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Updated: Apr 6, 2026

Functional Characterization of RING-Type E3 Ubiquitin Ligases In Vitro and In Planta
Published on: December 5, 2019
Regulation of RNF144A E3 Ubiquitin Ligase Activity by Self-association through Its Transmembrane Domain
Shiuh-Rong Ho1, Yu-Ju Lee2, Weei-Chin Lin3
1From the Section of Hematology/Oncology, Department of Medicine.
Abstract:
RNF144A, an E3 ubiquitin ligase for DNA-dependent protein kinase catalytic subunit (DNA-PKcs), can promote DNA damage-induced cell apoptosis. Here we characterize an important regulation of RNF144A through its transmembrane (TM) domain. The TM domain of RNF144A is highly conserved among species. Deletion of the TM domain abolishes its membrane localization and also significantly reduces its ubiquitin ligase activity. Further evidence shows that the TM domain is required for RNF144A self-association and that the self-association may be partially mediated through a classic GXXXG interaction motif. A mutant RNF144A-G252L/G256L (in the G(252)XXXG(256) motif) preserves membrane localization but is defective in self-association and ubiquitin ligase activity. On the other hand, a membrane localization loss mutant of RNF144A still retains self-association and E3 ligase activity, which can be blocked by additional G252L/G256L mutations. Therefore, our data demonstrate that the TM domain of RNF144A has at least two independent roles, membrane localization and E3 ligase activation, to regulate its physiological function. This regulatory mechanism may be applicable to other RBR (RING1-IBR-RING2) E3 ubiquitin ligases because, first, RNF144B also self-associates. Second, all five TM-containing RBR E3 ligases, including RNF144A and RNF144B, RNF19A/Dorfin, RNF19B, and RNF217, have the RBR-TM(GXXXG) superstructure. Mutations of the GXXXG motifs in RNF144A and RNF217 have also be found in human cancers, including a G252D mutation of RNF144A. Interestingly, RNF144A-G252D still preserves self-association and ubiquitin ligase activity but loses membrane localization and is turned over rapidly. In conclusion, both proper membrane localization and self-association are important for RNF144A function.
Insights
The transmembrane domain of RNF144A is crucial for its function, regulating both membrane localization and E3 ubiquitin ligase activity through self-association. This highlights a key mechanism for controlling DNA damage response and apoptosis.
Area of Science:
- Molecular Biology
- Cellular Biology
- Biochemistry
Background:
- RNF144A functions as an E3 ubiquitin ligase for DNA-PKcs, promoting apoptosis following DNA damage.
- The regulation of RNF144A's activity is critical for cellular responses to DNA damage.
Purpose of the Study:
- To characterize the role of the transmembrane (TM) domain in RNF144A regulation.
- To elucidate the mechanisms by which the TM domain influences RNF144A's localization, self-association, and E3 ligase activity.
Main Methods:
- Site-directed mutagenesis to create RNF144A mutants, including TM domain deletion and GXXXG motif alterations (e.g., G252L/G256L, G252D).
- Assessment of RNF144A membrane localization using cellular imaging techniques.
- Measurement of E3 ubiquitin ligase activity and analysis of protein self-association.
Main Results:
- The TM domain is essential for RNF144A membrane localization and significantly impacts its E3 ubiquitin ligase activity.
- The TM domain mediates RNF144A self-association, potentially via a GXXXG motif; mutations in this motif disrupt self-association and ligase activity.
- RNF144A requires both membrane localization and self-association for optimal function, with TM domain mutations affecting these processes differently.
Conclusions:
- The TM domain of RNF144A plays dual roles in membrane localization and E3 ligase activation, crucial for its physiological function.
- The identified regulatory mechanism involving the RBR-TM(GXXXG) superstructure may be conserved across other related E3 ubiquitin ligases.
- Dysregulation of RNF144A through TM domain mutations, observed in cancers, underscores the importance of proper membrane localization and self-association for its function.
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