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PMID: 3126197 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S. Review

Regulation of inositol phospholipid and inositol phosphate metabolism in chemoattractant-activated human polymorphonuclear leukocytes.

Journal of cellular biochemistry ·Vol. 35 ·No. 4 ·1987-12-00 ·Pages 345-59

Dillon SB, Murray JJ, Uhing RJ, Snyderman R

Abstract

Binding of chemoattractants to specific cell surface receptors on polymorphonuclear leukocytes (PMNs) initiates a series of biochemical responses leading to cellular activation. A critical early biochemical event in chemoattractant (CTX) receptor-mediated signal transduction is the phosphodiesteric cleavage of plasma membrane phosphatidylinositol 4,5-bisphosphate (PIP2), with concomitant production of the calcium mobilizing inositol-1,4,5-trisphosphate (IP3) isomer, and the protein kinase C activator, 1,2-diacylglycerol (DAG). The following lines of experimental evidence collectively suggest that CTX receptors are coupled to phospholipase C via a guanine nucleotide binding (G) protein. Receptor-mediated hydrolysis of PIP2 in PMN plasma membrane preparations requires both fMet-Leu-Phe and GTP, and incubation of intact PMNs with pertussis toxin (which ADP ribosylates and inactivates some G proteins) eliminates the ability of fMet-Leu-Phe plus GTP to promote PIP2 breakdown in isolated plasma membranes. Studies with both PMN particulate fractions and with partially purified fMet-Leu-Phe receptor preparations indicate that guanine nucleotides regulate CTX receptor affinity. Finally, fMet-Leu-Phe stimulates high-affinity binding of GTP gamma S to PMN membranes as well as GTPase activity. A G alpha subunit has been identified in phagocyte membranes which is different from other G alpha subunits on the basis of molecular weight and differential sensitivity to ribosylation by bacterial toxins. Thus, a novel G protein may be involved in coupling CTX receptors to phospholipase C. Studies in intact and sonicated PMNs demonstrate that metabolism of 1,4,5-IP3 proceeds via two distinct pathways: 1) sequential dephosphorylation to 1,4-IP2, 4-IP1 and inositol, or 2) ATP-dependent conversion to inositol 1,3,4,5-tetrakisphosphate (IP4) followed by sequential dephosphorylation to 1,3,4-IP3, 3,4-IP2, 3-IP1 and inositol. Receptor-mediated hydrolysis of PIP2 occurs at ambient intracellular Ca2+ levels; but metabolism of 1,4,5-IP3 via the IP4 pathway requires elevated cytosolic Ca2+ levels associated with cellular activation. Thus, the two pathways for 1,4,5-IP3 metabolism may serve different metabolic functions. Additionally, inositol phosphate production appears to be controlled by protein kinase C, as phorbol myristate acetate (PMA) abrogates PIP2 hydrolysis by interfering with the ability of the activated G protein to stimulate phospholipase C. This implies a physiologic mechanism for terminating biologic responses via protein kinase C mediated feedback inhibition of PIP2 hydrolysis.

MeSH Terms
Calcium/physiology Cell Membrane/metabolism Chemotactic Factors/physiology GTP-Binding Proteins/metabolism Humans Inositol Phosphates/metabolism Neutrophils/metabolism Phospholipids/metabolism Protein Kinase C/physiology Sugar Phosphates/metabolism
Chemicals
Chemotactic Factors Inositol Phosphates Phospholipids Sugar Phosphates Protein Kinase C GTP-Binding Proteins Calcium
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Dillon S B
Howard Hughes Medical Institute, Durham, North Carolina.
Murray J J
Uhing R J
Snyderman R
Article Info
Journal
Journal of cellular biochemistry
Abbr.
J Cell Biochem
ISSN
0730-2312
Published
1987-12-00
Pages
345-59
Language
English
Region
United States
NLM ID
8205768
Subset
IM
Grants
NCI NIH HHS · CA29589 · United States
NIDCR NIH HHS · DEO3738 · United States
OHS HRSA HHS · ST32CA09058 · United States
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