999精品在线视频,手机成人午夜在线视频,久久不卡国产精品无码,中日无码在线观看,成人av手机在线观看,日韩精品亚洲一区中文字幕,亚洲av无码人妻,四虎国产在线观看 ?

Astrocyte-derived extracellular vesicles mediate intercellular communications of the neurogliovascular unit

2021-12-09 14:12:42AugustasPivorinasAlexeiVerkhratsky

Augustas Pivoriūnas, Alexei Verkhratsky

The cortical grey matter of mammals has a specific cyto-architecture defined by the process of “tiling” in which protoplasmic astrocytes parcellate the nervous tissue into spatially segregated territorial domains.Within these domains astrocytes integrate neuronal structures, microglial cells and neighboring capillaries into the neurogliovascular unit or neurogliovascular unit(NGVU) (Verkhratsky and Nedergaard, 2018;Sweeney et al., 2019). Signaling within NGVU is of fundamental importance for sustaining brain function, while disruptions of these signaling pathways define many aspects of neuropathology.

Extracellular vesicles (EVs) provide a potent tool for intercellular communication by acting as a miniature lipid membranous container for wide array of signaling molecules (Mathieu et al., 2019). The biological significance of EVs stands on two pillars. First, EVs are secreted by all types of cells. Second, molecular cargo content of EVs depends on the origin of producing cell, its phenotype and its physiological or pathological state. Thus, EVs from healthy cells may have therapeutic properties,whereas EVs from diseased tissues may act as promoters of pathology. The concept of EV-based signaling provides an exciting and novel dimension to the intercellular communication operating at the NGVU. Here we focus on the astrocyte-derived EVs and their potential contribution to pathological remodeling of the blood-brain barrier (BBB)in neurodegenerative diseases. The NGVU cellular elements include specialized brain capillary endothelial cells, which form the vascular barrier sealed by tight junctions,pericytes, vascular smooth muscle cells in arterioles, glial elements and neurons(Sweeney et al., 2019). The parenchymal part of the blood-brain interface is formed by astrocytic endfeet. The perivascular space between endothelial and parenchymal basement membranes at the pre-and postcapillary levels is utilized by the glymphatic system for the removal of waste products, for transport of biologically active molecules and can also be used for transport of EVs. It is well known that astrocytes support formation and integrity of BBB by secreting numerous paracrine factors including ligands of Wnt and Hedgehog signaling pathways, retinoic acid, glial cell line-derived neurotrophic factor, vascular endothelial growth factor,fibroblast growth factor, angiopoetins and many others (Sweeney et al., 2019). These factors influence barrier properties of BBB mostly through up-regulation of expression of tight junction and adherens junction proteins, such as claudin-5, occludin,zonula occludens-1 protein, cadherins, and cathenins. However, the role for astrogliasecreted EVs in regulation of the BBB integrity in the physiological and pathological settings remains largely unexplored. We have recently analysed effects of EVs derived from immortalized astrocytes prepared from hippocampi of triple transgenic Alzheimer’s disease (AD) model mouse (3xTG-AD) and wild-type controls (Rocchio et al., 2019) on monolayers of immortalized human brain endothelial cells (hCMEC/D3). It appeared that, in contrast to healthy cells, AD astrocytes fail to support the BBB integrity.Astrocytes from healthy animals up-regulated expression of tight junction proteins and increased electrical resistance of endothelial monolayers, whereas co-culturing with AD astrocytes failed to stimulate tight junction proteins expression and did not increase the electrical resistance of endothelial monolayers (Kriauciunaite et al., 2020). We further discovered that EVs derived from WT-iAstro and 3Tg-iAstro mimicked effects of their parent cells on the BBB: treatment with EVs from healthy astrocytes increased trans-endothelial electrical resistance and up-regulated expression of claudin-5,occludin, and zonula occludens-1 protein,whereas EVs from 3Tg-iAstro were ineffective(Kriauciunaite et al., 2020). These astroglial deficits may reflect global astroglial asthenia and loss of their protective capabilities in AD-affected nerve tissue (Verkhratsky et al.,2019). Further comparative “omics” analyses are needed for identification of molecules responsible for the observed effects. Of note,in our experimental setting we have used immortalized cells from different species;therefore future studies should address the effects of human astrocyte EVs in humanized disease-specificin vitromodels of BBB.

Conceptually, many paracrine factors secreted by astrocytes and affecting functional properties of BBB can be conveyed by EVs. For instance, ligands of Hedgehog and Wnt signaling cascades,which promote barrier integrity, are lipidmodified hydrophobic morphogens. The EVs can transport these ligands as well as retinoic acid along hydrophilic extracellular environment (Tanaka et al., 2005). It is conceivable that within the NGVU morphogens are packed into astrogliaderived EVs and thus transported to the adjacent endothelial cells, or even to the more distant sites through the Virchow-Robin space.

Several reports demonstrated that astroglial EVs can carry growth factors such as fibroblast growth factor 2, vascular endothelial growth factor, apoliprotein-D,synapsin1, Hsp70 chaperone, and glutamate transporters EAAT-1 and EAAT-2 (Upadhya et al., 2020), but the effects of these proteins on the BBB are currently unknown.Cytokine and chemokine profiling of human astrocytes using proteome arrays revealed that healthy human astrocytes secrete granulocyte colony-stimulating factor, granulocyte macrophage colonystimulating factor, chemokine (C-X-C motif)ligand 1, interleukin-6, interleukin-8,chemokine (C-C motif) ligand 2, macrophage migration inhibitory factor, and serpin E,whereas stimulation with interleukin-1 beta and tumor necrosis factor-alpha triggers release of interleukin-1 beta, interleukin-1 receptor antagonist, tumor necrosis factoralpha chemokine (C-X-C motif) ligand 10,chemokine (C-C motif) ligand 3, chemokine(C-C motif) ligand 5 (Choi et al., 2014). Many cytokines and chemokines, in addition to be soluble messengers, are known to be released in EV-encapsulated form and trigger biological effects after contact with target cells (Fitzgerald et al., 2018). These findings add another layer of complexity as it is becoming increasingly difficult to delineate precise mode of action of signaling molecules carried by EVs. It is tempting to speculate that signaling molecules presented to the target cells in soluble form induce different effects from the same molecules presented by the EVs. Differences in functional responses depend on many factors. Signaling molecule, for example, can be incorporated into the EV membrane, or it can be stored in the EV lumen. Furthermore, target cells may interact with EVs in different ways (employing for example clathrin-dependent endocytosis,macropinocytosis, phagocytosis, lipid raftmediated internalization, etc.). Finally,vesicles carry many biologically active molecules that may conceal or amplify specific signals. Therefore both soluble and vesicular fractions of chemical messengers should be analyzed and compared for better understanding of astroglial secretome.

Astroglial EVs contribute to the pathogenesis of neurological disorders by carrying toxic aggregates of Aβ42protofibrils, sAPPβ and ApoE ε4 in Alzheimer’s disease, mutant SOD1 and TDP43 proteins in amyotrophic lateral sclerosis as well as various proinflammatory cytokines, miRNAs and complement components (Upadhya et al.,2020). Although much of attention is now focused on the diagnostic and prognostic value of disease-associated astrocytic EVs, in the near future their role in the pathogenesis of the disease needs to be addressed.

All cellular components of the BBB secrete multiple EVs in various physiological and pathological contexts, and hence the emerging view of multidirectional communications within NGVU is getting rather complex (Figure 1). New methods allowing precise monitoring of behavior and fate of cell-specific EVs within NGVU are of special importance. A recent study used live-cell reporter pHluorin-CD63 to visualize secreted EVs (exosomes) in 3D culture andin vivo(Sung et al., 2020). This approach allowed observation of pathfinding behavior of migrating cells along extracellularly deposited EVs trails. Another study used credependent exosome reporter (CD63-GFP)mice by inserting a loxP-floxed stop codon upstream of human CD63 tagged with GFP(Men et al., 2019). By using AAV8-CaMKIICre (directing expression in neurones), AAV5-gfap-Cre (in astrocytes), or AAV-pgk-Cre (in microglia and oligodendrocytes) viruses the cell-type-specific labeling of CD63-GFP exosomes in different CNS cell types is readily achievable. In particular this approach led to identification of a new exosomal miRmediated neuron to glial signaling pathway(Men et al., 2019). We expect that in the near future similar EV-labeling techniques will be used for probing in the BBBin vitromodels assembled from healthy or diseased human iPSCs. This approach will enable systematic characterization of mode of action of cell-type specific EVs at the NGVU.

In conclusion, rapidly developing field of EV research is opening a new dimension of complexity for intercellular communication occurring within the brain tissue. In years to come we may witness remarkable increase in our understanding of potential role of the EVs in controlling the BBB, which may facilitate the development of novel therapeutic strategies.

This work was supported by the Global Grant measure (No. 09.3.3-LMTK-712-01-0082; to AP and AV).

Augustas Pivoriūnas*,Alexei Verkhratsky

Department of Stem Cell Biology, State Research Institute Centre for Innovative Medicine, Vilnius,Lithuania (Pivoriūnas A, Verkhratsky A)Faculty of Biology, Medicine and Health, The University of Manchester, Manchester, UK(Verkhratsky A)

Achucarro Centre for Neuroscience, IKERBASQUE,Basque Foundation for Science, Bilbao, Spain(Verkhratsky A)

*Correspondence to:Augustas Pivoriūnas, MD,PhD, augustas.pivoriunas@imcentras.lt.

https://orcid.org/0000-0001-7009-2535(Augustas Pivoriūnas)

Date of submission:June 20, 2020

Date of decision:July 15, 2020

Date of acceptance:October 13, 2020

Date of web publication:December 7, 2020

Figure 1|Extracellular vesicles mediate intercellular communications at the neurogliovascular unit.

https://doi.org/10.4103/1673-5374.300994

How to cite this article:Pivoriūnas A,Verkhratsky A (2021) Astrocyte-derived extracellular vesicles mediate intercellular communications of the neurogliovascular unit.Neural Regen Res 16(7):1421-1422.

Copyright license agreement:The Copyright License Agreement has been signed by both authors before publication.

Plagiarism check:Checked twice by iThenticate.

Peer review:Externally peer reviewed.

Open access statement:This is an open access journal, and articles are distributed under the terms of the Creative Commons Attribution-NonCommercial-ShareAlike 4.0 License, which allows others to remix, tweak, and build upon the work non-commercially, as long as appropriate credit is given and the new creations are licensed under the identical terms.

主站蜘蛛池模板: 狼友视频一区二区三区| 99爱在线| 精品久久蜜桃| 激情视频综合网| 亚洲一区毛片| 欧美三级视频在线播放| 日本亚洲欧美在线| 91在线无码精品秘九色APP | 欧美人与性动交a欧美精品| 国产乱人乱偷精品视频a人人澡| 手机精品福利在线观看| 一边摸一边做爽的视频17国产| 国产精品自拍露脸视频 | 永久天堂网Av| 中文字幕第1页在线播| 亚洲乱码在线视频| 视频二区中文无码| 尤物亚洲最大AV无码网站| 婷婷色丁香综合激情| 亚洲全网成人资源在线观看| 日韩精品毛片人妻AV不卡| 日韩视频免费| 国产尤物在线播放| 最新精品久久精品| 一本色道久久88| 亚洲欧美国产视频| 国产欧美综合在线观看第七页| 精品91自产拍在线| 亚洲精品天堂自在久久77| 国产99热| 久久精品最新免费国产成人| 999精品色在线观看| 国产人碰人摸人爱免费视频| 欧美精品色视频| 999国产精品永久免费视频精品久久 | 亚洲色图另类| 激情无码视频在线看| 亚洲中文字幕无码爆乳| 欧美专区日韩专区| 国产精品福利一区二区久久| 国产91丝袜| 成人免费一级片| 伊人久久大香线蕉影院| 日本91在线| 国产视频欧美| 91精品啪在线观看国产91九色| 波多野结衣中文字幕一区二区| 国产二级毛片| 亚洲男人天堂2020| 亚洲V日韩V无码一区二区| 国内精品视频区在线2021| 久久久精品无码一二三区| 69国产精品视频免费| 欧美精品v欧洲精品| 91无码国产视频| 亚欧美国产综合| 综合天天色| 99re在线免费视频| 午夜福利无码一区二区| 亚洲天堂精品视频| 在线一级毛片| 四虎成人在线视频| 亚洲αv毛片| 欧美爱爱网| 中国毛片网| 久草热视频在线| 国产99欧美精品久久精品久久| 国产欧美中文字幕| 久久婷婷六月| 丝袜高跟美脚国产1区| 刘亦菲一区二区在线观看| 欧美色综合网站| 亚洲综合极品香蕉久久网| 超碰aⅴ人人做人人爽欧美| 久久国产av麻豆| 无码一区中文字幕| 日韩激情成人| 成人精品午夜福利在线播放| 午夜丁香婷婷| 午夜啪啪福利| 成人精品午夜福利在线播放| 91国内外精品自在线播放|