ReviewMolecular neurodegeneration2025
Alzheimer's disease neuropathology and its estimation with fluid and imaging biomarkers.
Review in Molecular neurodegeneration, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 24 papers.
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Who cites it
24 citing papers in PubMed.
- Changes in five cerebrospinal fluid and three plasma Alzheimer's disease biomarkers across increasing brain amyloid-beta and tau pathology burden.Acta neuropathologica · 2026Article
- Associations of visceral adipose tissue metabolism with DMN-centered cross-network metabolic expression concordance and cognitive impairment in Alzheimer's disease.European journal of nuclear medicine and molecular imaging · 2026Article
- Human biomarker navigator.iMeta · 2026Review
- Aberrant ɑSMA expression reveals broad mossy fiber reorganization integrating with tangle and plaque formation and mitoenergetic alteration in the human hippocampus.Alzheimer's & dementia : the journal of the Alzheimer's Association · 2026Article
- Biomarker-Based Diagnosis and Care Pathways for Alzheimer's Disease in the Era of Disease-Modifying Treatments: A Consensus Statement by Belgian Experts.European journal of neurology · 2026Article
- Is there a link between multiple sclerosis and Alzheimer disease? A critical note.Journal of neural transmission (Vienna, Austria : 1996) · 2026Review
- Sleep fragmentation correlates with amyloid beta deposition at brain autopsy.Alzheimer's & dementia : the journal of the Alzheimer's Association · 2026Article
- Impact of adjunctive quantitative analysis on visual interpretation of amyloid PET: a multiple tracer, multicentre study.European radiology · 2026Article
- Integrative Transcriptomic, Network, and Machine Learning Analyses Identify Genistein and Resveratrol-Associated Therapeutic Targets in Alzheimer's Disease.Molecular neurobiology · 2026Article
- Neurosteroid-Mediated Neuroprotection via mTORC1/AMPK/BDNF Signaling Pathway in Alzheimer's Disease.Molecular neurobiology · 2026Review
- Digital Atlases to Unlock the Potential of Brain Biorepository Tissues for Interdisciplinary Research.bioRxiv : the preprint server for biology · 2026Article
- Abnormal amyloid PET usually represents intermediate/high Alzheimer's disease neuropathologic change.Alzheimer's & dementia : the journal of the Alzheimer's Association · 2026Article
- Molecular characterization of humanized APOE mouse models reveals source and genotype dependent differences.Molecular neurodegeneration · 2026Article
- Evaluation of Plasma-Derived hsa_circ_003077 for Non-Invasive Diagnosis of Alzheimer's Disease.Biomolecules · 2026Article
- Review
- The 2024 NIA-AA biological definition of Alzheimer's disease: linking biomarkers to clinical practice.Frontiers in dementia · 2026Review
- Plasma and neurostructural biomarkers in the clinical-biological characterization of early stages of the Alzheimer's disease continuum: findings from the Compostela Aging Study.The journal of prevention of Alzheimer's disease · 2026Article
- Distinct neurostructural, cognitive, and neuropsychiatric associations of plasma p-tau217, and Aβ42/40 in Parkinson's disease and aging cohorts.Frontiers in aging neuroscience · 2026Article
- Tau protein: Physiological functions and multifaceted roles in neurodegenerative and psychiatric disorders.Genomic psychiatry : advancing science from genes to society · 2025Article
- Clinical and molecular correlates of limbic age-related TDP-43 encephalopathy (LATE)European journal of nuclear medicine and molecular imaging · 2025Article
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4 authors.
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Abstract
Alzheimer's disease (AD) is neuropathologically characterized by the extracellular deposition of the amyloid-β peptide (Aβ) and the intraneuronal accumulation of abnormal phosphorylated tau (τ)-protein (p-τ). Most frequently, these hallmark lesions are accompanied by other co-pathologies in the brain that may contribute to cognitive impairment, such as vascular lesions, intraneuronal accumulation of phosphorylated transactive-response DNA-binding protein 43 (TDP-43), and/or α-synuclein (αSyn) aggregates. To estimate the extent of these AD and co-pathologies in patients, several biomarkers have been developed. Specific tracers target and visualize Aβ plaques, p-τ and αSyn pathology or inflammation by positron emission tomography. In addition to these imaging biomarkers, cerebrospinal fluid, and blood-based biomarker assays reflecting AD-specific or non-specific processes are either already in clinical use or in development. In this review, we will introduce the pathological lesions of the AD brain, the related biomarkers, and discuss to what extent the respective biomarkers estimate the pathology determined at post-mortem histopathological analysis. It became evident that initial stages of Aβ plaque and p-τ pathology are not detected with the currently available biomarkers. Interestingly, p-τ pathology precedes Aβ deposition, especially in the beginning of the disease when biomarkers are unable to detect it. Later, Aβ takes the lead and accelerates p-τ pathology, fitting well with the known evolution of biomarker measures over time. Some co-pathologies still lack clinically established biomarkers today, such as TDP-43 pathology or cortical microinfarcts. In summary, specific biomarkers for AD-related pathologies allow accurate clinical diagnosis of AD based on pathobiological parameters. Although current biomarkers are excellent measures for the respective pathologies, they fail to detect initial stages of the disease for which post-mortem analysis of the brain is still required. Accordingly, neuropathological studies remain essential to understand disease development especially in early stages. Moreover, there is an urgent need for biomarkers reflecting co-pathologies, such as limbic predominant, age-related TDP-43 encephalopathy-related pathology, which is known to modify the disease by interacting with p-τ. Novel biomarker approaches such as extracellular vesicle-based assays and cryptic RNA/peptides may help to better detect these co-pathologies in the future.
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