Intracellular Acid-extruding regulators and the effect of lipopolysaccharide in cultured human renal artery smooth muscle cells

PLoS One. 2014 Feb 21;9(2):e90273. doi: 10.1371/journal.pone.0090273. eCollection 2014.

Abstract

Homeostasis of the intracellular pH (pHi) in mammalian cells plays a pivotal role in maintaining cell function. Thus far, the housekeeping Na(+)-H(+) exchanger (NHE) and the Na(+)-HCO3(-) co-transporter (NBC) have been confirmed in many mammalian cells as major acid extruders. However, the role of acid-extruding regulators in human renal artery smooth muscle cells (HRASMCs) remains unclear. It has been demonstrated that lipopolysaccharide (LPS)-induced vascular occlusion is associated with the apoptosis, activating calpain and increased [Ca(2+)]i that are related to NHE1 activity in endothelia cells. This study determines the acid-extruding mechanisms and the effect of LPS on the resting pHi and active acid extruders in cultured HRASMCs. The mechanism of pHi recovery from intracellular acidosis (induced by NH4Cl-prepulse) is determined using BCECF-fluorescence in cultured HRASMCs. It is seen that (a) the resting pHi is 7.19 ± 0.03 and 7.10 ± 0.02 for HEPES- and CO2/HCO3(-)- buffered solution, respectively; (b) apart from the housekeeping NHE1, another Na(+)-coupled HCO3(-) transporter i.e. NBC, functionally co-exists to achieve acid-equivalent extrusion; (c) three different isoforms of NBC: NBCn1 (SLC4A7; electroneutral), NBCe1 (SLC4A4; electrogenic) and NBCe2 (SLC4A5), are detected in protein/mRNA level; and (d) pHi and NHE protein expression/activity are significantly increased by LPS, in both a dose- and time- dependent manner, but NBCs protein expression is not. In conclusion, it is demonstrated, for the first time, that four pHi acid-extruding regulators: NHE1, NBCn1, NBCe1 and NBCe2, co-exist in cultured HRASMCs. LPS also increases cellular growth, pHi and NHE in a dose- and time-dependent manner.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Acid-Base Equilibrium / immunology
  • Aged
  • Cation Transport Proteins / metabolism*
  • Cell Proliferation
  • Cell Survival
  • Cells, Cultured
  • Female
  • Gene Expression / immunology
  • Humans
  • Lipopolysaccharides / pharmacology*
  • Male
  • Middle Aged
  • Muscle, Smooth, Vascular / pathology
  • Myocytes, Smooth Muscle / immunology
  • Myocytes, Smooth Muscle / metabolism*
  • Renal Artery / pathology
  • Sodium-Bicarbonate Symporters / metabolism
  • Sodium-Hydrogen Exchanger 1
  • Sodium-Hydrogen Exchangers / metabolism*

Substances

  • Cation Transport Proteins
  • Lipopolysaccharides
  • SLC4A4 protein, human
  • SLC4A7 protein, human
  • SLC9A1 protein, human
  • Sodium-Bicarbonate Symporters
  • Sodium-Hydrogen Exchanger 1
  • Sodium-Hydrogen Exchangers

Grants and funding

This study was supported by the grants from the National Science Council (NSC 96-2320-B-016-015-MY3; 97-2321-B-016-001-MY3), National Defense Medical Bureau (DOD100-I-30; DOD 101-15-6), Tri-Service General Hospital (TSGH-C100-088), and Teh-Tzer Study Group for Human Medical Research Foundation, Taipei, Taiwan, Republic of China to SH Loh, YT Tsai and CY Lee. The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript.