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1.
Methods Mol Biol ; 2444: 243-269, 2022.
Article in English | MEDLINE | ID: mdl-35290642

ABSTRACT

With improvements in biophysical approaches, there is growing interest in characterizing large, flexible multi-protein complexes. The use of recombinant baculoviruses to express heterologous genes in cultured insect cells has advantages for the expression of human protein complexes because of the ease of co-expressing multiple proteins in insect cells and the presence of a conserved post-translational machinery that introduces many of the same modifications found in human cells. Here we describe the preparation of recombinant baculoviruses expressing DNA ligase IIIα, XRCC1, and TDP1, their subsequent co-expression in cultured insect cells, the purification of complexes containing DNA ligase IIIα from insect cell lysates, and their characterization by multi-angle light scattering linked to size exclusion chromatography and negative stain electron microscopy.


Subject(s)
DNA Ligases , DNA-Binding Proteins , Animals , DNA Ligase ATP/genetics , DNA Ligase ATP/metabolism , DNA Ligases/chemistry , DNA-Binding Proteins/metabolism , Humans , Insecta/metabolism , Poly-ADP-Ribose Binding Proteins , X-ray Repair Cross Complementing Protein 1 , Xenopus Proteins/metabolism
2.
J Biol Chem ; 297(2): 100921, 2021 08.
Article in English | MEDLINE | ID: mdl-34181949

ABSTRACT

Tyrosyl DNA phosphodiesterase 1 (TDP1) and DNA Ligase IIIα (LigIIIα) are key enzymes in single-strand break (SSB) repair. TDP1 removes 3'-tyrosine residues remaining after degradation of DNA topoisomerase (TOP) 1 cleavage complexes trapped by either DNA lesions or TOP1 inhibitors. It is not known how TDP1 is linked to subsequent processing and LigIIIα-catalyzed joining of the SSB. Here we define a direct interaction between the TDP1 catalytic domain and the LigIII DNA-binding domain (DBD) regulated by conformational changes in the unstructured TDP1 N-terminal region induced by phosphorylation and/or alterations in amino acid sequence. Full-length and N-terminally truncated TDP1 are more effective at correcting SSB repair defects in TDP1 null cells compared with full-length TDP1 with amino acid substitutions of an N-terminal serine residue phosphorylated in response to DNA damage. TDP1 forms a stable complex with LigIII170-755, as well as full-length LigIIIα alone or in complex with the DNA repair scaffold protein XRCC1. Small-angle X-ray scattering and negative stain electron microscopy combined with mapping of the interacting regions identified a TDP1/LigIIIα compact dimer of heterodimers in which the two LigIII catalytic cores are positioned in the center, whereas the two TDP1 molecules are located at the edges of the core complex flanked by highly flexible regions that can interact with other repair proteins and SSBs. As TDP1and LigIIIα together repair adducts caused by TOP1 cancer chemotherapy inhibitors, the defined interaction architecture and regulation of this enzyme complex provide insights into a key repair pathway in nonmalignant and cancer cells.


Subject(s)
DNA Ligase ATP , Poly-ADP-Ribose Binding Proteins , Catalytic Domain , DNA Damage , DNA Repair , Humans , Phosphorylation
3.
Nucleic Acids Res ; 49(1): 306-321, 2021 01 11.
Article in English | MEDLINE | ID: mdl-33330937

ABSTRACT

The XRCC1-DNA ligase IIIα complex (XL) is critical for DNA single-strand break repair, a key target for PARP inhibitors in cancer cells deficient in homologous recombination. Here, we combined biophysical approaches to gain insights into the shape and conformational flexibility of the XL as well as XRCC1 and DNA ligase IIIα (LigIIIα) alone. Structurally-guided mutational analyses based on the crystal structure of the human BRCT-BRCT heterodimer identified the network of salt bridges that together with the N-terminal extension of the XRCC1 C-terminal BRCT domain constitute the XL molecular interface. Coupling size exclusion chromatography with small angle X-ray scattering and multiangle light scattering (SEC-SAXS-MALS), we determined that the XL is more compact than either XRCC1 or LigIIIα, both of which form transient homodimers and are highly disordered. The reduced disorder and flexibility allowed us to build models of XL particles visualized by negative stain electron microscopy that predict close spatial organization between the LigIIIα catalytic core and both BRCT domains of XRCC1. Together our results identify an atypical BRCT-BRCT interaction as the stable nucleating core of the XL that links the flexible nick sensing and catalytic domains of LigIIIα to other protein partners of the flexible XRCC1 scaffold.


Subject(s)
DNA Ligase ATP/metabolism , DNA Repair , X-ray Repair Cross Complementing Protein 1/metabolism , Chromatography, Gel , Crystallography, X-Ray , DNA Ligase ATP/chemistry , Dimerization , Humans , Microscopy, Electron , Models, Molecular , Multiprotein Complexes , Mutation , Mutation, Missense , Negative Staining , Point Mutation , Protein Conformation , Protein Domains , Protein Interaction Mapping , Recombinant Proteins/metabolism , Scattering, Small Angle , X-ray Repair Cross Complementing Protein 1/chemistry , X-ray Repair Cross Complementing Protein 1/genetics
4.
DNA Repair (Amst) ; 93: 102908, 2020 09.
Article in English | MEDLINE | ID: mdl-33087274

ABSTRACT

To ensure genome integrity, the joining of breaks in the phosphodiester backbone of duplex DNA is required during DNA replication and to complete the repair of almost all types of DNA damage. In human cells, this task is accomplished by DNA ligases encoded by three genes, LIG1, LIG3 and LIG4. Mutations in LIG1 and LIG4 have been identified as the causative factor in two inherited immunodeficiency syndromes. Moreover, there is emerging evidence that DNA ligases may be good targets for the development of novel anti-cancer agents. In this graphical review, we provide an overview of the roles of the DNA ligases encoded by the three human LIG genes in DNA replication and repair.


Subject(s)
DNA Ligase ATP/metabolism , DNA Repair , DNA Replication , Poly-ADP-Ribose Binding Proteins/metabolism , DNA , DNA Damage , Humans
5.
Neuroimage ; 184: 843-854, 2019 01 01.
Article in English | MEDLINE | ID: mdl-30300752

ABSTRACT

Multimodal, imaging-genomics techniques offer a platform for understanding genetic influences on brain abnormalities in psychiatric disorders. Such approaches utilize the information available from both imaging and genomics data and identify their association. Particularly for complex disorders such as schizophrenia, the relationship between imaging and genomic features may be better understood by incorporating additional information provided by advanced multimodal modeling. In this study, we propose a novel framework to combine features corresponding to functional magnetic resonance imaging (functional) and single nucleotide polymorphism (SNP) data from 61 schizophrenia (SZ) patients and 87 healthy controls (HC). In particular, the features for the functional and genetic modalities include dynamic (i.e., time-varying) functional network connectivity (dFNC) features and the SNP data, respectively. The dFNC features are estimated from component time-courses, obtained using group independent component analysis (ICA), by computing sliding-window functional network connectivity, and then estimating subject specific states from this dFNC data using a k-means clustering approach. For each subject, both the functional (dFNC states) and SNP data are selected as features for a parallel ICA (pICA) based imaging-genomic framework. This analysis identified a significant association between a SNP component (defined by large clusters of functionally related SNPs statistically correlated with phenotype components) and time-varying or dFNC component (defined by clusters of related connectivity links among distant brain regions distributed across discrete dynamic states, and statistically correlated with genomic components) in schizophrenia. Importantly, the polygenetic risk score (PRS) for SZ (computed as a linearly weighted sum of the genotype profiles with weights derived from the odds ratios of the psychiatric genomics consortium (PGC)) was negatively correlated with the significant dFNC component, which were mostly present within a state that exhibited a lower occupancy rate in individuals with SZ compared with HC, hence identifying a potential dFNC imaging biomarker for schizophrenia. Taken together, the current findings provide preliminary evidence for a link between dFNC measures and genetic risk, suggesting the application of dFNC patterns as biomarkers in imaging genetic association study.


Subject(s)
Brain Mapping/methods , Brain/physiopathology , Schizophrenia/genetics , Schizophrenia/physiopathology , Adult , Cluster Analysis , Female , Genetic Predisposition to Disease , Genomics , Humans , Magnetic Resonance Imaging , Male , Neural Pathways/physiopathology , Pilot Projects , Polymorphism, Single Nucleotide , Schizophrenia/diagnostic imaging
6.
J Biol Chem ; 292(13): 5227-5238, 2017 Mar 31.
Article in English | MEDLINE | ID: mdl-28184006

ABSTRACT

Reactive oxygen species generate potentially cytotoxic and mutagenic lesions in DNA, both between and within the nucleosomes that package DNA in chromatin. The vast majority of these lesions are subject to base excision repair (BER). Enzymes that catalyze the first three steps in BER can act at many sites in nucleosomes without the aid of chromatin-remodeling agents and without irreversibly disrupting the host nucleosome. Here we show that the same is true for a protein complex comprising DNA ligase IIIα and the scaffolding protein X-ray repair cross-complementing protein 1 (XRCC1), which completes the fourth and final step in (short-patch) BER. Using in vitro assembled nucleosomes containing discretely positioned DNA nicks, our evidence indicates that the ligase IIIα-XRCC1 complex binds to DNA nicks in nucleosomes only when they are exposed by periodic, spontaneous partial unwrapping of DNA from the histone octamer; that the scaffolding protein XRCC1 enhances the ligation; that the ligation occurs within a complex that ligase IIIα-XRCC1 forms with the host nucleosome; and that the ligase IIIα-XRCC1-nucleosome complex decays when ligation is complete, allowing the host nucleosome to return to its native configuration. Taken together, our results illustrate ways in which dynamic properties intrinsic to nucleosomes may contribute to the discovery and efficient repair of base damage in chromatin.


Subject(s)
DNA Ligases/metabolism , DNA Repair/physiology , DNA-Binding Proteins/metabolism , DNA/metabolism , Nucleosomes/genetics , Binding Sites , Chromatin , DNA Ligase ATP , DNA Ligases/physiology , DNA-Binding Proteins/physiology , Histones/metabolism , Humans , X-ray Repair Cross Complementing Protein 1
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