Search PubMed⌕ Search

PubMed · 11532282

Complement and apoptosis.

Abstract

Apoptosis and necrosis are two forms of cell death characterized by distinct morphologies. Until recently, complement-mediated cell lysis has been presented as a classical example of necrotic cell death. However, recent reports on apoptogenic effects of complement have shaken this dogma. The field has become even more confusing with descriptions of anti-apoptotic effects of complement. Necrosis has been associated traditionally with inflammation, whereas apoptosis has been regarded as noninflammatory. Therefore, first descriptions of the capacity of the complement system to identify apoptotic cells and to be activated by them, led to the development of the concept that complement opsonizes apoptotic cells for fast clearance by phagocytic cells. In the absence of such opsonization, (eg in C1q or C4 deficiency), apoptotic cells may remain longer in the body and may stimulate autoantibody production or undergo pro-inflammatory secondary necrosis. This has been associated in man and mouse with the development of an autoimmune disease like systemic lupus erythematosus. However, complement may also interfere with the programmed intention of apoptosis to avoid triggering of inflammation. Our recent results show that, under specific conditions, early apoptotic cells are not only opsonized by complement but may also be lysed, raising the possibility that under certain conditions apoptosis will be associated with an inflammatory reaction. The review describes and discusses the reports covering the various aspects of the interface between complement and apoptosis and its possible relevance to autoimmune diseases and inflammation and raises the following questions: 1. Can activated complement proteins induce apoptotic cell death? 2. Can complement protect cells from apoptosis? 3. Do apoptotic cells activate complement? and 4. What role is complement playing in clearance of apoptotic cells and which complement receptors are involved? Clearly, this research field is highly complex and still at its formation stage, yet interesting and important mechanisms are bound to emerge from these studies.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Z Fishelson, G Attali, D Mevorach. 2001. Complement and apoptosis.. https://doi.org/10.1016/s0161-5890(01)00055-4

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

RUNX3: a regulator of macrophage apoptosis with positive prognostic impact in sepsis.

BACKGROUND: Sepsis, a life-threatening condition, remains a leading cause of mortality globally. Transcription factors (TFs) play a pivotal role in its pathogenesis. RUNX3, a member of the RUNX family, has been implicated in immune regulation, but its function in sepsis remains unclear. OBJECTIVE: To determine whether RUNX3 expression is altered in sepsis and associated with patient prognosis, and to investigate its function and potential transcriptional regulatory targets in macrophages. METHODS: We analyzed RNA-seq data from sepsis patients to identify differentially expressed TFs and examined the prognostic impact of RUNX3 by Kaplan-Meier survival analysis. RUNX3 was stably overexpressed in RAW264.7 macrophages, and cell proliferation and apoptosis were assessed by EdU and flow cytometry assays. RNA-seq of RUNX3-overexpressing cells was performed to identify potential transcriptional regulatory targets, a subset of which was validated by RT-qPCR. RESULTS: RUNX3 expression was downregulated in sepsis patients, and low RUNX3 expression was associated with poor prognosis. RUNX3 overexpression promoted proliferation and inhibited apoptosis in RAW264.7 cells. Integrating RNA-seq with public RUNX3 binding data identified 89 potential transcriptional regulatory targets, among which Tgfbr3, Tgfbi, Il2rb, Gbp2, Gzmb, and Ptgds were confirmed as RUNX3-responsive by RT-qPCR. High expression of these targets was associated with favorable prognosis in sepsis patients. CONCLUSION: RUNX3 is closely associated with the prognosis of sepsis, and its overexpression promotes proliferation and suppresses apoptosis in macrophages, potentially by regulating downstream target genes, providing a novel perspective on sepsis pathogenesis.

Apoptosis↗

Identification and validation of an alternatively spliced novel isoform of maspin that modulate genes involved in inflammatory and apoptotic pathways.

Maspin regulates cellular adhesion, migration, apoptosis, angiogenesis, and tumor suppression in a tissue and context-dependent manner. Its functional diversity is governed largely thorough extracellular matrix interactions, subcellular localization, and the reactive center loop (RCL), although the structural details are not well understood. To examine whether alternative splicing contributes to this heterogeneity, we analysed the SERPINB5 gene using a computational genomics approach and identified a novel 80 bp coding exon upstream of the first coding exon (E1). The alternatively spliced transcript was validated in human skin and esophagus by semi-nested touchdown PCR, quantitative real-time PCR, and Sanger sequencing. Recombinant B5N displayed a red-shifted fluorescence emission spectrum, indicating a more solvent-exposed conformation, which was supported by molecular dynamics simulations showing greater exposure of the nuclear localization signal (NLS) and the reactive center loop. Enzyme kinetic assays demonstrated concentration-dependent enhancement of tissue plasminogen activator (tPA) activity by both isoforms. In HaCaT cells, wildtype maspin produced stronger antiproliferative and anti-migratory effects, whereas B5N was only mildly antiproliferative. Annexin V/7-AAD staining revealed that wildtype maspin induced higher early apoptosis and cell death, while B5N produced lower overall cell death but a greater proportion of late apoptotic cells. RNA-seq of transfected HaCaT cells identified differentially expressed genes enriched in inflammatory, antiviral, and apoptotic pathways, which was validated by qPCR, and several of these were markedly upregulated in SARS-CoV-2 infected A549 cells. Thus, a novel N-terminally extended maspin isoform with differentially regulated gene profile is identified and validated in this study.

Apoptosis↗

Thyroxine enhances breast cancer cell survival and proliferation via TRβ1-Dependent PI3K/AKT signaling.

Thyroid hormones (TH) influence tumor biology through both genomic and non-genomic mechanisms. Specifically, thyroxine (T4) activates signaling pathways linked to cancer progression through interactions with nuclear receptors, such as TRβ1, and membrane receptors, including integrin αvβ3. Nevertheless, the precise role of T4 in breast cancer cell behavior and its underlying molecular mechanisms remain incompletely understood. The effects of physiological concentrations of T4 (10-9 M) on proliferation, cell viability, apoptotic signaling, and activation of intracellular pathways were evaluated in human mammary cell lines. Tumor cell lines (MCF-7 and MDA-MB-231) and the non-tumor mammary epithelial cell line MCF-10A were treated with T4 alone or in combination with the thyroid hormone receptor antagonist 1-850. Cell proliferation was measured using the MTT assay, and viability was determined by trypan blue exclusion. Protein expression and signaling pathways were analyzed by Western blot, including assessment of apoptotic markers (caspases, PARP, Bax, Bcl-2), PCNA, steroid hormone receptors, and signaling mediators such as PI3K, AKT, and ERK. Immunocytochemistry was used to evaluate TRβ1, integrin αvβ3, and Ki67 expression. T4 treatment increased proliferation and survival in hormone-sensitive tumor cells, accompanied by modulation of apoptosis-related proteins and activation of the PI3K/AKT pathway. The antagonist 1-850 selectively attenuated TRβ1-dependent effects, enabling distinction between genomic and integrin-mediated mechanisms. These effects were observed exclusively in hormone-sensitive tumor cells. These findings support a role for T4 in breast cancer progression and identify TH-related signaling pathways as potential therapeutic targets.

Apoptosis↗