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Interactions of the C-Terminal Truncated DEAD-Box Protein DDX3X With RNA and Nucleotide Substrates
Anthony F T Moore1, Aliana López de Victoria1, Eda Koculi2
1Department of Chemistry, University of Central Florida, Orlando, Florida 32816, United States.
Abstract:
DDX3X is a human DEAD-box RNA helicase implicated in many important cellular processes. In addition to the RecA-like catalytic core, DDX3X contains N- and C-terminal domains. The ancillary domains of DEAD-box RNA helicases have been shown to modulate their interactions with RNA and nucleotide substrates. Here, with the goal of understanding the role of N- and C-terminal domains of DDX3X on the DDX3X catalytic activity, we examined the interactions of RNA substrates and nucleotides with a DDX3X construct possessing the entire N-terminal domain and the catalytic core but lacking 80 residues from its C-terminal domain. Next, we compared our results with previously investigated DDX3X constructs. Our data show that the C-terminal truncated DDX3X does not bind to a blunt-ended double-helix RNA. This conclusion agrees with the data obtained on the wild-type LAF-1 protein, the DDX3X ortholog in Caenorhabditis elegans, and disagrees with the data obtained on the minimally active DDX3X construct, which misses 131 residues from its N-terminal domain and 80 residues from its C-terminal domain. The minimally active DDX3X construct was able to bind to the blunt-ended RNA construct. Combined, the previous studies and our results indicate that the N-terminal of DDX3X modulates the choice of DDX3X-RNA substrates. Furthermore, a previous study showed that the wild-type DDX3X construct hydrolyzes all four nucleotides and deoxynucleotides, both in the presence and absence of RNA. The C-terminal truncated DDX3X investigated here hydrolyzes only cytidine triphosphate (CTP) in the absence of RNA and CTP, adenosine triphosphate (ATP), and deoxyribose adenosine triphosphate (dATP) in the presence of RNA. Hence, the C-terminal truncated DDX3X has a more stringent nucleotide specificity than wild-type DDX3X.
Insights
The N-terminal domain of DDX3X RNA helicase influences RNA substrate binding. Truncating the C-terminal domain alters nucleotide specificity, making it more stringent than wild-type DDX3X.
Area of Science:
- Molecular Biology
- Biochemistry
- RNA Biology
Background:
- DDX3X is a human DEAD-box RNA helicase crucial for cellular processes.
- Its N- and C-terminal domains modulate interactions with RNA and nucleotides.
- Understanding these domains' roles is key to deciphering DDX3X function.
Purpose of the Study:
- To investigate the impact of N- and C-terminal domains on DDX3X catalytic activity.
- To examine RNA substrate and nucleotide interactions with a C-terminal truncated DDX3X construct.
Main Methods:
- Biochemical assays were used to study RNA binding and nucleotide hydrolysis.
- A DDX3X construct lacking 80 C-terminal residues was analyzed.
- Results were compared with previously studied DDX3X constructs and orthologs.
Main Results:
- The C-terminal truncated DDX3X failed to bind blunt-ended double-helix RNA, unlike a construct lacking both N- and C-terminal domains.
- The N-terminal domain appears to modulate DDX3X-RNA substrate selection.
- The truncated DDX3X exhibited altered nucleotide specificity, hydrolyzing fewer nucleotides than wild-type DDX3X.
Conclusions:
- The N-terminal domain of DDX3X is critical for determining RNA substrate specificity.
- The C-terminal domain influences the nucleotide specificity of DDX3X.
- Truncation of the C-terminus results in a more stringent nucleotide preference for DDX3X.
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