Crossref journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation Research (276)
Abstract

Abstract —Vascular tissues respond to changes in the mechanical forces imposed on them with changes in vasomotor tone in the short term and with structural remodeling in the long term. Since these responses involve intercellular communication, we have investigated regulation of the gap junction proteins, connexin26 (Cx26), connexin37 (Cx37), connexin40 (Cx40), and connexin43 (Cx43), by mechanical loads. Results were compared with parallel experiments on c- fos and GAPDH. Twenty percent stretch of cultured vascular smooth muscle cells caused a 3-fold increase in Cx43 mRNA levels by 2 hours. Cx26 was expressed at low levels but failed to respond to stretch, and Cx37 and Cx40 were not detected. c- fos mRNA levels increased after 30 minutes of stretch, whereas GAPDH mRNA did not change. Protein levels of Cx43 increased by 4 hours and remained elevated for 16 hours. Nuclear run-on experiments confirmed that Cx43 and c- fos were transcriptionally regulated by stretch. New protein synthesis was not a requirement for the stretch-induced rise in Cx43 expression, since mRNA levels were unaffected by treatment with cycloheximide. To examine transcriptional control of Cx43, stretched and unstretched vascular smooth muscle cells were transfected with a variety of promoter-reporter gene constructs. Cx43 sequences extending from within exon 1 (+162) to −1686 in the 5′-flanking region were coupled to the chloramphenicol acetyl transferase reporter gene. Deletions from the 5′ end of these sequences differentially regulated reporter gene expression and indicated multiple potential regulatory sites. In particular, a putative activator protein-1 site at the −42 to −48 region was required for basal reporter activity. None of the promoter constructs revealed stretch sensitivity, indicating that the site of transcriptional control by stretch lies outside the −1686 to +162 region. Finally, Cx43 mRNA levels were assessed in cultured endothelial cells subjected to laminar shear stress of 15 dynes/cm 2 . Cx43 mRNA levels increased by ≈4-fold at 1 hour and remained elevated for the duration of shear force. In conclusion, both mechanical strain and fluid shear stress caused increased expression of the gap junction protein Cx43.

Bibliography

Cowan, D. B., Lye, S. J., & Langille, B. L. (1998). Regulation of Vascular Connexin43 Gene Expression by Mechanical Loads. Circulation Research, 82(7), 786–793.

Authors 3
  1. Douglas B. Cowan (first)
  2. Stephen J. Lye (additional)
  3. B. Lowell Langille (additional)
References 66 Referenced 106
  1. Jackson PA, Duling BR. Myogenic response and wall mechanics of arterioles. Am J Physiol. 1989;257:H1147–H1155. / Am J Physiol (1989)
  2. 10.1097/00004872-199512010-00007
  3. Busse R Pohl U. Chronic effects of blood flow on the artery wall. In: Frangos JA ed. Physical Forces and the Mammalian Cell. San Diego Calif: Academic Press Inc; 1993:223–248.
  4. 10.1097/00005344-199321001-00003
  5. 10.1016/S0934-8832(11)80163-0
  6. Hsieh H-J, Li N-Q, Frangos JA. Shear stress increases endothelial platelet-derived growth factor mRNA levels. Am J Physiol. 1991;260:H642–H646. / Am J Physiol (1991)
  7. 10.1172/JCI117787
  8. 10.1172/JCI116796
  9. 10.1152/physrev.1995.75.3.519
  10. 10.1006/jmcc.1994.1047
  11. Polacek D, Bech F, McKinsey JF, Davies PF. Connexin 43 gene expression in the rabbit arterial wall: effects of hypercholesterolemia, balloon injury, and their combination. J Vasc Res. 1997;34:19–30. / J Vasc Res (1997)
  12. 10.1161/res.80.1.88
  13. 10.1161/res.76.3.498
  14. 10.1126/science.3941904
  15. Rosenthal A Gotlieb AI. Macrovascular endothelial cells from porcine aorta. In: Piper HM ed. Cell Culture Techniques in Heart and Vessel Research. Berlin Germany: Springer-Verlag; 1990:117–129. (10.1007/978-3-642-75262-9_8)
  16. Lyall F, Deehan MR, Greer IA, Boswell F, Brown WC, McInnes GT. Mechanical stretch increases proto-oncogene expression and phosphoinositide turnover in vascular smooth muscle cells. J Hypertens. 1994;12:1139–1145. / J Hypertens (1994)
  17. 10.1002/bit.260320812
  18. 10.1016/0003-2697(87)90021-2
  19. 10.1016/0022-2828(92)93196-Q
  20. 10.1083/jcb.105.6.2621
  21. Curran T, Gordon MB, Rubino KL, Sambucetti C. Isolation and characterization of the c-fos (rat) cDNA and analysis of post-translational modification in vitro. Oncogene. 1987;2:79–84. / in vitro. Oncogene (1987)
  22. 10.1210/endo.137.5.8612484
  23. Gallagher SR. Analysis of proteins. In: Ausubel SM Brent R Kingston RE Moore DD Seidman JG Smith JA Struhl K eds. Short Protocols in Molecular Biology. New York NY: John Wiley & Sons; 1995:10-5–10-26.
  24. 10.1093/nar/19.9.2499
  25. Kedzierski W, Porter JC. A novel non-enzymatic procedure for removing DNA template from RNA transcription mixtures. Biotechniques. 1991;10:210–214. / Biotechniques (1991)
  26. 10.1074/jbc.270.8.3863
  27. Kingston RE. Introduction of DNA into mammalian cells. In: Ausubel FM Brent R Kingston RE Moore DD Seidman JG Smith JA Struhl K eds. Current Protocols in Molecular Biology. New York NY: John Wiley & Sons; 1988:9-1-1–9-1-4.
  28. 10.1128/MCB.2.9.1044
  29. 10.1016/0076-6879(87)52075-4
  30. 10.1016/S0021-9258(19)74196-9
  31. 10.1006/dbio.1994.1002
  32. 10.1242/dev.105.4.747
  33. 10.1210/endo.135.2.8033821
  34. 10.1007/BF02110114
  35. 10.1126/science.7892609
  36. 10.1161/01.hyp.23.6.1113
  37. 10.1161/res.79.4.631
  38. 10.1097/00041433-199604000-00008
  39. 10.1016/S0021-9258(19)50052-7
  40. 10.1172/JCI118293
  41. 10.1161/res.28.6.693
  42. Vandenburgh HH. Mechanical forces and their second messengers in stimulating cell growth in vitro. Am J Physiol. 1992;262:R350–R355. / Am J Physiol (1992)
  43. 10.1126/science.2467379
  44. Malek AM, Izumo S. Molecular aspects of signal transduction of shear stress in the endothelial cell. J Hypertens. 1994;12:989–999. / J Hypertens (1994)
  45. 10.1073/pnas.92.17.8069
  46. 10.1096/fasebj.9.10.7615157
  47. Langille BL Gotlieb AI Kim DW. Vascular tissue response to experimentally altered local blood flow conditions. In: Westerhof N Gross DR eds. Vascular Dynamics. New York NY: Plenum Publishing Corp; 1989:229–235. (10.1007/978-1-4684-7856-3_18)
  48. 10.1161/res.73.6.8222085
  49. 10.1091/mbc.4.1.7
  50. 10.1161/res.72.2.8380357
  51. 10.1152/ajpcell.1997.272.1.C117
  52. 10.1152/ajpheart.1995.268.2.H729
  53. 10.1172/JCI116321
  54. 10.1007/BF02110108
  55. 10.1152/ajpcell.1997.272.2.C405
  56. 10.1161/res.76.3.381
  57. 10.1007/BF02110107
  58. 10.1074/jbc.271.39.23667
  59. 10.1016/S0021-9258(19)39631-0
  60. 10.1172/JCI118106
  61. 10.1016/0021-9290(95)00093-3
  62. 10.1016/0021-9290(95)00099-2
  63. 10.1097/00004872-199510000-00007
  64. 10.1161/circ.95.4.1007
  65. Segal SS, Damon DN, Duling BR. Propagation of vasomotor responses coordinates arteriolar resistances. Am J Physiol. 1989;256:H832–H837. / Am J Physiol (1989)
  66. 10.1152/jappl.1996.81.5.2105
Dates
Type When
Created 13 years, 2 months ago (June 11, 2012, 8:47 p.m.)
Deposited 1 year, 3 months ago (May 12, 2024, 4:54 p.m.)
Indexed 1 month, 4 weeks ago (July 2, 2025, 5:19 a.m.)
Issued 27 years, 4 months ago (April 20, 1998)
Published 27 years, 4 months ago (April 20, 1998)
Published Print 27 years, 4 months ago (April 20, 1998)
Funders 0

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@article{Cowan_1998, title={Regulation of Vascular Connexin43 Gene Expression by Mechanical Loads}, volume={82}, ISSN={1524-4571}, url={http://dx.doi.org/10.1161/01.res.82.7.786}, DOI={10.1161/01.res.82.7.786}, number={7}, journal={Circulation Research}, publisher={Ovid Technologies (Wolters Kluwer Health)}, author={Cowan, Douglas B. and Lye, Stephen J. and Langille, B. Lowell}, year={1998}, month=apr, pages={786–793} }