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Biology subjects

Alia, A. O.

Publications and source records attributed to Alia, A. O..

4 recordsLinked to original sources

Proteomic analysis of human leptomeningeal matrisome identifies changes in Alzheimer's disease

The leptomeninges (arachnoid and pia) are the inner layers of the meninges that envelope the brain. They define the borders of the subarachnoid space (SAS) where cerebrospinal fluid (CSF) circulates. Leptomeninges act as the barrier tissue and contribute to fluid exchange and immune function of the brain. These processes are identified as key factors in the development of neurodegenerative diseases. The extracellular matrix (ECM) is a critical structural component of leptomeninges. However, it remains insufficiently characterized in health and disease. Here, we performed complete proteomic profiling of ECM proteins (matrisome) of human leptomeninges from individuals with Alzheimers disease (AD) and cognitively normal controls (CN) using sequential biochemical fractionation coupled with mass spectrometry. We resolved leptomeningeal matrisome based on the biochemical properties reflected by the protein solubility. This approach identified 211 ECM proteins in human leptomeninges and revealed disease-associated shifts in leptomeningeal solubility consistent with altered matrix organization and signaling. We found that ECM-linked regulators and secreted factors extracellular sulfatase SULF2, antithrombin-III (SERPINC1), secreted frizzled-related protein 3 (sFRP3) and integrin beta-5 (ITGB5), which is a receptor for fibronectin, were differentially expressed in AD leptomeninges based on the disease status. Seven ECM proteins were identified only in AD samples, and two ECM proteins in CN samples. Pathway enrichment implicated TGF-{beta} and Wnt-related signaling and coagulation as critical for leptomeningeal function. Our findings provide the first comprehensive proteomic characterization of the human leptomeningeal matrisome and establish a biochemical framework for investigating how meningeal matrix remodeling contributes to AD.

neuroscience↗

Proximity labeling reveals unique and shared interactomes of unmodified and pyroglutamate amyloid beta in human hippocampus in Alzheimers disease

Amyloid plaques are a hallmark neuropathological feature of Alzheimers disease (AD), composed of insoluble amyloid beta (A{beta}) peptide. A{beta} undergoes post-translational modifications that alter their biophysical properties, aggregation kinetics, and neurotoxicity, creating a heterogeneous pool of species that differentially affect AD pathogenesis. Pyroglutamate-modified A{beta} (pEA{beta}) is a particularly aggregation-prone and proteolytically resistant variant that preferentially accumulates within plaque cores, is implicated in early plaque seeding, and is a major target of emerging anti-amyloid immunotherapies. However, the molecular environment surrounding pEA{beta} versus unmodified A{beta} (pan-A{beta}) in the human hippocampus remains incompletely defined. Here, we used Biotinylation by Antibody Recognition (BAR), an in-situ proximity labeling approach, to map and compare the protein-protein interactions (proteomes) of pEA{beta} and pan-A{beta} in formalin-fixed postmortem human hippocampal tissue from pathologically confirmed AD cases and cognitively normal (CN) controls. Differential proteomic analysis identified 48 significantly enriched proteins in AD pEA{beta} captures, 28 in AD pan-A{beta} captures, and 15 in CN pan-A{beta} captures. Whereas no significant enrichment was detected in CN pEA{beta} captures, supporting pEA{beta} as a pathology-associated species. pEA{beta} in AD demonstrated the largest variant-specific signature with 31 unique proteins, pan-A{beta} showed 11 unique proteins in AD, and 14 unique proteins in CN, 16 proteins were shared between AD pEA{beta} and AD pan-A{beta}, with PCSK1N shared across AD pEA{beta}, and AD/CN pan-A{beta}. Pathway enrichment analysis revealed broader biological disruptions linked to pEA{beta}, including synaptogenesis signaling, clathrin-mediated endocytosis, mitochondrial division signaling, and neurotransmitter release. Shared pathways included SNARE signaling, glutamatergic receptor signaling, and netrin signaling. These findings demonstrate that pEA{beta} engages an expanded, variant-specific interactome in human AD hippocampus and designate intracellular trafficking, synaptic signaling, and mitochondrial pathways as network-level vulnerabilities relevant to pEA{beta} pathology in AD. Notably, comparison of CN versus AD pan-A{beta} further distinguished protein networks associated with physiological A{beta} engagement versus pathological pan-A{beta} deposition.

neuroscience↗

ACE1 Does Not Influence Cerebral Aβ Degradation or Amyloid Plaque Accumulation in 5XFAD Mice

Alzheimers disease (AD) is the most common form of dementia, and multiple lines of evidence support the relevance of A{beta} deposition and amyloid plaque accumulation in the neurotoxicity and cognitive decline in AD. Rare mutations in angiotensin-converting-enzyme-1 (ACE1) have been highly associated with late onset AD patients; however, the mechanism for ACE1 mutation in AD pathogenesis is unknown. Given the relevance of ACE1 with AD and the strong association of A{beta} to AD pathogenesis, we investigated whether ACE1 degrades A{beta} and affects amyloid burden in 5XFAD mice in vivo. To investigate this, we analyzed 6-month-old 5XFAD mice with ACE1 loss of function. ACE1 loss of function was mediated either by crossing 5XFAD mice to ACE1 conditional knockout mice or administering 5XFAD mice with the ACE1 inhibitor enalapril. Our analyses revealed that ACE1 loss of function through both genetic and pharmacological methods does not affect amyloid plaque load and neuroinflammation in the hippocampus and cortex of 5XFAD mice.

neuroscience↗

ACE1 knockout in neurons selectively dysregulates the hippocampal renin angiotensin system and causes vascular loss

Angiotensin I converting enzyme (ACE1) maintains blood pressure homeostasis by converting angiotensin I (angI) into angiotensin II (angII) in the renin-angiotensin system (RAS). ACE1 is expressed in the brain, where an intrinsic RAS regulates complex cognitive functions including learning and memory. ACE1 has been implicated in neurodegenerative disorders including Alzheimers disease (AD) and Parkinsons disease (PD), but the mechanisms remain incompletely understood. Here, we performed single-nucleus RNA sequencing to characterize the expression RAS genes in the hippocampus and discovered that Ace is mostly expressed in CA region excitatory neurons. To gain a deeper understanding of the function of neuronal ACE1, we generated ACE1 conditional knockout (cKO) mice lacking ACE1 expression specifically in hippocampal and cortical excitatory neurons. Interestingly, ACE1 cKO mice exhibited hippocampus-dependent memory impairment in the Morris water maze, y-maze, and fear conditioning tests, but exhibited normal motor skills in rotarod. Total ACE1 level was significantly reduced in the cortex and hippocampus of ACE1 cKO mice showing that excitatory neurons are the predominant cell type expressing ACE1 in the forebrain. Despite similar reductions in total ACE1 level in both the hippocampus and cortex, the RAS pathway was dysregulated in the hippocampus only. Importantly, ACE cKO mice exhibited exacerbated age-related capillary loss selectively in the hippocampus. Here, we show selective vulnerability of the hippocampal microvasculature and RAS pathway to neuronal ACE1 knockout. Our results provide important insights into the function of ACE1 in the brain and demonstrate a connection between neuronal ACE and cerebrovascular function in the hippocampus.

neuroscience↗