Inhibitory effect of gap junction blockers on cerebral vasospasm

Laboratory investigation

Tao Hong M.D., Yang Wang M.D., Hai-tao Wang M.M.(China), and Huan Wang M.M. (China)
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  • Department of Neurosurgery, The First Affiliated Hospital of Nanchang University, Nanchang, Jiangxi, China
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Object

The gap junction is important in the propagation of dilation/constriction signals along vessels for coordinated behavior in control of vascular tone. The authors hypothesized that gap junctions might play a role in cerebral vasospasm following subarachnoid hemorrhage (SAH). The aims of the present study were to investigate the role of gap junctions and to observe the potential therapeutic efficacy of gap junction blockers in cerebral vasospasm in vitro and in vivo.

Methods

For the in vitro investigation, the effect of heptanol on the oxyhemoglobin (HbO2)-induced contraction of isolated rabbit basilar arteries (BAs) was observed by using an isometric tension-recording method. For the in vivo experiments, the potential therapeutic efficacy of heptanol and carbenoxolone was surveyed after it was given intravenously in the rabbit double-hemorrhage model. Light microscopy was performed to assess the morphological changes in the arteries examined.

Results

For the in vitro method, heptanol significantly inhibited the sustained contraction induced both by HbO2 and K+ in the BA rings. The magnitude of the heptanol-induced relaxation was dose dependent. The inhibitory effect of heptanol on the K+-induced vasoconstriction was weaker than that on the HbO2-induced constriction. After arterial rings were pretreated for 10 minutes, heptanol significantly decreased their responses to the HbO2-induced contraction. For the in vivo method, heptanol and carbenoxolone significantly decreased the narrowing of BAs when given intravenously in the rabbit double-hemorrhage model. In both treated groups, the diameters of the arteries had not changed significantly on Day 7 compared with those of the arteries in the SAH + vehicle and the SAH-only group.

Conclusions

Heptanol and carbenoxolone significantly inhibited the experimental cerebral vasospasm both in vitro and in vivo. Blockage of gap junctions is a probable candidate for a new approach in the treatment of cerebral vasospasm. Gap junctions may play a pathophysiological role in cerebral vasospasm.

Abbreviations used in this paper:

BA = basilar artery; HbO2 = oxyhemoglobin; SAH = subarachnoid hemorrhage; SEM = standard error of the mean.

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  • 1

    Alvarez-Maubecin V, , García-Hernández F, , Williams JT, & Van Bockstaele EJ: Functional coupling between neurons and glia. J Neurosci 20:40914098, 2000

    • Search Google Scholar
    • Export Citation
  • 2

    Christ GJ: Modulation of alpha 1-adrenergic contractility in isolated vascular tissues by heptanol: a functional demonstration of the potential importance of intercellular communication to vascular response generation. Life Sci 56:709721, 1995

    • Search Google Scholar
    • Export Citation
  • 3

    Christ GJ, & Brink PR: Analysis of the presence and physiological relevance of subconducting states of connexin43-derived gap junction channels in cultured human corporal vascular smooth muscle cells. Circ Res 84:797803, 1999

    • Search Google Scholar
    • Export Citation
  • 4

    Christ GJ, & Brink PR: Gap junctions in isolated rat aorta: evidence for contractile responses that exhibit a differential dependence on intercellular communication. Braz J Med Biol Res 33:423429, 2000

    • Search Google Scholar
    • Export Citation
  • 5

    Christ GJ, , Brink PR, , Zhao W, , Moss J, , Gondre CM, & Roy C, et al.: Gap junctions modulate tissue contractility and alpha 1 adrenergic agonist efficacy in isolated rat aorta. J Pharmacol Exp Ther 266:10541065, 1993

    • Search Google Scholar
    • Export Citation
  • 6

    Christ GJ, , Moreno AP, , Parker ME, , Gondre CM, , Valcic M, & Melman A, et al.: Intercellular communication through gap junctions: a potential role in pharmacomechanical coupling and syncytial tissue contraction in vascular smooth muscle isolated from the human corpus cavernosum. Life Sci 49:195200, 1991

    • Search Google Scholar
    • Export Citation
  • 7

    Christ GJ, , Spektor M, , Brink PR, & Barr L: Further evidence for the selective disruption of intercellular communication by heptanol. Am J Physiol 276:H1911H1917, 1999

    • Search Google Scholar
    • Export Citation
  • 8

    Christ GJ, , Spray DC, , el-Sabban M, , Moore LK, & Brink PR: Gap junctions in vascular tissues. Evaluating the role of intercellular communication in the modulation of vasomotor tone. Circ Res 79:631646, 1996

    • Search Google Scholar
    • Export Citation
  • 9

    Cottrell GT, & Burt JM: Heterotypic gap junction channel formation between heteromeric and homomeric Cx40 and Cx43 connexons. Am J Physiol Cell Physiol 281:C1559C1567, 2001

    • Search Google Scholar
    • Export Citation
  • 10

    De Wit C, , Wolfle SE, & Hopfl B: Connexin-dependent communication within the vascular wall: contribution to the control of arteriolar diameter. Adv Cardiol 42:268283, 2006

    • Search Google Scholar
    • Export Citation
  • 11

    Dewey MM, & Barr L: Intracellular connection between smooth muscle cells: the nexus. Science 137:670672, 1962

  • 12

    Dietrich HH, & Dacey RG Jr: Molecular keys to the problems of cerebral vasospasm. Neurosurgery 46:517530, 2000

  • 13

    Dora KA, , Xia J, & Duling BR: Endothelial cell signaling during conducted vasomotor responses. Am J Physiol Heart Circ Physiol 285:H119H126, 2003

    • Search Google Scholar
    • Export Citation
  • 14

    Fujiwara S, , Kassell NF, , Sasaki T, , Nakagomi T, & Lehman RM: Selective of hemoglobin inhibition of endothelium dependent vasodilation of rabbit basilar artery. J Neurosurg 64:445452, 1986

    • Search Google Scholar
    • Export Citation
  • 15

    Gioia AE, , White RP, , Bakhtian B, & Robertson JT: Evaluation of the efficacy of intrathecal nimodipine in canine models of chronic cerebral vasospasm. J Neurosurg 62:721728, 1985

    • Search Google Scholar
    • Export Citation
  • 16

    Guan X, , Wilson S, , Schlender KK, & Ruch RJ: Gap-junction disassembly and connexin 43 dephosphorylation induced by 18 beta-glycyrrhetinic acid. Mol Carcinog 16:157164, 1996

    • Search Google Scholar
    • Export Citation
  • 17

    Haddock RE, , Grayson TH, , Brackenbury TD, , Meaney KR, , Neylon CB, & Sandow SL, et al.: Endothelial coordination of cerebral vasomotion via myoendothelial gap junctions containing connexins 37 and 40. Am J Physiol Heart Circ Physiol 291:H2047H2056, 2006

    • Search Google Scholar
    • Export Citation
  • 18

    Herve JC, & Dhein S: Pharmacology of cardiovascular gap junctions. Adv Cardiol 42:107131, 2006

  • 19

    Hill CE, , Rummery N, , Hickey H, & Sandow SL: Heterogeneity in the distribution of vascular gap junctions and connexins: implications for function. Clin Exp Pharmacol Physiol 29:620625, 2002

    • Search Google Scholar
    • Export Citation
  • 20

    Hills CE, , Bland R, , Wheelans DC, , Bennett J, , Ronco PM, & Squires PE: Glucose-evoked alterations in connexin43-mediated cell-to-cell communication in human collecting duct: a possible role in diabetic nephropathy. Am J Physiol Renal Physiol 291:F1045F1051, 2006

    • Search Google Scholar
    • Export Citation
  • 21

    Hong T, & Hill CE: Restricted expression of the gap junctional connexin 43 in the arterial system of the rat. J Anat 192:583593, 1998

  • 22

    Jiao Z, , De Jesus VR, , Iravanian S, , Campbell DP, , Xu J, & Vitali JA, et al.: A possible mechanism of halocarbon-induced cardiac sensitization arrhythmias. J Mol Cell Cardiol 41:698705, 2006

    • Search Google Scholar
    • Export Citation
  • 23

    Kamermans M, , Fahrenfort I, , Janssen-Bienhold U, , Schultz K, , Sjoerdsma T, & Wieler R: Hemichannel mediated inhibition in the outer retina. Science 292:11781180, 2001

    • Search Google Scholar
    • Export Citation
  • 24

    Kassell NF, , Sasaki T, , Colohan AR, & Nazar G: Cerebral vasospasm following aneurysmal subarachnoid hemorrhage. Stroke 16:562572, 1985

  • 25

    Kumar NM, & Gilula NB: The gap junction communication channel. Cell 84:381388, 1996

  • 26

    Kuwayama A, , Zervas NT, , Belson R, , Shintani A, & Pickren K: A model for experimental cerebral arterial spasm. Stroke 3:4956, 1972

  • 27

    Lee RM, , Garfield RE, , Forrest JB, & Daniel EE: Morphometric study of structural changes in the mesenteric blood vessels of spontaneously hypertensive rats. Blood Vessels 20:5771, 1983

    • Search Google Scholar
    • Export Citation
  • 28

    Leite R, & Webb RC: Increased dilator response to heptanol and octanol in aorta from DOCA-salt-hypertensive rats. Pharmacology 62:2935, 2001

    • Search Google Scholar
    • Export Citation
  • 29

    Li X, & Simard JM: Multiple connexins form gap junction channels in rat basilar artery smooth muscle cells. Circ Res 84:12771284, 1999

  • 30

    Macdonald RL, & Weir BK: A review of hemoglobin and the pathogenesis of cerebral vasospasm. Stroke 22:971982, 1991

  • 31

    Martin W, , Villani GM, , Jothianandan D, & Furchgott RF: Selective blockade of endothelium-dependent and glyceryl trinitrate-induced relaxation by hemoglobin and by methylene blue in the rabbit aorta. J Pharmacol Exp Ther 232:708716, 1985

    • Search Google Scholar
    • Export Citation
  • 32

    Megyesi JF, , Vollrath B, , Cook DA, & Findlay JM: In vivo animal models of cerebral vasospasm: a review. Neurosurgery 46:448460, 2000

  • 33

    Oviedo-Orta E, & Howard EW: Gap junctions and connexin-mediated communication in the immune system. Biochim Biophys Acta 1662:102112, 2004

    • Search Google Scholar
    • Export Citation
  • 34

    Rudisuli A, & Weingart R: Electrical properties of gap junction channels in guinea pig ventricular cell pairs revealed by exposure to heptanol. Pflugers Arch 415:1221, 1989

    • Search Google Scholar
    • Export Citation
  • 35

    Rummery NM, & Hill CE: Vascular gap junctions and implications for hypertension. Clin Exp Pharmacol Physiol 31:659667, 2004

  • 36

    Saez JC, , Connor JA, , Spray DC, & Bennett MV: Hepatocyte gap junctions are permeable to the second messenger, inositol 1,4,5-trisphosphate, and to calcium ions. Proc Natl Acad Sci U S A 86:27082712, 1989

    • Search Google Scholar
    • Export Citation
  • 37

    Segal SS: Integration of blood flow control to skeletal muscle: key role of feed arteries. Acta Physiol Scand 168:511518, 2000

  • 38

    Shishido T, , Suzuki R, , Qian L, & Hirakawa K: The role of superoxide anions in the pathogenesis of cerebral vasospasm. Stroke 25:864868, 1994

    • Search Google Scholar
    • Export Citation
  • 39

    Sobey CG, & Faraci FM: Subarachnoid haemorrhage: what happens to the cerebral arteries?. Clin Exp Pharmacol Physiol 25:867876, 1998

  • 40

    Vancheri C, , Mastruzzo C, , Tomaselli V, , Sortino MA, , D'Amico L, & Bellistri G, et al.: Normal human lung fibroblasts differently modulate interleukin-10 and interleukin-12 production by monocytes: implications for an altered immune response in pulmonary chronic inflammation. Am J Respir Cell Mol Biol 25:592599, 2001

    • Search Google Scholar
    • Export Citation
  • 41

    Welty TE, & Horner TG: Pathophysiology and treatment of sub-arachnoid hemorrhage. Clin Pharm 9:3539, 1990

  • 42

    White RP, & Robertson JT: Role of plasmin, thrombin, and anti-thrombin as etiological factors in delayed cerebral vasospasm. Neurosurgery 16:2735, 1985

    • Search Google Scholar
    • Export Citation
  • 43

    Yamamoto Y, , Klemm MF, , Edwards FR, & Suzuki H: Intercellular electrical communication among smooth muscle and endothelial cells in guinea-pig mesenteric arterioles. J Physiol 535:181195, 2001

    • Search Google Scholar
    • Export Citation

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