Results for 'DNA binding'

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  1.  64
    Regulation of meiosis: From DNA binding protein to protein kinase.Maureen McLeod - 1989 - Bioessays 11 (1):9-14.
    The transition from mitotic cell division to meiosis in yeast is governed by both the mating‐type genes and signals from the environment. Analysis of mutants that are unable to regulate entry into meiosis has identified many genes that function in this process and in some cases, the biochemical activity of their protein products has been described. At least two of the the mating‐type genes of Saccharomyces cerevisiae encode DNA binding proteins that regulate transcription of unlinked genes required for entry (...)
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  2.  78
    The role of E. coli single‐stranded DNA binding protein in DNA metabolism.John W. Chase - 1984 - Bioessays 1 (5):218-222.
    Single‐stranded DNA binding proteins have been known for some time to be crucial in many DNA metabolic reactions in both prokaryotes and eukaryotes. Despite a wealth of studies on these proteins we still do not understand their biochemical mechanism of action. Recent studies of the Escherichia coli single stranded DNA binding protein (SSB) are beginning to provide some insight into how this and similar proteins might function.
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  3.  60
    What the papers say: Telomeric DNA binding proteins.Jing-Jer Lin - 1993 - Bioessays 15 (8):555-557.
    The physical ends of eukaryotic chromosomes form a specialized nucleoprotein complex composed of DNA and DNA binding proteins. This nucleoprotein complex, termed the telomere, is essential for chromosome stability. In most organisms, the DNA portion of the nucleoprotein complex consists of simple tandem DNA repeats with one strand guanine rich. The protein portion of the complex is less well understood. The experiments presented in two recent papers(1,2) represent different stages in the characterization of the telomeric DNA binding proteins. (...)
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  4.  69
    DNA methylation reprogramming in cancer: Does it act by re‐configuring the binding landscape of Polycomb repressive complexes?James P. Reddington, Duncan Sproul & Richard R. Meehan - 2014 - Bioessays 36 (2):134-140.
    DNA methylation is a repressive epigenetic mark vital for normal development. Recent studies have uncovered an unexpected role for the DNA methylome in ensuring the correct targeting of the Polycomb repressive complexes throughout the genome. Here, we discuss the implications of these findings for cancer, where DNA methylation patterns are widely reprogrammed. We speculate that cancer‐associated reprogramming of the DNA methylome leads to an altered Polycomb binding landscape, influencing gene expression by multiple modes. As the Polycomb system is responsible (...)
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  5.  55
    FK506 binding protein 51 integrates pathways of adaptation.Theo Rein - 2016 - Bioessays 38 (9):894-902.
    This review portraits FK506 binding protein (FKBP) 51 as “reactivity protein” and collates recent publications to develop the concept of FKBP51 as contributor to different levels of adaptation. Adaptation is a fundamental process that enables unicellular and multicellular organisms to adjust their molecular circuits and structural conditions in reaction to environmental changes threatening their homeostasis. FKBP51 is known as chaperone and co‐chaperone of heat shock protein (HSP) 90, thus involved in processes ensuring correct protein folding in response to proteotoxic (...)
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  6.  84
    Replication protein A: Single‐stranded DNA's first responder.Ran Chen & Marc S. Wold - 2014 - Bioessays 36 (12):1156-1161.
    Replication protein A (RPA), the major single‐stranded DNA‐binding protein in eukaryotic cells, is required for processing of single‐stranded DNA (ssDNA) intermediates found in replication, repair, and recombination. Recent studies have shown that RPA binding to ssDNA is highly dynamic and that more than high‐affinity binding is needed for function. Analysis of DNA binding mutants identified forms of RPA with reduced affinity for ssDNA that are fully active, and other mutants with higher affinity that are inactive. Single (...)
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  7.  63
    Discovering DNA Methylation, the History and Future of the Writing on DNA.Joshua D. Tompkins - 2022 - Journal of the History of Biology 55 (4):865-887.
    DNA methylation is a quintessential epigenetic mechanism. Widely considered a stable regulator of gene silencing, it represents a form of “molecular braille,” chemically printed on DNA to regulate its structure and the expression of genetic information. However, there was a time when methyl groups simply existed in cells, mysteriously speckled across the cytosine building blocks of DNA. Why was the code of life chemically modified, apparently by “no accident of enzyme action” (Wyatt 1951 )? If all cells in a body (...)
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  8. Spurious transcription factor binding: Non‐functional or genetically redundant?Mikhail Spivakov - 2014 - Bioessays 36 (8):798-806.
    Transcription factor binding sites (TFBSs) on the DNA are generally accepted as the key nodes of gene control. However, the multitudes of TFBSs identified in genome‐wide studies, some of them seemingly unconstrained in evolution, have prompted the view that in many cases TF binding may serve no biological function. Yet, insights from transcriptional biochemistry, population genetics and functional genomics suggest that rather than segregating into ‘functional’ or ‘non‐functional’, TFBS inputs to their target genes may be generally cumulative, with (...)
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  9.  76
    A signature for the HMG‐1 box DNA‐binding proteins.David Landsman & Michael Bustin - 1993 - Bioessays 15 (8):539-546.
    A diverse group of DNA‐binding regulatory proteins share a common structural domain which is homologous to the sequence of a highly conserved and abundant chromosomal protein, HMG‐1. Proteins containing this HMG‐1 box regulate various cellular functions involving DNA binding, suggesting that the target DNA sequences share a common structural element. Members of this protein family exhibit a dual DNA‐binding specificity: each recognizes a unique sequence as well as a common DNA conformation. The highly conserved HMG‐1/‐2 proteins may (...)
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  10.  71
    DNA triple‐helix formation: An approach to artificial gene repressors?L. James Maher - 1992 - Bioessays 14 (12):807-815.
    Certain sequences of double‐helical DNA can be recognized and tightly bound by oligonucleotides. The effects of such triple‐helical structures on DNA binding proteins have been studied. Stabilities of DNA triple‐helices at or near physiological conditions are sufficient to inhibit DNA binding proteins directed to overlapping sites. Such proteins include restriction endonucleases, methylases, transcription factors, and RNA polymerases. These and Other results suggest that oligonucleotide‐directed triple‐helix formation could provide the basis for designing artificial gene repressors. The general question of (...)
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  11.  95
    DNA excision repair in mammalian cell extracts.Richard D. Wood & Dawn Coverley - 1991 - Bioessays 13 (9):447-453.
    The many genetic complementation groups of DNA excision‐repair defective mammalian cells indicate the considerable complexity of the excision repair process. The cloning of several repair genes is taking the field a step closer to mechanistic studies of the actions and interactions of repair proteins. Early biochemical studies of mammalian DNA repair in vitro are now at hand. Repair synthesis in damaged DNA can be monitored by following the incorporation of radiolabelled nucleotides. Synthesis is carried out by mammalian cell extracts and (...)
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  12.  71
    Unexpected new insights into DNA clamp loaders.Huilin Li, Mike O'Donnell & Brian Kelch - 2022 - Bioessays 44 (11):2200154.
    Clamp loaders are pentameric AAA+ assemblies that use ATP to open and close circular DNA sliding clamps around DNA. Clamp loaders show homology in all organisms, from bacteria to human. The eukaryotic PCNA clamp is loaded onto 3′ primed DNA by the replication factor C (RFC) hetero‐pentameric clamp loader. Eukaryotes also have three alternative RFC‐like clamp loaders (RLCs) in which the Rfc1 subunit is substituted by another protein. One of these is the yeast Rad24‐RFC (Rad17‐RFC in human) that loads a (...)
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  13.  72
    The role of calcium‐binding proteins in the control of transcription: structure to function.Mitsuhiko Ikura, Masanori Osawa & James B. Ames - 2002 - Bioessays 24 (7):625-636.
    Transcriptional regulation is coupled with numerous intracellular signaling processes often mediated by second messengers. Now, growing evidence points to the importance of Ca2+, one of the most versatile second messengers, in activating or inhibiting gene transcription through actions frequently mediated by members of the EF‐hand superfamily of Ca2+‐binding proteins. Calmodulin and calcineurin, representative members of this EF‐hand superfamily, indirectly regulate transcription through phosphorylation/dephosphorylation of transcription factors in response to a Ca2+ increase in the cell. Recently, a novel EF‐hand Ca2+‐ (...) protein called DREAM has been found to interact with regulatory sequences of DNA, thereby acting as a direct regulator of transcription. Finally, S100B, a dimeric EF‐hand Ca2+‐binding protein, interacts with the tumor suppressor p53 and controls its transcriptional activity. In light of the structural studies reported to date, this review provides an overview of the structural basis of EF‐hand Ca2+‐binding proteins linked with transcriptional regulation. BioEssays 24:625–636, 2002. © 2002 Wiley Periodicals, Inc. (shrink)
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  14. Retrotransposon‐derived p53 binding sites enhance telomere maintenance and genome protection.Paul M. Lieberman - 2016 - Bioessays 38 (10):943-949.
    Tumor suppressor protein 53 (p53) plays a central role in the control of genome stability, acting primarily through the transcriptional activation of stress‐response genes. However, many p53 binding sites are located at genomic locations with no obvious regulatory‐link to known stress‐response genes. We recently discovered p53 binding sites within retrotransposon‐derived elements in human and mouse subtelomeres. These retrotransposon‐derived p53 binding sites protected chromosome ends through transcription activation of telomere repeat RNA, as well as through the direct modification (...)
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  15.  80
    Mammalian methyl‐binding proteins: What might they do?Michael Joulie, Benoit Miotto & Pierre-Antoine Defossez - 2010 - Bioessays 32 (12):1025-1032.
    CpG islands (CGIs) are regions enriched in the dinucleotide CpG; they constitute the promoter of about 60% of mammalian genes. In cancer cells, some promoter‐associated CGIs become heavily methylated on cytosines, and the corresponding genes undergo stable transcriptional silencing. Hypermethylated CGIs attract methyl‐CpG‐binding proteins (MBPs), which have been shown to recruit chromatin modifiers and cause transcriptional repression. These observations have led to the prevalent model that methyl‐CpG‐binding proteins are promoter‐proximal transcriptional repressors. Recent discoveries challenge this idea and raise (...)
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  16.  56
    Structure, function, and evolution of the metal‐binding domain in the nucleosome.Raul A. Saavedra - 2023 - Bioessays 45 (5):2200192.
    The eukaryotic nucleosome, the basic unit of chromatin, is thermodynamically stable and plays critical roles in the cell, including the maintenance of DNA topology and regulation of gene expression. At its C2 axis of symmetry, the nucleosome exhibits a domain that can coordinate divalent metal ions. This article discusses the roles of the metal‐binding domain in the nucleosome structure, function, and evolution.
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  17.  78
    Uptake of extracellular DNA: Competence induced pili in natural transformation of Streptococcus pneumoniae.Sandra Muschiol, Murat Balaban, Staffan Normark & Birgitta Henriques-Normark - 2015 - Bioessays 37 (4):426-435.
    Transport of DNA across bacterial membranes involves complex DNA uptake systems. In Gram‐positive bacteria, the DNA uptake machinery shares fundamental similarities with type IV pili and type II secretion systems. Although dedicated pilus structures, such as type IV pili in Gram‐negative bacteria, are necessary for efficient DNA uptake, the role of similar structures in Gram‐positive bacteria is just beginning to emerge. Recently two essentially very different pilus structures composed of the same major pilin protein ComGC were proposed to be involved (...)
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  18.  83
    DNA damage tolerance, mismatch repair and genome instability.P. Karran & M. Bignami - 1994 - Bioessays 16 (11):833-839.
    DNA mismatch repair is an important pathway of mutation avoidance. It also contributes to the cytotoxic effects of some kinds of DNA damage, and cells defective in mismatch repair are resistant, or tolerant, to the presence of some normally cytotoxic base analogues in their DNA. The absence of a particular mismatch binding function from some mammalian cells confers resistance to the base analogues O6‐methylguanine and 6‐thioguanine in DNA. Cells also acquire a spontaneous mutator phenotype as a consequence of this (...)
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  19. Applications of Cas9 as an RNA‐programmed RNA‐binding protein.David A. Nelles, Mark Y. Fang, Stefan Aigner & Gene W. Yeo - 2015 - Bioessays 37 (7):732-739.
    The Streptococcus pyogenes CRISPR‐Cas system has gained widespread application as a genome editing and gene regulation tool as simultaneous cellular delivery of the Cas9 protein and guide RNAs enables recognition of specific DNA sequences. The recent discovery that Cas9 can also bind and cleave RNA in an RNA‐programmable manner indicates the potential utility of this system as a universal nucleic acid‐recognition technology. RNA‐targeted Cas9 (RCas9) could allow identification and manipulation of RNA substrates in live cells, empowering the study of cellular (...)
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  20.  87
    How Does a Helicase Unwind DNA? Insights from RecBCD Helicase.Timothy M. Lohman & Nicole T. Fazio - 2018 - Bioessays 40 (6):1800009.
    DNA helicases are a class of molecular motors that catalyze processive unwinding of double stranded DNA. In spite of much study, we know relatively little about the mechanisms by which these enzymes carry out the function for which they are named. Most current views are based on inferences from crystal structures. A prominent view is that the canonical ATPase motor exerts a force on the ssDNA resulting in “pulling” the duplex across a “pin” or “wedge” in the enzyme leading to (...)
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  21.  71
    Unmasking risk loci: DNA methylation illuminates the biology of cancer predisposition.Dvir Aran & Asaf Hellman - 2014 - Bioessays 36 (2):184-190.
    Paradoxically, DNA sequence polymorphisms in cancer risk loci rarely correlate with the expression of cancer genes. Therefore, the molecular mechanism underlying an individual's susceptibility to cancer has remained largely unknown. However, recent evaluations of the correlations between DNA methylation and gene expression levels across healthy and cancerous genomes have revealed enrichment of disease‐related DNA methylation variations within disease‐associated risk loci. Moreover, it appears that transcriptional enhancers embedded in cancer risk loci often contain DNA methylation sites that closely define the expression (...)
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  22. Epigenetic Modifications of Cytosine: Biophysical Properties, Regulation, and Function in Mammalian DNA.Jack S. Hardwick, Andrew N. Lane & Tom Brown - 2018 - Bioessays 40 (3):1700199.
    To decode the function and molecular recognition of several recently discovered cytosine derivatives in the human genome – 5-hydroxymethylcytosine, 5-formylcytosine, and 5-carboxylcytosine – a detailed understanding of their effects on the structural, chemical, and biophysical properties of DNA is essential. Here, we review recent literature in this area, with particular emphasis on features that have been proposed to enable the specific recognition of modified cytosine bases by DNA-binding proteins. These include electronic factors, modulation of base-pair stability, flexibility, and radical (...)
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  23.  94
    Mechanistic insights and implications of FOXO‐SNAI interplay.Xiaowei Guo, Chenxi Wu, Yu Pan, Xiaojie Zhu, Kai Peng, Xianjue Ma & Lei Xue - 2022 - Bioessays 44 (9):2200070.
    Autophagy promotes both health and disease, depending on tissue types and genetic contexts, yet the regulatory mechanism remain incompletely understood. Our recent publication has uncovered a coherent FOXO‐SNAI feed‐forward loop in autophagy, which is evolutionarily conserved from Drosophila to human. In addition, it's revealed that DNA binding plays a critical role in intracellular localization of nucleocytoplasmic shuttling proteins. Based on these findings, herein we further integrate mechanistic insights of FOXO‐SNAI regulatory interplay in autophagy and unravel the potential link of (...)
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  24.  92
    The pleiotropic functions of the Y‐box‐binding protein, YB‐1.Kimitoshi Kohno, Hiroto Izumi, Takeshi Uchiumi, Megumi Ashizuka & Michihiko Kuwano - 2003 - Bioessays 25 (7):691-698.
    The Y‐box‐binding protein (YB‐1) represents the most evolutionary conserved nucleic‐acid‐binding protein currently known. YB‐1 is a member of the cold‐shock domain (CSD) protein superfamily. It performs a wide variety of cellular functions, including transcriptional regulation, translational regulation, DNA repair, drug resistance and stress responses to extracellular signals. As a result, YB‐1 expression is closely associated with cell proliferation. In this review, we will begin by briefly describing the characteristics of YB‐1 and will then summarize the pleiotropic functions brought (...)
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  25.  65
    Bent DNA for gene regulation and DNA packaging.Jonathan Widom - 1985 - Bioessays 2 (1):11-14.
    Recent work on kinetoplast DNA and on CAP‐DNA and Eco RI‐DNA complexes shows that certain sequences cause DNA to be highly bent, and that other sequences bend in response to the sequence‐specific binding of proteins. These results demonstrate that alterations of DNA structure may facilitate gene regulation and DNA packaging.
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  26.  90
    DNA Conformation Regulates Gene Expression: The MYC Promoter and Beyond.Olga Zaytseva & Leonie M. Quinn - 2018 - Bioessays 40 (4):1700235.
    Emerging evidence suggests that DNA topology plays an instructive role in cell fate control through regulation of gene expression. Transcription produces torsional stress, and the resultant supercoiling of the DNA molecule generates an array of secondary structures. In turn, local DNA architecture is harnessed by the cell, acting within sensory feedback mechanisms to mediate transcriptional output. MYC is a potent oncogene, which is upregulated in the majority of cancers; thus numerous studies have focused on detailed understanding of its regulation. Dissection (...)
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  27.  55
    Structural and functional properties of the evolutionarily ancient Y‐box family of nucleic acid binding proteins.Alan P. Wolffe - 1994 - Bioessays 16 (4):245-251.
    The Y‐box proteins are the most evolutionarily conserved nucleic acid binding proteins yet defined in bacteria, plants and animals. The central nucleic acid binding domain of the vertebrate proteins is 43% identical to a 70‐amino‐acid‐long protein (CS7.4) from E. coli. The structure of this domain consists of an antiparallel fivestranded β‐barrel that recognizes both DNA and RNA. The diverse biological roles of these Y‐box proteins range from the control of the E. coli cold‐shock stress response to the translational (...)
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  28.  99
    R.I.P. to the PIP: PCNA‐binding motif no longer considered specific.Elizabeth M. Boehm & M. Todd Washington - 2016 - Bioessays 38 (11):1117-1122.
    Many proteins responsible for genome maintenance interact with one another via short sequence motifs. The best known of these are PIP motifs, which mediate interactions with the replication protein PCNA. Others include RIR motifs, which bind the translesion synthesis protein Rev1, and MIP motifs, which bind the mismatch repair protein Mlh1. Although these motifs have similar consensus sequences, they have traditionally been viewed as separate motifs, each with their own target protein. In this article, we review several recent studies that (...)
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  29.  94
    The role of thymidylate synthase as an RNA binding protein.Edward Chu & Carmen J. Allegra - 1996 - Bioessays 18 (3):191-198.
    Thymidylate synthase plays a central role in the biosynthesis of thymidylate, an essential precursor for DNA biosynthesis. In addition to its role in catalysis and cellular metabolism, it is now appreciated that thymidylate synthase functons as an RNA binding protein. Specifically, thymidylate synthase binds with high affinity to its own mRNA, resulting in translational repression. An extensive series of experiments has been performed to elucidate the molecular elements underlying the interaction between thymidylate synthase and its own mRNA. In addition (...)
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  30.  62
    How chromatin prevents genomic rearrangements: Locus colocalization induced by transcription factor binding.Jérôme Déjardin - 2012 - Bioessays 34 (2):90-93.
    Graphical AbstractThe loosening of chromatin structures gives rise to unrestricted access to DNA and thus transcription factors (TFs) can bind to their otherwise masked target sequences. Regions bound by the same set of TFs tend to be located in close proximity and this might increase the probability of activating illegitimate genomic rearrangements.
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  31.  95
    A family of closely related ATP‐binding subunits from prokaryotic and eukaryotic cells.Christopher F. Higgins, Maurice P. Gallagher, Michael L. Mimmack & Stephen R. Pearce - 1988 - Bioessays 8 (4):111-116.
    A large number of cellular proteins bind ATP, frequently utilizing the free energy of ATP hydrolysis to drive specific biological reactions. Recently, a family of closely related ATP‐binding proteins has been identified, the members of which share considerable sequence identity. These proteins, from both prokaryotic and eukaryotic sources, presumably had a common evolutionary origin and include the product of the white locus of Drosophila, the P‐glycoprotein which confers multidrug resistance on mammalian tumours, and prokaryotic proteins associated with such diverse (...)
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  32.  65
    Banding patterns in Drosophila melanogaster polytene chromosomes correlate with DNA‐binding protein occupancy.Igor F. Zhimulev, Elena S. Belyaeva, Tatiana Yu Vatolina & Sergey A. Demakov - 2012 - Bioessays 34 (6):498-508.
    The most enigmatic feature of polytene chromosomes is their banding pattern, the genetic organization of which has been a very attractive puzzle for many years. Recent genome‐wide protein mapping efforts have produced a wealth of data for the chromosome proteins of Drosophila cells. Based on their specific protein composition, the chromosomes comprise two types of bands, as well as interbands. These differ in terms of time of replication and specific types of proteins. The interbands are characterized by their association with (...)
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  33.  51
    Problems and paradigms: Chromosome reproduction: Units of DNA for segregation.J. Herbert Taylor - 1990 - Bioessays 12 (6):289-296.
    Evidence is summarized which indicates that the DNA loop anchoring proteins in chromosomes are effectively heterodimers that stack and are fastened into a bilaterally symmetrical array along the chromonemal axis. The evidence consists primarily of the observations made twenty five to thirty years ago on the pattern of sister chromatid exchanges and the way the DNA chains are sorted in the formation of diplochromosomes in cells that have undergone endoreduplication. The evidence indicates that each chain of DNA in the single (...)
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  34.  86
    DNA synthesis control in yeast: An evolutionarily conserved mechanism for regulating DNA synthesis genes?Gary F. Merrill, Brian A. Morgan, Noel F. Lowndes & Leland H. Johnston - 1992 - Bioessays 14 (12):823-830.
    After yeast cells commit to the cell cycle in a process called START, genes required for DNA synthesis are expressed in late G1. Periodicity is mediated by a hexameric sequence, known as a MCB element, present in all DNA synthesis gene promoters. A complex that specifically binds MCBs has been identified. One polypeptide in the MCB complex is Swi6, a transcription factor that together with Swi4 also binds G1 cyclin promoters and participates in a positive feedback loop at START. The (...)
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  35.  90
    Structural Biology of the HEAT‐Like Repeat Family of DNA Glycosylases.Rongxin Shi, Xing-Xing Shen, Antonis Rokas & Brandt F. Eichman - 2018 - Bioessays 40 (11):1800133.
    DNA glycosylases remove aberrant DNA nucleobases as the first enzymatic step of the base excision repair (BER) pathway. The alkyl‐DNA glycosylases AlkC and AlkD adopt a unique structure based on α‐helical HEAT repeats. Both enzymes identify and excise their substrates without a base‐flipping mechanism used by other glycosylases and nucleic acid processing proteins to access nucleobases that are otherwise stacked inside the double‐helix. Consequently, these glycosylases act on a variety of cationic nucleobase modifications, including bulky adducts, not previously associated with (...)
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  36.  89
    ATP puts the brake on DNA double‐strand break repair.Karl-Peter Hopfner - 2014 - Bioessays 36 (12):1170-1178.
    DNA double‐strand breaks (DSBs) are one of the most deleterious forms of DNA damage and can result in cell inviability or chromosomal aberrations. The Mre11‐Rad50‐Nbs1 (MRN) ATPase‐nuclease complex is a central player in the cellular response to DSBs and is implicated in the sensing and nucleolytic processing of DSBs, as well as in DSB signaling by activating the cell cycle checkpoint kinase ATM. ATP binding to Rad50 switches MRN from an open state with exposed Mre11 nuclease sites to a (...)
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  37.  66
    Insight into initiator–DNA interactions: a lesson from the archaeal ORC.Shusuke Tada, Lena R. Kundu & Takemi Enomoto - 2008 - Bioessays 30 (3):208-211.
    Although initiation of DNA replication is considered to be highly coordinated through multiple protein–DNA and protein–protein interactions, it is poorly understood how particular locations within the eukaryotic chromosome are selected as origins of DNA replication. Here, we discuss recent reports that present structural information on the interaction characteristics of the archaeal orthologues of the eukaryotic origin recognition complex with their cognate binding sequences.1,2 Since the archaeal replication system is postulated as a simplified version of the one in eukaryotes, by (...)
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  38.  62
    Functional hierarchy of PCNA‐interacting motifs in DNA processing enzymes.Samir M. Hamdan & Alfredo De Biasio - 2023 - Bioessays 45 (6):2300020.
    Numerous eukaryotic DNA processing enzymes, such as DNA polymerases and ligases, bind the processivity factor PCNA, which acts as a platform to recruit and regulate the binding of enzymes to their DNA substrate. Multiple PCNA‐interacting motifs (PIPs) are present in these enzymes, but their individual structural and functional role has been a matter of debate. Recent cryo‐EM reconstructions of high‐fidelity DNA polymerase Pol δ (Pol δ), translesion synthesis DNA polymerase κ (Pol κ) and Ligase 1 (Lig1) bound to a (...)
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  39. A Generative Architecture of Creative-Spirit Production: Brand DNA Architecture as a Causal System of Thought Reproduction.Eun Jung Lee - manuscript
    This paper proposes a generative architecture through which Creative-Spirit becomes continuously productive across time. Rather than treating brand as a surface construct or market-driven identity system, this work defines brand as an applied structure through which Creative-Spirit acquires form, direction, and economic operability. -/- Building upon prior work that framed philosophy and brand as parallel systems of thought reproduction, this study advances the discussion by articulating a concrete causal process through which internal spirit is transformed into sustained external action. This (...)
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  40.  57
    Transcription factors and DNA replication origin selection.Hidetsugu Kohzaki & Yota Murakami - 2005 - Bioessays 27 (11):1107-1116.
    The chromosomes of eukaryotic cells possess many potential DNA replication origins, of which a subset is selected in response to the cellular environment, such as the developmental stage, to act as active replication start sites. The mechanism of origin selection is not yet fully understood. In this review, we summarize recent observations regarding replication origins and initiator proteins in various organisms. These studies suggest that the DNA‐binding specificities of the initiator proteins that bind to the replication origins and promote (...)
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  41.  71
    Bending of DNA by transcription factors.Peter C. van der Vliet & C. Peter Verrijzer - 1993 - Bioessays 15 (1):25-32.
    An increasing number of transcription factors both from prokaryotic and eukaryotic sources are found to bend the DNA upon binding to their recognition site. Bending can easily be detected by the anomalous electrophoretic behaviour of the DNA‐protein complex or by increased cyclization of DNA fragments containing the protein‐induced bend. Induction of DNA bending by transcription factors could regulate transcription in various ways. Bending may bring distantly bound transcription factors closer together by facilitating DNA‐looping or it could mediate the interaction (...)
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  42.  87
    Joining the PARty: PARP Regulation of KDM5A during DNA Repair (and Transcription?).Anthony Sanchez, Bethany A. Buck-Koehntop & Kyle M. Miller - 2022 - Bioessays 44 (7):2200015.
    The lysine demethylase KDM5A collaborates with PARP1 and the histone variant macroH2A1.2 to modulate chromatin to promote DNA repair. Indeed, KDM5A engages poly(ADP‐ribose) (PAR) chains at damage sites through a previously uncharacterized coiled‐coil domain, a novel binding mode for PAR interactions. While KDM5A is a well‐known transcriptional regulator, its function in DNA repair is only now emerging. Here we review the molecular mechanisms that regulate this PARP1‐macroH2A1.2‐KDM5A axis in DNA damage and consider the potential involvement of this pathway in (...)
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  43.  70
    On‐site remodeling at chromatin: How multiprotein complexes are rebuilt during DNA repair and transcriptional activation.Thaleia Papadopoulou & Holger Richly - 2016 - Bioessays 38 (11):1130-1140.
    In this review, we discuss a novel on‐site remodeling function that is mediated by the H2A‐ubiquitin binding protein ZRF1. ZRF1 facilitates the remodeling of multiprotein complexes at chromatin and lies at the heart of signaling processes that occur at DNA damage sites and during transcriptional activation. In nucleotide excision repair ZRF1 remodels E3 ubiquitin ligase complexes at the damage site. During embryonic stem cell differentiation, it contributes to retinoic acid‐mediated gene activation by altering the subunit composition of the Mediator (...)
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  44. Twenty-five Years of Delila and Molecular Information Theory.Thomas D. Schneider - 2006 - Biological Theory 1 (3):250-260.
    A brief personal history is given about how information theory can be applied to binding sites of genetic control molecules on nucleic acids. The primary example used is ribosome binding sites in Escherichia coli. Once the sites are aligned, the information needed to describe the sites can be computed using Claude Shannon’s method. This is displayed by a computer graphic called a sequence logo. The logo represents an average binding site, and the mathematics easily allows one to (...)
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  45.  67
    On the nature of origins of DNA replication in eukaryotes.Robert M. Benbow, Jiyong Zhao & Drena D. Larson - 1992 - Bioessays 14 (10):661-670.
    Chromosomal origins of DNA replication in higher eukaryotes differ significantly from those of E. coli (oriC) and the tumor virus, SV40 (ori sequence). Initiation events appear to occur throughout broad zones rather than at specific origin sequences. Analysis of four chromosomal origin regions reveals that they share common modular sequence elements. These include DNA unwinding elements, pyrimidine tracts that may serve as strong DNA polymerase‐primase start sites, scaffold associated regions, transcriptional regulatory sequences, and, possibly, initiator protein binding sites and (...)
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  46.  90
    MutL: conducting the cell's response to mismatched and misaligned DNA.Yaroslava Y. Polosina & Claire G. Cupples - 2010 - Bioessays 32 (1):51-59.
    Base pair mismatches in DNA arise from errors in DNA replication, recombination, and biochemical modification of bases. Mismatches are inherently transient. They are resolved passively by DNA replication, or actively by enzymatic removal and resynthesis of one of the bases. The first step in removal is recognition of strand discontinuity by one of the MutS proteins. Mismatches arising from errors in DNA replication are repaired in favor of the base on the template strand, but other mismatches trigger base excision or (...)
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  47.  89
    Non-homologous end joining: Common interaction sites and exchange of multiple factors in the DNA repair process.Stuart L. Rulten & Gabrielle J. Grundy - 2017 - Bioessays 39 (3):1600209.
    Non‐homologous end‐joining (NHEJ) is the dominant means of repairing chromosomal DNA double strand breaks (DSBs), and is essential in human cells. Fifteen or more proteins can be involved in the detection, signalling, synapsis, end‐processing and ligation events required to repair a DSB, and must be assembled in the confined space around the DNA ends. We review here a number of interaction points between the core NHEJ components (Ku70, Ku80, DNA‐PKcs, XRCC4 and Ligase IV) and accessory factors such as kinases, phosphatases, (...)
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  48.  98
    Chromatin Stability as a Target for Cancer Treatment.Katerina V. Gurova - 2019 - Bioessays 41 (1):1800141.
    In this essay, I propose that DNA‐binding anti‐cancer drugs work more via chromatin disruption than DNA damage. Success of long‐awaited drugs targeting cancer‐specific drivers is limited by the heterogeneity of tumors. Therefore, chemotherapy acting via universal targets (e.g., DNA) is still the mainstream treatment for cancer. Nevertheless, the problem with targeting DNA is insufficient efficacy due to high toxicity. I propose that this problem stems from the presumption that DNA damage is critical for the anti‐cancer activity of these drugs. (...)
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  49.  80
    Transcription by RNA polymerase II: A process linked to DNA repair.Christian Chalut, Vincent Moncollin & Jean Marc Egly - 1994 - Bioessays 16 (9):651-655.
    The proteins that are implicated in the basal transcription of protein coding genes have now been identified. Although little is known about their function, recent data demonstrate the ability of these proteins, previously called class II transcription factors, to participate in other reactions: TBP, the TATA‐box binding factor, is involved in class I and III transcription, while TFIIH has been shown to possess components that are involved in the DNA repair mechanism. The involvement of some if not all of (...)
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  50.  77
    Tumour suppressors, kinases and clamps: How p53 regulates the cell cycle in response to DNA damage.Lynne S. Cox & David P. Lane - 1995 - Bioessays 17 (6):501-508.
    The human tumour suppressor protein p53 is critical for regulation of the cell cycle on genotoxic insult. When DNA is damaged by radiation, chemicals or viral infection, cells respond rapidly by arresting the cell cycle. A G1 arrest requires the activity of wild‐type p53, as it is not observed in cells lacking functionally wild‐type protein, and at least some component of S phase and G2/M arrests is also thought to be p53‐dependent. p53 functions as a transcription factor which binds specific (...)
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