Subscribe to RSS
DOI: 10.1055/s-0030-1269885
© J. A. Barth Verlag in Georg Thieme Verlag KG Stuttgart · New York
Insulin-Induced Electrochemical Changes in Pleura are Associated with the Location within the Pleural Cavity
Publication History
received 20.06.2010
first decision 23.10.2010
accepted 24.11.2010
Publication Date:
24 January 2011 (online)

Abstract
Aim: We investigated the effects of insulin on the electrophysiology of sheep pleural specimens obtained from the upper and lower parts of the pleural cavity and the insulin receptor abundance in these regions.
Materials and methods: Sheep pleural specimens were obtained from the upper and lower lung lobes and from the 1st–4th and 8th–12th ribs and were mounted between Ussing chambers. Insulin 10−7 M was added on the mesothelial surface with Insulin Receptor (IR) inhibitor in some experiments. Trans-mesothelial Resistance (R TM ) was determined. Immunohistochemistry for the presence of IR differences was performed.
Results: Insulin increased the R TM of all pleural regions. Higher R TM increase was demonstrated in lower lobe visceral and in caudal parietal specimens. The R TM increase demonstrated in caudal parietal had the tendency to be higher than that observed in the lower lobe visceral specimens. IR inhibitor abolished insulin's effect in all regions. Immunostaining was more intense for parietal and for caudal parietal specimens when compared with the visceral and lower lobe visceral specimens.
Conclusion: Insulin induces electrochemical alterations that vary depending on the location of specimens within the pleural cavity which possibly is not correlated with insulin receptors variations.
Key words
insulin - pleura - sheep - topography - variations
References
- 1
Blazer-Yost BL, Cox M, Furlanetto R.
Insulin and IGF-I receptor mediated Na+ transport in toad urinary bladders.
Am J Physiol.
1989;
257
612-620
MissingFormLabel
- 2
Blazer-Yost BL, Xuehong L, Helman SI.
Hormonal regulation of ENaCs: insulin and aldosterone.
Am J Physiol Cell Physiol.
1998;
274
1373-1379
MissingFormLabel
- 3
Chelliah A, Burge MR.
Insulin edema in the twenty-first century: review of the existing literature.
J Invest Med.
2004;
52
104-108
MissingFormLabel
- 4
Deachapunya C, Palmer-Densmore M, O’Grady SM.
Insulin stimulates transepithelial sodium transport by activation of a protein phosphatase
that increases Na-K ATPase activity in endometrial epithelial cells.
J Gen Physiol.
1999;
114
561-574
MissingFormLabel
- 5
Hammerman MR.
Interaction of insulin with the renal proximal tubular cell.
Am J Physiol.
1985;
249
F1-F11
MissingFormLabel
- 6
Hatzoglou CH, Gourgoulianis KI, Hatzoglou A. et al .
Rapid effects of 17β-estradiol and progesterone on sheep visceral and parietal pleurae
via a nitric oxide pathway.
J Appl Physiol.
2002;
93
752-758
MissingFormLabel
- 7
Hatzoglou CH, Gourgoulianis KI, Molyvdas PA.
Effect of SNP, ouabain and amiloride on the electrical potential profile of isolated
sheep pleura.
J Appl Physiol.
2001;
90
1565-1569
MissingFormLabel
- 8
Hubmayr RD, Walters BJ, Chevalier PA. et al .
Topographic distribution of regional lung volume in anesthetized dogs.
J Appl Physiol.
1983;
54
1048-1056
MissingFormLabel
- 9
Kalambokis GN, Tsatsoulis AA, Tsianos EV.
The edematogenic properties of insulin.
Am J Kid Dis.
2004;
44
575-590
MissingFormLabel
- 10
Kouritas VK, Hatzoglou C, Foroulis CN. et al .
Human parietal pleura present electrophysiology variations according to location in
pleural cavity.
Interact Cardiovasc Thorac Surg.
2008;
7
544-547
MissingFormLabel
- 11
Kouritas VK, Hatzoglou C, Gourgoulianis KI. et al .
Pleural electrophysiology variations according to location in pleural cavity.
Interact Cardiovasc Thorac Surg.
2009;
9
391-394
MissingFormLabel
- 12
Kouritas VK, Hatzoglou C, Ioannou M. et al .
Insulin alters the permeability of sheep pleura.
Exp Clin Endocrinol Diabetes.
2010a;
118
304-309
MissingFormLabel
- 13
Kouritas VK, Hatzoglou CH, Gourgoulianis KI. et al .
Role of electrolytes and glucose in the insulin-induced electrochemical effect in
sheep pleura.
Exp Clin Endocrinol Diabetes.
2010b;
118
328-332
MissingFormLabel
- 14
Kouritas VK, Ioannou M, Foroulis CN. et al .
Insulin-induced electrophysiology changes in human pleura are mediated via its receptor.
Exp Diabetes Res.
2010c;
853176
MissingFormLabel
- 15
Lai-Fook SJ.
Pleural mechanics and fluid exchange.
Physiol Rev.
2004;
84
385-410
MissingFormLabel
- 16
McRoberts JA, Riley NE.
Regulation of T84 cell monolayer permeability by insulin-like growth factors.
Am J Physiol.
1992;
262
C207-13
MissingFormLabel
- 17
Miura T, Shimada T, Tanaka K. et al .
Lymphatic drainage of carbon particles injected into the pleural cavity of the monkey,
as studied by video-assisted thoracoscopy and electron microscopy.
J Thorac Cardiovasc Surg.
2000;
120
437-447
MissingFormLabel
- 18
Negrini D, Mukenge S, Del Fabbro M. et al .
Distribution of lymphatics in the parietal pleura.
J Appl Physiol.
1991;
70
1544-1549
MissingFormLabel
- 19
Negrini D, Pistolesi M, Minitati M. et al .
Regional protein absorption rates from the pleural cavity in dogs.
J Appl Physiol.
1985;
58
2062-2067
MissingFormLabel
- 20
Pezron I, Mitra R, Pal D. et al .
Insulin aggregation and asymmetric transport across human bronchial epithelial cell
monolayers (Calu-3).
J Pharm Sci.
2002;
91
1135-1146
MissingFormLabel
- 21
Wang NS.
The preformed stomas connecting the pleural cavity and the lymphatics in the parietal
pleura.
Am Rev Respir Dis.
1975;
111
12-20
MissingFormLabel
- 22
Wang NS.
The regional difference of pleural mesothelial cells in rabbits.
Am Rev Respir.
1974;
110
623-633
MissingFormLabel
Correspondence
V. K. KouritasMD, PhD
Dept of Physiology, Medical
School, University of Thessaly
Mezourlo 411 10
PO Box 1400 Larissa
Greece
Phone: +30/697/440 5281
Fax: +30/241/068 5556
Email: kouritas@otenet.gr