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1.
Development ; 151(18)2024 Sep 15.
Artículo en Inglés | MEDLINE | ID: mdl-39166965

RESUMEN

The microvascular system consists of two cell types: endothelial and mural (pericytes and vascular smooth muscle cells; VSMCs) cells. Communication between endothelial and mural cells plays a pivotal role in the maintenance of vascular homeostasis; however, in vivo molecular and cellular mechanisms underlying mural cell development remain unclear. In this study, we found that macrophages played a crucial role in TGFß-dependent pericyte-to-VSMC differentiation during retinal vasculature development. In mice with constitutively active Foxo1 overexpression, substantial accumulation of TGFß1-producing macrophages and pericytes around the angiogenic front region was observed. Additionally, the TGFß-SMAD pathway was activated in pericytes adjacent to macrophages, resulting in excess ectopic α-smooth muscle actin-positive VSMCs. Furthermore, we identified endothelial SEMA3C as an attractant for macrophages. In vivo neutralization of SEMA3C rescued macrophage accumulation and ectopic VSMC phenotypes in the mice, as well as drug-induced macrophage depletion. Therefore, macrophages play an important physiological role in VSMC development via the FOXO1-SEMA3C pathway.


Asunto(s)
Proteína Forkhead Box O1 , Macrófagos , Músculo Liso Vascular , Miocitos del Músculo Liso , Semaforinas , Animales , Macrófagos/metabolismo , Músculo Liso Vascular/metabolismo , Músculo Liso Vascular/citología , Ratones , Semaforinas/metabolismo , Semaforinas/genética , Proteína Forkhead Box O1/metabolismo , Proteína Forkhead Box O1/genética , Miocitos del Músculo Liso/metabolismo , Miocitos del Músculo Liso/citología , Pericitos/metabolismo , Pericitos/citología , Diferenciación Celular , Transducción de Señal , Vasos Retinianos/metabolismo , Factores de Transcripción Forkhead/metabolismo , Factores de Transcripción Forkhead/genética , Factor de Crecimiento Transformador beta1/metabolismo , Ratones Endogámicos C57BL
2.
Biomater Sci ; 12(17): 4363-4375, 2024 Aug 20.
Artículo en Inglés | MEDLINE | ID: mdl-39023223

RESUMEN

Despite recent technological advances in drug discovery, the success rate for neurotherapeutics remains alarmingly low compared to treatments for other areas of the body. One of the biggest challenges for delivering therapeutics to the central nervous system (CNS) is the presence of the blood-brain barrier (BBB). In vitro blood-brain barrier models with high predictability are essential to aid in designing parameters for new therapeutics, assess their ability to cross the BBB, and investigate therapeutic strategies that can be employed to enhance transport. Here, we demonstrate the development of a 3D printable hydrogel blood-brain barrier model that mimics the cellular composition and structure of the blood-brain barrier with human brain endothelial cells lining the surface, pericytes in direct contact with the endothelial cells on the abluminal side of the endothelium, and astrocytes in the surrounding printed bulk matrix. We introduce a simple, static printed hemi-cylinder model to determine design parameters such as media selection, co-culture ratios, and cell incorporation timing in a resource-conservative and high-throughput manner. Presence of cellular adhesion junction, VE-Cadherin, efflux transporters, P-glycoprotein (P-gp) and Breast cancer resistance protein (BCRP), and receptor-mediated transporters, Transferrin receptor (TfR) and low-density lipoprotein receptor-related protein 1 (LRP1) were confirmed via immunostaining demonstrating the ability of this model for screening in therapeutic strategies that rely on these transport systems. Design parameters determined in the hemi-cylinder model were translated to a more complex, perfusable vessel model to demonstrate its utility for determining barrier function and assessing permeability to model therapeutic compounds. This 3D-printed blood-brain barrier model represents one of the first uses of projection stereolithography to fabricate a perfusable blood-brain barrier model, enabling the patterning of complex vessel geometries and precise arrangement of cell populations. This model demonstrates potential as a new platform to investigate the delivery of neurotherapeutic compounds and drug delivery strategies through the blood-brain barrier, providing a useful in vitro screening tool in central nervous system drug discovery and development.


Asunto(s)
Barrera Hematoencefálica , Células Endoteliales , Impresión Tridimensional , Barrera Hematoencefálica/metabolismo , Humanos , Células Endoteliales/metabolismo , Células Endoteliales/citología , Técnicas de Cocultivo , Hidrogeles/química , Modelos Biológicos , Astrocitos/metabolismo , Astrocitos/citología , Pericitos/metabolismo , Pericitos/citología
3.
Nature ; 632(8024): 429-436, 2024 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-38987599

RESUMEN

Tumours can obtain nutrients and oxygen required to progress and metastasize through the blood supply1. Inducing angiogenesis involves the sprouting of established vessel beds and their maturation into an organized network2,3. Here we generate a comprehensive atlas of tumour vasculature at single-cell resolution, encompassing approximately 200,000 cells from 372 donors representing 31 cancer types. Trajectory inference suggested that tumour angiogenesis was initiated from venous endothelial cells and extended towards arterial endothelial cells. As neovascularization elongates (through angiogenic stages SI, SII and SIII), APLN+ tip cells at the SI stage (APLN+ TipSI) advanced to TipSIII cells with increased Notch signalling. Meanwhile, stalk cells, following tip cells, transitioned from high chemokine expression to elevated TEK (also known as Tie2) expression. Moreover, APLN+ TipSI cells not only were associated with disease progression and poor prognosis but also hold promise for predicting response to anti-VEGF therapy. Lymphatic endothelial cells demonstrated two distinct differentiation lineages: one responsible for lymphangiogenesis and the other involved in antigen presentation. In pericytes, endoplasmic reticulum stress was associated with the proangiogenic BASP1+ matrix-producing pericytes. Furthermore, intercellular communication analysis showed that neovascular endothelial cells could shape an immunosuppressive microenvironment conducive to angiogenesis. This study depicts the complexity of tumour vasculature and has potential clinical significance for anti-angiogenic therapy.


Asunto(s)
Células Endoteliales , Neoplasias , Neovascularización Patológica , Análisis de la Célula Individual , Humanos , Presentación de Antígeno , Comunicación Celular , Diferenciación Celular , Linaje de la Célula , Progresión de la Enfermedad , Estrés del Retículo Endoplásmico , Células Endoteliales/citología , Células Endoteliales/inmunología , Células Endoteliales/metabolismo , Linfangiogénesis , Neoplasias/irrigación sanguínea , Neoplasias/clasificación , Neoplasias/tratamiento farmacológico , Neoplasias/patología , Neovascularización Patológica/patología , Pericitos/patología , Pericitos/citología , Pericitos/metabolismo , Pronóstico , Receptores Notch/metabolismo , Transducción de Señal , Microambiente Tumoral , Factor A de Crecimiento Endotelial Vascular/antagonistas & inhibidores , Animales , Pez Cebra
4.
Reprod Biol ; 24(3): 100919, 2024 Sep.
Artículo en Inglés | MEDLINE | ID: mdl-38941941

RESUMEN

Mesenchymal cells within theplacental villi play a crucial role in shaping the morphology of branching structures and driving the development of blood vessels. However, the markers and functions of placental villous pericytes (PVPs) as distinct subgroups of placental villous mesenchymal cells, remain unclear. Therefore, in this study, the markers and functions of PVPs were investigated. Single-cell sequencing data from the first-trimester placental villi was obtained and the Seurat tool was used to identify PVP markers. Gene Ontology (GO) analysis of specific genes was performed using the DAVID database. The Cellchat tool was employed to investigate the interaction signals between the PVPs and other cells. Expression of the PVP markers was confirmed using immunofluorescence. Presence of extracellular vesicles in the placental villous mesenchyme and PVPs was examined by transmission electron microscopy. Our findings revealed that renin (REN) and amphiregulin (AREG)-positive fibroblasts in the placental villi specifically expressed several classic pericyte markers. In the first trimester, certain conserved functions of pericytes were observed and they displayed tissue-specific functions such as in the integrin-mediated signaling pathway and extracellular exosomes. Moreover, the placental villous mesenchyme was found to be rich in extracellular vesicles. AREG is specifically transcribed in the first trimester PVPs, however, its protein was located in syncytiotrophoblasts. These insights contribute to a comprehensive understanding of early placental development and offer new therapeutic targets for placenta-derived pregnancy complications.


Asunto(s)
Vellosidades Coriónicas , Pericitos , Primer Trimestre del Embarazo , Análisis de la Célula Individual , Femenino , Humanos , Embarazo , Pericitos/metabolismo , Pericitos/citología , Vellosidades Coriónicas/metabolismo , Transcriptoma , Análisis de Secuencia de ARN , Placenta/metabolismo , Placenta/citología , Perfilación de la Expresión Génica
5.
Stem Cell Reports ; 19(7): 946-956, 2024 Jul 09.
Artículo en Inglés | MEDLINE | ID: mdl-38876110

RESUMEN

Functionality of the blood-brain barrier (BBB) relies on the interaction between endothelial cells (ECs), pericytes, and astrocytes to regulate molecule transport within the central nervous system. Most experimental models for the BBB rely on freshly isolated primary brain cells. Here, we explored human induced pluripotent stem cells (hiPSCs) as a cellular source for astrocytes in a 3D vessel-on-chip (VoC) model. Self-organized microvascular networks were formed by combining hiPSC-derived ECs, human brain vascular pericytes, and hiPSC-derived astrocytes within a fibrin hydrogel. The hiPSC-ECs and pericytes showed close interactions, but, somewhat unexpectedly, addition of astrocytes disrupted microvascular network formation. However, continuous fluid perfusion or activation of cyclic AMP (cAMP) signaling rescued the vascular organization and decreased vascular permeability. Nevertheless, astrocytes did not affect the expression of proteins related to junction formation, transport, or extracellular matrix, indicating that, despite other claims, hiPSC-derived ECs do not entirely acquire a BBB-like identity in the 3D VoC model.


Asunto(s)
Astrocitos , Barrera Hematoencefálica , Células Endoteliales , Células Madre Pluripotentes Inducidas , Astrocitos/metabolismo , Astrocitos/citología , Humanos , Células Madre Pluripotentes Inducidas/citología , Células Madre Pluripotentes Inducidas/metabolismo , Barrera Hematoencefálica/metabolismo , Barrera Hematoencefálica/citología , Células Endoteliales/citología , Células Endoteliales/metabolismo , Pericitos/citología , Pericitos/metabolismo , Diferenciación Celular , Dispositivos Laboratorio en un Chip , Células Cultivadas , Hidrogeles , AMP Cíclico/metabolismo , Modelos Biológicos
6.
ACS Biomater Sci Eng ; 10(7): 4388-4399, 2024 Jul 08.
Artículo en Inglés | MEDLINE | ID: mdl-38856968

RESUMEN

In this study, fibrous polyurethane (PU) materials with average fiber diameter of 200, 500, and 1000 nm were produced using a solution blow spinning (SBS) process. The effects of the rotation speed of the collector (in the range of 200-25 000 rpm) on the fiber alignment and diameter were investigated. The results showed that fiber alignment was influenced by the rotation speed of the collector, and such alignment was possible when the fiber diameter was within a specific range. Homogeneously oriented fibers were obtained only for a fiber diameter ≥500 nm. Moreover, the changes in fiber orientation and fiber diameter (resulting from changes in the rotation speed of the collector) were more noticeable for materials with an average fiber diameter of 1000 nm in comparison to 500 nm, which suggests that the larger the fiber diameter, the better the controlled architectures that can be obtained. The porosity of the produced scaffolds was about 65-70%, except for materials with a fiber diameter of 1000 nm and aligned fibers, which had a higher porosity (76%). Thus, the scaffold pore size increased with increasing fiber diameter but decreased with increasing fiber alignment. The mechanical properties of fibrous materials strongly depend on the direction of stretching, whereby the fiber orientation influences the mechanical strength only for materials with a fiber diameter of 1000 nm. Furthermore, the fiber diameter and alignment affected the pericyte growth. Significant differences in cell growth were observed after 7 days of cell culture between materials with a fiber diameter of 1000 nm (cell coverage 96-99%) and those with a fiber diameter of 500 nm (cell coverage 70-90%). By appropriately setting the SBS process parameters, scaffolds can be easily adapted to the cell requirements, which is of great importance in producing complex 3D structures for guided tissue regeneration.


Asunto(s)
Pericitos , Poliuretanos , Andamios del Tejido , Poliuretanos/química , Andamios del Tejido/química , Pericitos/citología , Pericitos/fisiología , Porosidad , Animales , Proliferación Celular , Ingeniería de Tejidos/métodos , Ensayo de Materiales
7.
Tissue Cell ; 89: 102431, 2024 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-38870572

RESUMEN

Tunneling nanotubes (TNTs) represent an innovative way for cells to communicate with one another, as they act as long conduits between cells. However, their roles in human dermal microvascular pericytes (HDMPCs) interaction remain elusive in vitro. In this work, we identified and characterized the TNT-like structures that connected two or more pericytes in two-dimensional cultures and formed a functional network in the human dermis. Immunofluorescence assay indicated that the F-actin was an essential element to form inter-pericyte TNT-like structures, as it decreased in actin polymer inhibitor-cytochalasin B treated groups, and microtubules were present in almost half of the TNT-like structures. Most importantly, we only found the presence of mitochondrial in TNT-like structures containing α-tubulin, and the application of microtubule assembly inhibitor-Nocodazole significantly reduced the percentage of TNT-like structures that contain α-tubulin, resulting in a sudden decrease in the positive rate of cytochrome c oxidase subunit 4 isoform 1 (COX IV, a marker of mitochondria) in TNT-like structures. In summary, we described a novel intercellular communication-TNT-like structures-between HDMPCs in vitro, and this work allows us to properly understand the cellular mechanisms of spreading materials between HDMPCs, shedding light on the role of HDMPCs.


Asunto(s)
Pericitos , Humanos , Pericitos/citología , Pericitos/metabolismo , Tubulina (Proteína)/metabolismo , Microtúbulos/metabolismo , Dermis/citología , Dermis/metabolismo , Comunicación Celular , Mitocondrias/metabolismo , Actinas/metabolismo , Nanotubos/química , Microvasos/citología , Microvasos/metabolismo , Células Cultivadas , Estructuras de la Membrana Celular
8.
Angiogenesis ; 27(3): 561-582, 2024 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-38775849

RESUMEN

Coronary microvascular disease (CMD) and its progression towards major adverse coronary events pose a significant health challenge. Accurate in vitro investigation of CMD requires a robust cell model that faithfully represents the cells within the cardiac microvasculature. Human pluripotent stem cell-derived endothelial cells (hPSC-ECs) offer great potential; however, they are traditionally derived via differentiation protocols that are not readily scalable and are not specified towards the microvasculature. Here, we report the development and comprehensive characterisation of a scalable 3D protocol enabling the generation of phenotypically stable cardiac hPSC-microvascular-like ECs (hPSC-CMVECs) and cardiac pericyte-like cells. These were derived by growing vascular organoids within 3D stirred tank bioreactors and subjecting the emerging 3D hPSC-ECs to high-concentration VEGF-A treatment (3DV). Not only did this promote phenotypic stability of the 3DV hPSC-ECs; single cell-RNA sequencing (scRNA-seq) revealed the pronounced expression of cardiac endothelial- and microvascular-associated genes. Further, the generated mural cells attained from the vascular organoid exhibited markers characteristic of cardiac pericytes. Thus, we present a suitable cell model for investigating the cardiac microvasculature as well as the endothelial-dependent and -independent mechanisms of CMD. Moreover, owing to their phenotypic stability, cardiac specificity, and high angiogenic potential, the cells described within would also be well suited for cardiac tissue engineering applications.


Asunto(s)
Diferenciación Celular , Células Endoteliales , Microvasos , Células Madre Pluripotentes , Humanos , Células Madre Pluripotentes/citología , Células Madre Pluripotentes/metabolismo , Células Endoteliales/metabolismo , Células Endoteliales/citología , Microvasos/citología , Microvasos/metabolismo , Pericitos/citología , Pericitos/metabolismo , Factor A de Crecimiento Endotelial Vascular/metabolismo , Factor A de Crecimiento Endotelial Vascular/genética , Factor A de Crecimiento Endotelial Vascular/farmacología , Organoides/citología , Organoides/irrigación sanguínea , Organoides/metabolismo
9.
Dev Cell ; 59(10): 1233-1251.e5, 2024 May 20.
Artículo en Inglés | MEDLINE | ID: mdl-38569546

RESUMEN

De novo brown adipogenesis holds potential in combating the epidemics of obesity and diabetes. However, the identity of brown adipocyte progenitor cells (APCs) and their regulation have not been extensively explored. Here, through in vivo lineage tracing and mouse modeling, we observed that platelet-derived growth factor receptor beta (PDGFRß)+ pericytes give rise to developmental brown adipocytes but not to those in adult homeostasis. By contrast, T-box 18 (TBX18)+ pericytes contribute to brown adipogenesis throughout both developmental and adult stages, though in a depot-specific manner. Mechanistically, Notch inhibition in PDGFRß+ pericytes promotes brown adipogenesis by downregulating PDGFRß. Furthermore, inhibition of Notch signaling in PDGFRß+ pericytes mitigates high-fat, high-sucrose (HFHS)-induced glucose and metabolic impairment in mice during their development and juvenile phases. Collectively, these findings show that the Notch/PDGFRß axis negatively regulates developmental brown adipogenesis, and its repression promotes brown adipose tissue expansion and improves metabolic health.


Asunto(s)
Adipocitos Marrones , Adipogénesis , Diferenciación Celular , Receptor beta de Factor de Crecimiento Derivado de Plaquetas , Receptores Notch , Células Madre , Animales , Receptor beta de Factor de Crecimiento Derivado de Plaquetas/metabolismo , Receptor beta de Factor de Crecimiento Derivado de Plaquetas/genética , Receptores Notch/metabolismo , Ratones , Adipocitos Marrones/metabolismo , Adipocitos Marrones/citología , Células Madre/metabolismo , Células Madre/citología , Transducción de Señal , Pericitos/metabolismo , Pericitos/citología , Tejido Adiposo Pardo/metabolismo , Tejido Adiposo Pardo/citología , Ratones Endogámicos C57BL , Masculino
10.
PLoS Biol ; 22(4): e3002590, 2024 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-38683849

RESUMEN

Brain pericytes are one of the critical cell types that regulate endothelial barrier function and activity, thus ensuring adequate blood flow to the brain. The genetic pathways guiding undifferentiated cells into mature pericytes are not well understood. We show here that pericyte precursor populations from both neural crest and head mesoderm of zebrafish express the transcription factor nkx3.1 develop into brain pericytes. We identify the gene signature of these precursors and show that an nkx3.1-, foxf2a-, and cxcl12b-expressing pericyte precursor population is present around the basilar artery prior to artery formation and pericyte recruitment. The precursors later spread throughout the brain and differentiate to express canonical pericyte markers. Cxcl12b-Cxcr4 signaling is required for pericyte attachment and differentiation. Further, both nkx3.1 and cxcl12b are necessary and sufficient in regulating pericyte number as loss inhibits and gain increases pericyte number. Through genetic experiments, we have defined a precursor population for brain pericytes and identified genes critical for their differentiation.


Asunto(s)
Encéfalo , Pericitos , Factores de Transcripción , Proteínas de Pez Cebra , Animales , Encéfalo/metabolismo , Encéfalo/embriología , Diferenciación Celular , Quimiocina CXCL12/metabolismo , Quimiocina CXCL12/genética , Regulación del Desarrollo de la Expresión Génica , Proteínas de Homeodominio/metabolismo , Proteínas de Homeodominio/genética , Mesodermo/metabolismo , Mesodermo/citología , Cresta Neural/metabolismo , Cresta Neural/citología , Pericitos/metabolismo , Pericitos/citología , Receptores CXCR4/metabolismo , Receptores CXCR4/genética , Transducción de Señal , Factores de Transcripción/metabolismo , Factores de Transcripción/genética , Pez Cebra/metabolismo , Pez Cebra/embriología , Pez Cebra/genética , Proteínas de Pez Cebra/metabolismo , Proteínas de Pez Cebra/genética
12.
Adv Healthc Mater ; 13(18): e2400388, 2024 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-38465502

RESUMEN

Hydrogel-based 3D cell cultures can recapitulate (patho)physiological phenomena ex vivo. However, due to their complex multifactorial regulation, adapting these tissue and disease models for high-throughput screening workflows remains challenging. In this study, a new precision culture scaling (PCS-X) methodology combines statistical techniques (design of experiment and multiple linear regression) with automated, parallelized experiments and analyses to customize hydrogel-based vasculogenesis cultures using human umbilical vein endothelial cells and retinal microvascular endothelial cells. Variations of cell density, growth factor supplementation, and media composition are systematically explored to induce vasculogenesis in endothelial mono- and cocultures with mesenchymal stromal cells or retinal microvascular pericytes in 384-well plate formats. The developed cultures are shown to respond to vasculogenesis inhibitors in a compound- and dose-dependent manner, demonstrating the scope and power of PCS-X in creating parallelized tissue and disease models for drug discovery and individualized therapies.


Asunto(s)
Células Endoteliales de la Vena Umbilical Humana , Neovascularización Fisiológica , Humanos , Células Endoteliales de la Vena Umbilical Humana/metabolismo , Neovascularización Fisiológica/efectos de los fármacos , Hidrogeles/química , Técnicas de Cocultivo/métodos , Ensayos Analíticos de Alto Rendimiento/métodos , Células Madre Mesenquimatosas/citología , Células Madre Mesenquimatosas/metabolismo , Pericitos/citología , Pericitos/metabolismo , Pericitos/efectos de los fármacos , Técnicas de Cultivo de Célula/métodos , Técnicas de Cultivo de Célula/instrumentación , Células Endoteliales/citología , Células Endoteliales/metabolismo
13.
Biophys J ; 123(14): 2110-2121, 2024 Jul 16.
Artículo en Inglés | MEDLINE | ID: mdl-38444160

RESUMEN

Capillaries, composed of electrically coupled endothelial cells and overlying pericytes, constitute the vast majority of blood vessels in the brain. The most arteriole-proximate three to four branches of the capillary bed are covered by α-actin-expressing, contractile pericytes. These mural cells have a distinctive morphology and express different markers compared with their smooth muscle cell (SMC) cousins but share similar excitation-coupling contraction machinery. Despite this similarity, pericytes are considerably more depolarized than SMCs at low intravascular pressures. We have recently shown that pericytes, such as SMCs, possess functional voltage-dependent Ca2+ channels and ATP-sensitive K+ channels. Here, we further investigate the complement of pericyte ion channels, focusing on members of the K+ channel superfamily. Using NG2-DsRed-transgenic mice and diverse configurations of the patch-clamp technique, we demonstrate that pericytes display robust inward-rectifier K+ currents that are primarily mediated by the Kir2 family, based on their unique biophysical characteristics and sensitivity to micromolar concentrations of Ba2+. Moreover, multiple lines of evidence, including characteristic kinetics, sensitivity to specific blockers, biophysical attributes, and distinctive single-channel properties, established the functional expression of two voltage-dependent K+ channels: KV1 and BKCa. Although these three types of channels are also present in SMCs, they exhibit distinctive current density and kinetics profiles in pericytes. Collectively, these findings underscore differences in the operation of shared molecular features between pericytes and SMCs and highlight the potential contribution of these three K+ ion channels in setting pericyte membrane potential, modulating capillary hemodynamics, and regulating cerebral blood flow.


Asunto(s)
Encéfalo , Capilares , Pericitos , Pericitos/metabolismo , Pericitos/citología , Animales , Capilares/metabolismo , Capilares/citología , Ratones , Encéfalo/irrigación sanguínea , Encéfalo/citología , Encéfalo/metabolismo , Canales de Potasio/metabolismo , Ratones Transgénicos , Canales de Potasio de Rectificación Interna/metabolismo , Ratones Endogámicos C57BL
14.
Dev Dyn ; 253(5): 519-541, 2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38112237

RESUMEN

BACKGROUND: Mural cells are an essential perivascular cell population that associate with blood vessels and contribute to vascular stabilization and tone. In the embryonic zebrafish vasculature, pdgfrb and tagln are commonly used as markers for identifying pericytes and vascular smooth muscle cells. However, the overlapping and distinct expression patterns of these markers in tandem have not been fully described. RESULTS: Here, we used the Tg(pdgfrb:Gal4FF; UAS:RFP) and Tg(tagln:NLS-EGFP) transgenic lines to identify single- and double-positive perivascular cell populations on the cranial, axial, and intersegmental vessels between 1 and 5 days postfertilization. From this comparative analysis, we discovered two novel regions of tagln-positive cell populations that have the potential to function as mural cell precursors. Specifically, we found that the hypochord-a reportedly transient structure-contributes to tagln-positive cells along the dorsal aorta. We also identified a unique mural cell progenitor population that resides along the midline between the neural tube and notochord and contributes to intersegmental vessel mural cell coverage. CONCLUSION: Together, our findings highlight the variability and versatility of tracking both pdgfrb and tagln expression in mural cells of the developing zebrafish embryo and reveal unexpected embryonic cell populations that express pdgfrb and tagln.


Asunto(s)
Animales Modificados Genéticamente , Pericitos , Proteínas de Pez Cebra , Pez Cebra , Animales , Vasos Sanguíneos/embriología , Vasos Sanguíneos/citología , Vasos Sanguíneos/metabolismo , Embrión no Mamífero/citología , Embrión no Mamífero/metabolismo , Desarrollo Embrionario/fisiología , Pericitos/citología , Pericitos/metabolismo , Receptor beta de Factor de Crecimiento Derivado de Plaquetas/metabolismo , Receptor beta de Factor de Crecimiento Derivado de Plaquetas/genética , Pez Cebra/embriología , Proteínas de Pez Cebra/genética , Proteínas de Pez Cebra/metabolismo
15.
Cells ; 12(8)2023 04 15.
Artículo en Inglés | MEDLINE | ID: mdl-37190075

RESUMEN

Cardiac diseases are the foremost cause of morbidity and mortality worldwide. The heart has limited regenerative potential; therefore, lost cardiac tissue cannot be replenished after cardiac injury. Conventional therapies are unable to restore functional cardiac tissue. In recent decades, much attention has been paid to regenerative medicine to overcome this issue. Direct reprogramming is a promising therapeutic approach in regenerative cardiac medicine that has the potential to provide in situ cardiac regeneration. It consists of direct cell fate conversion of one cell type into another, avoiding transition through an intermediary pluripotent state. In injured cardiac tissue, this strategy directs transdifferentiation of resident non-myocyte cells (NMCs) into mature functional cardiac cells that help to restore the native tissue. Over the years, developments in reprogramming methods have suggested that regulation of several intrinsic factors in NMCs can help to achieve in situ direct cardiac reprogramming. Among NMCs, endogenous cardiac fibroblasts have been studied for their potential to be directly reprogrammed into both induced cardiomyocytes and induced cardiac progenitor cells, while pericytes can transdifferentiate towards endothelial cells and smooth muscle cells. This strategy has been indicated to improve heart function and reduce fibrosis after cardiac injury in preclinical models. This review summarizes the recent updates and progress in direct cardiac reprogramming of resident NMCs for in situ cardiac regeneration.


Asunto(s)
Transdiferenciación Celular , Técnicas de Reprogramación Celular , Reprogramación Celular , Fibroblastos , Cardiopatías , Corazón , Pericitos , Regeneración , Corazón/fisiología , Cardiopatías/terapia , Fibroblastos/citología , Fibroblastos/fisiología , Miocitos Cardíacos/citología , Miocitos Cardíacos/fisiología , Pericitos/citología , Pericitos/fisiología , Células Endoteliales/citología , Células Endoteliales/fisiología , Humanos , Animales
16.
Cell Biochem Funct ; 40(5): 439-450, 2022 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-35707856

RESUMEN

Regular soft tissue healing relies on the well-organized interaction of different stromal cell types with endothelial cells. However, spatiotemporal conditions might provoke high densities of one special stromal cell type, potentially leading to impaired healing. Detailed knowledge of the functions of rivaling stromal cell types aiming for tissue contraction and stabilization as well as vascular support is mandatory. By the application of an in vitro approach comprising the evaluation of cell proliferation, cell morphology, myofibroblastoid differentiation, and cytokine release, we verified a density-dependent modulation of these functions among juvenile and adult fibroblasts, pericytes, and adipose-derived stem cells during their interaction with microvascular endothelial cells in cocultures. Results indicate that juvenile fibroblasts rather support angiogenesis via paracrine regulation at the early stage of healing, a role potentially compromised in adult fibroblasts. In contrast, pericytes showed a more versatile character aiming at angiogenesis, vessel stabilization, and tissue contraction. Such a universal character was even more pronounced among adipose-derived stem cells. The explicit knowledge of the characteristic functions of stromal cell types is a prerequisite for the development of new analytical and therapeutic approaches for impaired soft tissue healing. The present study delivers new considerations concerning the roles of rivaling stromal cell types within a granulation tissue, pointing to extraordinary properties of pericytes and adipose-derived stem cells.


Asunto(s)
Células Endoteliales , Células del Estroma , Cicatrización de Heridas , Tejido Adiposo/citología , Recuento de Células , Células Endoteliales/citología , Fibroblastos/citología , Humanos , Neovascularización Patológica , Pericitos/citología , Células Madre/citología , Células del Estroma/citología
17.
Science ; 375(6584): eabi7377, 2022 03 04.
Artículo en Inglés | MEDLINE | ID: mdl-35084939

RESUMEN

Cerebrovascular diseases are a leading cause of death and neurologic disability. Further understanding of disease mechanisms and therapeutic strategies requires a deeper knowledge of cerebrovascular cells in humans. We profiled transcriptomes of 181,388 cells to define a cell atlas of the adult human cerebrovasculature, including endothelial cell molecular signatures with arteriovenous segmentation and expanded perivascular cell diversity. By leveraging this reference, we investigated cellular and molecular perturbations in brain arteriovenous malformations, which are a leading cause of stroke in young people, and identified pathologic endothelial transformations with abnormal vascular patterning and the ontology of vascularly derived inflammation. We illustrate the interplay between vascular and immune cells that contributes to brain hemorrhage and catalog opportunities for targeting angiogenic and inflammatory programs in vascular malformations.


Asunto(s)
Vasos Sanguíneos/citología , Encéfalo/irrigación sanguínea , Malformaciones Arteriovenosas Intracraneales/patología , Transcriptoma , Adulto , Vasos Sanguíneos/patología , Vasos Sanguíneos/fisiología , Vasos Sanguíneos/fisiopatología , Células Cultivadas , Corteza Cerebral/irrigación sanguínea , Hemorragia Cerebral/patología , Hemorragia Cerebral/fisiopatología , Circulación Cerebrovascular , Células Endoteliales/citología , Células Endoteliales/patología , Células Endoteliales/fisiología , Fibroblastos/citología , Fibroblastos/fisiología , Humanos , Inflamación , Malformaciones Arteriovenosas Intracraneales/metabolismo , Monocitos/citología , Monocitos/fisiología , Músculo Liso Vascular/citología , Músculo Liso Vascular/patología , Músculo Liso Vascular/fisiología , Pericitos/citología , Pericitos/fisiología , RNA-Seq , Análisis de la Célula Individual
18.
Nat Protoc ; 17(1): 95-128, 2022 01.
Artículo en Inglés | MEDLINE | ID: mdl-34997242

RESUMEN

The blood-brain barrier (BBB) greatly restricts the entry of biological and engineered therapeutic molecules into the brain. Due to challenges in translating results from animal models to the clinic, relevant in vitro human BBB models are needed to assess pathophysiological molecular transport mechanisms and enable the design of targeted therapies for neurological disorders. This protocol describes an in vitro model of the human BBB self-assembled within microfluidic devices from stem-cell-derived or primary brain endothelial cells, and primary brain pericytes and astrocytes. This protocol requires 1.5 d for device fabrication, 7 d for device culture and up to 5 d for downstream imaging, protein and gene expression analyses. Methodologies to measure the permeability of any molecule in the BBB model, which take 30 min per device, are also included. Compared with standard 2D assays, the BBB model features relevant cellular organization and morphological characteristics, as well as values of molecular permeability within the range expected in vivo. These properties, coupled with a functional brain endothelial expression profile and the capability to easily test several repeats with low reagent consumption, make this BBB model highly suitable for widespread use in academic and industrial laboratories.


Asunto(s)
Barrera Hematoencefálica , Permeabilidad Capilar/fisiología , Dispositivos Laboratorio en un Chip , Técnicas Analíticas Microfluídicas/instrumentación , Modelos Cardiovasculares , Astrocitos/citología , Barrera Hematoencefálica/citología , Barrera Hematoencefálica/fisiología , Encéfalo/citología , Células Cultivadas , Células Endoteliales/citología , Humanos , Pericitos/citología
19.
Arterioscler Thromb Vasc Biol ; 42(2): 205-222, 2022 02.
Artículo en Inglés | MEDLINE | ID: mdl-34879709

RESUMEN

OBJECTIVE: We sought to determine how endothelial cell (EC) expression of the activating k-Ras (kirsten rat sarcoma 2 viral oncogene homolog) mutation, k-RasV12, affects their ability to form lumens and tubes and interact with pericytes during capillary assembly Approach and Results: Using defined bioassays where human ECs undergo observable tubulogenesis, sprouting behavior, pericyte recruitment to EC-lined tubes, and pericyte-induced EC basement membrane deposition, we assessed the impact of EC k-RasV12 expression on these critical processes that are necessary for proper capillary network formation. This mutation, which is frequently seen in human ECs within brain arteriovenous malformations, was found to markedly accentuate EC lumen formation mechanisms, with strongly accelerated intracellular vacuole formation, vacuole fusion, and lumen expansion and with reduced sprouting behavior, leading to excessively widened tube networks compared with control ECs. These abnormal tubes demonstrate strong reductions in pericyte recruitment and pericyte-induced EC basement membranes compared with controls, with deficiencies in fibronectin, collagen type IV, and perlecan deposition. Analyses of signaling during tube formation from these k-RasV12 ECs reveals strong enhancement of Src (Src proto-oncogene, non-receptor tyrosine kinase), Pak2 (P21 [RAC1 (Rac family small GTPase 1)] activated kinase 2), b-Raf (v-raf murine sarcoma viral oncogene homolog B1), Erk (extracellular signal-related kinase), and Akt (AK strain transforming) activation and increased expression of PKCε (protein kinase C epsilon), MT1-MMP (membrane-type 1 matrix metalloproteinase), acetylated tubulin and CDCP1 (CUB domain-containing protein 1; most are known EC lumen regulators). Pharmacological blockade of MT1-MMP, Src, Pak, Raf, Mek (mitogen-activated protein kinase) kinases, Cdc42 (cell division cycle 42)/Rac1, and Notch markedly interferes with lumen and tube formation from these ECs. CONCLUSIONS: Overall, this novel work demonstrates that EC expression of k-RasV12 disrupts capillary assembly due to markedly excessive lumen formation coupled with strongly reduced pericyte recruitment and basement membrane deposition, which are critical pathogenic features predisposing the vasculature to develop arteriovenous malformations.


Asunto(s)
Membrana Basal/citología , Capilares/fisiología , Células Endoteliales/citología , Neovascularización Fisiológica , Pericitos/citología , Proteínas Proto-Oncogénicas p21(ras)/genética , Membrana Basal/metabolismo , Línea Celular , Células Endoteliales/metabolismo , Expresión Génica , Células Endoteliales de la Vena Umbilical Humana , Humanos , Mutación , Pericitos/metabolismo
20.
J Neurosci ; 42(3): 362-376, 2022 01 19.
Artículo en Inglés | MEDLINE | ID: mdl-34819341

RESUMEN

Multifaceted microglial functions in the developing brain, such as promoting the differentiation of neural progenitors and contributing to the positioning and survival of neurons, have been progressively revealed. Although previous studies have noted the relationship between vascular endothelial cells and microglia in the developing brain, little attention has been given to the importance of pericytes, the mural cells surrounding endothelial cells. In this study, we attempted to dissect the role of pericytes in microglial distribution and function in developing mouse brains. Our immunohistochemical analysis showed that approximately half of the microglia attached to capillaries in the cerebral walls. Notably, a magnified observation of the position of microglia, vascular endothelial cells and pericytes demonstrated that microglia were preferentially associated with pericytes that covered 79.8% of the total capillary surface area. Through in vivo pericyte depletion induced by the intraventricular administration of a neutralizing antibody against platelet-derived growth factor receptor (PDGFR)ß (clone APB5), we found that microglial density was markedly decreased compared with that in control antibody-treated brains because of their low proliferative capacity. Moreover, in vitro coculture of isolated CD11b+ microglia and NG2+PDGFRα- cells, which are mostly composed of pericytes, from parenchymal cells indicated that pericytes promote microglial proliferation via the production of soluble factors. Furthermore, pericyte depletion by APB5 treatment resulted in a failure of microglia to promote the differentiation of neural stem cells into intermediate progenitors. Taken together, our findings suggest that pericytes facilitate microglial homeostasis in the developing brains, thereby indirectly supporting microglial effects on neural progenitors.SIGNIFICANCE STATEMENT This study highlights the novel effect of pericytes on microglia in the developing mouse brain. Through multiple analyses using an in vivo pericyte depletion mouse model and an in vitro coculture study of isolated pericytes and microglia from parenchymal cells, we demonstrated that pericytes contribute to microglial proliferation and support microglia in efficiently promoting the differentiation of neural stem cells into intermediate progenitors. Our present data provide evidence that pericytes function not only in the maintenance of cerebral microcirculation and blood brain barrier (BBB) integrity but also in microglial homeostasis in the developing cerebral walls. These findings will expand our knowledge and help elucidate the mechanism of brain development both in healthy and disease conditions.


Asunto(s)
Corteza Cerebral/citología , Homeostasis/fisiología , Microglía/citología , Células-Madre Neurales/citología , Pericitos/citología , Animales , Anticuerpos Neutralizantes , Barrera Hematoencefálica/citología , Barrera Hematoencefálica/efectos de los fármacos , Barrera Hematoencefálica/embriología , Permeabilidad Capilar/efectos de los fármacos , Línea Celular , Proliferación Celular/efectos de los fármacos , Corteza Cerebral/efectos de los fármacos , Corteza Cerebral/embriología , Ácido Clodrónico/farmacología , Homeostasis/efectos de los fármacos , Liposomas , Ratones , Microglía/efectos de los fármacos , Células-Madre Neurales/efectos de los fármacos , Pericitos/efectos de los fármacos , Receptor beta de Factor de Crecimiento Derivado de Plaquetas
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