A C3(H20) recycling pathway is a component of the intracellular complement system
Insights
Human cells internalize a modified complement component C3(H2O) from plasma, not native C3. This process establishes intracellular complement system stores and influences immune cell function, highlighting the importance of plasma factors in in vitro studies.
Area of Science:
- Immunology
- Cell Biology
Background:
- An intracellular complement system (ICS) exists in human cells, utilizing intracellular complement component C3.
- The origin of intracellular C3 stores remains unclear.
Purpose of the Study:
- To investigate the source of intracellular C3 stores.
- To determine the mechanism of C3 internalization by human cells.
Main Methods:
- Western blotting of human peripheral blood cells and cell lines.
- Analysis of C3 and C3(H2O) internalization by various human cell types.
- Assessment of C3(H2O) recycling and its effect on CD4+ T cell cytokine profiles.
Main Results:
- Freshly isolated human cells contained C3, unlike cell lines.
- Human cells specifically internalized C3(H2O), not native C3, via a saturable mechanism.
- Internalized C3(H2O) was recycled, influenced cytokine profiles of activated CD4+ T cells, and generated C3a.
Conclusions:
- Human cells establish intracellular complement stores by internalizing plasma-derived C3(H2O).
- A C3(H2O) recycling pathway exists, impacting cellular immune function.
- In vitro studies must consider the influence of soluble plasma factors on cellular immune responses.
Abstract:
An intracellular complement system (ICS) has recently been described in immune and nonimmune human cells. This system can be activated in a convertase-independent manner from intracellular stores of the complement component C3. The source of these stores has not been rigorously investigated. In the present study, Western blotting identified a band corresponding to C3 in freshly isolated human peripheral blood cells that was absent in corresponding cell lines. One difference between native cells and cell lines was the time absent from a fluid-phase complement source; therefore, we hypothesized that loading C3 from plasma was a route of establishing intracellular C3 stores. We found that many types of human cells specifically internalized C3(H2O), the hydrolytic product of C3, and not native C3, from the extracellular milieu. Uptake was rapid, saturable, and sensitive to competition with unlabeled C3(H2O), indicating a specific mechanism of loading. Under steady-state conditions, approximately 80% of incorporated C3(H2O) was returned to the extracellular space. These studies identify an ICS recycling pathway for C3(H2O). The loaded C3(H2O) represents a source of C3a, and its uptake altered the cytokine profile of activated CD4+ T cells. Importantly, these results indicate that the impact of soluble plasma factors should be considered when performing in vitro studies assessing cellular immune function.
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