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K562 cells produce an anti-inflammatory factor that inhibits neutrophil functions in vivo
1Laboratoire d'Immunologie et d'Hématologie (INSERM U.294), Centre Hospitalo-Universitaire Xavier Bichat, Paris, France.
Abstract:
We have previously reported that K562, a chronic myelogenous leukemia cell line, releases a low molecular weight factor (6 to 8 Kd) that inhibits human polymorphonuclear neutrophil (PMN) adherence and adherence-related functions tested in vitro. We now report that this factor, which we have named K562 inhibitory factor (K562-IF), has potent anti-inflammatory activity in mice, associated with an inhibition of PMN functions. Its in vitro actions were less marked with mouse PMN than with human PMN. They included (1) an inhibition of both nonstimulated locomotion and locomotion induced by FMLP or serum; (2) an inhibition of the chemiluminescence induced by opsonized zymosan, but not that induced by phorbol myristate acetate or FMLP; (3) an inhibition of the degranulation stimulated by opsonized zymosan, as reflected by lactoferrin and lysozyme release; and (4) a decrease in arachidonic acid release and leukotriene B4 production by A23187-stimulated PMN. The in vivo actions of K562-IF after intraperitoneal injection included (1) an inhibition of subcutaneous PMN accumulation at the site of injection of opsonized zymosan (PMN accumulated neither outside the vessels nor intravascularly, as shown by means of histochemistry); (2) an inhibition of neutrophil accumulation in the peritoneum of mice having received sodium caseinate or opsonized zymosan intraperitoneally; and (3) lysozyme concentration in neutrophils having reached the peritoneum after opsonized zymosan treatment equal to that in blood, suggesting diminished release. PMN influx and degranulation in the peritoneum were reduced by 50% after 3 hours of treatment with 1 microgram of K562-IF (equivalent to the effect of 120 micrograms of prednisolone). Taken together, these results show that K562-IF is a potent anti-inflammatory agent that acts by inhibiting PMN functions.
Insights
A novel K562 inhibitory factor (K562-IF) demonstrates potent anti-inflammatory effects in mice by inhibiting polymorphonuclear neutrophil (PMN) functions. This factor effectively reduces PMN accumulation and degranulation in vivo, offering a promising therapeutic avenue.
Area of Science:
- Immunology
- Pharmacology
- Cell Biology
Background:
- K562 cells release a factor inhibiting human polymorphonuclear neutrophil (PMN) adherence and functions.
- This factor, K562 inhibitory factor (K562-IF), has been identified as a low molecular weight substance (6-8 kDa).
Purpose of the Study:
- To investigate the anti-inflammatory activity of K562-IF in vivo.
- To elucidate the mechanisms by which K562-IF modulates PMN functions in both in vitro and in vivo models.
Main Methods:
- In vitro assays assessing PMN locomotion, chemiluminescence, degranulation, and mediator release (arachidonic acid, leukotriene B4).
- In vivo studies involving intraperitoneal injection of K562-IF in mice to evaluate its effect on PMN accumulation and function in response to inflammatory stimuli (opsonized zymosan, sodium caseinate).
- Histochemical analysis to assess PMN localization and degranulation.
Main Results:
- K562-IF inhibited nonstimulated and FMLP/serum-induced PMN locomotion in vitro.
- It suppressed zymosan-induced chemiluminescence and degranulation, as well as A23187-stimulated arachidonic acid release and leukotriene B4 production.
- In vivo, K562-IF significantly inhibited PMN accumulation in subcutaneous tissue and peritoneum, and reduced PMN degranulation in the peritoneum.
- A dose of 1 microgram of K562-IF showed comparable anti-inflammatory effects to 120 micrograms of prednisolone.
Conclusions:
- K562-IF is a potent anti-inflammatory agent with significant in vivo efficacy.
- Its mechanism of action involves the inhibition of key polymorphonuclear neutrophil functions, including migration, degranulation, and mediator release.
- K562-IF represents a promising candidate for the development of novel anti-inflammatory therapies.