We have shown that maturation increases the magnitude and sensitivity of myogenic reactivity in neonatal cerebral arteries compared to adult mice. Myogenic constriction first appears at 10 mm Hg in cerebral arteries from neonatal mice (5 d) compared to 40 mm Hg in cerebral arteries from adult mice (6-8 wk). Myogenic tone was maintained throughout each step increase in pressure in cerebral arteries from adult mice. In arteries from neonatal nice, myogenic tone was significantly greater at each pressure step compared to response in arteries from adult mice. Wall thickness was similar between groups. In a separate series of experiments, the contractile effect of tetraethylammonium (TEA; a KCa channel blocker) was determined in cerebral arteries from neonatal and adult mice. TEA caused adult and neonatal arteries to constrict; however, constriction in arteries from adult mice was significantly greater compared to arteries from neonatal mice suggesting that KCa channel activity is less in the neonate. Combined, our data suggest that arteries from neonatal mice possess the mechanisms necessary to constrict to increases in pressure. Furthermore, cerebral arteries from neonatal mice develop myogenic tone at lower pressures and to a greater extent compared to arteries from adult mice. Finally, vascular smooth muscle KCa channels modulate myogenic tone in arteries from neonatal mice to a lesser extent compared to arteries from adult mice. These findings have led to the general hypothesis that: maturation decreases the sensitivity and extends the range of pressure-induced myogenic tone of mouse cerebral blood vessels. In order to determine the effects of maturation on myogenic reactivity, pressure, microfluorometry, and electrophysiological experiments will be conducted in arteries taken from newborn (3-5 day) and adult mice (6-8 wk). To determine the relative importance of smooth muscle mechanisms, diameter, intracellular Ca++ and membrane potential experiments will be conducted in endothelium-denuded middle cerebral artery segments. These experiments will enable an unparalleled assessment of the mechanisms whereby maturation affects myogenic reactivity.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
1R01HL069078-01
Application #
6423585
Study Section
Human Embryology and Development Subcommittee 1 (HED)
Program Officer
Goldman, Stephen
Project Start
2002-01-01
Project End
2005-12-31
Budget Start
2002-01-01
Budget End
2002-12-31
Support Year
1
Fiscal Year
2002
Total Cost
$192,816
Indirect Cost
Name
Loma Linda University
Department
Physiology
Type
Schools of Dentistry
DUNS #
City
Loma Linda
State
CA
Country
United States
Zip Code
92350
Behringer, Erik J; Leite, Laura D; Buchholz, Nickolaus E et al. (2009) Maturation and long-term hypoxia alters Ca2+-induced Ca2+ release in sheep cerebrovascular sympathetic neurons. J Appl Physiol (1985) 107:1223-34
Charles, Shelton M; Zhang, Lubo; Longo, Lawrence D et al. (2007) Postnatal maturation attenuates pressure-evoked myogenic tone and stretch-induced increases in Ca2+ in rat cerebral arteries. Am J Physiol Regul Integr Comp Physiol 293:R737-44
Buchholz, John N; Behringer, Erik J; Pottorf, William J et al. (2007) Age-dependent changes in Ca2+ homeostasis in peripheral neurones: implications for changes in function. Aging Cell 6:285-96
Vanterpool, Conwin K; Vanterpool, Elaine A; Pearce, William J et al. (2006) Advancing age alters the expression of the ryanodine receptor 3 isoform in adult rat superior cervical ganglia. J Appl Physiol 101:392-400
Vanterpool, Conwin K; Pearce, William J; Buchholz, John N (2005) Advancing age alters rapid and spontaneous refilling of caffeine-sensitive calcium stores in sympathetic superior cervical ganglion cells. J Appl Physiol 99:963-71
Geary, Greg G; Osol, George J; Longo, Lawrence D (2004) Development affects in vitro vascular tone and calcium sensitivity in ovine cerebral arteries. J Physiol 558:883-96
Geary, Greg G; Buchholz, John N (2003) Selected contribution: Effects of aging on cerebrovascular tone and [Ca2+]i. J Appl Physiol 95:1746-54