ABSTRACT Immediate early genes (IEGs) encode master transcription factors, including EGR1 , FOS , JUN , and MYC genes that drive robust transcription in the G1 phase of cell cycle. Our previous studies indicate that topoisomerase IIβ (TOP2B) critically regulates IEG transcription and that the activities of TOP2B are dynamically controlled through post-translational modifications by BRCA1-BARD1 and ERKs. Here, we show that two E2 enzymes, UBCH5b and UBC13/MMS2, differentiate the effects and functions of TOP2B ubiquitination by BRCA1-BARD1. Comprehensive transcriptomics, proteomics, and biochemical and molecular cellular analyses revealed a close relationship between BARD1 and key mitogen-activated protein kinase pathway genes and identified activated ERK2 as a novel kinase that phosphorylates BARD1 at S391, a previously reported mitotic phosphorylation site, whose genetic mutation has been linked to tumorigenesis. Mechanistically, the catalytic activity of ERK2 stimulates TOP2B ubiquitination mediated by BRCA1-BARD1 in complex with UBCH5b and UBC13/MMS2, which controls the binding and function of TOP2B and BARD1 for transcriptional activation at representative IEGs. Taken together, our data propose that there is a functional regulatory circuit involving TOP2B, BARD1, and ERK2, three key transcriptional activators for IEG transcription, in which the gene association and catalytic activity of TOP2B are regulated through E2-differentiated ubiquitination by BRCA1-BARD1 and the phosphorylation of BARD1 by ERK2 for productive transcription.
Type II topoisomerases are found in all kingdoms of life and perform key biological functions during replication, and other DNA metabolic events. These enzymes are also the targets of important classes of anti-bacterial and anti-cancer drugs. During the normal enzymatic reaction, topoisomerase poisons stabilize the normally reversible covalent enzyme/DNA adduct leading to DNA damage. More recently, Top2 mutants have been identified that exert the same effect as these small molecules, and expression of these mutants in cells leads to genome instability. Mutations that increase the potency of topoisomerase targeting drugs have the potential to mimic drug action and expand insight into the drug mechanism. We carried out an extensive screen of mutations in human Top2 to identify mutations that result in elevated levels of sensitivity to the anti-cancer drug etoposide. Etoposide hypersensitive mutations were identified throughout the catalytic domains of Top2. Mutants were typically hypersensitive to other Top2 inhibitors, although some mutants had hypersensitivity that was specific for etoposide. Several examples of mutant proteins identified in the screen were purified and characterized biochemically. These proteins exhibited a broad range of alterations in enzyme activity including altered requirements for divalent cations, altered relaxation and decatenation activity, altered utilization of ATP, and enhanced DNA cleavage in the absence of inhibitors. Our results suggest that diverse mechanisms influence the ability of small molecules to convert type II topoisomerases to DNA damaging agents, and the etoposide hypersensitivity mutations found provide landmarks for the development of small molecules with improved potency.
Abstract The protein kinase C (PKC) family of enzymes are indispensable serine-threonine kinases involved in signal pathways implicated in many different cellular processes. Dysregulation of PKC isoforms may contribute to the development and progression of breast cancer. Z-Endoxifen (Z-ENDX), the active metabolite of tamoxifen (TAM) and a selective estrogen receptor modulator (SERM) exhibited potent antitumor activity in endocrine-resistant hormone receptor-positive breast and other gynecologic cancers. Mechanistically, we discovered that ENDX inhibits PKCβI and downstream AKT signaling. Based on insights from our recently determined crystal structure of PKCβI, we investigated the effects of ENDX on PKCβI in estrogen receptor-positive (ER+) breast cancer. In vitro FRET-based biochemical assays revealed that ENDX inhibits the kinase activity of conventional (PKCβI) as well as a novel (PKC;) PKC isoform with a similar IC50. However, the PKCβI catalytic domain was found to be less sensitive to ENDX compared to full-length PKCβI. We identified a multi-domain mechanism of PKC inhibition through an allosteric inhibitory model using X-ray crystallography. Since the spatial assembly of PKC is crucial for its kinase activity, we assessed the effects of ENDX on the intracellular localization of PKCβI using live cell confocal imaging. Sub-cellular tracking of YFP-tagged PKCβI in ER+ MCF7 cells paradoxically revealed that ENDX promoted the translocation of PKCβI to the plasma membrane in both a dose and time-dependent manner. Furthermore, co-treatment with inhibitors of PHLPP phosphatases, which regulate PKC, alleviated this translocation. Based on our prior data demonstrating greater antitumor activity of the Z vs E isomer of ENDX, we discovered that Z-ENDX inhibits PKCβI kinase activity more effectively than its E-isomer using in vitro kinase assays. Further, E-ENDX failed to promote PKCβI translocation to the membrane.Taken together, these results suggest that allosteric effects of Z-ENDX trigger PKCβI recruitment to the plasma membrane where it is normally active yet suppresses its kinase activity. These findings indicate that Z-ENDX induces a non-productive structure of the enzyme and "breaks" the well-known mechanism of PKC activation upon binding to the cell membrane. Moreover, Z-ENDX likely triggers PHLPP-mediated PKCβI dephosphorylation, and ultimately PKCβI degradation, suggesting that Z-ENDX represents a new mechanistic basis for targeting and downregulating PKCβI, and potentially other PKC family members, in cancer cells. This newly discovered function of Z-ENDX likely contributes to its superior anti-cancer effects when compared to TAM and other endocrine therapies. Citation Format: Sayantani Sarkar Bhattacharya, Huy V. Huynh, Jasmin K. Farmakes, Taylor L. Witter, Elizabeth S. Bruinsma, Swaathi Jayaraman, Anh T. Cong, John R. Hawse, Matthew P. Goetz, Matthew J. Schellenberg. Protein kinase C beta 1 (PKCβ1) is allosterically inhibited and paradoxically translocated to the membrane by z-endoxifen [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2024; Part 2 (Late-Breaking, Clinical Trial, and Invited Abstracts); 2024 Apr 5-10; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2024;84(7_Suppl):Abstract nr LB051.
FAM111A, a serine protease, plays roles in DNA replication and antiviral defense. Missense mutations in the catalytic domain cause hyper-autocleavage and are associated with genetic disorders with developmental defects. Despite the enzyme’s biological significance, the molecular architecture of the FAM111A serine protease domain (SPD) is unknown. Here, we show that FAM111A is a dimerization-dependent protease containing a narrow, recessed active site that cleaves substrates with a chymotrypsin-like specificity. X-ray crystal structures and mutagenesis studies reveal that FAM111A dimerizes via the N-terminal helix within the SPD. This dimerization induces an activation cascade from the dimerization sensor loop to the oxyanion hole through disorder-to-order transitions. Dimerization is essential for proteolytic activity in vitro and for facilitating DNA replication at DNA-protein crosslink obstacles in cells, while it is dispensable for autocleavage. These findings underscore the role of dimerization in FAM111A’s function and highlight the distinction in its dimerization dependency between substrate cleavage and autocleavage.
The function of the mitogen-activated protein kinase signaling pathway is required for the activation of immediate early genes (IEGs), including EGR1 and FOS, for cell growth and proliferation. Recent studies have identified topoisomerase II (TOP2) as one of the important regulators of the transcriptional activation of IEGs. However, the mechanism underlying transcriptional regulation involving TOP2 in IEG activation has remained unknown. Here, we demonstrate that ERK2, but not ERK1, is important for IEG transcriptional activation and report a critical ELK1 binding sequence for ERK2 function at the EGR1 gene. Our data indicate that both ERK1 and ERK2 extensively phosphorylate the C-terminal domain of TOP2B at mutual and distinctive residues. Although both ERK1 and ERK2 enhance the catalytic rate of TOP2B required to relax positive DNA supercoiling, ERK2 delays TOP2B catalysis of negative DNA supercoiling. In addition, ERK1 may relax DNA supercoiling by itself. ERK2 catalytic inhibition or knock-down interferes with transcription and deregulates TOP2B in IEGs. Furthermore, we present the first cryo-EM structure of the human cell-purified TOP2B and etoposide together with the EGR1 transcriptional start site (-30 to +20) that has the strongest affinity to TOP2B within -423 to +332. The structure shows TOP2B-mediated breakage and dramatic bending of the DNA. Transcription is activated by etoposide, while it is inhibited by ICRF193 at EGR1 and FOS, suggesting that TOP2B-mediated DNA break to favor transcriptional activation. Taken together, this study suggests that activated ERK2 phosphorylates TOP2B to regulate TOP2-DNA interactions and favor transcriptional activation in IEGs. We propose that TOP2B association, catalysis, and dissociation on its substrate DNA are important processes for regulating transcription and that ERK2-mediated TOP2B phosphorylation may be key for the catalysis and dissociation steps.
Z-Endoxifen Allosterically Inhibits PKCβI and its Paradoxical Membrane Translocation Sayantani Sarkar Bhattacharya1, Taylor L. Witter1, Anh Q. T. Cong1, Elizabeth Bruinsma2, Swaathi Jayaraman2, Matthew P. Goetz2, John R. Hawse1, and Matthew J. Schellenberg1 1Department of Biochemistry and Molecular Biology, Mayo Clinic, Rochester, MN USA 55905 2Department of Oncology, Mayo Clinic, Rochester, MN USA 55905 Background: Z-Endoxifen (ENDX), the active metabolite of tamoxifen (TAM) and a selective estrogen receptor modulator (SERM), exhibited high antitumor activity in endocrine-resistant hormone receptor-positive breast and other gynecologic cancer. ENDX has also been shown to be a protein kinase C (PKC) inhibitor. PKCs participate in diverse cellular functions and their activity is often elevated in breast tumors. Guided by mechanistic insights from our recently determined crystal structure of PKCβI, we sought to determine the effects of ENDX on PKCβI in a breast cancer cell line model. Methods: To determine how ENDX regulates PKC activity, we used a Z’LYTE kinase activity assay. This Fluorescence Resonance Energy Transfer (FRET) based biochemical method can detect differential sensitivity of phosphorylated and non-phosphorylated peptides to proteolytic cleavage. We probed changes in activity for conventional and novel PKCs, as well as the purified catalytic domain of conventional PKCs in vitro. Alongside, as kinase activity of PKC relies on its spatial assembly, therefore we studied its intracellular localization using live cell confocal imaging. MCF7 cells expressing YFP-tagged PKCβI were grown in a glass bottom chamber and treated with ENDX and other modulators for relevant time and doses for this study. Images were taken using Zeiss LSM 780 confocal laser scanning microscope and analyzed in Zeiss-ZEN microscope software and GraphPad Prism 9. Results: Our data from an in vitro kinase assay indicates that ENDX inhibits the kinase activity of conventional (PKCβI) and novel (PKC𝛿) PKC isoforms with a similar IC50, however PKCβI catalytic domain is less sensitive to ENDX. We also identified a multi-domain mechanism of PKC inhibition through an allosteric inhibitory mechanism. Our live cell imaging study demonstrated that ENDX promotes the recruitment of PKCβI to the cell membrane in both a dose and time-dependent manner. Moreover, this translocation can also be mitigated by co-treatment with inhibitors of the PKC-regulator PHLPP phosphatases. Conclusion: Taken together, these results suggest the allosteric effects of ENDX trigger PKCβI recruitment to the cell membrane, yet since ENDX also inhibits kinase activity it suggests that ENDX triggers a non-productive interaction with the enzyme and "breaks" the well-known mechanism of PKC activation upon binding the cell membrane. Furthermore, ENDX is likely to trigger dephosphorylation and ultimately degradation, suggesting that ENDX represents a new mechanistic basis for targeting and downregulating PKC in cancer cells. Hence, the current study provides an integrated pattern of highly specific treatments regimen that can exploit PKCβI as a repurposing clinical target in breast cancer. Citation Format: Sayantani Sarkar Bhattacharya, Taylor L. Witter, Anh T. Cong, Elizabeth S. Bruinsma, Swaathi Jayaraman, Matthew P. Goetz, John Hawse, Matthew Schellenberg. Z-Endoxifen Allosterically Inhibits PKCβI and its Paradoxical Membrane Translocation [abstract]. In: Proceedings of the 2022 San Antonio Breast Cancer Symposium; 2022 Dec 6-10; San Antonio, TX. Philadelphia (PA): AACR; Cancer Res 2023;83(5 Suppl):Abstract nr P2-24-03.
A human cell-based recombinant protein expression system is advantageous for large scale protein expression and purification as it provides native and nearly ideal conditions for correct folding and post-translational modification of protein products. Recently, we developed an affinity tag system using llama single-domain antibodies (a.k.a. nanobodies) generated against the fluorescent proteins YFP and mCherry. These nanobodies are highly efficient, with high binding capacity while exhibiting binding affinities that are down to the sub-nanomolar Kd, serving as ideal affinity-matrices for routine protein expression and purification in a mammalian system. These mCherry-tag and YFP-tag systems have enabled us to successfully express and purify numerous recombinant human proteins with productive yields and high quality. Here, we utilize the YFP-tag system to express and purify recombinant full-length human Protein Kinase C βI (PKCβI) using HEK293F cells. We have determined structures of purified PKCβI protein using X-ray crystallography that define two distinct conformations of the enzyme, providing structural insights behind their inhibition and activation mechanisms.
Statins are a mainstay intervention for cardiovascular disease prevention, yet their use can cause rare severe myopathy. HMG-CoA reductase, an essential enzyme in the mevalonate pathway, is the target of statins. We identified nine individuals from five unrelated families with unexplained limb-girdle like muscular dystrophy and bi-allelic variants in HMGCR via clinical and research exome sequencing. The clinical features resembled other genetic causes of muscular dystrophy with incidental high CPK levels (>1,000 U/L), proximal muscle weakness, variable age of onset, and progression leading to impaired ambulation. Muscle biopsies in most affected individuals showed non-specific dystrophic changes with non-diagnostic immunohistochemistry. Molecular modeling analyses revealed variants to be de-stabilizing and affecting protein oligomerization. Protein activity studies using three variants (p.Asp623Asn, p.Tyr792Cys, and p.Arg443Gln) identified in affected individuals confirmed decreased enzymatic activity and reduced protein stability. In summary, we showed that individuals with bi-allelic amorphic (i.e., null and/or hypomorphic) variants in HMGCR display phenotypes that resemble non-genetic causes of myopathy involving this reductase. This study expands our knowledge regarding the mechanisms leading to muscular dystrophy through dysregulation of the mevalonate pathway, autoimmune myopathy, and statin-induced myopathy.
ABSTRACTThe transcription of stress-inducible genes requires synchronized and robust activation, which is critical for organismal survival and homeostasis. The function of the mitogen-activated protein kinase (MAPK) signaling pathway is required for the activation of immediate early genes (IEGs), includingEGR1andFOS, for cell growth and proliferation1–3. In addition, recent studies have identified topoisomerase II (TOP2) as one of the important regulators of the transcriptional activation of IEGs4–6. However, the mechanism underlying transcriptional regulation involving TOP2 in IEG activation has remained unknown. Here, we demonstrate that ERK2, but not ERK1, is important for IEG transcriptional activation and report a critical ELK1 binding sequence for ERK2 function at theEGR1gene. Our data indicate that both ERK1 and ERK2 extensively phosphorylate the C-terminal domain of TOP2B at mutual and distinctive residues. Although both ERK1 and ERK2 enhance the catalytic rate of TOP2B required to relax positive DNA supercoiling, ERK1 can relax the DNA by itself and produces a semi-relaxed DNA, which is apparently resistant to TOP2B catalysis. Inhibition of ERK2 kinase activity or ERK2 knock-down interferes with transcription and deregulates TOP2B in IEGs. Furthermore, we obtained the first cryo-EM structure of the human cell-purified TOP2B and etoposide together with theEGR1transcriptional start site (50 nt; –30 to +20) that has the strongest affinity to TOP2B within –423 to +332. The structure elucidated in our studies showed TOP2B-mediated breakage and dramatic bending of the double-stranded DNA, comparable to previously reported structures of TOP2. Our cell-based analyses showed transcriptional activation by etoposide and transcriptional inhibition by ICRF193 atEGR1andFOS, suggesting that TOP2B-mediated DNA break to favor transcriptional activation. Taken together, this study suggests that activated ERK2 phosphorylates TOP2B to regulate TOP2-DNA interactions and favor transcriptional activation in IEGs. We propose that TOP2B association, catalysis, and dissociation on its substrate DNA are important processes for regulating transcription and that ERK2-mediated TOP2B phosphorylation may be key for the catalysis and dissociation steps.
Mammalian cell lines are important expression systems for large proteins and protein complexes, particularly when the acquisition of post-translational modifications in the protein's native environment is desired. However, low or variable transfection efficiencies are challenges that must be overcome to use such an expression system. Expression of recombinant proteins as a fluorescent protein fusion enables real-time monitoring of protein expression, and also provides an affinity handle for one-step protein purification using a suitable affinity reagent. Here, we describe a panel of anti-GFP and anti-mCherry nanobody affinity matrices and their efficacy for purification of GFP/YFP or mCherry fusion proteins. We define the molecular basis by which they bind their target proteins using X-ray crystallography. From these analyses, we define an optimal pair of nanobodies for purification of recombinant protein tagged with GFP/YFP or mCherry, and demonstrate these nanobody-sepharose supports are stable to many rounds of cleaning and extended incubation in denaturing conditions. Finally, we demonstrate the utility of the mCherry-tag system by using it to purify recombinant human topoisomerase 2α expressed in HEK293F cells. The mCherry-tag and GFP/YFP-tag expression systems can be utilized for recombinant protein expression individually or in tandem for mammalian protein expression systems where real-time monitoring of protein expression levels and a high-efficiency purification step is needed.
RNA polymerase II (Pol II)-dependent transcription in stimulus-inducible genes requires topoisomerase IIβ (TOP2B)-mediated DNA strand break and the activation of DNA damage response signalling in humans. Here, we report a novel function of the breast cancer 1 (BRCA1)-BRCA1-associated ring domain 1 (BARD1) complex in this process. We found that BRCA1 is phosphorylated at S1524 by the kinases ataxia-telangiectasia mutated and ATR during gene activation, and that this event is important for productive transcription. Our biochemical and genomic analyses showed that the BRCA1-BARD1 complex interacts with TOP2B in the EGR1 transcription start site and in a large number of protein-coding genes. Intriguingly, the BRCA1-BARD1 complex ubiquitinates TOP2B, which stabilizes TOP2B binding to DNA while BRCA1 phosphorylation at S1524 controls the TOP2B ubiquitination by the complex. Together, these findings suggest the novel function of the BRCA1-BARD1 complex in the regulation of TOP2B and Pol II-mediated gene expression.
Cellular metabolism and cell behavior are believed to be significantly different in two-dimensional (2D) cultures from that in vivo. Here, we investigate the environmental effects of the metabolic state of murine breast cancer cells line (4T1) in 2D monolayer and three-dimensional (3D) collagen matrix cultures using integrated two-photon (2P) micro-spectroscopy (FLIM) of intrinsic NAD(P)H autofluorescence. In addition, we examined the metabolic responses to two novel compounds, MD1 and TPPBr, that target cellular metabolism by disrupting monocarboxylate transporters (MCTs) or oxidative phosphorylation, respectively, using 2P-FLIM of intracellular NAD(P)H in 2D and 3D cultures. Integrating nonlinear microscopy and spectroscopy of intrinsic NAD(P)H with refined 3D tumor-matrix in vitro models is a promising approach towards in-depth understanding of the roles of metabolism and metabolic plasticity in tumor growth and metastatic behavior.
The majority of in vitro studies of living cells are routinely conducted in a two-dimensional (2D) monolayer culture. Recent studies, however, suggest that 2D cell culture promotes specific types of aberrant cell behaviors due to the growth on non-physiologically stiff surfaces and the lack of the tissue-based extracellular matrix. Here, we investigate the sensitivity of the two-photon (2P) rotational dynamics of the intrinsic reduced nicotinamide adenine dinucleotide (phosphate), NAD(P)H, to changes in the metabolic state of the metastatic murine breast cancer cells (4T1) in 2D monolayer and three-dimensional (3D) collagen matrix cultures. Time-resolved 2P-associated anisotropy measurements reveal that the rotational dynamics of free and enzyme-bound NAD(P)H in 4T1 cells are correlated to changes in the metabolic state of 2D and 3D cell cultures. In addition to the type of cell culture, we also investigated the metabolic response of 4T1 cells to treatment with two metabolic inhibitors (MD1 and TPPBr). The statistical analyses of our results enabled us to identify which of the fitting parameters of the observed time-resolved associate anisotropy of cellular NAD(P)H were significantly sensitive to changes in the metabolic state of 4T1 cells. Using a black-box model, the population fractions of free and bound NAD(P)H were used to estimate the corresponding equilibrium constant and the standard Gibbs free energy changes that are associated with underlying metabolic pathways of 4T1 cells in 2D and 3D cultures. These rotational dynamics analyses are in agreement with the standard 2P-fluorescence lifetime imaging microscopy (FLIM) measurements on the same cell line, cell cultures, and metabolic inhibition. These studies represent an important step towards the development of a noninvasive, time-resolved associated anisotropy to complement 2P-FLIM in order to elucidate the underlying cellular metabolism and metabolic plasticity in more complex in vivo, tumor-like models using intrinsic NADH autofluorescence.
Recent studies indicated that activated transcription of serum-inducible genes in humans requires topoisomerase IIβ (TOP2B)-mediated DNA strand break (DSB) and DNA damage response (DDR) signaling. However, the mechanisms by which TOP2B is regulated in this process are unknown. Here, we identified a novel role of BRCA1-BARD1 complex in transcription of these genes by regulating TOP2B binding to the transcription start site (TSS). Our genomic and in vitro biochemical analyses demonstrated that BRCA1-BARD1 complex and TOP2B colocalize in a large number of genes and physically interact for TOP2B ubiquitination. Upon transcriptional activation, BRCA1 is phosphorylated at S1524 by ataxia telangiectasia-mutated (ATM) and ataxia telangiectasia and Rad3-related protein (ATR). Intriguingly, unphosphorylatable BRCA1 (S1524A)-BARD1 complex ubiquitinates TOP2B, but not WT or S1524D BRCA1. Using the TSS of a representative serum-inducible gene, EGR1, we found that ubiquitinated TOP2B binds to the DNA with much more stability than deubiquitinated one does. Together, our findings suggest that BRCA1-BARD1 complex stabilizes TOP2B association with serum-inducible genes through its E3 ligase function in transcription. Transcriptional activation induces TOP2B-mediated DSB and DDR signaling to activate ATM/ATR that phosphorylates BRCA1 S1524. Phosphorylated BRCA1 is ineffective in ubiquitinating TOP2B, which loosens it from the DNA. We propose that this loosening may contribute to either mobility or removal of TOP2B.
Intracellular ionic strength affects many factors such as cell volume, catalytic activities, and molecular interactions. A family of hetero-FRET sensors has been designed to detect changes in ionic strength in vivo and in vitro. These proteins consist of a donor (mCerulean) and an acceptor (mCitrine) that are connected via a single flexible polypeptide hinge with a basic helix and an acidic helix. The basic helices are enriched with either arginine or lysine, and the acidic helices are enriched with either glutamate or aspartate. The FRET sensors (RE, RD, and KE) are designed to have maximal energy transfer at low ionic strength and to decrease monotonically as electrostatic screening of the charged helices occurs with increasing ionic strength. In this study, we investigate the effects that different linker structures have on the energy transfer efficiencies as measured using fluorescence lifetime and time-resolved anisotropy. We find that RE consistently has the greatest energy transfer across all salt concentrations and RD has the lowest, with KE having intermediate sensitivity. This family of proteins has been characterized as a function of potassium chloride and other ions in the Hofmeister series. Our solution studies indicate that these proteins are useful sensors of biologically relevant ionic strengths. Importantly they have potential for dynamically mapping ionic strength changes in response to biological stimuli.