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Weed, M.

Publications and source records attributed to Weed, M..

2 recordsLinked to original sources

African Green Monkeys Respond to Synthetic AB Oligomers with Persistent Alzheimers-like Activation

Wild African green monkeys (AGMs) provide a promising alternative to congenic rodent models because of their closer evolutionary relationship to humans and natural genetic variation. They share key physiological and biochemical traits with humans, including lifespan, neuroanatomy, vascular structure, and inflammatory responses. Unlike rodents, AGMs naturally develop Alzheimers-like amyloid-{beta} (A{beta}) plaques and tau tangles with age. Immunohistochemical studies further show that AGMs inoculated with synthetic A{beta} oligomers (A{beta}O) exhibit hyperphosphorylated tau and neuroinflammation one year later, in the absence of overt neurodegeneration. The AGM body size permits collection of cerebrospinal fluid (CSF) and CSF derived extracellular vesicles (EV) from living individuals, which are key sources of Alzheimers disease biomarkers that can be monitored during disease progression. Here, we evaluate A{beta}O treated AGMs at the systems level using proteomics of CSF and phosphatidylserine affinity isolated EVs (EVps). We optimized a workflow to obtain paired CSF and EVps proteomics from <1 mL volumes, i.e. comparable to human liquid biopsy. Our measurements reveal robust, persistent AD-like responses at the biochemical level without overt loss of cognitive function. As such, these findings in AGMs suggest potential alternatives for disease tracking or point to protective mechanisms for limiting disease progression in AD. HighlightsO_LIDual proteomics of African green monkeys transiently challenged with synthetic A{beta} oligomers (A{beta}O) C_LIO_LIPhosphotidylserine (TIM4) based workflow enables CSF and EV profiling using clinical volumes C_LIO_LIOne year post-A{beta}O: vascular-inflammatory pathways rise; neuronal-axonal pathways fall C_LIO_LIA{beta}Os drive human-AD-like proteome shifts on time scales shorter than cognitive decline C_LI In briefWild African green monkeys (AGMs) offer a translational model for early Alzheimers biology, with physiology more similar to humans. We transiently exposed AGMs to synthetic A{beta} oligomers and, 12 months later, profiled paired proteomes from whole CSF and a CSF subcompartment enriched for extracellular vesicles. Despite no overt cognitive decline, AGM proteomes showed persistent Alzheimers-like remodeling, particularly in vascular, inflammatory, and neuronal systems. Parallel analysis of the CSF subcompartment revealed proteins and pathways under-represented in bulk CSF, sharpening disease-relevant signals and candidate biomarkers. This systems-level, longitudinal study establishes AGMs as a powerful platform for liquid biopsy discovery and illuminates basic biology of molecular responses to soluble A{beta} oligomers accompany and potentially protect against neurodegeneration.

systems biology↗

Microglia-derived TGF-β1 ligand maintains microglia homeostasis via autocrine mechanism and is critical for normal cognitive function in adult mouse brain

While TGF-{beta} signaling is essential for microglial function, the cellular source of TGF-{beta} ligand and its spatial regulation remains unclear in the adult CNS. Our data support that microglia, not astrocytes or neurons, are the primary producers of TGF-{beta}1 ligands needed for microglial homeostasis. Microglia (MG)-Tgfb1 inducible knockout (iKO) leads to the activation of microglia featuring a dyshomeostatic transcriptomic profile that resembles disease-associated microglia (DAMs), injury-associated microglia, and aged microglia, suggesting that microglial self-produced TGF-{beta}1 ligands are important in the adult CNS. Interestingly, astrocytes in MG-Tgfb1 iKO mice show a transcriptome profile that closely aligns with A1-like astrocytes. Additionally, using sparse mosaic single-cell microglia iKO of TGF-{beta}1 ligand, we established an autocrine mechanism for TGF-{beta} signaling. Importantly MG-Tgfb1 iKO mice show cognitive deficits, supporting that precise spatial regulation of TGF-{beta}1 ligand derived from microglia is critical for the maintenance of brain homeostasis and normal cognitive function in the adult brain.

neuroscience↗