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Updated: Jun 15, 2026

Detection and Isolation of Apoptotic Bodies to High Purity
Published on: August 12, 2018
Dynamic processes that reflect anti-apoptotic strategies set up by HspB1 (Hsp27)
Catherine Paul1, Stéphanie Simon, Benjamin Gibert
1Laboratoire Stress, Chaperons et Mort Cellulaire, CNRS UMR 5534, Université Claude Bernard Lyon1, Villeurbanne, France.
Abstract:
Human HspB1 (also denoted Hsp27) is an oligomeric anti-apoptotic protein that has tumorigenic and metastatic roles. To approach the structural organizations of HspB1 that are active in response to apoptosis inducers acting through different pathways, we have analyzed the relative protective efficiency induced by this protein as well its localization, oligomerization and phosphorylation. HeLa cells, that constitutively express high levels of HspB1 were treated with either etoposide, Fas agonist antibody, staurosporine or cytochalasin D. Variability in HspB1 efficiency to interfere with the different apoptotic transduction pathways induced by these agents were detected. Moreover, inducer-specific dynamic changes in HspB1 localization, native size and phosphorylation were observed, that differed from those observed after heat shock. Etoposide and Fas treatments gradually shifted HspB1 towards large but differently phosphorylated oligomeric structures. In contrast, staurosporine and cytochalasin D induced the rapid but transient formation of small oligomers before large structures were formed. These events correlated with inducer-specific phosphorylations of HspB1. Of interest, the formation of small oligomers in response to staurosporine and cytochalasin D was time correlated with the rapid disruption of F-actin. The subsequent, or gradual in the case of etoposide and Fas, formation of large oligomeric structures was a later event concomitant with the early phase of caspase activation. These observations support the hypothesis that HspB1 has the ability, through specific changes in its structural organization, to adapt and interfere at several levels with challenges triggered by different signal transduction pathways upstream of the execution phase of apoptosis.
Insights
Human heat shock protein B1 (HspB1) changes its structure and location differently depending on the apoptosis inducer. These dynamic changes allow HspB1 to interfere with various cell death pathways.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Human heat shock protein B1 (HspB1), also known as Hsp27, is an anti-apoptotic protein implicated in tumor progression and metastasis.
- Understanding the structural dynamics of HspB1 in response to different apoptotic stimuli is crucial for deciphering its role in cell death pathways.
Purpose of the Study:
- To investigate the structural organization, localization, oligomerization, and phosphorylation of HspB1 under various apoptosis-inducing conditions.
- To determine how HspB1's protective efficiency varies across different apoptotic signaling pathways.
Main Methods:
- HeLa cells expressing high levels of HspB1 were treated with apoptosis inducers: etoposide, Fas agonist antibody, staurosporine, and cytochalasin D.
- Analysis of HspB1 localization, oligomerization state (native size), and phosphorylation patterns in response to specific inducers and heat shock.
Main Results:
- HspB1 exhibited inducer-specific protective efficiencies and dynamic changes in localization, oligomerization, and phosphorylation, distinct from heat shock responses.
- Etoposide and Fas treatments led to gradual formation of large, phosphorylated HspB1 oligomers.
- Staurosporine and cytochalasin D induced rapid, transient small oligomers, correlating with F-actin disruption, followed by large oligomer formation and caspase activation.
Conclusions:
- HspB1 adapts its structural organization in response to diverse apoptotic signals.
- These structural adaptations enable HspB1 to interfere with multiple signal transduction pathways upstream of apoptosis execution.
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