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1.
Cardiovasc Res ; 119(7): 1553-1567, 2023 07 04.
Artigo em Inglês | MEDLINE | ID: mdl-36951047

RESUMO

AIMS: Cardiac energy metabolism is centrally involved in heart failure (HF), although the direction of the metabolic alterations is complex and likely dependent on the particular stage of HF progression. Vascular endothelial growth factor B (VEGF-B) has been shown to modulate metabolic processes and to induce physiological cardiac hypertrophy; thus, it could be cardioprotective in the failing myocardium. This study investigates the role of VEGF-B in cardiac proteomic and metabolic adaptation in HF during aldosterone and high-salt hypertensive challenges. METHODS AND RESULTS: Male rats overexpressing the cardiac-specific VEGF-B transgene (VEGF-B TG) were treated for 3 or 6 weeks with deoxycorticosterone-acetate combined with a high-salt (HS) diet (DOCA + HS) to induce hypertension and cardiac damage. Extensive longitudinal echocardiographic studies of HF progression were conducted, starting at baseline. Sham-treated rats served as controls. To evaluate the metabolic alterations associated with HF, cardiac proteomics by mass spectrometry was performed. Hypertrophic non-treated VEGF-B TG hearts demonstrated high oxygen and adenosine triphosphate (ATP) demand with early onset of diastolic dysfunction. Administration of DOCA + HS to VEGF-B TG rats for 6 weeks amplified the progression from cardiac hypertrophy to HF, with a drastic drop in heart ATP concentration. Dobutamine stress echocardiographic analyses uncovered a significantly impaired systolic reserve. Mechanistically, the hallmark of the failing TG heart was an abnormal energy metabolism with decreased mitochondrial ATP, preceding the attenuated cardiac performance and leading to systolic HF. CONCLUSIONS: This study shows that the VEGF-B TG accelerates metabolic maladaptation which precedes structural cardiomyopathy in experimental hypertension and ultimately leads to systolic HF.


Assuntos
Acetato de Desoxicorticosterona , Insuficiência Cardíaca Sistólica , Insuficiência Cardíaca , Hipertensão , Ratos , Masculino , Animais , Fator B de Crescimento do Endotélio Vascular/metabolismo , Insuficiência Cardíaca Sistólica/complicações , Proteômica , Hipertensão/metabolismo , Miocárdio/metabolismo , Insuficiência Cardíaca/genética , Insuficiência Cardíaca/complicações , Cardiomegalia/genética , Cardiomegalia/metabolismo
2.
Blood ; 136(16): 1871-1883, 2020 10 15.
Artigo em Inglês | MEDLINE | ID: mdl-32842144

RESUMO

Hematopoietic stem cells (HSCs) reside in the bone marrow (BM) stem cell niche, which provides a vital source of HSC regulatory signals. Radiation and chemotherapy disrupt the HSC niche, including its sinusoidal vessels and perivascular cells, contributing to delayed hematopoietic recovery. Thus, identification of factors that can protect the HSC niche during an injury could offer a significant therapeutic opportunity to improve hematopoietic regeneration. In this study, we identified a critical function for vascular endothelial growth factor-C (VEGF-C), that of maintaining the integrity of the BM perivascular niche and improving BM niche recovery after irradiation-induced injury. Both global and conditional deletion of Vegfc in endothelial or leptin receptor-positive (LepR+) cells led to a disruption of the BM perivascular niche. Furthermore, deletion of Vegfc from the microenvironment delayed hematopoietic recovery after transplantation by decreasing endothelial proliferation and LepR+ cell regeneration. Exogenous administration of VEGF-C via an adenoassociated viral vector improved hematopoietic recovery after irradiation by accelerating endothelial and LepR+ cell regeneration and by increasing the expression of hematopoietic regenerative factors. Our results suggest that preservation of the integrity of the perivascular niche via VEGF-C signaling could be exploited therapeutically to enhance hematopoietic regeneration.


Assuntos
Células da Medula Óssea/metabolismo , Medula Óssea/metabolismo , Células Endoteliais/metabolismo , Nicho de Células-Tronco , Fator C de Crescimento do Endotélio Vascular/genética , Animais , Biomarcadores , Células da Medula Óssea/citologia , Células da Medula Óssea/efeitos da radiação , Expressão Gênica , Hematopoese/genética , Hematopoese/efeitos da radiação , Imunofenotipagem , Camundongos , Camundongos Transgênicos , Modelos Biológicos , Ligação Proteica , RNA Mensageiro , Receptores para Leptina/metabolismo , Nicho de Células-Tronco/genética , Nicho de Células-Tronco/efeitos da radiação , Fator C de Crescimento do Endotélio Vascular/metabolismo
3.
Methods Mol Biol ; 1846: 291-300, 2018.
Artigo em Inglês | MEDLINE | ID: mdl-30242767

RESUMO

The lymphatic vessels can be selectively stimulated to grow in adult mice, rats and pigs by application of viral vectors expressing the lymphangiogenic factors VEGF-C or VEGF-D. Vice versa, lymphangiogenesis in various pathological settings can be inhibited by the blocking of the VEGF-C/VEGFR3 interaction using a ligand-binding soluble form of VEGFR3. Furthermore, the recently discovered plasticity of meningeal and lacteal lymphatic vessels provides novel opportunities for their manipulation in disease. Adenoviral and adeno-associated viral vectors (AAVs) provide suitable tools for establishing short- and long-term gene expression, respectively and adenoviral vectors have already been used in clinical trials. As an example, we describe here ways to manipulate the meningeal lymphatic vasculature in the adult mice via AAV-mediated gene delivery. The possibility of stimulation and inhibition of lymphangiogenesis in adult mice has enabled the analysis of the role and function of lymphatic vessels in mouse models of disease.


Assuntos
Dependovirus/genética , Técnicas de Transferência de Genes , Vetores Genéticos/genética , Linfangiogênese/genética , Expressão Gênica , Humanos , Vasos Linfáticos/metabolismo , Transdução Genética , Transgenes , Fator C de Crescimento do Endotélio Vascular/genética , Fator C de Crescimento do Endotélio Vascular/metabolismo , Fator D de Crescimento do Endotélio Vascular/genética , Fator D de Crescimento do Endotélio Vascular/metabolismo , Receptor 3 de Fatores de Crescimento do Endotélio Vascular/genética , Receptor 3 de Fatores de Crescimento do Endotélio Vascular/metabolismo
4.
Nature ; 562(7725): 128-132, 2018 10.
Artigo em Inglês | MEDLINE | ID: mdl-30258227

RESUMO

Angiocrine signals derived from endothelial cells are an important component of intercellular communication and have a key role in organ growth, regeneration and disease1-4. These signals have been identified and studied in multiple organs, including the liver, pancreas, lung, heart, bone, bone marrow, central nervous system, retina and some cancers1-4. Here we use the developing liver as a model organ to study angiocrine signals5,6, and show that the growth rate of the liver correlates both spatially and temporally with blood perfusion to this organ. By manipulating blood flow through the liver vasculature, we demonstrate that vessel perfusion activates ß1 integrin and vascular endothelial growth factor receptor 3 (VEGFR3). Notably, both ß1 integrin and VEGFR3 are strictly required for normal production of hepatocyte growth factor, survival of hepatocytes and liver growth. Ex vivo perfusion of adult mouse liver and in vitro mechanical stretching of human hepatic endothelial cells illustrate that mechanotransduction alone is sufficient to turn on angiocrine signals. When the endothelial cells are mechanically stretched, angiocrine signals trigger in vitro proliferation and survival of primary human hepatocytes. Our findings uncover a signalling pathway in vascular endothelial cells that translates blood perfusion and mechanotransduction into organ growth and maintenance.


Assuntos
Comunicação Autócrina , Integrina beta1/metabolismo , Fígado/crescimento & desenvolvimento , Fígado/fisiologia , Mecanotransdução Celular/fisiologia , Transdução de Sinais , Animais , Células Cultivadas , Células Endoteliais/fisiologia , Feminino , Fator de Crescimento de Hepatócito/metabolismo , Hepatócitos/citologia , Hepatócitos/fisiologia , Humanos , Fígado/irrigação sanguínea , Fígado/citologia , Masculino , Camundongos , Camundongos Endogâmicos C57BL , Pessoa de Meia-Idade , Receptor 3 de Fatores de Crescimento do Endotélio Vascular/metabolismo
5.
J Exp Med ; 214(12): 3645-3667, 2017 Dec 04.
Artigo em Inglês | MEDLINE | ID: mdl-29141865

RESUMO

The recent discovery of meningeal lymphatic vessels (LVs) has raised interest in their possible involvement in neuropathological processes, yet little is known about their development or maintenance. We show here that meningeal LVs develop postnatally, appearing first around the foramina in the basal parts of the skull and spinal canal, sprouting along the blood vessels and cranial and spinal nerves to various parts of the meninges surrounding the central nervous system (CNS). VEGF-C, expressed mainly in vascular smooth muscle cells, and VEGFR3 in lymphatic endothelial cells were essential for their development, whereas VEGF-D deletion had no effect. Surprisingly, in adult mice, the LVs showed regression after VEGF-C or VEGFR3 deletion, administration of the tyrosine kinase inhibitor sunitinib, or expression of VEGF-C/D trap, which also compromised the lymphatic drainage function. Conversely, an excess of VEGF-C induced meningeal lymphangiogenesis. The plasticity and regenerative potential of meningeal LVs should allow manipulation of cerebrospinal fluid drainage and neuropathological processes in the CNS.


Assuntos
Vasos Linfáticos/fisiologia , Meninges/fisiologia , Animais , Animais Recém-Nascidos , Transporte Biológico/efeitos dos fármacos , Líquido Cefalorraquidiano/metabolismo , Dependovirus/metabolismo , Deleção de Genes , Humanos , Indóis/farmacologia , Injeções Intraventriculares , Linfonodos/efeitos dos fármacos , Linfonodos/metabolismo , Linfangiogênese/efeitos dos fármacos , Vasos Linfáticos/efeitos dos fármacos , Masculino , Meninges/efeitos dos fármacos , Camundongos Endogâmicos C57BL , Microesferas , Miócitos de Músculo Liso/efeitos dos fármacos , Miócitos de Músculo Liso/metabolismo , Inibidores de Proteínas Quinases/farmacologia , Pirróis/farmacologia , Transdução de Sinais , Medula Espinal/efeitos dos fármacos , Medula Espinal/fisiologia , Sunitinibe , Fator C de Crescimento do Endotélio Vascular/metabolismo , Fator D de Crescimento do Endotélio Vascular/metabolismo , Receptor 3 de Fatores de Crescimento do Endotélio Vascular/metabolismo
6.
Sci Rep ; 7: 45263, 2017 03 28.
Artigo em Inglês | MEDLINE | ID: mdl-28349940

RESUMO

During plaque progression, inflammatory cells progressively accumulate in the adventitia, paralleled by an increased presence of leaky vasa vasorum. We here show that next to vasa vasorum, also the adventitial lymphatic capillary bed is expanding during plaque development in humans and mouse models of atherosclerosis. Furthermore, we investigated the role of lymphatics in atherosclerosis progression. Dissection of plaque draining lymph node and lymphatic vessel in atherosclerotic ApoE-/- mice aggravated plaque formation, which was accompanied by increased intimal and adventitial CD3+ T cell numbers. Likewise, inhibition of VEGF-C/D dependent lymphangiogenesis by AAV aided gene transfer of hVEGFR3-Ig fusion protein resulted in CD3+ T cell enrichment in plaque intima and adventitia. hVEGFR3-Ig gene transfer did not compromise adventitial lymphatic density, pointing to VEGF-C/D independent lymphangiogenesis. We were able to identify the CXCL12/CXCR4 axis, which has previously been shown to indirectly activate VEGFR3, as a likely pathway, in that its focal silencing attenuated lymphangiogenesis and augmented T cell presence. Taken together, our study not only shows profound, partly CXCL12/CXCR4 mediated, expansion of lymph capillaries in the adventitia of atherosclerotic plaque in humans and mice, but also is the first to attribute an important role of lymphatics in plaque T cell accumulation and development.


Assuntos
Túnica Adventícia/patologia , Aterosclerose/patologia , Vasos Linfáticos/patologia , Linfócitos T/patologia , Túnica Adventícia/metabolismo , Animais , Apolipoproteínas E/genética , Aterosclerose/genética , Aterosclerose/metabolismo , Quimiocina CXCL12/metabolismo , Humanos , Vasos Linfáticos/metabolismo , Masculino , Camundongos , Camundongos Endogâmicos C57BL , Placa Aterosclerótica/metabolismo , Placa Aterosclerótica/patologia , Receptores CXCR4/metabolismo , Linfócitos T/metabolismo , Fator A de Crescimento do Endotélio Vascular/metabolismo
7.
Blood ; 128(5): 710-20, 2016 08 04.
Artigo em Inglês | MEDLINE | ID: mdl-27343251

RESUMO

Vascular endothelial growth factor C (VEGF-C) is a major driver of lymphangiogenesis in embryos and adults. Vegfc gene deletion in mouse embryos results in failure of lymphangiogenesis, fluid accumulation in tissues, and lethality. The VEGF-C receptors VEGFR3 and VEGFR2 are required for embryonic blood vessel formation. The related VEGF is essential for both blood vessel formation and embryonic hematopoiesis, whereas the possible involvement of VEGF-C in hematopoiesis is unknown. Here we unveil a novel hematopoietic function of VEGF-C in fetal erythropoiesis. Deletion of Vegfc in embryonic day 7.5 (E7.5) embryos in the C57BL6 mouse genetic background led to defective fetal erythropoiesis, characterized by anemia and lack of enucleated red blood cells in blood circulation. Macrophages and erythroid cells in the fetal liver (FL) were also decreased after midgestation because of decreased cell proliferation and increased apoptosis. However, the Lin(-)Sca-1(+)c-Kit(+) stem cell compartment in E14.5 FL was not affected by Vegfc deletion. VEGF-C loss did not disrupt the generation of primitive erythroid cells or erythro-myeloid progenitors (EMPs) in the yolk sac, but it decreased the expression of α4-integrin on EMPs and compromised EMP colonization of the FL. The distribution, maturation, and enucleation of primitive erythroblasts were also impaired by Vegfc deletion. In contrast, Vegfc deletion from E10.5 onward did not compromise definitive hematopoiesis in the liver, and Vegfc deletion in adult mice did not cause anemia. These results reveal an unexpected role for VEGF-C, a major lymphangiogenic growth factor, in the transition to FL erythropoiesis.


Assuntos
Eritropoese , Feto/metabolismo , Fator C de Crescimento do Endotélio Vascular/metabolismo , Anemia/patologia , Animais , Apoptose , Linhagem da Célula , Proliferação de Células , Embrião de Mamíferos/metabolismo , Células Eritroides/metabolismo , Deleção de Genes , Hepatócitos/metabolismo , Integrina alfa4/metabolismo , Fígado/irrigação sanguínea , Fígado/embriologia , Macrófagos/metabolismo , Camundongos Endogâmicos C57BL , Tamanho do Órgão
8.
J Clin Invest ; 126(6): 2167-80, 2016 06 01.
Artigo em Inglês | MEDLINE | ID: mdl-27159393

RESUMO

Lymphangiogenesis is supported by 2 homologous VEGFR3 ligands, VEGFC and VEGFD. VEGFC is required for lymphatic development, while VEGFD is not. VEGFC and VEGFD are proteolytically cleaved after cell secretion in vitro, and recent studies have implicated the protease a disintegrin and metalloproteinase with thrombospondin motifs 3 (ADAMTS3) and the secreted factor collagen and calcium binding EGF domains 1 (CCBE1) in this process. It is not well understood how ligand proteolysis is controlled at the molecular level or how this process regulates lymphangiogenesis, because these complex molecular interactions have been difficult to follow ex vivo and test in vivo. Here, we have developed and used biochemical and cellular tools to demonstrate that an ADAMTS3-CCBE1 complex can form independently of VEGFR3 and is required to convert VEGFC, but not VEGFD, into an active ligand. Consistent with these ex vivo findings, mouse genetic studies revealed that ADAMTS3 is required for lymphatic development in a manner that is identical to the requirement of VEGFC and CCBE1 for lymphatic development. Moreover, CCBE1 was required for in vivo lymphangiogenesis stimulated by VEGFC but not VEGFD. Together, these studies reveal that lymphangiogenesis is regulated by two distinct proteolytic mechanisms of ligand activation: one in which VEGFC activation by ADAMTS3 and CCBE1 spatially and temporally patterns developing lymphatics, and one in which VEGFD activation by a distinct proteolytic mechanism may be stimulated during inflammatory lymphatic growth.


Assuntos
Linfangiogênese/fisiologia , Fator C de Crescimento do Endotélio Vascular/metabolismo , Fator D de Crescimento do Endotélio Vascular/metabolismo , Proteínas ADAMTS/deficiência , Proteínas ADAMTS/genética , Proteínas ADAMTS/metabolismo , Animais , Proteínas de Ligação ao Cálcio/deficiência , Proteínas de Ligação ao Cálcio/genética , Proteínas de Ligação ao Cálcio/metabolismo , Proliferação de Células , Células Endoteliais/citologia , Células Endoteliais/metabolismo , Células HEK293 , Humanos , Ligantes , Linfangiogênese/genética , Vasos Linfáticos/metabolismo , Camundongos , Camundongos Knockout , Modelos Biológicos , Peptídeo Hidrolases/metabolismo , Pró-Colágeno N-Endopeptidase/genética , Pró-Colágeno N-Endopeptidase/metabolismo , Transdução de Sinais , Proteínas Supressoras de Tumor/deficiência , Proteínas Supressoras de Tumor/genética , Proteínas Supressoras de Tumor/metabolismo , Fator C de Crescimento do Endotélio Vascular/deficiência , Fator C de Crescimento do Endotélio Vascular/genética , Fator D de Crescimento do Endotélio Vascular/deficiência , Fator D de Crescimento do Endotélio Vascular/genética , Receptor 3 de Fatores de Crescimento do Endotélio Vascular/metabolismo
9.
EMBO Mol Med ; 7(11): 1418-25, 2015 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-26459520

RESUMO

Vascular endothelial growth factor C (VEGF-C) binding to its tyrosine kinase receptor VEGFR-3 drives lymphatic vessel growth during development and in pathological processes. Although the VEGF-C/VEGFR-3 pathway provides a target for treatment of cancer and lymphedema, the physiological functions of VEGF-C in adult vasculature are unknown. We show here that VEGF-C is necessary for perinatal lymphangiogenesis, but required for adult lymphatic vessel maintenance only in the intestine. Following Vegfc gene deletion in adult mice, the intestinal lymphatic vessels, including the lacteal vessels, underwent gradual atrophy, which was aggravated when also Vegfd was deleted. VEGF-C was expressed by a subset of smooth muscle cells adjacent to the lacteals in the villus and in the intestinal wall. The Vegfc-deleted mice showed defective lipid absorption and increased fecal excretion of dietary cholesterol and fatty acids. When fed a high-fat diet, the Vegfc-deficient mice were resistant to obesity and had improved glucose metabolism. Our findings indicate that the lymphangiogenic growth factors provide trophic and dynamic regulation of the intestinal lymphatic vasculature, which could be especially important in the dietary regulation of adiposity and cholesterol metabolism.


Assuntos
Intestinos/fisiologia , Metabolismo dos Lipídeos , Vasos Linfáticos/fisiologia , Fator C de Crescimento do Endotélio Vascular/metabolismo , Animais , Deleção de Genes , Camundongos , Camundongos Knockout , Fator C de Crescimento do Endotélio Vascular/genética
10.
Cell Rep ; 10(7): 1158-72, 2015 Feb 24.
Artigo em Inglês | MEDLINE | ID: mdl-25704818

RESUMO

Neural stem cells (NSCs) continuously produce new neurons within the adult mammalian hippocampus. NSCs are typically quiescent but activated to self-renew or differentiate into neural progenitor cells. The molecular mechanisms of NSC activation remain poorly understood. Here, we show that adult hippocampal NSCs express vascular endothelial growth factor receptor (VEGFR) 3 and its ligand VEGF-C, which activates quiescent NSCs to enter the cell cycle and generate progenitor cells. Hippocampal NSC activation and neurogenesis are impaired by conditional deletion of Vegfr3 in NSCs. Functionally, this is associated with compromised NSC activation in response to VEGF-C and physical activity. In NSCs derived from human embryonic stem cells (hESCs), VEGF-C/VEGFR3 mediates intracellular activation of AKT and ERK pathways that control cell fate and proliferation. These findings identify VEGF-C/VEGFR3 signaling as a specific regulator of NSC activation and neurogenesis in mammals.


Assuntos
Células-Tronco Neurais/metabolismo , Receptor 3 de Fatores de Crescimento do Endotélio Vascular/metabolismo , Animais , Diferenciação Celular , Proliferação de Células , Células Cultivadas , Células-Tronco Embrionárias/citologia , Células-Tronco Embrionárias/metabolismo , MAP Quinases Reguladas por Sinal Extracelular/metabolismo , Hipocampo/metabolismo , Humanos , Camundongos , Camundongos Endogâmicos C57BL , Células-Tronco Neurais/citologia , Células-Tronco Neurais/efeitos dos fármacos , Neurogênese/efeitos dos fármacos , Proteínas Proto-Oncogênicas c-akt/metabolismo , Proteínas Recombinantes/biossíntese , Proteínas Recombinantes/genética , Proteínas Recombinantes/farmacologia , Transdução de Sinais , Fator C de Crescimento do Endotélio Vascular/genética , Fator C de Crescimento do Endotélio Vascular/metabolismo , Fator C de Crescimento do Endotélio Vascular/farmacologia , Receptor 3 de Fatores de Crescimento do Endotélio Vascular/genética
11.
Nat Commun ; 6: 5962, 2015 Jan 30.
Artigo em Inglês | MEDLINE | ID: mdl-25635707

RESUMO

Angiopoietins regulate vascular homeostasis via the endothelial Tie receptor tyrosine kinases. Angiopoietin-1 (Ang1) supports endothelial stabilization via Tie2 activation. Angiopoietin-2 (Ang2) functions as a context-dependent Tie2 agonist/antagonist promoting pathological angiogenesis, vascular permeability and inflammation. Elucidating Ang2-dependent mechanisms of vascular destablization is critical for rational design of angiopoietin antagonists that have demonstrated therapeutic efficacy in cancer trials. Here, we report that Ang2, but not Ang1, activates ß1-integrin, leading to endothelial destablization. Autocrine Ang2 signalling upon Tie2 silencing, or in Ang2 transgenic mice, promotes ß1-integrin-positive elongated matrix adhesions and actin stress fibres, regulating vascular endothelial-cadherin-containing cell-cell junctions. The Tie2-silenced monolayer integrity is rescued by ß1-integrin, phosphoinositide-3 kinase or Rho kinase inhibition, and by re-expression of a membrane-bound Tie2 ectodomain. Furthermore, Tie2 silencing increases, whereas Ang2 blocking inhibits transendothelial tumour cell migration in vitro. These results establish Ang2-mediated ß1-integrin activation as a promoter of endothelial destablization, explaining the controversial vascular functions of Ang1 and Ang2.


Assuntos
Angiopoietina-1/metabolismo , Angiopoietina-2/metabolismo , Células Endoteliais/metabolismo , Integrina beta1/metabolismo , Angiopoietina-1/genética , Angiopoietina-2/genética , Animais , Linhagem Celular , Feminino , Humanos , Integrina beta1/genética , Masculino , Camundongos , Camundongos Transgênicos , Gravidez , Reação em Cadeia da Polimerase em Tempo Real , Receptor TIE-2/genética , Receptor TIE-2/metabolismo
12.
Genes Dev ; 28(19): 2175-87, 2014 Oct 01.
Artigo em Inglês | MEDLINE | ID: mdl-25274728

RESUMO

The mammalian lymphatic vasculature is important for returning fluids from the extracellular tissue milieu back to the blood circulation. We showed previously that Prox1 dosage is important for the development of the mammalian lymphatic vasculature. The lack of Prox1 activity results in the complete absence of lymphatic endothelial cells (LECs). In Prox1 heterozygous embryos, the number of LECs is reduced because of a decrease in the progenitor pool in the cardinal vein. This reduction is caused by some progenitor cells being unable to maintain Prox1 expression. In this study, we identified Vegfr3, the cognate receptor of the lymphangiogenic growth factor Vegfc, as a dosage-dependent, direct in vivo target of Prox1. Using various mouse models, we also determined that Vegfr3 regulates Prox1 by establishing a feedback loop necessary to maintain the identity of LEC progenitors and that Vegfc-mediated activation of Vegfr3 signaling is necessary to maintain Prox1 expression in LEC progenitors. We propose that this feedback loop is the main sensing mechanism controlling the number of LEC progenitors and, as a consequence, the number of budding LECs that will form the embryonic lymphatic vasculature.


Assuntos
Células Endoteliais/citologia , Células Endoteliais/fisiologia , Células Progenitoras Endoteliais/citologia , Células Progenitoras Endoteliais/fisiologia , Proteínas de Homeodomínio/metabolismo , Proteínas Supressoras de Tumor/metabolismo , Receptor 3 de Fatores de Crescimento do Endotélio Vascular/metabolismo , Animais , Contagem de Células , Embrião não Mamífero , Regulação da Expressão Gênica , Proteínas de Homeodomínio/genética , Vasos Linfáticos/citologia , Vasos Linfáticos/metabolismo , Camundongos , Transdução de Sinais , Proteínas Supressoras de Tumor/genética , Receptor 3 de Fatores de Crescimento do Endotélio Vascular/genética
13.
J Clin Invest ; 123(7): 2803-15, 2013 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-23722907

RESUMO

The skin interstitium sequesters excess Na+ and Cl- in salt-sensitive hypertension. Mononuclear phagocyte system (MPS) cells are recruited to the skin, sense the hypertonic electrolyte accumulation in skin, and activate the tonicity-responsive enhancer-binding protein (TONEBP, also known as NFAT5) to initiate expression and secretion of VEGFC, which enhances electrolyte clearance via cutaneous lymph vessels and increases eNOS expression in blood vessels. It is unclear whether this local MPS response to osmotic stress is important to systemic blood pressure control. Herein, we show that deletion of TonEBP in mouse MPS cells prevents the VEGFC response to a high-salt diet (HSD) and increases blood pressure. Additionally, an antibody that blocks the lymph-endothelial VEGFC receptor, VEGFR3, selectively inhibited MPS-driven increases in cutaneous lymphatic capillary density, led to skin Cl- accumulation, and induced salt-sensitive hypertension. Mice overexpressing soluble VEGFR3 in epidermal keratinocytes exhibited hypoplastic cutaneous lymph capillaries and increased Na+, Cl-, and water retention in skin and salt-sensitive hypertension. Further, we found that HSD elevated skin osmolality above plasma levels. These results suggest that the skin contains a hypertonic interstitial fluid compartment in which MPS cells exert homeostatic and blood pressure-regulatory control by local organization of interstitial electrolyte clearance via TONEBP and VEGFC/VEGFR3-mediated modification of cutaneous lymphatic capillary function.


Assuntos
Hipertensão/metabolismo , Linfa/metabolismo , Pele/metabolismo , Equilíbrio Hidroeletrolítico , Animais , Células Cultivadas , Homeostase , Hiperplasia/metabolismo , Hipertensão/imunologia , Hipertensão/fisiopatologia , Queratinócitos/metabolismo , Vasos Linfáticos/fisiopatologia , Macrófagos/imunologia , Masculino , Camundongos , Camundongos da Linhagem 129 , Camundongos Endogâmicos C57BL , Concentração Osmolar , Ratos , Ratos Sprague-Dawley , Pele/imunologia , Cloreto de Sódio na Dieta/metabolismo , Fatores de Transcrição/fisiologia , Fator C de Crescimento do Endotélio Vascular/metabolismo , Receptor 3 de Fatores de Crescimento do Endotélio Vascular/antagonistas & inibidores , Receptor 3 de Fatores de Crescimento do Endotélio Vascular/metabolismo
14.
EMBO J ; 32(5): 629-44, 2013 Mar 06.
Artigo em Inglês | MEDLINE | ID: mdl-23299940

RESUMO

During mammalian development, a subpopulation of endothelial cells in the cardinal vein (CV) expresses lymphatic-specific genes and subsequently develops into the first lymphatic structures, collectively termed as lymph sacs. Budding, sprouting and ballooning of lymphatic endothelial cells (LECs) have been proposed to underlie the emergence of LECs from the CV, but the exact mechanisms of lymph vessel formation remain poorly understood. Applying selective plane illumination-based ultramicroscopy to entire wholemount-immunostained mouse embryos, we visualized the complete developing vascular system with cellular resolution. Here, we report emergence of the earliest detectable LECs as strings of loosely connected cells between the CV and superficial venous plexus. Subsequent aggregation of LECs resulted in formation of two distinct, previously unidentified lymphatic structures, the dorsal peripheral longitudinal lymphatic vessel (PLLV) and the ventral primordial thoracic duct (pTD), which at later stages formed a direct contact with the CV. Providing new insights into their function, we found vascular endothelial growth factor C (VEGF-C) and the matrix component CCBE1 indispensable for LEC budding and migration. Altogether, we present a significantly more detailed view and novel model of early lymphatic development.


Assuntos
Proteínas de Ligação ao Cálcio/fisiologia , Embrião de Mamíferos/citologia , Endotélio Linfático/citologia , Endotélio Vascular/citologia , Linfangiogênese , Proteínas Supressoras de Tumor/fisiologia , Fator C de Crescimento do Endotélio Vascular/fisiologia , Receptor 3 de Fatores de Crescimento do Endotélio Vascular/fisiologia , Veias/citologia , Animais , Movimento Celular , Proliferação de Células , Embrião de Mamíferos/metabolismo , Embrião de Mamíferos/ultraestrutura , Endotélio Linfático/metabolismo , Endotélio Linfático/ultraestrutura , Endotélio Vascular/metabolismo , Endotélio Vascular/ultraestrutura , Imunofluorescência , Técnicas Imunoenzimáticas , Vasos Linfáticos , Camundongos , Camundongos Endogâmicos C57BL , Camundongos Knockout , Veias/metabolismo , Veias/ultraestrutura
15.
Nat Cell Biol ; 13(10): 1202-13, 2011 Sep 11.
Artigo em Inglês | MEDLINE | ID: mdl-21909098

RESUMO

Angiogenesis, the growth of new blood vessels, involves specification of endothelial cells to tip cells and stalk cells, which is controlled by Notch signalling, whereas vascular endothelial growth factor receptor (VEGFR)-2 and VEGFR-3 have been implicated in angiogenic sprouting. Surprisingly, we found that endothelial deletion of Vegfr3, but not VEGFR-3-blocking antibodies, postnatally led to excessive angiogenic sprouting and branching, and decreased the level of Notch signalling, indicating that VEGFR-3 possesses passive and active signalling modalities. Furthermore, macrophages expressing the VEGFR-3 and VEGFR-2 ligand VEGF-C localized to vessel branch points, and Vegfc heterozygous mice exhibited inefficient angiogenesis characterized by decreased vascular branching. FoxC2 is a known regulator of Notch ligand and target gene expression, and Foxc2(+/-);Vegfr3(+/-) compound heterozygosity recapitulated homozygous loss of Vegfr3. These results indicate that macrophage-derived VEGF-C activates VEGFR-3 in tip cells to reinforce Notch signalling, which contributes to the phenotypic conversion of endothelial cells at fusion points of vessel sprouts.


Assuntos
Células Endoteliais/metabolismo , Neovascularização Patológica/metabolismo , Neovascularização Fisiológica , Receptores Notch/metabolismo , Vasos Retinianos/metabolismo , Rombencéfalo/irrigação sanguínea , Transdução de Sinais , Receptor 3 de Fatores de Crescimento do Endotélio Vascular/metabolismo , Animais , Anticorpos/farmacologia , Linhagem Celular Tumoral , Células Endoteliais/efeitos dos fármacos , Fatores de Transcrição Forkhead/genética , Fatores de Transcrição Forkhead/metabolismo , Regulação da Expressão Gênica , Células Endoteliais da Veia Umbilical Humana/metabolismo , Humanos , Macrófagos/metabolismo , Camundongos , Camundongos Knockout , Neovascularização Patológica/genética , Neovascularização Fisiológica/efeitos dos fármacos , Fosfatidilinositol 3-Quinase/metabolismo , Inibidores de Proteínas Quinases/farmacologia , Interferência de RNA , Receptores Notch/antagonistas & inibidores , Transdução de Sinais/efeitos dos fármacos , Fatores de Tempo , Transdução Genética , Transfecção , Fator A de Crescimento do Endotélio Vascular/genética , Fator A de Crescimento do Endotélio Vascular/metabolismo , Fator B de Crescimento do Endotélio Vascular/genética , Fator B de Crescimento do Endotélio Vascular/metabolismo , Fator C de Crescimento do Endotélio Vascular/genética , Fator C de Crescimento do Endotélio Vascular/metabolismo , Fator D de Crescimento do Endotélio Vascular/genética , Fator D de Crescimento do Endotélio Vascular/metabolismo , Receptor 3 de Fatores de Crescimento do Endotélio Vascular/deficiência , Receptor 3 de Fatores de Crescimento do Endotélio Vascular/genética
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