Introduction/background: TOP3B (Topoisomerase III-Beta) is a DNA topoisomerase enzyme essential for managing DNA topology during various cellular processes. TOP3B knockout mice typically develop but have a shorter lifespan; however, the exact role of TOP3B is not fully understood. This study aims to investigate the diversity of TOP3B across various mammalian species, with a particular focus on comparing the naked mole-rat (Heterocephalus glaber), known for its exceptional longevity and genomic stability, and humans (Homo sapiens).
Materials And Methods: The study analyzed 30 putative TOP3B genes across 23 mammalian species, including Heterocephalus glaber (Hgl), Octodon degus (Ode), Pongo abelii (Pab), Trachypithecus francoisi (Tfr), Cavia porcellus (Cpo), Aotus nancymaae (Ana) and Homo sapiens (Hsa). Further deep in-silico analysis was done by covering structural and functional delivery analysis.
Results: Database searches revealed the presence of two transcript isoforms, X1 and X3, in the naked mole-rat (NMR) and three isoforms in humans (Hsa), while most other species exhibited one to two isoforms. Analyses of conserved domain architecture and de novo motifs indicated noticeable differences in the domain and motif patterns between the NMR and human isoforms. Additionally, multiple sequence alignment identified several mutations at critical sites in the NMR's TOP3B protein, including A46D and G47S, and five other unnamed mutations that may contribute to genomic stability. Evolutionary analyses showed that the TOP3B sequences of the NMR are closely related to those of Cavia porcellus (guinea pig) and Octodon degus (Degus). Furthermore, protein-protein interaction network analyses, along with pathway and molecular docking studies, revealed significant diversity in the interaction patterns of TOP3B between the NMR and humans.
Discussion: The structural diversity and conserved-site mutations in Hgl's TOP3B protein suggest a potential role in promoting genomic stability and extending lifespan. These unique structural features may contribute to the Heterocephalus glaber's exceptional resistance to genomic instability and aging, offering insights into potential longevity mechanisms.
Conclusion: These findings suggest that structure variations and mutations in NMR's TOP3B protein are associated with enhanced genomic stability, which may underlie its remarkable lifespan. This study provides preliminary insights into the potential function of TOP3B in genomic maintenance across species, particularly in aging and longevity.
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http://dx.doi.org/10.2174/0118746098338510250222054836 | DOI Listing |
Curr Aging Sci
March 2025
Genomics and Informatics Lab (GIL) Inc., Lahore, Pakistan.
Introduction/background: TOP3B (Topoisomerase III-Beta) is a DNA topoisomerase enzyme essential for managing DNA topology during various cellular processes. TOP3B knockout mice typically develop but have a shorter lifespan; however, the exact role of TOP3B is not fully understood. This study aims to investigate the diversity of TOP3B across various mammalian species, with a particular focus on comparing the naked mole-rat (Heterocephalus glaber), known for its exceptional longevity and genomic stability, and humans (Homo sapiens).
View Article and Find Full Text PDFNat Commun
January 2025
Developmental Therapeutics Branch & Laboratory of Molecular Pharmacology, Center for Cancer Research, National Cancer Institute, NIH, Bethesda, MD, USA.
Type IA topoisomerases (TopoIAs) are present in all living organisms. They resolve DNA/RNA catenanes, knots and supercoils by breaking and rejoining single-stranded DNA/RNA segments and allowing the passage of another nucleic acid segment through the break. Topoisomerase III-β (TOP3B), the only RNA topoisomerase in metazoans, promotes R-loop disassembly and translation of mRNAs.
View Article and Find Full Text PDFCell Cycle
January 2024
Developmental Therapeutics Branch and Laboratory of Molecular Pharmacology, Center for Cancer Research, National Cancer Institute, NIH, Bethesda, MD, USA.
Humans have two Type IA topoisomerases, topoisomerase IIIα (TOP3A) and topoisomerase IIIβ (TOP3B). In this review, we focus on the role of human TOP3A in DNA replication and highlight the recent progress made in understanding TOP3A in the context of replication. Like other topoisomerases, TOP3A acts by a reversible mechanism of cleavage and rejoining of DNA strands allowing changes in DNA topology.
View Article and Find Full Text PDFProg Neurobiol
February 2024
Laboratory of Genetics and Genomics, National Institute on Aging, Intramural Research Program, National Institute of Health, Baltimore, MD 21224, USA. Electronic address:
The Topoisomerase 3B (Top3b) - Tudor domain containing 3 (Tdrd3) protein complex is the only dual-activity topoisomerase complex that can alter both DNA and RNA topology in animals. TOP3B mutations in humans are associated with schizophrenia, autism and cognitive disorders; and Top3b-null mice exhibit several phenotypes observed in animal models of psychiatric and cognitive disorders, including impaired cognitive and emotional behaviors, aberrant neurogenesis and synaptic plasticity, and transcriptional defects. Similarly, human TDRD3 genomic variants have been associated with schizophrenia, verbal short-term memory and educational attainment.
View Article and Find Full Text PDFNat Commun
November 2023
Developmental Therapeutics Branch & Laboratory of Molecular Pharmacology, Center for Cancer Research, National Cancer Institute, NIH, Bethesda, MD, 20892, USA.
TOP3B is stabilized by TDRD3. Hypothesizing that TDRD3 recruits a deubiquitinase, we find that TOP3B interacts with USP9X via TDRD3. Inactivation of USP9X destabilizes TOP3B, and depletion of both TDRD3 and USP9X does not promote further TOP3B ubiquitylation.
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