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Updated: Mar 13, 2026

Measurement of Heme Synthesis Levels in Mammalian Cells
Published on: July 9, 2015
CO and NO bind to Fe(II) DiGeorge critical region 8 heme but do not restore primary microRNA processing activity
Judy P Hines1, Aaron T Smith2, Jose P Jacob3
1Department of Chemistry, University of Wisconsin-Madison, 1101 University Ave., Madison, WI, 53706-1322, USA.
Abstract:
The RNA-binding heme protein DiGeorge critical region 8 (DGCR8) and its ribonuclease partner Drosha cleave primary transcripts of microRNA (pri-miRNA) as part of the canonical microRNA (miRNA) processing pathway. Previous studies show that bis-cysteine thiolate-coordinated Fe(III) DGCR8 supports pri-miRNA processing activity, while Fe(II) DGCR8 does not. In this study, we further characterized Fe(II) DGCR8 and tested whether CO or NO might bind and restore pri-miRNA processing activity to the reduced protein. Fe(II) DGCR8 RNA-binding heme domain (Rhed) undergoes a pH-dependent transition from 6-coordinate to 5-coordinate, due to protonation and loss of a lysine ligand; the ligand bound throughout the pH change is a histidine. Fe(II) Rhed binds CO and NO from 6- and 5-coordinate states, forming common CO and NO adducts at all pHs. Fe(II)-CO Rhed is 6-coordinate, low-spin, and pH insensitive with the histidine ligand retained, suggesting that the protonatable lysine ligand has been replaced by CO. Fe(II)-NO Rhed is 5-coordinate and pH insensitive. Fe(II)-NO also forms slowly upon reaction of Fe(III) Rhed with excess NO via a stepwise process. Heme reduction by NO is rate-limiting, and the rate would be negligible at physiological NO concentrations. Importantly, in vitro pri-miRNA processing assays show that both CO- and NO-bound DGCR8 species are inactive. Fe(II), Fe(II)-CO, and Fe(II)-NO Rhed do not bear either of the cysteine ligands found in the Fe(III) state. These data support a model in which the bis-cysteine thiolate ligand environment of Fe(III) DGCR8 is necessary for establishing proper pri-miRNA binding and enabling processing activity.
Insights
The reduced Fe(II) form of DiGeorge critical region 8 (DGCR8) protein, crucial for microRNA processing, is inactive. Binding of CO or NO does not restore its activity, highlighting the necessity of the Fe(III) state with bis-cysteine ligands.
Area of Science:
- Biochemistry
- Molecular Biology
- RNA processing
Background:
- DiGeorge critical region 8 (DGCR8) is an RNA-binding heme protein essential for microRNA (miRNA) biogenesis.
- DGCR8, with its partner Drosha, processes primary miRNA transcripts (pri-miRNA).
- The active Fe(III) state of DGCR8 requires bis-cysteine thiolate coordination, while the reduced Fe(II) state is inactive.
Purpose of the Study:
- To characterize the reduced Fe(II) DGCR8 protein.
- To investigate if CO or NO binding can restore pri-miRNA processing activity to Fe(II) DGCR8.
- To elucidate the structural and functional requirements for DGCR8 activity.
Main Methods:
- Characterization of Fe(II) DGCR8 RNA-binding heme domain (Rhed) across different pH values.
- Spectroscopic analysis of Fe(II) Rhed binding with CO and NO.
- In vitro pri-miRNA processing assays using Fe(II), Fe(II)-CO, and Fe(II)-NO DGCR8 variants.
Main Results:
- Fe(II) Rhed exhibits a pH-dependent transition involving histidine and lysine ligands.
- Fe(II) Rhed binds CO and NO, forming stable adducts, but loses the essential bis-cysteine ligands.
- CO- and NO-bound Fe(II) DGCR8 species are inactive in pri-miRNA processing.
Conclusions:
- The bis-cysteine thiolate coordination environment of Fe(III) DGCR8 is critical for pri-miRNA binding and processing.
- CO or NO binding to Fe(II) DGCR8 does not rescue its enzymatic activity.
- The Fe(III) state is necessary for DGCR8's function in miRNA biogenesis.
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