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Neutrophil elastase (NE) is a protease released by activated neutrophils in the brain parenchyma after cerebral ischemia, which plays a pivotal role in the regulation of neutrophil extracellular traps (NETs) formation. The excess NETs could lead to blood-brain barrier (BBB) breakdown, overwhelming neuroinflammation, and neuronal injury. While the potential of targeting neutrophils and inhibiting NE activity to mitigate ischemic stroke (IS) pathology has been recognized, effective strategies that inhibit NETs formation remain under-explored. Herein, a biomimic multifunctional nanoplatform (HM@ST/TeTeLipos) was developed for active NE targeting and IS treatment. The core of the HM@ST/TeTeLipos consisted of sivelestat-loaded ditelluride-containing liposomes with ROS-responsive and NE-inhibiting properties. The outer shell was composed of platelet-neutrophil hybrid membrane vesicles (HMVs), which acted to hijack neutrophils and neutralize proinflammatory cytokines. Our studies revealed that HM@ST/TeTeLipos could effectively inhibit NE activity, thereby suppressing the release of NETs, impeding the activation of the AIM2 inflammasome, and consequently redirecting the immune response away from a pro-inflammatory M1 microglia phenotype. This resulted in enhanced neurovascular remodeling, reduced BBB disruption, and diminished neuroinflammation, ultimately promoting neuron survival. We believe that this innovative approach holds significant potential for improving the treatment of IS and various NE-mediated inflammatory diseases.
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http://dx.doi.org/10.1016/j.jconrel.2024.09.026 | DOI Listing |
Immune Netw
August 2025
Center for Metabolic and Degenerative Diseases, The Brown Foundation Institute of Molecular Medicine for Prevention of Human Diseases, UTHealth-McGovern Medical School, Houston, TX 77030, USA.
Complement anaphylatoxins C3a and C5a are potent immunomodulators whose impact extends well beyond their traditional roles in innate immunity. Acting through G protein-coupled receptors C3aR, C5aR1, and C5aR2, these peptides take part in coordinating immune cell recruitment, vascular tone, and tissue remodeling. Yet their functions are deeply context-dependent: while they play essential roles in microbial clearance and immune coordination, their overactivation contributes to immunopathology in a wide range of diseases.
View Article and Find Full Text PDFUnderstanding musculoskeletal joints from a 3D multiscale perspective, from molecular to anatomical levels, is essential for resolving the confounding relationships between structure and pain, elucidating the intricate mechanisms regulating joint health and diseases, and developing new treatment strategies. Here, we introduce a musculoskeletal joint immunostaining and clearing (MUSIC) method specifically designed to overcome key challenges of immunostaining and optical clearing of intact joints. Coupled with large-field light sheet microscopy, our approach enables 3D high-resolution, microscale neurovascular mapping within the context of whole-joint anatomy without the need for image coregistration across various joints, including temporomandibular joints, knees, and spines, and multiple species, including mouse, rat, and pig.
View Article and Find Full Text PDFFree Radic Biol Med
September 2025
Thrombosis Research Center, Universidad de Talca, Talca, 3460000, Chile; Department of Clinical Biochemistry and Immunohematology, Faculty of Health Sciences, Universidad de Talca, Talca, 3460000, Chile. Electronic address:
Arachidonic acid metabolism through cyclooxygenase (COX) and lipoxygenase (LOX) pathways is fundamental to inflammation, vascular homeostasis, and neuronal signaling. Here, we investigated the roles of platelet-expressed COX (PTGS1) and LOX (ALOX12) isoforms in amyloid-β (Aβ) secretion, a process implicated in the pathogenesis of cerebral amyloid angiopathy (CAA) and Alzheimer's disease (AD). Using an integrative approach combining bioinformatic protein-protein interaction mapping, pathway enrichment analysis, and experimental validation, we identified extensive networks linking PTGS and ALOX isoforms to cytoskeletal remodeling, mitochondrial function, and vesicle trafficking.
View Article and Find Full Text PDFAging Dis
September 2025
Key Laboratory of Basic Theory Research on Traditional Chinese Medicine, Harbin, 150040, China.
Alzheimer's disease (AD) and vascular dementia (VD) are the two most common forms of dementia, and they share common mechanisms, especially in regard to neurovascular dysfunction. There has been increasing evidence that the disruption of the neurovascular unit (NVU), which consists of endothelial cells, pericytes, astrocytes, microglia, neurons, and basement membrane, is one of the key early events in both AD and VD. The objective of this review is to summarize the structure and physiological function of the NVU, then discuss the pathological remodeling of the NVU in AD and VD and finally, show emerging evidence of multi-target approaches that restore the NVU and neurovascular protection.
View Article and Find Full Text PDFTraumatic brain injury (TBI) frequently leads to chronic neurovascular dysfunction, yet mechanistic insights into human-specific responses have been limited by the absence of long-term, multicellular in vitro models. Here, we report a five-cell-type human neurovascular culture system, comprising endothelial cells, astrocytes, pericytes, microglia, and neurons, engineered within a 3D scaffold to study injury-induced remodeling over multiple weeks. This PENTA-culture platform recapitulates hallmark features of the neurovascular unit and enables dissection of cell-specific contributions to vascular repair and degeneration.
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