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Updated: May 23, 2026

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Published on: August 2, 2021
Caspases cleave and inhibit the microRNA processing protein DiGeorge Critical Region 8
Ming Gong1, Yanqiu Chen, Rachel Senturia
1Department of Biological Chemistry, David Geffen School of Medicine, University of California, Los Angeles, California 90095, USA.
Abstract:
DGCR8 (DiGeorge Critical Region 8) is an essential microRNA (miRNA) processing protein that recognizes primary transcripts of miRNAs (pri-miRNAs) and triggers their cleavage by the Drosha nuclease. We previously found that Fe(III) heme binds and activates DGCR8. Here we report that in HeLa cells, DGCR8 undergoes two proteolytic events that produce two C-terminal fragments called DGCR8(C1) and DGCR8(C2) , respectively. DGCR8(C2) accumulates during apoptosis and is generated through cleavage by a caspase. The caspase cleavage site is located in the central loop of the heme-binding domain. Cleavage of DGCR8 by caspase-3 in vitro results in loss of the otherwise tightly bound Fe(III) heme cofactor, dissociation of the N- and C-terminal proteolytic fragments, and inhibition of the pri-miRNA processing activity. These results reveal an intrinsic mechanism in the DGCR8 protein that seems to have evolved for regulating miRNA processing via association with Fe(III) heme and proteolytic cleavage by caspases. Decreased expression of miRNAs has been observed in apoptotic cells, and this change was attributed to caspase-mediated cleavage of a down-stream miRNA processing nuclease Dicer. We suggest that both the Drosha and Dicer cleavage steps of the miRNA maturation pathway may be inhibited in apoptosis and other biological processes where caspases are activated.
Insights
DiGeorge Critical Region 8 (DGCR8), a key microRNA (miRNA) processing protein, is cleaved by caspases during apoptosis. This caspase cleavage releases its heme cofactor and inhibits miRNA processing, revealing a novel regulatory mechanism.
Area of Science:
- Molecular Biology
- Biochemistry
- Cell Biology
Background:
- DiGeorge Critical Region 8 (DGCR8) is crucial for microRNA (miRNA) biogenesis, interacting with Drosha to process pri-miRNAs.
- Fe(III) heme is known to bind and activate DGCR8, suggesting a role for cofactor binding in its function.
Purpose of the Study:
- To investigate the proteolytic processing of DGCR8 in HeLa cells, particularly during apoptosis.
- To elucidate the mechanism by which caspase cleavage affects DGCR8 activity and heme binding.
Main Methods:
- Analysis of DGCR8 proteolytic fragments in HeLa cells.
- In vitro cleavage assays using purified DGCR8 and caspase-3.
- Assessment of Fe(III) heme binding and pri-miRNA processing activity post-cleavage.
Main Results:
- DGCR8 undergoes two caspase-mediated proteolytic events, generating DGCR8(C1) and DGCR8(C2) fragments.
- DGCR8(C2) accumulates during apoptosis, indicating a role in this process.
- Caspase-3 cleavage of DGCR8 releases Fe(III) heme, dissociates its fragments, and inhibits its pri-miRNA processing function.
Conclusions:
- DGCR8 possesses an intrinsic regulatory mechanism involving Fe(III) heme binding and caspase-mediated cleavage.
- Caspase activation during apoptosis can inhibit both Drosha and Dicer steps of miRNA maturation.
- This provides a molecular explanation for decreased miRNA expression observed during apoptosis.
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