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Cell alkalosis elevates cytosolic Ca2+ in rabbit resident alveolar macrophages
Thomas A Heming1, Nataliya N Bulayeva, Akhil Bidani
1Department of Internal Medicine, University of Texas Health Science Center, Houston, TX 77030, USA. thomas.heming@uth.tmc.edu
Abstract:
Disruption of cellular acid-base status alters the host defence functions of alveolar macrophages (m phi). These pH effects might be mediated by pH-sensitive changes in the signalling pathways of the effector functions of m phi. The present study examined the effects of intracellular pH (pH(i)) on the free cytosolic calcium concentration ([Ca(2+)](i)), an important second messenger for cell functions. [Ca(2+)](i) and pH(i) of rabbit resident alveolar m phi were measured using fluorescent dyes. With extracellular pH (pH(o)) of 7.4, the steady-state pH(i) and [Ca(2+)](i) were approx. 7.14 and 123 nM respectively. Incubation at pH(o) 6.8 caused a sustained cytosolic acidosis, but did not affect [Ca(2+)](i). Likewise, [Ca(2+)](i) was unchanged when m phi at pH(o) 7.4 were acidified using bafilomycin A(1) or sodium propionate. In contrast, [Ca(2+)](i) was markedly sensitive to cytosolic alkalosis. Exposure to NH(4)Cl at pH(o) 7.4 caused transient increases in both pH(i) and [Ca(2+)](i). The Ca(2+) response was mediated by release of intracellular Ca(2+) from thapsigargin-sensitive stores and was potentiated by capacitative entry of extracellular Ca(2+). Incubation at high pH(o) values (>7.4) produced sustained increases in pH(i) and [Ca(2+)](i). The sustained elevation of [Ca(2+)](i) was consistent with pH-sensitive inhibition of plasma-membrane Ca(2+)-ATPase. The response to high pH(o) was unaffected by blockade of L-type or receptor-operated Ca(2+) channels with nifedipine or SKF-96365, and was independent of extracellular Na(+). The findings indicate that pH impacts cytosolic Ca(2+) homoeostasis at multiple levels. The data suggest that cellular acid-base status can influence Ca(2+)-dependent signalling events in resident alveolar m phi, especially during alkaline disruptions of pH(i).
Insights
Cellular acid-base balance affects alveolar macrophage functions. This study shows that while acidosis doesn't alter cytosolic calcium, alkalosis significantly increases it, impacting cell signaling.
Area of Science:
- Cellular Biology
- Immunology
- Physiology
Background:
- Cellular acid-base status influences host defense functions of alveolar macrophages.
- Signaling pathways regulating macrophage effector functions may be pH-sensitive.
Purpose of the Study:
- To investigate the effects of intracellular pH (pH(i)) on cytosolic calcium concentration ([Ca(2+)](i)) in rabbit resident alveolar macrophages.
- To determine how alterations in cellular pH impact calcium homeostasis and signaling.
Main Methods:
- Measurement of intracellular pH (pH(i)) and cytosolic calcium ([Ca(2+)](i)) using fluorescent dyes in rabbit alveolar macrophages.
- Manipulation of extracellular pH (pH(o)) and use of chemical agents (bafilomycin A1, sodium propionate, NH4Cl) to induce acidosis or alkalosis.
- Assessment of calcium mobilization from intracellular stores and extracellular calcium entry.
Main Results:
- Cytosolic acidosis (pH(o) 6.8) did not affect [Ca(2+)](i).
- Cytosolic alkalosis (NH4Cl exposure or high pH(o)) significantly increased [Ca(2+)](i) via intracellular calcium release and potentiated capacitative calcium entry.
- Sustained increases in [Ca(2+)](i) during alkalosis were linked to pH-sensitive inhibition of plasma-membrane Ca(2+)-ATPase.
Conclusions:
- Intracellular pH significantly impacts cytosolic calcium homeostasis in alveolar macrophages.
- Alkaline shifts in pH(i) can influence calcium-dependent signaling pathways, potentially affecting macrophage function.
- Cellular acid-base status plays a critical role in regulating macrophage calcium signaling, particularly during alkaline disturbances.