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Biochemical Differences and Similarities between the DEAD-Box Helicase Orthologs DDX3X and Ded1p
Deepak Sharma1, Andrea A Putnam1, Eckhard Jankowsky1
1Center for RNA Science and Therapeutics, School of Medicine, Case Western Reserve University, 10900 Euclid Ave, Cleveland, OH 44106, United States.
Abstract:
DDX3X is a conserved DEAD-box RNA helicase involved in translation initiation and other processes of RNA metabolism. Mutations in human DDX3X and deregulation of its expression are linked to tumorigenesis and intellectual disability. The protein is also targeted by diverse viruses. Previous studies demonstrated helicase and NTPase activities for DDX3X, but important biochemical features of the enzyme remain unclear. Here, we systematically characterize enzymatic activities of human DDX3X and compare these to its closely related Saccharomyces cerevisiae ortholog Ded1p. We show that DDX3X, like Ded1p, utilizes exclusively adenosine triphosphates to unwind helices, oligomerizes to function as efficient RNA helicase, and does not unwind DNA duplexes. The ATPase activity of DDX3X is markedly stimulated by RNA and weaker by DNA, although DNA binds to the enzyme. For RNA unwinding, DDX3X shows a greater preference than Ded1p for substrates with unpaired regions 3' to the duplex over those with 5' unpaired regions. DDX3X separates longer RNA duplexes faster than Ded1p and is less potent than Ded1p in facilitating strand annealing. Our results reveal that the biochemical activities of human DDX3X are typical for DEAD-box RNA helicases, but diverge quantitatively from its highly similar S. cerevisiae ortholog Ded1p.
Insights
Human DEAD-box RNA helicase DDX3X uses ATP to unwind RNA, preferring 3' over 5' regions. Its biochemical activities are typical but quantitatively differ from its yeast homolog, Ded1p.
Area of Science:
- Biochemistry
- Molecular Biology
- RNA Metabolism
Background:
- DDX3X is a DEAD-box RNA helicase implicated in translation and RNA metabolism.
- Mutations and expression changes in DDX3X are linked to cancer and intellectual disability.
- Viral targeting of DDX3X highlights its biological significance.
Purpose of the Study:
- To systematically characterize the enzymatic activities of human DDX3X.
- To compare the biochemical properties of human DDX3X with its yeast ortholog, Ded1p.
Main Methods:
- In vitro characterization of helicase and NTPase activities.
- Comparative analysis of human DDX3X and Saccharomyces cerevisiae Ded1p.
Main Results:
- DDX3X exclusively uses ATP for unwinding and requires oligomerization for efficient RNA helicase activity.
- DDX3X shows RNA-stimulated ATPase activity and unwinds RNA duplexes, with a preference for 3' ssRNA overhangs.
- DDX3X unwinds longer RNA duplexes faster than Ded1p but is less effective at strand annealing.
Conclusions:
- Human DDX3X exhibits typical DEAD-box RNA helicase biochemical activities.
- Quantitative differences exist between human DDX3X and its highly similar yeast ortholog Ded1p, particularly in substrate preference and unwinding efficiency.
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