Signalling within the neurovascular unit in the mammalian retina

被引:133
|
作者
Metea, Monica R. [1 ]
Newman, Eric A. [1 ]
机构
[1] Univ Minnesota, Dept Neurosci, Minneapolis, MN 55455 USA
关键词
D O I
10.1113/expphysiol.2006.036376
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Neuronal activity in the central nervous system evokes localized changes in blood flow, a response termed neurovascular coupling or functional hyperaemia. Modern functional imaging methods, such as functional magnetic resonance imaging (fMRI), measure signals related to functional hyperaemia in order to determine localization of brain function and to diagnose disease. The cellular mechanisms that underlie functional hyperaemia, however, are not well understood. Glial cells have been hypothesized to be intermediaries between neurons and blood vessels in the control of neurovascular coupling, owing to their ability to release vasoactive factors in response to neuronal activity. Using an in vitro preparation of the isolated, intact rodent retina, we have investigated two likely mechanisms of glial control of the vasculature: glial K+ siphoning and glial induction of vasoactive arachidonic acid metabolites. Potassium siphoning is a process by which a K+ current flowing through glial cells transfers K+ released from active neurons to blood vessels. Since slight increases in extracellular K+ can cause vasodilatation, this mechanism was hypothesized to contribute to neurovascular coupling. Our data, however, suggest that glial K+ siphoning does not contribute significantly to neurovascular coupling in the retina. Instead, we suggest that glial cells mediate neurovascular coupling by inducing the production of two types of arachidonic acid metabolites, epoxyeicosatrienoic acids (EETs) and 20-hydroxyeicosatetraenoic acid (20-HETE), which dilate and constrict vessels, respectively. We show that both light flashes and direct glial stimulation produce vasodilatation or vasoconstriction mediated by EETs and 20-HETE, respectively. Further, we show that the type of vasomotor response observed (dilatation or constriction) depends on retinal levels of nitric oxide. Our data also demonstrate that glial cells are necessary intermediaries for signalling from neurons to blood vessels, since functional hyperaemia does not occur when neuron-to-glia communication is interrupted. These results indicate that glial cells play an important role in mediating functional hyperaemia and suggest that the regulation of blood flow may involve both vasodilating and vasoconstricting components.
引用
收藏
页码:635 / 640
页数:6
相关论文
共 50 条
  • [1] On the existence of mechanoreceptors within the neurovascular unit of the mammalian brain
    Jorge Larriva-Sahd
    Martha León-Olea
    Víctor Vargas-Barroso
    Alfredo Varela-Echavarría
    Luis Concha
    Brain Structure and Function, 2019, 224 : 2247 - 2267
  • [2] On the existence of mechanoreceptors within the neurovascular unit of the mammalian brain
    Larriva-Sahd, Jorge
    Leon-Olea, Martha
    Vargas-Barroso, Victor
    Varela-Echavarria, Alfredo
    Concha, Luis
    BRAIN STRUCTURE & FUNCTION, 2019, 224 (06): : 2247 - 2267
  • [3] Melanopsin signalling in mammalian iris and retina
    Xue, T.
    Do, M. T. H.
    Riccio, A.
    Jiang, Z.
    Hsieh, J.
    Wang, H. C.
    Merbs, S. L.
    Welsbie, D. S.
    Yoshioka, T.
    Weissgerber, P.
    Stolz, S.
    Flockerzi, V.
    Freichel, M.
    Simon, M. I.
    Clapham, D. E.
    Yau, K. -W.
    NATURE, 2011, 479 (7371) : 67 - 73
  • [4] Melanopsin signalling in mammalian iris and retina
    T. Xue
    M. T. H. Do
    A. Riccio
    Z. Jiang
    J. Hsieh
    H. C. Wang
    S. L. Merbs
    D. S. Welsbie
    T. Yoshioka
    P. Weissgerber
    S. Stolz
    V. Flockerzi
    M. Freichel
    M. I. Simon
    D. E. Clapham
    K.-W. Yau
    Nature, 2011, 479 : 67 - 73
  • [5] INTERACTIONS WITHIN THE NEUROVASCULAR UNIT AND EPILEPTOGENESIS
    Friedman, Alon
    MacVicar, Brian A.
    Steinhaeuser, Chrisitan
    Lerner-Natoli, Mireille
    Kaufer, Daniela
    EPILEPSIA, 2008, 49 : 329 - 329
  • [6] Crosstalk in the Retinal Neurovascular Unit - Lessons for the Diabetic Retina
    Feng, Y.
    Busch, S.
    Gretz, N.
    Hoffmann, S.
    Hammes, H. -P.
    EXPERIMENTAL AND CLINICAL ENDOCRINOLOGY & DIABETES, 2012, 120 (04) : 199 - 201
  • [7] Mammalian Diaphanous1 signalling in neurovascular complications of diabetes
    Jaroslawska, Julia
    Kordas, Bernard
    Milowski, Tadeusz
    Juranek, Judyta K.
    EUROPEAN JOURNAL OF NEUROSCIENCE, 2024, 59 (10) : 2628 - 2645
  • [8] Early alterations of neurovascular unit in the retina in mouse models of tauopathy
    Fan Xia
    Yonju Ha
    Shuizhen Shi
    Yi Li
    Shengguo Li
    Jonathan Luisi
    Rakez Kayed
    Massoud Motamedi
    Hua Liu
    Wenbo Zhang
    Acta Neuropathologica Communications, 9
  • [9] Early alterations of neurovascular unit in the retina in mouse models of tauopathy
    Xia, Fan
    Ha, Yonju
    Shi, Shuizhen
    Li, Yi
    Li, Shengguo
    Luisi, Jonathan
    Motamedi, Massoud
    Liu, Hua
    Zhang, Wenbo
    INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2021, 62 (08)
  • [10] Early alterations of neurovascular unit in the retina in mouse models of tauopathy
    Xia, Fan
    Ha, Yonju
    Shi, Shuizhen
    Li, Yi
    Li, Shengguo
    Luisi, Jonathan
    Kayed, Rakez
    Motamedi, Massoud
    Liu, Hua
    Zhang, Wenbo
    ACTA NEUROPATHOLOGICA COMMUNICATIONS, 2021, 9 (01)