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Biology subjects

Wang, V. Y.-F.

Publications and source records attributed to Wang, V. Y.-F..

2 recordsLinked to original sources

Phosphorylation-induced flexibility of proto-oncogenic Bcl3 regulates transcriptional activation by NF-κB p52 homodimer

B cell lymphoma 3 (Bcl3), a member of the I{kappa}B family proteins, modulates transcription by primarily associating with NF-{kappa}B p50 and p52 homodimers. Bcl3 undergoes extensive phosphorylation, though the functions of many of these modifications remain unclear. We previously described that phosphorylation at Ser33, Ser114 and Ser446 partially switches Bcl3 from acting as an I{kappa}B-like inhibitor to a transcription regulator by associating with the (p52:p52):DNA binary complex. Here, we identified another critical phosphorylation site, Ser366. Substituting at all four residues to phospho-mimetic glutamate further enhances Bcl3s transcriptional activity. Phospho-modifications retain Bcl3s ability to stably bind p52 but induces reciprocal structural changes as revealed by HDX-MS experiments; the N-terminal region stiffens, while the C-terminus becomes more flexible. The increased flexibility allowed the Bcl3:(p52p52) binary complex to better accommodate DNA. The removal of the C-terminal 28-residues transformed Bcl3 into a transcriptional activator independent of phosphorylation. Notably, most identified mutations in Bcl3 from various cancers map to its C-terminus, suggesting the functional relevance of Bcl3 C-terminal structural flexibility and enhanced interaction with (p52p52):DNA complex to transcriptional potential and disease. Overall, this study uncovers the mechanistic basis by which phosphorylation-driven structural changes convert Bcl3 from an inhibitor to a transcriptional cofactor of NF-{kappa}B, and how deregulation of its activity through altered phosphorylation or mutation can lead to cancer.

biochemistry↗

Structures of NF-κB p52 homodimer-DNA complexes rationalize binding mechanisms and transcription activation

The mammalian NF-{kappa}B p52:p52 homodimer together with its cofactor Bcl3 activates transcription of {kappa}B sites with a central G/C base pair (bp), while it is inactive toward {kappa}B sites with a central A/T bp. To understand the molecular basis for this unique property of p52, we have determined its structure in complex with a P-selectin(PSel)-{kappa}B DNA (5-GGGGTGACCCC-3) (central bp is underlined) and variants changing the central bp to A/T or swapping the flanking bp. The structures reveal a nearly two-fold widened minor groove in the central region of the DNA as compared to all other currently available NF-{kappa}B-DNA complex structures, which have a central A/T bp. Molecular dynamics (MD) simulations show free DNAs exist in distinct preferred conformations, and p52:p52 homodimer induces the least amount of conformational changes on the more transcriptionally active natural PSel-{kappa}B DNA in the bound form. Our binding assays further demonstrate that the fast kinetics driven by entropy is correlated with higher transcriptional activity. Overall, our studies have revealed a novel conformation for {kappa}B DNA in complex with NF-{kappa}B and suggest the importance of binding kinetics, dictated by free DNA conformational and dynamic states, in controlling transcriptional activation for NF-{kappa}B.

biochemistry↗