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Updated: Aug 29, 2026

Measurements of Physiological Stress Responses in C. Elegans
Published on: May 21, 2020
Gene expression changes associated with the endoplasmic reticulum stress response induced by microsomal cytochrome
Elzbieta Szczesna-Skorupa1, Ci-Di Chen, Hong Liu
1Department of Molecular and Integrative Physiology, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, USA.
Abstract:
Induction of drug-metabolizing microsomal cytochromes p450 (p450s) results in a striking proliferation of the smooth endoplasmic reticulum (ER). Overexpression of P450s in yeast and cultured cells produces a similar response. The signals mediating this process are not known but probably involve signal transduction pathways involved in the unfolded protein response (UPR) or the ER overload response (EOR). We have examined the temporal response of specific genes in these pathways and genes globally to overexpression of p450 in cultured cells. Activity of NFkappaB, an EOR component, was substantially increased by overexpression of full-length p450 2C2 or a chimera with the 28-amino acid signal anchor sequence of p450 2C2 in HepG2 cells, and the activation correlated temporally with the accumulation of p450 in the cells. In the UPR pathway, activation of the transcription factor XBP1 by IRE1 also correlated with the accumulation of p450 in the cells, and in contrast, maximum activation of the BiP/grp78 promoter preceded the accumulation. Differential effects of expression of p450 on apoptosis were observed in nonhepatic COS1 and hepatic HepG2 cells. In COS1 cells, apoptosis was induced, and this correlated with sustained activation of the pro-apoptotic JNK pathway, induction of CHOP, and an absence of the increased NFkappaB activity. In HepG2 cells, JNK was only transiently activated, and CHOP expression was not induced. As assessed by DNA microarray analysis, up-regulation of signaling genes was predominant including those involved in anti-apoptosis and ER stress. These results suggest that both the EOR and UPR pathways are involved in the cellular response to induction of p450 expression and that in hepatic cells genes are also induced to block apoptosis, which may be a physiologically relevant response to prevent cell death during xenobiotic induced expression of p450 in the liver.
Insights
Overexpression of drug-metabolizing cytochromes P450 (CYPs) triggers endoplasmic reticulum (ER) responses. Both ER overload response (EOR) and unfolded protein response (UPR) pathways are activated, with hepatic cells inducing anti-apoptotic genes.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Drug-metabolizing microsomal cytochromes P450 (P450s) induce significant proliferation of the smooth endoplasmic reticulum (ER).
- The precise signaling pathways mediating this ER response remain largely unknown.
- Potential involvement of the unfolded protein response (UPR) and ER overload response (EOR) pathways is hypothesized.
Purpose of the Study:
- To investigate the temporal gene expression patterns in UPR and EOR pathways during P450 overexpression.
- To elucidate the role of these pathways in cellular responses to P450 induction.
- To examine differential effects of P450 expression on apoptosis in various cell types.
Main Methods:
- Overexpression of P450 2C2 and a P450 chimera in HepG2 cells.
- Assessment of NFkappaB activity (EOR component) and XBP1 activation (UPR component).
- DNA microarray analysis to evaluate global gene expression changes.
Main Results:
- NFkappaB activity and XBP1 activation correlated with P450 accumulation in HepG2 cells.
- Apoptosis was induced in non-hepatic COS1 cells, linked to JNK pathway activation and CHOP induction.
- Hepatic HepG2 cells showed transient JNK activation, no CHOP induction, and upregulation of anti-apoptotic and ER stress genes.
Conclusions:
- Both EOR and UPR pathways are integral to the cellular response to P450 induction.
- Hepatic cells activate anti-apoptotic mechanisms to prevent cell death during xenobiotic-induced P450 expression.
- These findings highlight the complex cellular adaptation to drug metabolism enzyme induction.
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