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de la Pena Avalos, B.

Publications and source records attributed to de la Pena Avalos, B..

3 recordsLinked to original sources

Endogenous APOBEC3B Promotes CHK1 Inhibitor Sensitivity

APOBEC3B (A3B) is a single-stranded DNA cytosine deaminase overexpressed in cancer, where it causes genomic DNA damage and mutations associated with tumor evolution. Enforced A3B overexpression triggers a dependency on the replication-stress response in different cellular models. However, whether endogenous A3B in cancer cells might yield a similar vulnerability is unclear. Here, we investigate how endogenous A3B expression and catalytic activity affect sensitivity to CHK1 inhibition, using two cancer cell lines, JHOC5 and U2OS. A3B-expressing cancer cells are sensitive to two chemically distinct CHK1 inhibitors, GDC-0575 and Prexasertib. CHK1 inhibitor sensitivity is reduced by A3B CRISPR knockout and restored by re-expressing wildtype A3B in knockout cells. Moreover, an endogenous A3B-E255A catalytic mutant generated by homology-directed repair phenocopies the reduced CHK1 inhibitor sensitivity of A3B-null cells, demonstrating a DNA deamination-dependent mechanism. CHK1 inhibition induces replication-associated DNA damage and cell-cycle perturbation dependent on A3B expression. As a result, A3B-expressing cells accumulate more pan-nuclear {gamma}H2AX, aberrant DNA-content profiles, and an expanded EdU-negative S-phase population, which are hallmarks of stalled DNA replication. In comparison, A3B-null and A3B-E255A cells retain defined cell-cycle distributions and are less sensitive to CHK1 inhibition. Together, these findings identify endogenous A3B-catalyzed deamination as a therapeutically actionable source of replication-associated DNA damage that renders tumor cells selectively dependent on CHK1 function. Statement of significanceAPOBEC3B causes mutations in cancer cells and simultaneously imposes DNA replication stress. This combines to sensitize tumor cells to chemical inhibitors of the DNA damage response kinase CHK1.

cancer biology↗

Full-length structure of the anti-viral and pro-tumor DNA deaminase APOBEC3B

Human APOBEC3B (A3B) restricts virus infections by catalyzing the deamination of cytosines to uracils in single-stranded DNA. A3B also contributes to mutagenesis and genome instability in cancer cells, driving tumor evolution and detrimental outcomes including therapy resistance and metastasis. A3B comprises tandem globular deaminase domains, with a multifunctional amino-terminal domain (NTD) and a catalytically active carboxy-terminal domain (CTD). Although individual domain structures have been studied, the structure of full-length A3B has remained elusive. Here, we report the cryoEM structure of wildtype A3B in complex with the natural antagonist BORF2 (the large subunit of the Epstein-Barr virus ribonucleotide reductase). The two domains of A3B bridge a novel BORF2 dimer interface, showing a unique domain positioning that distinguishes A3B from the related dual-domain retrovirus restriction factor APOBEC3G (A3G). Mutational analyses suggest that the unique NTD-CTD interaction regulates A3B deaminase activity. The BORF2 dimerization interface is stabilized by primary interactions with A3B-CTD and secondary contacts with A3B-NTD, as well as by A3B CTD-CTD dimerization. This matrix of interactions supports a molecular mechanism for A3B neutralization in which BORF2 binding leads to deaminase sequestration in large aggregates. The full-length wildtype A3B structure also provides a platform for future anti-viral and anti-cancer drug development efforts.

biochemistry↗

Regulatory interactions between APOBEC3B N- and C-terminal domains

APOBEC3B (A3B) is implicated in DNA mutations that facilitate tumor evolution. Although structures of its individual N- and C-terminal domains (NTD and CTD) have been resolved through X-ray crystallography, the full-length A3B (fl-A3B) structure remains elusive, limiting understanding of its dynamics and mechanisms. In particular, the APOBEC3B C-terminal domain (A3Bctd) active site is frequently closed in models and structures. In this study, we built several new models of fl-A3B using integrative structural biology methods and selected a top model for further dynamical investigation. We compared dynamics of the truncated (A3Bctd) to the fl-A3B via conventional and Gaussian accelerated molecular dynamics (MD) simulations. Subsequently, we employed weighted ensemble methods to explore the fl-A3B active site opening mechanism, finding that interactions at the NTD-CTD interface enhance the opening frequency of the fl-A3B active site. Our findings shed light on the structural dynamics of fl-A3B, which may offer new avenues for therapeutic intervention in cancer.

biophysics↗