipid peroxidation and mitochondrial superoxide production. Further, the function of mitochondrial complexes I, III and V activities contributed to the neuroprotective activity of exogenous mitochondria. Similarly, we have also showed the internalization of exogenous mitochondria in mouse PCN; these internalized mitochondria were found to effectively preserve the neuronal networks when challenged with ferroptotic stimuli. The administration of exogenous mitochondria into the axonal compartment of a twocompartment microfluidic device induced mitochondrial transportation to the cell body, which prevented fragmentation of the neuronal network in ferroptotic PCN. These findings suggest that mitochondria transplantation may be a promising therapeutic approach for protecting neuronal cells from ferroptotic cell death.
Microglia and astrocytes are regarded as active participants in the central nervous system under various neuropathological conditions, including Alzheimer's disease (AD). Both microglia and astrocyte activation have been reported to occur with a spatially and temporarily distinct pattern. Acting as a double-edged sword, glia-mediated neuroinflammation may be both detrimental and beneficial to the brain. In a variety of neuropathologies, microglia are activated before astrocytes, which facilitates astrocyte activation. Yet reactive astrocytes can also prevent the activation of adjacent microglia in addition to helping them become activated. Studies describe changes in the genetic profile as well as cellular and molecular responses of these two types of glial cells that contribute to dysfunctional immune crosstalk in AD. In this paper, we construct current knowledge of microglia-astrocyte communication, highlighting the multifaceted functions of microglia and astrocytes and their role in AD. A thorough comprehension of microglia-astrocyte communication could hasten the creation of novel AD treatment approaches.
Microglia, the resident immune cells of the central nervous system (CNS), play a major role in damage progression and tissue remodeling after acute CNS injury, including ischemic stroke (IS) and spinal cord injury (SCI). Understanding the molecular mechanisms regulating microglial responses to injury may thus reveal novel therapeutic targets to promote CNS repair. Here, we investigated the role of microglial tumor necrosis factor receptor 2 (TNFR2), a transmembrane receptor previously associated with pro-survival and neuroprotective responses, in shaping the neuroinflammatory environment after CNS injury. By inducing experimental IS and SCI in Cx3cr1CreER:Tnfrsf1bfl/fl mice, selectively lacking TNFR2 in microglia, and corresponding Tnfrsf1bfl/fl littermate controls, we found that ablation of microglial TNFR2 significantly reduces lesion size and pro-inflammatory cytokine levels, and favors infiltration of leukocytes after injury. Interestingly, these effects were paralleled by opposite sex-specific modifications of microglial reactivity, which was found to be limited in female TNFR2-ablated mice compared to controls, whereas it was enhanced in males. In addition, we show that TNFR2 protein levels in the cerebrospinal fluid (CSF) of human subjects affected by IS and SCI, as well as healthy donors, significantly correlate with disease stage and severity, representing a valuable tool to monitor the inflammatory response after acute CNS injury. Hence, these results advance our understanding of the mechanisms regulating microglia reactivity after acute CNS injury, aiding the development of sex- and microglia-specific, personalized neuroregenerative strategies.
Alzheimer's disease (AD) is one of the most prevalent neurodegenerative diseases, characterized by amyloid beta (Aβ) and hyperphosphorylated tau accumulation in the brain. Recent studies indicated that memory retrieval, rather than memory formation, was impaired in the early stage of AD. Our previous study reported that pharmacological activation of hippocampal Epac2 promoted memory retrieval in C57BL/6J mice. A recent study suggested that pharmacological inhibition of Epac2 prevented synaptic potentiation mediated by GluA3-containing AMPARs. In this study, we aimed to investigate proteins associated with Epac2-mediated memory in hippocampal postmortem samples of AD patients and healthy controls compared with the experimental AD model J20 and wild-type mice. Epac2 and phospho-Akt were downregulated in AD patients and J20 mice, while Epac1 and phospho-ERK1/2 were not altered. GluA3 was reduced in J20 mice and tended to decrease in AD patients. PSD95 tended to decrease in AD patients and J20. Interestingly, AKAP5 was increased in AD patients but not in J20 mice, implicating its role in tau phosphorylation. Our study points to the downregulation of hippocampal expression of proteins associated with Epac2 in AD.
Background: Tumor necrosis factor-alpha (TNF-α) is a master cytokine involved in a variety of inflammatory and neurological diseases, including Alzheimer’s disease (AD). Therapies that block TNF-α proved ineffective as therapeutic for neurodegenerative diseases, which might be explained by the opposing functions of the two receptors of TNF (TNFRs): while TNFR1 stimulation mediates inflammatory and apoptotic pathways, activation of TNFR2 is related to neuroprotection. Despite the success of targeting TNFR2 in a transgenic AD mouse model, research that better mimics the human context is lacking. Objective: The aim of this study is to investigate whether stimulation of TNFR2 with a TNFR2 agonist is effective in activating human TNFR2 and attenuating AD neuropathology in the J20xhuTNFR2-k/i mouse model. Methods: Transgenic amyloid-β (Aβ)-overexpressing mice containing a human extracellular TNFR2 domain (J20xhuTNFR2-k/i) were treated with a TNFR2 agonist (NewStar2). After treatment, different behavioral tests and immunohistochemical analysis were performed to assess different parameters, such as cognitive functions, plaque deposition, synaptic plasticity, or microglial phagocytosis. Results: Treatment with NewStar2 in J20xhuTNFR2-k/i mice resulted in a drastic decrease in plaque load and beta-secretase 1 (BACE-1) compared to controls. Moreover, TNFR2 stimulation increased microglial phagocytic activity, leading to enhanced Aβ clearance. Finally, activation of TNFR2 rescued cognitive impairments and improved synaptic plasticity. Conclusion: Our findings demonstrate that activation of human TNFR2 ameliorates neuropathology and improves cognitive functions in an AD mouse model. Moreover, our study confirms that the J20xhuTNFR2-k/i mouse model is suitable for testing human TNFR2-specific compounds.