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1.
Am J Physiol Heart Circ Physiol ; 318(3): H632-H638, 2020 03 01.
Artigo em Inglês | MEDLINE | ID: mdl-32004067

RESUMO

Arterial membrane potential (Vm) is set by an active interplay among ion channels whose principal function is to set contractility through the gating of voltage-operated Ca2+ channels. To garner an understanding of this electrical parameter, the activity of each channel must be established under near-physiological conditions, a significant challenge given their small magnitude. The inward rectifying K+ (KIR) channel is illustrative of the problem, as its outward "physiological" component is almost undetectable. This study describes a stepwise approach to dissect small ionic currents at physiological Vm using endothelial and smooth muscle cells freshly isolated from rat cerebral arteries. We highlight three critical steps, beginning with the voltage clamping of vascular cells bathed in physiological solutions while maintaining a giga-ohm seal. KIR channels are then inhibited (micromolar Ba2+) so that a difference current can be created, once Ba2+ traces are corrected for the changing seal resistance and subtle instrument drift, pulling the reversal potential rightward. The latter is a new procedure and entails the alignment of whole cell current traces at a voltage where KIR is silent and other channels exhibit limited activity. We subsequently introduced corrected and uncorrected currents into computer models of the arterial wall to show how these subtle adjustments markedly impact the importance of KIR in Vm and arterial tone regulation. We argue that this refined approach can be used on an array of vascular ion channels to build a complete picture of how they dynamically interact to set arterial tone in key organs like the brain.NEW & NOTEWORTHY This work describes a stepwise approach to resolve small ionic currents involved in controlling Vm in resistance arteries. Using this new methodology, we particularly resolved the outward component of the KIR current in native vascular cells, voltage clamped in near-physiological conditions. This novel approach can be applied to any other vascular currents and used to better interpret how vascular ion channels cooperate to control arterial tone.


Assuntos
Artérias Cerebrais/fisiologia , Potenciais da Membrana/fisiologia , Músculo Liso Vascular/fisiologia , Miócitos de Músculo Liso/fisiologia , Animais , Técnicas de Patch-Clamp , Canais de Potássio Corretores do Fluxo de Internalização/fisiologia , Ratos , Ratos Sprague-Dawley
2.
Nat Commun ; 11(1): 395, 2020 01 20.
Artigo em Inglês | MEDLINE | ID: mdl-31959752

RESUMO

Active nerve cells release vasodilators that increase their energy supply by dilating local blood vessels, a mechanism termed neurovascular coupling and the basis of BOLD functional neuroimaging signals. Here, we reveal a mechanism for cerebral blood flow control, a precapillary sphincter at the transition between the penetrating arteriole and first order capillary, linking blood flow in capillaries to the arteriolar inflow. The sphincters are encircled by contractile mural cells, which are capable of bidirectional control of the length and width of the enclosed vessel segment. The hemodynamic consequence is that precapillary sphincters can generate the largest changes in the cerebrovascular flow resistance of all brain vessel segments, thereby controlling capillary flow while protecting the downstream capillary bed and brain tissue from adverse pressure fluctuations. Cortical spreading depolarization constricts sphincters and causes vascular trapping of blood cells. Thus, precapillary sphincters are bottlenecks for brain capillary blood flow.


Assuntos
Capilares/fisiologia , Córtex Cerebral/irrigação sanguínea , Circulação Cerebrovascular/fisiologia , Contração Muscular/fisiologia , Músculo Liso Vascular/fisiologia , Animais , Capilares/diagnóstico por imagem , Córtex Cerebral/diagnóstico por imagem , Depressão Alastrante da Atividade Elétrica Cortical/fisiologia , Feminino , Neuroimagem Funcional/métodos , Imageamento Tridimensional , Microscopia Intravital/instrumentação , Microscopia Intravital/métodos , Masculino , Camundongos , Microscopia Confocal/instrumentação , Microscopia Confocal/métodos , Microscopia de Fluorescência por Excitação Multifotônica/instrumentação , Microscopia de Fluorescência por Excitação Multifotônica/métodos , Modelos Animais , Modelos Cardiovasculares , Músculo Liso Vascular/diagnóstico por imagem , Fluxo Sanguíneo Regional/fisiologia , Crânio/cirurgia , Trepanação
3.
Arterioscler Thromb Vasc Biol ; 40(3): 733-750, 2020 03.
Artigo em Inglês | MEDLINE | ID: mdl-31826653

RESUMO

OBJECTIVE: Cerebral arterial networks match blood flow delivery with neural activity. Neurovascular response begins with a stimulus and a focal change in vessel diameter, which by themselves is inconsequential to blood flow magnitude, until they spread and alter the contractile status of neighboring arterial segments. We sought to define the mechanisms underlying integrated vascular behavior and considered the role of intercellular electrical signaling in this phenomenon. Approach and Results: Electron microscopic and histochemical analysis revealed the structural coupling of cerebrovascular cells and the expression of gap junctional subunits at the cell interfaces, enabling intercellular signaling among vascular cells. Indeed, robust vasomotor conduction was detected in human and mice cerebral arteries after focal vessel stimulation: a response attributed to endothelial gap junctional communication, as its genetic alteration attenuated this behavior. Conducted responses were observed to ascend from the penetrating arterioles, influencing the contractile status of cortical surface vessels, in a simulated model of cerebral arterial network. Ascending responses recognized in vivo after whisker stimulation were significantly attenuated in mice with altered endothelial gap junctional signaling confirming that gap junctional communication drives integrated vessel responses. The diminishment in vascular communication also impaired the critical ability of the cerebral vasculature to maintain blood flow homeostasis and hence tissue viability after stroke. CONCLUSIONS: Our findings highlight the integral role of intercellular electrical signaling in transcribing focal stimuli into coordinated changes in cerebrovascular contractile activity and expose, a hitherto unknown mechanism for flow regulation after stroke.


Assuntos
Isquemia Encefálica/fisiopatologia , Comunicação Celular , Circulação Cerebrovascular , Células Endoteliais , Junções Comunicantes , Artéria Cerebral Média/inervação , Acoplamento Neurovascular , Acidente Vascular Cerebral/fisiopatologia , Adulto , Animais , Isquemia Encefálica/metabolismo , Isquemia Encefálica/patologia , Simulação por Computador , Conexinas/genética , Conexinas/metabolismo , Modelos Animais de Doenças , Condutividade Elétrica , Células Endoteliais/metabolismo , Células Endoteliais/ultraestrutura , Feminino , Junções Comunicantes/metabolismo , Junções Comunicantes/ultraestrutura , Homeostase , Humanos , Masculino , Camundongos Endogâmicos C57BL , Camundongos Knockout , Pessoa de Meia-Idade , Artéria Cerebral Média/metabolismo , Artéria Cerebral Média/ultraestrutura , Modelos Cardiovasculares , Acidente Vascular Cerebral/metabolismo , Acidente Vascular Cerebral/patologia , Proteína alfa-5 de Junções Comunicantes
4.
Arterioscler Thromb Vasc Biol ; 39(6): 1072-1087, 2019 06.
Artigo em Inglês | MEDLINE | ID: mdl-31043073

RESUMO

Objective- Inward rectifying K+ (KIR) channels are present in cerebral arterial smooth muscle and endothelial cells, a tandem arrangement suggestive of a dynamic yet undiscovered role for this channel. This study defined whether distinct pools of cerebral arterial KIR channels were uniquely modulated by membrane lipids and hemodynamic stimuli. Approach and Results- A Ba2+-sensitive KIR current was isolated in smooth muscle and endothelial cells of rat cerebral arteries; molecular analyses subsequently confirmed KIR2.1/KIR2.2 mRNA and protein expression in both cells. Patch-clamp electrophysiology next demonstrated that each population of KIR channels was sensitive to key membrane lipids and hemodynamic stimuli. In this regard, endothelial KIR was sensitive to phosphatidylinositol 4,5-bisphosphate content, with depletion impairing the ability of laminar shear stress to activate this channel pool. In contrast, smooth muscle KIR was sensitive to membrane cholesterol content, with sequestration blocking the ability of pressure to inhibit channel activity. The idea that membrane lipids help confer shear stress and pressure sensitivity of KIR channels was confirmed in intact arteries using myography. Virtual models integrating structural/electrical observations reconceptualized KIR as a dynamic regulator of membrane potential working in concert with other currents to set basal tone across a range of shear stresses and intravascular pressures. Conclusions- The data show for the first time that specific membrane lipid-KIR interactions enable unique channel populations to sense hemodynamic stimuli and drive vasomotor responses to set basal perfusion in the cerebral circulation.


Assuntos
Artérias Cerebrais/metabolismo , Circulação Cerebrovascular/fisiologia , Células Endoteliais/metabolismo , Lipídeos de Membrana/metabolismo , Canais de Potássio Corretores do Fluxo de Internalização/metabolismo , RNA Mensageiro/genética , Animais , Comunicação Celular/fisiologia , Células Cultivadas , Feminino , Regulação da Expressão Gênica , Hemodinâmica/fisiologia , Potenciais da Membrana , Modelos Animais , Ratos , Ratos Sprague-Dawley , Valores de Referência
5.
Am J Physiol Heart Circ Physiol ; 316(4): H794-H800, 2019 04 01.
Artigo em Inglês | MEDLINE | ID: mdl-30681365

RESUMO

In the rodent cerebral circulation, inward rectifying K+ (KIR) channels set resting tone and the distance over which electrical phenomena spread along the arterial wall. The present study sought to translate these observations into human cerebral arteries obtained from resected brain tissue. Computational modeling and a conduction assay first defined the impact of KIR channels on electrical communication; patch-clamp electrophysiology, quantitative PCR, and immunohistochemistry then characterized KIR2.x channel expression/activity. In keeping with rodent observations, computer modeling highlighted that KIR blockade should constrict cerebral arteries and attenuate electrical communication if functionally expressed. Surprisingly, Ba2+ (a KIR channel inhibitor) had no effect on human cerebral arterial tone or intercellular conduction. In alignment with these observations, immunohistochemistry and patch-clamp electrophysiology revealed minimal KIR channel expression/activity in both smooth muscle and endothelial cells. This absence may be reflective of chronic stress as dysphormic neurons, leukocyte infiltrate, and glial fibrillary acidic protein expression was notable in the epileptic cortex. In closing, KIR2.x channel expression is limited in human cerebral arteries from patients with epilepsy and thus has little impact on resting tone or the spread of vasomotor responses. NEW & NOTEWORTHY KIR2.x channels are expressed in rodent cerebral arterial smooth muscle and endothelial cells. As they are critical to setting membrane potential and the distance signals conduct, we sought to translate this work into humans. Surprisingly, KIR2.x channel activity/expression was limited in human cerebral arteries, a paucity tied to chronic brain stress in the epileptic cortex. Without substantive expression, KIR2.x channels were unable to govern arterial tone or conduction.


Assuntos
Artérias Cerebrais/fisiologia , Canais de Potássio Corretores do Fluxo de Internalização/fisiologia , Adulto , Bário/farmacologia , Comunicação Celular , Artérias Cerebrais/efeitos dos fármacos , Simulação por Computador , Fenômenos Eletrofisiológicos/fisiologia , Células Endoteliais/efeitos dos fármacos , Células Endoteliais/fisiologia , Epilepsia/fisiopatologia , Feminino , Humanos , Técnicas In Vitro , Masculino , Pessoa de Meia-Idade , Tono Muscular/efeitos dos fármacos , Músculo Liso Vascular/citologia , Miócitos de Músculo Liso/metabolismo , Técnicas de Patch-Clamp , Bloqueadores dos Canais de Potássio/farmacologia , Canais de Potássio Corretores do Fluxo de Internalização/efeitos dos fármacos , Adulto Jovem
6.
Proc Natl Acad Sci U S A ; 115(25): E5796-E5804, 2018 06 19.
Artigo em Inglês | MEDLINE | ID: mdl-29866853

RESUMO

Functional neuroimaging, such as fMRI, is based on coupling neuronal activity and accompanying changes in cerebral blood flow (CBF) and metabolism. However, the relationship between CBF and events at the level of the penetrating arterioles and capillaries is not well established. Recent findings suggest an active role of capillaries in CBF control, and pericytes on capillaries may be major regulators of CBF and initiators of functional imaging signals. Here, using two-photon microscopy of brains in living mice, we demonstrate that stimulation-evoked increases in synaptic activity in the mouse somatosensory cortex evokes capillary dilation starting mostly at the first- or second-order capillary, propagating upstream and downstream at 5-20 µm/s. Therefore, our data support an active role of pericytes in cerebrovascular control. The gliotransmitter ATP applied to first- and second-order capillaries by micropipette puffing induced dilation, followed by constriction, which also propagated at 5-20 µm/s. ATP-induced capillary constriction was blocked by purinergic P2 receptors. Thus, conducted vascular responses in capillaries may be a previously unidentified modulator of cerebrovascular function and functional neuroimaging signals.


Assuntos
Capilares/fisiologia , Circulação Cerebrovascular/fisiologia , Córtex Somatossensorial/irrigação sanguínea , Vasoconstrição/fisiologia , Trifosfato de Adenosina/metabolismo , Animais , Arteríolas/metabolismo , Arteríolas/fisiologia , Capilares/metabolismo , Feminino , Neuroimagem Funcional/métodos , Masculino , Camundongos , Pericitos/metabolismo , Pericitos/fisiologia , Receptores Purinérgicos P2/metabolismo , Córtex Somatossensorial/metabolismo , Córtex Somatossensorial/fisiologia , Vasodilatação/fisiologia
7.
Annu Rev Pharmacol Toxicol ; 58: 391-410, 2018 01 06.
Artigo em Inglês | MEDLINE | ID: mdl-28968190

RESUMO

Arterial tone is coordinated among vessel segments to optimize nutrient transport and organ function. Coordinated vasomotor activity is remarkable to observe and depends on stimuli, sparsely generated in tissue, eliciting electrical responses that conduct lengthwise among electrically coupled vascular cells. The conducted response is the focus of this topical review, and in this regard, the authors highlight literature that advances an appreciation of functional significance, cellular mechanisms, and biophysical principles. Of particular note, this review stresses that conduction is enabled by a defined pattern of charge movement along the arterial wall as set by three key parameters (tissue structure, gap junctional resistivity, and ion channel activity). The impact of disease on conduction is carefully discussed, as are potential strategies to restore this key biological response and, along with it, the match of blood flow delivery with tissue energetic demand.


Assuntos
Endotélio Vascular/fisiologia , Músculo Liso Vascular/fisiologia , Sistema Vasomotor/fisiologia , Animais , Humanos , Transdução de Sinais/fisiologia
8.
J Cereb Blood Flow Metab ; 37(6): 2171-2184, 2017 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-27466375

RESUMO

The conducted vasomotor response reflects electrical communication in the arterial wall and the distance signals spread is regulated by three factors including resident ion channels. This study defined the role of inward-rectifying K+ channels (KIR) in governing electrical communication along hamster cerebral arteries. Focal KCl application induced a vasoconstriction that conducted robustly, indicative of electrical communication among cells. Inhibiting dominant K+ conductances had no attenuating effect, the exception being Ba2+ blockade of KIR. Electrophysiology and Q-PCR analysis of smooth muscle cells revealed a Ba2+-sensitive KIR current comprised of KIR2.1/2.2 subunits. This current was surprisingly small and when incorporated into a model, failed to account for the observed changes in conduction. We theorized a second population of KIR channels exist and consistent with this idea, a robust Ba2+-sensitive KIR2.1/2.2 current was observed in endothelial cells. When both KIR currents were incorporated into, and then inhibited in our model, conduction decay was substantive, aligning with experiments. Enhanced decay was ascribed to the rightward shift in membrane potential and the increased feedback arising from voltage-dependent-K+ channels. In summary, this study shows that two KIR populations work collaboratively to govern electrical communication and the spread of vasomotor responses along cerebral arteries.


Assuntos
Comunicação Celular/fisiologia , Artérias Cerebrais/metabolismo , Endotélio Vascular/metabolismo , Músculo Liso Vascular/metabolismo , Canais de Potássio Corretores do Fluxo de Internalização/metabolismo , Vasoconstrição/fisiologia , Animais , Comunicação Celular/efeitos dos fármacos , Artérias Cerebrais/fisiologia , Endotélio Vascular/fisiologia , Técnicas In Vitro , Masculino , Potenciais da Membrana/efeitos dos fármacos , Potenciais da Membrana/fisiologia , Mesocricetus , Modelos Biológicos , Músculo Liso Vascular/fisiologia , Técnicas de Patch-Clamp , Canais de Potássio Corretores do Fluxo de Internalização/genética , Cloreto de Potássio/farmacologia , Fluxo Sanguíneo Regional/fisiologia , Vasoconstrição/efeitos dos fármacos
9.
Physiol Rep ; 4(11)2016 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-27255360

RESUMO

Mean arterial pressure (MAP) is surprisingly similar across different species of mammals, and it is, in general, not known which factors determine the arterial pressure level. Mammals often have a pronounced capacity for sustained physical performance. This capacity depends on the vasculature having a flow reserve that comes into play as tissue metabolism increases. We hypothesize that microvascular properties allowing for a large vascular flow reserve is linked to the level of the arterial pressure.To study the interaction between network properties and network inlet pressure, we developed a generic and parsimonious computational model of a bifurcating microvascular network where diameter and growth of each vessel evolves in response to changes in biomechanical stresses. During a simulation, the network develops well-defined arterial and venous vessel characteristics. A change in endothelial function producing a high precapillary resistance and thus a high vascular flow reserve is associated with an increase in network inlet pressure. Assuming that network properties are independent of body mass, and that inlet pressure of the microvascular network is a proxy for arterial pressure, the study provides a conceptual explanation of why high performing animals tend to have a high MAP.


Assuntos
Pressão Arterial/fisiologia , Hemodinâmica/fisiologia , Modelos Cardiovasculares , Animais , Microcirculação/fisiologia , Microvasos/fisiologia , Resistência Vascular/fisiologia
10.
FEBS J ; 279(23): 4410-20, 2012 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-23072639

RESUMO

Coherent glycolytic oscillations in Saccharomyces cerevisiae are a multicellular property induced by addition of glucose to a starved cell population of sufficient density. However, initiation of oscillations requires an additional perturbation, usually addition of cyanide. The fate of cyanide during glycolytic oscillations has not previously been studied, and is the subject of the present paper. Using a cyanide electrode, a substantial decrease in cyanide concentration was observed. In the pH range 6-7, we found experimentally that the electrode behaves reasonably well, provided changes in pH are taken into account. To our knowledge, use of a cyanide electrode to study cyanide dynamics in living biological systems is new. Cyanide was found to enter starving yeast cells in only negligible amounts, and did not react significantly with glucose. Thus, cyanide consumption must be explained by reactions with glycolytic intermediates and evaporation. Evaporation and reaction with the signalling substance, extracellular acetaldehyde (ACA(x)) only explains the observed cyanide removal if [ACA(x)] is improbably high. Furthermore, differences in NADH traces upon cyanide addition before or after glucose addition strongly suggest that cyanide also reacts with intracellular carbonyl-containing metabolites. We show that cyanide reacts with pyruvate (Pyr) and dihydroxyacetone phosphate in addition to ACA, and estimate their rate constants. Our results strongly suggest that the major routes of cyanide removal during glycolysis are reactions with pyruvate and ACA. Cyanide removal by all carbonyl-containing intermediates led to a lower mean [ACA(x) ], thereby increasing the amplitude of [ACA(x) ] oscillations.


Assuntos
Cianetos/farmacologia , Saccharomyces cerevisiae/metabolismo , Acetaldeído/metabolismo , Fosfato de Di-Hidroxiacetona/metabolismo , Glucose/metabolismo , Concentração de Íons de Hidrogênio
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