996 resultados para AT1 receptor


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Le stress oxydatif est impliqué dans l’expression du récepteur B1 des kinines (RB1) dans différents modèles de diabète et d'hypertension. Puisque l'angiotensine II (Ang II) et l'endothéline-1 (ET-1) sont des peptides prooxydants impliqués dans les maladies cardiovasculaires, leur contribution dans l'augmentation de l'expression du RB1 a été étudiée dans des cellules musculaires lisses vasculaires (CMLV). Le QRT-PCR et l’immunobuvardage de type Western ont été utilisés pour mesurer l’expression du RB1 dans des CMLV dérivées de la lignée A10 et de l’aorte de rats Sprague-Dawley. Cette étude montre que l’Ang II augmente l’expression du RB1 (ARNm et protéine) en fonction de la concentration et du temps (maximum 1 μM entre 3-6 h). Cette augmentation implique le récepteur AT1, la PI3K et le NF-κB, mais non le récepteur AT2 et ERK1/2. Aussi, le récepteur ETA de l’ET-1 est impliqué dans la réponse à l’Ang II à 6-8 h et non à 1-4 h. Par contre, l’ET-1 augmente l’expression du RB1 (maximum 2-4 h) via la stimulation des récepteurs ETA et ETB. L’augmentation du RB1 causée par l’Ang II et l’ET-1 est bloquée par les antioxydants (N-acétyl-cystéine et diphénylèneiodonium). Ces résultats suggèrent que l’Ang II induit le RB1 dans les CMLV par le récepteur AT1 dans la première phase, et par la libération d’ET-1 (majoritairement par ETA) dans la phase tardive, via le stress oxydatif et l’activation de la PI3K et du NF-κB. Ces résultats précisent le mécanisme impliqué dans la surexpression du RB1 ayant des effets néfastes dans le diabète et l'hypertension.

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Nous avons précédemment montré que l’activation du récepteur natriurétique de type C (NPR-C) par son agoniste spécifique, le C-ANP4-23, atténue l’augmentation de la prolifération des cellules du muscle lisse vasculaire (CMLV) induite par les peptides vasoactifs (Ang II, ET-1 et l’AVP). Puisque les CMLV provenant de rats spontanément hypertendus (SHR) montrent elles aussi un taux de prolifération plus élevé que leur contrôle, les CMLV de rats Wystar-Kyoto (WKY), nous avons entrepris cette étude dans le but de déterminer si C-ANP4-23 peut également diminuer le taux élevé de prolifération des CMLV de SHR et, le cas échéant déterminer les mécanismes responsables de cette réponse. Nos résultats montrent que le taux de prolifération des CMLV de SHR est significativement plus élevé que celui des CMLV de WKY et que la présence de C-ANP4-23 diminue de manière-dose dépendante le taux de prolifération des CMLV de SHR. En plus, l’expression des protéines de la phase G1 du cycle cellulaire, la cycline D1, la kinase dépendante des cyclines 2 (cdk2) et la forme phosphorylée de la protéine du rétinoblastome (pRb) est augmentée dans les CMLV de SHR comparativement aux CMLV de WKY et est atténué par C-ANP4-23. De plus, nos résultats montrent que les inhibiteurs du complexe cycline D1/cdk4 (NSC 625987) et cdk2 (NU2058) diminue le taux de prolifération élevé des CMLV de SHR. Les CMLV de SHR montrent également un taux de phosphorylation de ERK1/2 et d’AKT et est atténué par C-ANP4-23. De plus, le taux d’expression élevé des protéines cycline D1, cdk2 et pRb des CMLV de SHR est diminué par la toxine pertussis qui inactive la protéine Giα, le PD 98095, un inhibiteur de MEK de la voie des MAPK, du wortmannin, un inhibiteur de la PI3-K et finalement du losartan, un antagoniste du récepteur AT1. Ces résultats suggèrent que l’activation du récepteur NPR-C par C-ANP4-23 diminue le taux de prolifération élevé des CMLV de SHR par une régulation à la baisse des composantes du cycle cellulaire via l’inhibition de la protéine Giα et des voies signalétique MAP kinase/PI3-K.

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Le couplage neurovasculaire (CNV) est un mécanisme d’homéostasie cérébrale régulant le débit sanguin cérébral (CBF) en fonction de l’activité neuronale. La manière dont il est altéré par l’angiotensine II (Ang II), une hormone synthétisée et relâchée dans la circulation systémique ou, alternativement, produite dans le cerveau grâce aux astrocytes, demeure à élucider. Ces cellules expriment le récepteur AT1 (rAT1) et participent à l’orchestration du CNV en relâchant des agents vasoactifs suivant la réponse calcique astrocytaire. Nous avons donc étudié le rôle de cette réponse dans l’altération du CNV induite par l’Ang II. Nous avons trouvé par fluxmétrie par laser Doppler que l’Ang II atténue (p<0.05) la réponse du CBF engendrée par l’activation des récepteurs métabotropes du glutamate du groupe I (mGluRI) du cortex chez la souris C57BL/6. De manière similaire, l’Ang II diminue l'élévation du CBF induite par la stimulation des vibrisses (p<0.05). Sur tranches de cerveaux en aiguë, la polarité de la réponse vasculaire induite par un agoniste mGluRI dans les artérioles parenchymateuses a été significativement renversée par l’Ang II de la vasodilatation vers la vasoconstriction. En parallèle, l’Ang II a augmenté les niveaux de calcium astrocytaire basaux et l’amplitude des réponses calciques (p<0.05). L’altération des réponses vasculaires et calciques maximales a été prévenue par le candesartan, antagoniste des rAT1. Nos résultats suggèrent que l’Ang II potentialise via les rAT1 la réponse calcique qui atteint un seuil favorisant la vasoconstriction par rapport à la vasodilatation, altérant ainsi l’augmentation du CBF en réponse à l’activité neuronale.

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Le système rénine-angiotensine-aldostérone (SRAA) régule l’homéostasie de la contraction des artères. Or, suivant la liaison de l’angiotensine II (Ang II) à son récepteur AT1, le SRAA est également impliqué dans l’activation de voies de signalisation à l’origine de l’inflammation et de l’hypertrophie des cellules musculaires lisses vasculaires (CMLV), soit deux processus participant au remodelage vasculaire caractéristique de diverses maladies cardiovasculaires, telles l’hypertension et l’athérosclérose. Ces pathologies sont les premières causes de mortalité naturelle en Amérique et les traitements les ciblant ne sont pas optimaux puisqu’ils visent seulement quelques facteurs de risque qui leur sont associés. Ainsi, la détermination des effecteurs intracellulaires régulant ces voies délétères est nécessaire à l'identification de nouvelles cibles thérapeutiques. L’inflammation Ang II-dépendante dans les CMLV est attribuée au facteur de transcription nuclear factor-kappa B (NF-κB). Cependant, les processus moléculaires couplant le récepteur AT1 à son activation sont peu caractérisés. L’étude abordant cette question démontre in vitro que NF-κB est activé par la protéine IκB kinase β (IKKβ) dans les CMLV exposées à l’Ang II et que cette kinase est régulée par deux voies de signalisation indépendantes, mais complémentaires afin d’assurer son activation rigoureuse et soutenue. L’une des voies est précoce et dépend des seconds messagers ainsi que de deux nouveaux effecteurs sous-jacents au récepteur AT1, soit la E3 ligase TNF receptor-associated factor 6 (TRAF6) et la IKK kinase transforming growth factor-beta-activated kinase 1 (TAK1) tandis que la seconde est tardive et résulte de la signalisation mitogen-activated protein kinase kinase 1/2 (MEK1/2) - extracellular signal-regulated kinase 1/2 (ERK1/2) - ribosomal S6 kinase (RSK). L’inhibition conjointe de ces voies abroge complètement la réponse inflammatoire, ce qui indique qu’elles en sont la seule source. Ainsi, l’inhibition d’IKKβ pourrait suffire à contrer l’inflammation impliquée dans le remodelage vasculaire associé à une suractivation du SRAA. Une découverte des plus novatrices découle de cette étude, qui veut que la E3 ligase TRAF6 est un nouvel effecteur des récepteurs couplés aux protéines G et est à l’origine de la formation d’un nouveau type de second messager, soit des chaînes libres de poly-ubiquitines. Les mécanismes moléculaires à la base de l’hypertrophie Ang II-dépendante dans les CMLV sont également peu définis. Or, suivant la parution d’un article démontrant qu’IKKβ dans les cellules cancéreuses participe aux mécanismes d’initiation de la traduction en réponse au facteur de nécrose tumorale α (TNFα) via la phosphorylation de la protéine Tuberous sclerosis 1 (TSC1) et donc l’activation du complexe mammalian target of rapamycin (mTORC1), une hypothèse a été émise selon laquelle cette kinase serait impliquée dans la synthèse protéique Ang II-dépendante dans les CMLV. Les expériences effectuées in vitro dans des CMLV exposées à l’Ang II démontrent qu’IKKβ induit la phosphorylation de TSC1 ainsi que l’activation de mTORC1 et de ses substrats S6 kinase 1 (S6K1) et translational regulators eukaryotic translation initiation factor 4E-binding protein (4E-BP1), deux protéines impliquées directement dans l’hypertrophie. Par ailleurs, la synthèse protéique au niveau des CMLV exposées à l’Ang II est réduite de 75% suivant la diminution de l’expression d’IKKβ et suivant la surexpression d’un mutant de TSC1 dont le site consensus d’IKKβ a été modifié, faisant de cette kinase un médiateur majeur au niveau de ce processus. Ainsi, in vitro IKKβ en réponse à l’Ang II est en amont de deux processus impliqués dans un remodelage vasculaire à l’origine de maladies cardiovasculaires. De plus, plusieurs facteurs de risque de ces pathologies convergent à l’activation d’IKKβ, ce qui en fait une cible thérapeutique particulièrement attrayante. Qui plus est, l’administration d’un inhibiteur d’IKKβ à des rats diminue non seulement la synthèse protéique dépendante de l’Ang II au niveau de l’aorte et des artères mésentériques, mais également la synthèse de la protéine pro-inflammatoire VCAM-1 par les cellules composant l’aorte, ce qui confirme son envergure en tant que cible.

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Activation of the brain angiotensin II type 1 receptor (AT1R) triggers pro-oxidant and pro-inflammatory mechanisms which are involved in the neurobiology of bipolar disorder (BD). Candesartan (CDS) is an AT1 receptor antagonist with potential neuroprotective properties. Herein we investigated CDS effects against oxidative, neurotrophic inflammatory and cognitive effects of amphetamine (AMPH)-induced mania. In the reversal protocol adult mice were given AMPH 2mg/kg i.p. or saline and between days 8 and 14 received CDS 0.1, 0.3 or 1mg/kg orally, lithium (Li) 47.5mg/kg i.p., or saline. In the prevention treatment, mice were pretreated with CDS, Li or saline prior to AMPH. Locomotor activity and working memory performance were assessed. Glutathione (GSH), thiobarbituric acid-reactive substance (TBARS) and TNF-α levels were evaluated in the hippocampus (HC) and cerebellar vermis (CV). Brain-derived neurotrophic factor (BDNF) and glycogen synthase kinase 3-beta (GSK-3beta) levels were measured in the HC. CDS and Li prevented and reversed the AMPH-induced increases in locomotor activity. Only CDS prevented and reversed AMPH-induced working memory deficits. CDS prevented AMPH-induced alterations in GSH (HC and CV), TBARS (HC and CV), TNF-α (HC and CV) and BDNF (HC) levels. Li prevented alterations in BDNF and phospho-Ser9-GSK3beta. CDS reversed AMPH-induced alterations in GSH (HC and CV), TBARS (HC), TNF-α (CV) and BDNF levels. Li reversed AMPH-induced alterations in TNF-α (HC and CV) and BDNF (HC) levels. CDS is effective in reversing and preventing AMPH-induced behavioral and biochemical alterations, providing a rationale for the design of clinical trials investigating CDS׳s possible therapeutic effects.

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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OBJETIVO: Avaliar o papel do bloqueador dos receptores AT1 e do inibidor da enzima conversora da angiotensina na remodelação cardíaca induzida por estenose aórtica em ratos. MÉTODOS: Ratos Wistar foram divididos em 4 grupos: controle (C, n=13), estenose aórtica (EAo, n=11), EAo com lisinopril, 20 mg/kg/dia (LIS, n=11) e EAo com losartan, 40 mg/kg/dia (LOS, n=9). Os tratamentos foram iniciados 3 dias antes da cirurgia. Após 6 semanas, os animais foram submetidos ao estudo ecocardiográfico, quantificação da concentração de hidroxiprolina e da área seccional (CSA) miocitária do ventrículo esquerdo (VE). RESULTADOS: A EAo induziu aumento da espessura da parede do VE. Os animais LIS e LOS não apresentaram diferença em relação aos animais controles. Os ratos EAo e LIS apresentaram maiores diâmetros do átrio esquerdo que os ratos controles, enquanto nos animais LOS não houve diferença. Os animais com EAo apresentaram maiores valores da porcentagem de encurtamento que os controle. Esse fato não foi modificado com LIS ou LOS. A CSA dos animais do grupo EAo foi maior que a dos controle. Entretanto, o tratamento com LOS e com LIS atenuou o aumento da área induzida pela EAo. A EAo resultou em aumento na concentração de HOP, enquanto o grupo LOS não apresentou diferença em relação ao grupo controle. CONCLUSÃO: O bloqueio do sistema renina-angiotensina, com bloqueador AT1 e com IECA, pode atenuar o desenvolvimento de hipertrofia cardíaca, porém só o bloqueio dos receptores AT1 atenua a fibrose intersticial do VE.

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In this study we investigated the effects of the injection into the supraoptic nucleus (SON) of non-peptide AT1- and AT2-angiotensin II (ANG II) receptor antagonists, DuP753 and PD123319, as well as of the arginine-vasopressin (AVP) receptor antagonist d(CH2)5-Tyr(Me)-AVP, on water and 3% NaCl intake induced by the injection of ANG II into the medial septal area (MSA). The effects on water or 3% NaCl intake were assessed in 30-h water-deprived or in 20-h water-deprived furosemide-treated adult male rats, respectively. The drugs were injected in 0.5 µl over 30-60 s. Controls were injected with a similar volume of 0.15 M NaCl. Antagonists were injected at doses of 20, 80 and 180 nmol. Water and sodium intake was measured over a 2-h period. Previous administration of the AT1 receptor antagonist DuP753 into the SON decreased water (65%, N = 10, P<0.01) and sodium intake (81%, N = 8, P<0.01) induced by the injection of ANG II (10 nmol) into the MSA. Neither of these responses was significantly changed by injection of the AT2-receptor antagonist PD123319 into the SON. on the other hand, while there was a decrease in water intake (45%, N = 9, P<0.01), ANG II-induced sodium intake was significantly increased (70%, N = 8, P<0.01) following injection of the V1-type vasopressin antagonist d(CH2)5-Tyr(Me)-AVP into the SON. These results suggest that both AT1 and V1 receptors within the SON may be involved in water and sodium intake induced by the activation of ANG II receptors within the MSA. Furthermore, they do not support the involvement of MSA AT2 receptors in the mediation of these responses.

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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Angiotensin II (Ang II) non-peptide antagonists were injected i.c.v. (6.25-200 nmol, n = 5-8 rats/group): In sodium replete rats, losartan (AT1 receptor antagonist) induced an increase in mean arterial pressure (MAP) and in heart rate (HR) by 3rd ventricular (3rdV) injection, and a weaker pressor response and bradycardia by 4th ventricular (4thV) injection. PD123319 (AT2 receptor antagonist) induced an increase in MAP and in HR by 3rdV injection, and an increase in MAP and no alteration in HR by 4thV injection. In sodium deplete (furosemide plus removal of ambient sodium for 24 h) rats, losartan induced an increase in MAP and no alteration in HR by 3rdV injection, and no alteration in MAP and bradycardia by 4thV injection. PD123319 induced an increase in MAP and in HR by 3rdV injection, and an increase in MAP and bradycardia by 4thV injection. Thus, there was no fall in MAP by central injections of Ang II antagonists. Intravenous injection of losartan, but not of PD123319, induced a fall in MAP in both sodium replete and sodium deplete animals. Therefore, losartan and PD123319 can have similar effects on MAP and HR when injected intracerebroventricularly, although some differences are also present. The bradycardia is consistent with an withdrawal of Ang II inhibitory action on baroreflex.

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It has been previously shown that besides its classical role in blood pressure control the reninangiotensin system, mainly by action of angiotensin II on the AT1 receptor, exerts pro-inflammatory effects such as by inducing the production of cytokines. More recently, alternative pathways to this system were described, such as binding of angiotensin-(17) to receptor Mas, which was shown to counteract some of the effects evoked by activation of the angiotensin IIAT1 receptor axis. Here, by means of different molecular approaches we investigated the role of angiotensin-(17) in modulating inflammatory responses triggered in mouse peritoneal macrophages. Our results show that receptor Mas transcripts were up-regulated by eightfold in LPS-induced macrophages. Interestingly, macrophage stimulation with angiotensin-(17), following to LPS exposure, evoked an attenuation in expression of TNF-a and IL-6 pro-inflammatory cytokines; where this event was abolished when the receptor Mas selective antagonist A779 was also included. We then used heterologous expression of the receptor Mas in HEK293T cells to search for the molecular mechanisms underlying the angiotensin-(17)-mediated anti-inflammatory responses by a kinase array; what suggested the involvement of the Src kinase family. In LPS-induced macrophages, this finding was corroborated using the PP2 compound, a specific Src kinase inhibitor; and also by Western blotting when we observed that Ang-(17) attenuated the phosphorylation levels of Lyn, a member of the Src kinase family. Our findings bring evidence for an anti-inflammatory role for angiotensin-(17) at the cellular level, as well as show that its probable mechanism of action includes the modulation of Src kinases activities. J. Cell. Physiol. 227: 21172122, 2012. (C) 2011 Wiley Periodicals, Inc.

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The modulation played by reactive oxygen species on the angiotensin II-induced contraction in type I-diabetic rat carotid was investigated. Concentration-response curves for angiotensin II were obtained in endothelium-intact or endothelium-denuded carotid from control or streptozotocin-induced diabetic rats, pre-treated with tiron (superoxide scavenger), PEG-catalase (hydrogen peroxide scavenger), dimethylthiourea (hydroxyl scavenger), apocynin [NAD(P) H oxidase inhibitor], SC560 (cyclooxygenase-1 inhibitor), SC236 (cyclooxygenase-2 inhibitor) or Y-27632 (Rho-kinase inhibitor). Reactive oxygen species were measured by flow cytometry in dihydroethidium (DHE)-loaded endothelial cells. Cyclooxygenase and AT1-receptor expression was assessed by immunohistochemistry. Diabetes increased the angiotensin II-induced contraction but reduced the agonist potency in rat carotid. Endothelium removal, tiron or apocynin restored the angiotensin II-induced contraction in diabetic rat carotid to control levels. PEG-catalase, DMTU or SC560 reduced the angiotensin II-induced contraction in diabetic rat carotid at the same extent. SC236 restored the angiotensin II potency in diabetic rat carotid. Y-27632 reduced the angiotensin II-induced contraction in endothelium-intact or -denuded diabetic rat carotid. Diabetes increased the DHE-fluorescence of carotid endothelial cells. Apocynin reduced the DHE-fluorescence of endothelial cells from diabetic rat carotid to control levels. Diabetes increased the muscular cyclooxygenase-2 expression but reduced the muscular AT1-receptor expression in rat carotid. In summary, hydroxyl radical, hydrogen peroxide and superoxide anion-derived from endothelial NAD(P) H oxidase mediate the hyperreactivity to angiotensin II in type I-diabetic rat carotid, involving the participation of cyclooxygenase-1 and Rho-kinase. Moreover, increased muscular cyclooxygenase-2 expression in type I-diabetic rat carotid seems to be related to the local reduced AT1-receptor expression and the reduced angiotensin II potency. (C) 2011 Elsevier B. V. All rights reserved.

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In kidney epithelial cells, an angiotensin II (Ang II) type 2 receptor subtype (AT2) is linked to a membrane-associated phospholipase A2 (PLA2) and the mitogen-activated protein kinase (MAPK) superfamily. However, the intervening steps in this linkage have not been determined. The aim of this study was to determine whether arachidonic acid mediates Ang II’s effect on p21ras and if so, to ascertain the signaling mechanism(s). We observed that Ang II activated p21ras and that mepacrine, a phospholipase A2 inhibitor, blocked this effect. This activation was also inhibited by PD123319, an AT2 receptor antagonist but not by losartan, an AT1 receptor antagonist. Furthermore, Ang II caused rapid tyrosine phosphorylation of Shc and its association with Grb2. Arachidonic acid and linoleic acid mimicked Ang II-induced tyrosine phosphorylation of Shc and activation of p21ras. Moreover, Ang II and arachidonic acid induced an association between p21ras and Shc. We demonstrate that arachidonic acid mediates linkage of a G protein-coupled receptor to p21ras via Shc tyrosine phosphorylation and association with Grb2/Sos. These observations have important implications for other G protein-coupled receptors linked to a variety of phospholipases.

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Overactivity of the brain renin-angiotensin system (RAS) has been implicated in the development and maintenance of hypertension in several experimental models, such as spontaneously hypertensive rats and transgenic mice expressing both human renin and human angiotensinogen transgenes. We recently reported that, in the murine brain, angiotensin II (AngII) is converted to angiotensin III (AngIII) by aminopeptidase A (APA), whereas AngIII is inactivated by aminopeptidase N (APN). If injected into cerebral ventricles (ICV), AngII and AngIII cause similar pressor responses. Because AngII is metabolized in vivo into AngIII, the exact nature of the active peptide is not precisely determined. Here we report that, in rats, ICV injection of the selective APA inhibitor EC33 [(S)-3-amino-4-mercaptobutyl sulfonic acid] blocked the pressor response of exogenous AngII, suggesting that the conversion of AngII to AngIII is required to increase blood pressure (BP). Furthermore, ICV injection, but not i.v. injection, of EC33 alone caused a dose-dependent decrease in BP by blocking the formation of brain but not systemic AngIII. This is corroborated by the fact that the selective APN inhibitor, PC18 (2-amino-4-methylsulfonyl butane thiol), administered alone via the ICV route, increases BP. This pressor response was blocked by prior treatment with the angiotensin type 1 (AT1) receptor antagonist, losartan, showing that blocking the action of APN on AngIII metabolism leads to an increase in endogenous AngIII levels, resulting in BP increase, through interaction with AT1 receptors. These data demonstrate that AngIII is a major effector peptide of the brain RAS, exerting tonic stimulatory control over BP. Thus, APA, the enzyme responsible for the formation of brain AngIII, represents a potential central therapeutic target that justifies the development of APA inhibitors as central antihypertensive agents.

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Angiotensin II (AII), acting via its G-protein linked receptor, is an important regulator of cardiac, vascular, and renal function. Following injection of AII into rats, we find that there is also a rapid tyrosine phosphorylation of the major insulin receptor substrates 1 and 2 (IRS-1 and IRS-2) in the heart. This phenomenon appears to involve JAK2 tyrosine kinase, which associates with the AT1 receptor and IRS-1/IRS-2 after AII stimulation. AII-induced phosphorylation leads to binding of phosphatidylinositol 3-kinase (PI 3-kinase) to IRS-1 and IRS-2; however, in contrast to other ligands, AII injection results in an acute inhibition of both basal and insulin-stimulated PI 3-kinase activity. The latter occurs without any reduction in insulin receptor or IRS phosphorylation or in the interaction of the p85 and p110 subunits of PI 3-kinase with each other or with IRS-1/IRS-2. These effects of AII are inhibited by AT1 receptor antagonists. Thus, there is direct cross-talk between insulin and AII signaling pathways at the level of both tyrosine phosphorylation and PI 3-kinase activation. These interactions may play an important role in the association of insulin resistance, hypertension, and cardiovascular disease.