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Targeting phagocytosis for amyloid-β clearance: implications of morphology remodeling and microglia activation probed by bifunctional chimaeras.

Amyloid-β (Aβ), a key driver of Alzheimer's disease (AD) pathogenesis, possesses diverse harmful and clearance-resistant structures that present substantial challenges to therapeutic development. Here, we demonstrate that modulating Aβ morphology, rather than Toll-like receptor 2 (TLR2)-dependent microglia activation, is essential for effective phagocytosis of Aβ species by microglia. By developing a bifunctional mechanistic probe (P2CSKn) designed to remodel Aβ and activate TLR2, we show it restructures soluble Aβ (sAβ) and fibrillar Aβ (fAβ) into less toxic hybrid aggregates (hPAβ). Critically, this structural remodeling protects microglia from Aβ toxicity while enabling robust phagocytosis. Moreover, although TLR2 activation mildly enhances Aβ uptake, it concurrently triggers detrimental inflammation that negates its benefits. Our findings establish morphological remodeling as the critical determinant of effective Aβ clearance and suggest a morphology-focused strategy for developing safe therapeutics for Aβ-related diseases.

Microglia

Evidence for a haematogenous origin of some of the macrophages appearing in the spinal cord of the rat after dorsal rhizotomy.

A single dose of colloidal carbon was given intravascularly to young adult rats in order to label circulating monocytes. Two days after injection dorsal rhizotomies were performed on the fifth to eighth cervical nerves on the right side. The rats were killed 1, 3, 4 and 8 days later. Electron microscopic examination of the spinal cord showed wide-spread tissue degeneration on the operated side in the dorsolateral fasciculus, the dorsal horn and the dorsal neuronal white column, the changes in the last named being the most severe. A variety of non-neuronal elements was found in the dorsolateral fasciculus and dorsal horn. These included astrocytes, oligodendrocytes, microglia-like cells, plasma cells, mast cells, polymorphonuclear leucocytes, monocytes and macrophages. Monocytes and macrophages were most common 3 and 4 days after operation. Some of these cells carried intracytoplasmic carbon particles. Carbon-labelled monocytes were observed in blood vessel lumina, perivascularly and in the neuropil. Monocytes crossing blood vessel walls were also encountered, indicating that the neuropil monocytes were derived from circulating cells. Macrophages were characterized by pleomorphic phagosomes which seemed to be composed largely of myelin remnants. The presence of carbon particles in their cytoplasm, and also their general similarity to monocytes, suggested that they originated from the latter. Local microglial cells were considered to be another source of macrophages. Indeed, there were present some microglia-like cells which were regarded as 'activated microglia' as they showed morphological resemblances to microglia on the one hand and to macrophages on the other. In particular their cytoplasm always included phagosomes. It is concluded that the macrophages which appear in the altered spinal cord following rhizotomy are derived both from circulating monocytes and from indigenous microglia.

Animals

Novel Influences of IL-10 on CNS Inflammation Revealed by Integrated Analyses of Cytokine Networks and Microglial Morphology.

Coordinated interactions between cytokine signaling and morphological dynamics of microglial cells regulate neuroinflammation in CNS injury and disease. We found that pro-inflammatory cytokine gene expression in vivo showed a pronounced recovery following systemic LPS. We performed a novel multivariate analysis of microglial morphology and identified changes in specific morphological properties of microglia that matched the expression dynamics of pro-inflammatory cytokine TNFα. The adaptive recovery kinetics of TNFα expression and microglial soma size showed comparable profiles and dependence on anti-inflammatory cytokine IL-10 expression. The recovery of cytokine variations and microglial morphology responses to inflammation were negatively regulated by IL-10. Our novel morphological analysis of microglia is able to detect subtle changes and can be used widely. We implemented in silico simulations of cytokine network dynamics which showed-counter-intuitively, but in line with our experimental observations-that negative feedback from IL-10 was sufficient to impede the adaptive recovery of TNFα-mediated inflammation. Our integrative approach is a powerful tool to study changes in specific components of microglial morphology for insights into their functional states, in relation to cytokine network dynamics, during CNS injury and disease.

CNS inflammation

Electron microscopic features of the resting microglia in the rabbit hippocampus, identified by silver carbonate staining.

Vibratome sections of hippocampus of adult rabbits were stained by a modified Hortega's silver-carbonate method. Impregnated materials were examined by electron microscopy to decide fine-structural characteristics of the resting microglia. Comparing their characteristics with those of macrophages, we came to the following conclusions: (1) Impregnated resting microglia in the hippocampus of adult rabbits can be identified as cells having distinct fine structures. (2) Resting microglia are morphologically different from macrophages or their precursor cells, and, therefore, seem not to be hematogenous cells sojourning in the normal brain parenchyma.

Animals

A reproducible three-dimensional model of human brain tissue to investigate physiological and disease-associated microglia phenotypes.

Stem-cell-based in vitro models offer promising potential to elucidate human brain cell functions and interactions, but limitations in reproducibility, maturation and cell-type diversity persist. Especially, prolonged incorporation of mature microglia and studies of neuroinflammation have proven challenging. Here, we developed a human induced pluripotent stem cell-based three-dimensional cortical brain tissue model (3BTM) containing neurons, astrocytes and microglia with high reproducibility, maturity and viability. 3BTMs show morphological, functional and proteomic maturation of all cell types, leading to high similarity to their in vivo counterparts. Incorporated microglia survive for over 6 months and display mature morphology, functions and gene expression. Importantly, when engineered to model Alzheimer's disease pathology, 3BTMs recapitulate key disease hallmarks, including amyloid deposition, increased phospho-tau levels and neuroinflammation, with microglia shifting their transcriptional landscape to disease-relevant signatures. Treatment of Alzheimer's disease 3BTMs with anti-Aβ immunotherapy cleared deposits and largely reversed disease signatures in glia. Together, our microglia-containing model provides a platform for studying physiological and pathological states of human brain tissue.

Humans

The failure of microglia in normal brain to exhibit mononuclear phagocyte markers.

The origin of brain macrophages or "reactive microglia" has been the subject of considerable controversy. The fundamental question is whether or not there is a morphologically and functionally distinct population of cells, called microglia, which are resident in normal brain and differentiate into macrophages in response to inflammatory stimuli. The present study was performed to determine if any cells in the normal brain have the common markers of mononuclear phagocytes; phagocytosis, IgGFc receptors or macrophage specific antigens. In studies of the newborn and the adult murine brain and adult human brain no cells were detected which had any of those markers, although the highly sensitive marker methods were capable of detecting mononuclear phagocytes in all other tissues where they are known to occur. The results suggest that microglia, if they exist as a distinct cell type, are unrelated to mononuclear phagocytes. Furthermore, they suggest, but do not prove, that all inflammatory macrophages are derived from hematogenous precursors.

Animals

Single-nucleus transcriptomics reveals cell type-specific remodeling and epilepsy-associated microglia.

Temporal lobe epilepsy (TLE) is the most common acquired epilepsy, causing refractory seizures and cognitive deficits. We performed single-nucleus RNA sequencing on hippocampal tissue from mice 3 and 6 weeks following pilocarpine-induced status epilepticus, a robust model of TLE. Epilepsy samples showed reductions in Cck and Lamp5-Lhx6 interneuron subclusters, alongside increases in Cajal-Retzius cells, dentate granule (DG) cell precursors, and a mature DG cell subcluster. Among glia, an astrocyte subcluster and a markedly expanded microglia sublcuster were increased. We term this microglia population epilepsy-associated microglia (EAM). The transcriptomic profile of EAM overlaps with microglia described in models of Alzheimer's disease and traumatic brain injury, including enrichment of Myo1e and Igf1. EAM display amoeboid morphology, can be found in clumps around pyramidal and granule cell body layers, and exhibit enlarged vesicles and mitochondria. Cell-cell interaction analysis predicts DG cells as their primary interaction partners. This dataset defines transcriptomic programs underlying key cellular alterations in TLE, enabling mechanistic dissection of epileptogenesis.

TLE

Spatiotemporal profile of an optimal host response to virus infection in the primate central nervous system.

Viral infections of the central nervous system (CNS) are a major cause of morbidity largely due to lack of prevention and inadequate treatments. While mortality from viral CNS infections is significant, nearly two thirds of the patients survive. Thus, it is important to understand how the human CNS can successfully control virus infection and recover. Since it is not possible to study the human CNS throughout the course of viral infection at the cellular level, here we analyzed a non-lethal viral infection in the CNS of nonhuman primates (NHPs). We inoculated NHPs intracerebrally with a high dose of La Crosse virus (LACV), a bunyavirus that can infect neurons and cause encephalitis primarily in children, but with a very low (≤ 1%) mortality rate. To profile the CNS response to LACV infection, we used an integrative approach that was based on comprehensive analyses of (i) spatiotemporal dynamics of virus replication, (ii) identification of types of infected neurons, (iii) spatiotemporal transcriptomics, and (iv) morphological and functional changes in CNS intrinsic and extrinsic cells. We identified the location, timing, and functional repertoire of optimal transcriptional and translational regulation of the primate CNS in response to virus infection of neurons. These CNS responses involved a well-coordinated spatiotemporal interplay between astrocytes, lymphocytes, microglia, and CNS-border macrophages. Our findings suggest a multifaceted program governing an optimal CNS response to virus infection with specific events coordinated in space and time. This allowed the CNS to successfully control the infection by rapidly clearing the virus from infected neurons, mitigate damage to neurophysiology, activate and terminate immune responses in a timely manner, resolve inflammation, restore homeostasis, and initiate tissue repair. An increased understanding of these processes may provide new therapeutic opportunities to improve outcomes of viral CNS diseases in humans.

Animals

Comparative ultrastructural study of the optic nerves and visual cortices of young (2.5 months) and old (17 months) mice.

The aging optic nerves and visual cortices were studied in mice. Changes in the morphology of neuroglia were evident in the optic nerve but no difference in the numbers of neurotubules or myelin sheaths optic nerve fibers in the aged were observed. Large myelinated fibers, however, begun to degenerate. In the aging visual cortices, a higher proportion of dendrodendritic contacts were present and microglia cells were found to be active.

Aging

[Morphology and classification of brain tumors induced by methylnitrosourea in rabbits (author's transl)].

There are different opinions concerning histology and classification of the MNU induced rabbit brain tumors first described by Jänisch and Schreiber. Therefore, a reexamination using silver impregnation of paraffin sections gained from the blocs was made. 40 out of 53 tumors were classified according to their prevalent cell types as glioblastomas, astroblastomas and malignant astrocytomas. Their structure is complicated by an admixture of various amounts of oligodendroglia, microglia and glioepithelium (mixed gliomas) and in most of them a raise of malignancy up to the appearance of glioblastoma multiforme in their central parts. The rest group contains 3 oligodendrogliomas, 4 sarcomas, 1 gioepithelioma and 5 times areas of loose tumor cell infiltrations. These results do not confirm the opinion of Zülch that the majority of MNU rabbit brain tumours are polymorphous oligodendrogliomas but are in accordance with their classification as polymorphous glioblastomas by Jänisch and Schreiber.

Animals

How the human brain responds to aging.

The characteristic morphologic changes frequently observed in the brain of an old adult include a decrease in weight and volume, a change in the pattern of cerebral cortical convolutions, and an increase in ventricular size. Cell loss varies from region to region in the brain, and may be intensified in Alzheimer's disease and other disorders associated with senile dementia. Among the neuroglial cells, the microglia undergo the most significant changes with age. Although senile brain disease previously has been regarded as secondary to atherosclerosis, recent neuropathologic studies indicate that only 30 to 40 percent of senile brain disease arises from cerebrovascular pathologic lesions. The dilemma remains, however, of how much of the deterioration observed in the aged is related to disease and how much to senescence. The interaction between gene expression and environmental conditions in aging is another important question for the geriatrician. Progress in the control and treatment of disorders associated with old age depends upon further research into the mechanisms that underlie the process of aging in the brain.

Adolescent