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PMID: 11753563 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Programmed cell death in mature erythrocytes: a model for investigating death effector pathways operating in the absence of mitochondria.

Cell death and differentiation ·Vol. 8 ·No. 12 ·2001-12-00 ·Pages 1143-56

Bratosin D, Estaquier J, Petit F, Arnoult D, Quatannens B, Tissier JP, Slomianny C, Sartiaux C, Alonso C, Huart JJ, Montreuil J, Ameisen JC

Abstract

Human mature erythrocytes have been considered as unable to undergo programmed cell death (PCD), due to their lack of mitochondria, nucleus and other organelles, and to the finding that they survive two conditions that induce PCD in vitro in all human nucleated cells, treatment with staurosporine and serum deprivation. Here we report that mature erythrocytes can undergo a rapid self-destruction process sharing several features with apoptosis, including cell shrinkage, plasma membrane microvesiculation, phosphatidylserine externalization, and leading to erythrocyte disintegration, or, in the presence of macrophages, to macrophage ingestion of dying erythrocytes. This regulated form of PCD was induced by Ca(2+) influx, and prevented by cysteine protease inhibitors that allowed erythrocyte survival in vitro and in vivo. The cysteine proteinases involved seem not to be caspases, since (i) proforms of caspase 3, while present in erythrocytes, were not activated during erythrocyte death; (ii) cytochrome c, a critical component of the apoptosome, was lacking; and (iii) cell-free assays did not detect activated effectors of nuclear apoptosis in dying erythrocytes. Our findings provide the first identification that a death program can operate in the absence of mitochondria. They indicate that mature erythrocytes share with all other mammalian cell types the capacity to self-destruct in response to environmental signals, and imply that erythrocyte survival may be modulated by therapeutic intervention.

MeSH Terms
Animals Apoptosis/drug effects,physiology Calcium/metabolism,pharmacology Caspase 3 Caspases/metabolism,pharmacology Cysteine Endopeptidases/metabolism DNA-Binding Proteins/metabolism Death Domain Receptor Signaling Adaptor Proteins Erythrocytes/metabolism,physiology Humans Intracellular Signaling Peptides and Proteins Leupeptins/metabolism,pharmacology Macrophage Activation/immunology Mice Mitochondria/physiology Models, Biological Oligopeptides/metabolism,pharmacology
Chemicals
DEDD protein, human DNA-Binding Proteins Death Domain Receptor Signaling Adaptor Proteins Dedd protein, mouse Intracellular Signaling Peptides and Proteins Leupeptins Oligopeptides acetyl-aspartyl-glutamyl-valyl-aspartal CASP3 protein, human Casp3 protein, mouse Caspase 3 Caspases Cysteine Endopeptidases leupeptin Calcium
Authors & Affiliations
12 authors, click to expand affiliations / ORCID
Bratosin D
National Institute for Biological Science Research and Development, Bucharest, Rumania.
Estaquier J
Petit F
Arnoult D
Quatannens B
Tissier J P
Slomianny C
Sartiaux C
Alonso C
Huart J J
Montreuil J
Ameisen J C
Article Info
Journal
Cell death and differentiation
Abbr.
Cell Death Differ
ISSN
1350-9047
Published
2001-12-00
Pages
1143-56
Language
English
Region
England
NLM ID
9437445
Subset
IM
Corrections
CommentIn
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