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Aldabergenova, A.

Publications and source records attributed to Aldabergenova, A..

3 recordsLinked to original sources

The TREM2-R47H Variant Drives Alzheimer's-Relevant Alterations in Forebrain Organoids Beyond Microglial Populations

Recent genetic studies highlight microglia as central drivers of Alzheimers disease (AD), yet how specific risk variants like TREM2-R47H influence broader neurocellular networks remains elusive. Here, we utilize an iPSC-derived forebrain organoid co-culture system to investigate the multi-lineage impact of the TREM2-R47H variant. High-resolution transcriptomic profiling, paired with confocal imaging, demonstrate that mutant organoids recapitulate AD-specific pathological signatures. Representative confocal imaging revealed phosphorylated-Tau (pTau) and amyloid-beta (A{beta}) internalization by WT microglia, while R47H variants showed a qualitative reduction in pTau accumulation. Single-cell RNA sequencing (scRNA-seq) revealed neurodegenerative transcriptional profiles in TREM2-R47H neurons as early as day 139, occurring independently of microglia presence. By day 173, these cell-intrinsic signatures intensified, characterized by disrupted oxidative phosphorylation and impaired maturation trajectories. Interaction analysis further demonstrated that the addition of microglia exacerbated this phenotype; while WT cells adapted to the microglia niche by activating homeostatic, neuro-supportive programs, TREM2-R47H cells underwent identity erosion and failed to transition into HLA-enriched activation states. This state was characterized by a failure to adopt brain-resident signatures and a divergent shift toward inflammatory myeloid phenotypes. These findings reveal that the TREM2-R47H mutation exerts a dual burden: it drives a baseline neurodegenerative state in neural lineages and renders them incapable of proper niche integration. Our study provides an in vitro human platform to dissect the interplay between genetic risk and multi-cellular dysfunction, establishing a scalable system for evaluating novel therapeutic interventions and drug screening aimed at restoring neuro-immune homeostasis in AD.

neuroscience↗

Transcriptomic and protein analysis of human cortex reveals genes and pathways linked to NPTX2 disruption in Alzheimer's disease

BackgroundCognitive resilience to Alzheimers disease (AD) pathology is associated with preserved expression of NPTX2, an activity-regulated synaptic protein involved in circuit plasticity, excitation-inhibition balance, and complement-linked synapse regulation. However, the broader molecular programs coordinated with NPTX2 in resilient individuals remain unclear. MethodsWe analyzed postmortem middle temporal gyrus tissue using targeted PRM-MS proteomics in 135 individuals and bulk RNA-seq in an expanded 575-sample cohort. NPTX2-associated molecular coordination was assessed within cognitively normal low-pathology controls (CN-Lo), cognitively normal high-pathology controls (CN-Hi), mild cognitive impairment (MCI), and AD. Correlation-based approaches were applied using NPTX2 protein and NPTX2 mRNA expression as anchors to define resilience mechanisms in CN-Hi subjects. ResultsNPTX2 protein abundance was preserved across all controls regardless of age and pathology but reduced in MCI and AD. NPTX2 mRNA expression was also invariant across pathology within controls and reduced in MCI and AD but decreased markedly with age. Targeted proteomics identified NPTX2 relationships with synaptic and inhibitory-circuit proteins that were preserved across control groups, alongside CN-Hi-specific recruitment of trafficking, lysosomal, metabolic, and proteostasis-associated proteins. Transcriptome-wide correlations with NPTX2 revealed differences in gene co-expression between groups, identifying a prominent activity-dependent program including BDNF, VGF, SCG2, SST, SERTM1, DUSP4, and EGR4, that was preserved in both CN-Lo and CN-Hi subjects, while genes recruited to the NPTX2 network specifically in CN-Hi implicated immune, neuroprotective, translation, and proteostasis-related pathways. Coupling differential gene expression analysis with co-expression, we further identified five candidate resilience genes whose expression and NPTX correlation was preserved across controls, but lost in MCI and AD: SST, MAL2, TAC1, SERTM1, and RFK. Expression of genes in distinct NPTX2 co-expression classes can be freely explored in our bulk RNA-seq data and other public AD transcriptomic datasets at NeMO Analytics. ConclusionFindings suggest that cognitive resilience in the context of AD neuropathology engages a coordinated molecular state distinct from both persevered cognition without pathology and MCI/AD, which is organized around preserved and selectively remodeled NPTX2-associations. Rather than reflecting broad transcript abundance changes, resilience was characterized by maintained synaptic and inhibitory programs, and adaptive proteostasis and trafficking pathways that distinguish resilient high-pathology individuals from low-pathology controls or symptomatic AD.

bioinformatics↗

Transcriptomic profiling of the middle temporal gyrus reveals differential glial/neuronal dysregulation across Alzheimer disease and aging.

Alzheimers disease (AD), the most common cause of dementia, is characterized by amyloid-{beta} plaques, neurofibrillary tangles, and widespread neuronal dysfunction. Aging, the strongest risk factor for AD, is also associated with some overlapping processes, such as neuronal cell transcriptional downregulation and glial cell activation. The middle temporal gyrus (MTG) is a brain region that supports semantic processing and default-mode connectivity and shows early vulnerability in both aging and AD. Here we profile bulk RNA-seq from 606 postmortem MTG samples with the goal of understanding the transcriptional changes associated with AD and aging. In 217 clinical and neuropathologically confirmed AD versus 290 no-dementia controls donors, we identify 613 differentially expressed genes (390 up, 223 down; |log2 fold change| [&ge;] 0.5; BH P < 0.05), with NPNT and ADAMTS2 among the top upregulated signals. Cell set enrichment indicates reduced excitatory neuronal signatures together with increased microglial, astrocytic, endothelial, and pericyte programs. Gene-set analyses reveal strong activation of angiogenesis, extracellular-matrix organization, wound response, adaptive immunity, and coordinated suppression of neuronal and mitochondrial processes, including synaptic signaling and respiratory-chain complexes. Multiscale coexpression mapping resolves three disease clusters: a neuron-mitochondrial module suppressed in AD (M5; hub PJA2; key driver GABRB3), a microglial immune module upregulated in AD (M6; hub C1QC; key driver FCER1G), and an increased astrocyte-vascular extracellular-matrix module in AD (M8; hub ESAM; key driver TAGLN). Across 324 non-AD controls aged 24-108 years, aging is associated with declines in gene expression associated with translation, proteostasis, and mitochondrial function and increases in those linked to oligodendrocyte and myelination programs (for example M4; hub CNTN2; key driver MOBP); in a 65+ subset, neuronal and protein-folding modules show the strongest decrements with reduced glial gene expression upregulatio. Our results indicate that late-life aging involves increased glial responses and neuronal/proteostasis suppression, whereas AD is also associated with immune- vascular-ECM activation and suppression of neuronal programs.

genomics↗