Your browser doesn't support javascript.
loading
Mostrar: 20 | 50 | 100
Resultados 1 - 20 de 196
Filtrar
1.
New Phytol ; 241(2): 896-910, 2024 Jan.
Artículo en Inglés | MEDLINE | ID: mdl-37925790

RESUMEN

Organelle DNA (oDNA) in mitochondria and plastids is vital for plant (and eukaryotic) life. Selection against damaged oDNA is mediated in part by segregation - sorting different oDNA types into different cells in the germline. Plants segregate oDNA very rapidly, with oDNA recombination protein MSH1 a key driver of this segregation, but we have limited knowledge of the dynamics of this segregation within plants and between generations. Here, we reveal how oDNA evolves through Arabidopsis thaliana development and reproduction. We combine stochastic modelling, Bayesian inference, and model selection with new and existing tissue-specific oDNA measurements from heteroplasmic Arabidopsis plant lines through development and between generations. Segregation proceeds gradually but continually during plant development, with a more rapid increase between inflorescence formation and the next generation. When MSH1 is compromised, the majority of observed segregation can be achieved through partitioning at cell divisions. When MSH1 is functional, mtDNA segregation is far more rapid; we show that increased oDNA gene conversion is a plausible mechanism quantitatively explaining this acceleration. These findings reveal the quantitative, time-dependent details of oDNA segregation in Arabidopsis. We also discuss the support for different models of the plant germline provided by these observations.


Asunto(s)
Proteínas de Arabidopsis , Arabidopsis , Arabidopsis/genética , Arabidopsis/metabolismo , Teorema de Bayes , Mitocondrias/metabolismo , Plastidios/genética , Plantas/metabolismo , Reproducción , ADN Mitocondrial/genética , Proteínas de Arabidopsis/metabolismo , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/genética , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/metabolismo
2.
Biophys J ; 122(15): 3031-3043, 2023 08 08.
Artículo en Inglés | MEDLINE | ID: mdl-37329136

RESUMEN

The mismatch repair protein MutS safeguards genomic integrity by finding and initiating repair of basepairing errors in DNA. Single-molecule studies show MutS diffusing on DNA, presumably scanning for mispaired/unpaired bases, and crystal structures show a characteristic "mismatch-recognition" complex with DNA enclosed within MutS and kinked at the site of error. But how MutS goes from scanning thousands of Watson-Crick basepairs to recognizing rare mismatches remains unanswered, largely because atomic-resolution data on the search process are lacking. Here, 10 µs all-atom molecular dynamics simulations of Thermus aquaticus MutS bound to homoduplex DNA and T-bulge DNA illuminate the structural dynamics underlying the search mechanism. MutS-DNA interactions constitute a multistep mechanism to check DNA over two helical turns for its 1) shape, through contacts with the sugar-phosphate backbone, 2) conformational flexibility, through bending/unbending engineered by large-scale motions of the clamp domain, and 3) local deformability, through basepair destabilizing contacts. Thus, MutS can localize a potential target by indirect readout due to lower energetic costs of bending mismatched DNA and identify a site that distorts easily due to weaker base stacking and pairing as a mismatch. The MutS signature Phe-X-Glu motif can then lock in the mismatch-recognition complex to initiate repair.


Asunto(s)
Proteínas de Escherichia coli , Simulación de Dinámica Molecular , Disparidad de Par Base , ADN/química , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/química , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/genética , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/metabolismo , Emparejamiento Base , Proteínas de Escherichia coli/genética
3.
Plant J ; 115(2): 414-433, 2023 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-37036138

RESUMEN

Sensory plastids are important in plant responses to environmental changes. Previous studies show that MutS HOMOLOG 1 (MSH1) perturbation in sensory plastids induces heritable epigenetic phenotype adjustment. Previously, the PsbP homolog DOMAIN-CONTAINING PROTEIN 3 (PPD3), a protein of unknown function, was postulated to be an interactor with MSH1. This study investigates the relationship of PPD3 with MSH1 and with plant environmental sensing. The ppd3 mutant displays a whole-plant phenotype variably altered in growth rate, flowering time, reactive oxygen species (ROS) modulation and response to salt, with effects on meristem growth. Present in both chloroplasts and sensory plastids, PPD3 colocalized with MSH1 in root tips but not in leaf tissues. The suppression or overexpression of PPD3 affected the plant growth rate and stress tolerance, and led to a heritable, heterogenous 'memory' state with both dwarfed and vigorous growth phenotypes. Gene expression and DNA methylome data sets from PPD3-OX and derived memory states showed enrichment in growth versus defense networks and meristem effects. Our results support a model of sensory plastid influence on nuclear epigenetic behavior and ppd3 as a second trigger, functioning within meristem plastids to recalibrate growth plasticity.


Asunto(s)
Proteínas de Arabidopsis , Arabidopsis , Proteínas de Arabidopsis/genética , Proteínas de Arabidopsis/metabolismo , Arabidopsis/genética , Plastidios/genética , Plastidios/metabolismo , Cloroplastos/metabolismo , Epigénesis Genética , Regulación de la Expresión Génica de las Plantas , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/genética , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/metabolismo
4.
J Biol Chem ; 299(5): 104705, 2023 05.
Artículo en Inglés | MEDLINE | ID: mdl-37059180

RESUMEN

The DNA mismatch repair (MMR) system is a major DNA repair system that suppresses both inherited and sporadic cancers in humans. In eukaryotes, the MutSα-dependent and MutSß-dependent MMR pathways correct DNA polymerase errors. Here, we investigated these two pathways on a whole genome level in Saccharomyces cerevisiae. We found that inactivation of MutSα-dependent MMR increases the genome-wide mutation rate by ∼17-fold and loss of MutSß-dependent MMR elevates the genome-wide mutation rate by ∼4-fold. We also found that MutSα-dependent MMR does not show a preference for protecting coding or noncoding DNA from mutations, whereas MutSß-dependent MMR preferentially protects noncoding DNA from mutations. The most frequent mutations in the msh6Δ strain are C>T transitions, whereas 1- to 6-bp deletions are the most common genetic alterations in the msh3Δ strain. Strikingly, MutSα-dependent MMR is more important than MutSß-dependent MMR for protection from 1-bp insertions, while MutSß-dependent MMR has a more critical role in the defense against 1-bp deletions and 2- to 6-bp indels. We also determined that a mutational signature of yeast MSH6 loss is similar to mutational signatures of human MMR deficiency. Furthermore, our analysis showed that compared to other 5'-NCN-3' trinucleotides, 5'-GCA-3' trinucleotides are at the highest risk of accumulating C>T transitions at the central position in the msh6Δ cells and that the presence of a G/A base at the -1 position is important for the efficient MutSα-dependent suppression of C>T transitions. Our results highlight key differences between the roles of the MutSα-dependent and MutSß-dependent MMR pathways.


Asunto(s)
Reparación de la Incompatibilidad de ADN , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN , Proteínas de Saccharomyces cerevisiae , Saccharomyces cerevisiae , ADN , Reparación del ADN , Proteínas de Unión al ADN/metabolismo , Mutación , Saccharomyces cerevisiae/genética , Saccharomyces cerevisiae/metabolismo , Proteínas de Saccharomyces cerevisiae/genética , Proteínas de Saccharomyces cerevisiae/metabolismo , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/genética , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/metabolismo
5.
Int J Mol Sci ; 24(2)2023 Jan 05.
Artículo en Inglés | MEDLINE | ID: mdl-36674575

RESUMEN

G-quadruplexes (G4s), the most widely studied alternative DNA structures, are implicated in the regulation of the key cellular processes. In recent years, their involvement in DNA repair machinery has become the subject of intense research. Here, we evaluated the effect of G4 on the prokaryotic DNA mismatch repair (MMR) pathway from two bacterial sources with different mismatch repair mechanisms. The G4 folding, which competes with the maintenance of double-stranded DNA, is known to be controlled by numerous opposing factors. To overcome the kinetic barrier of G4 formation, we stabilized a parallel G4 formed by the d(GGGT)4 sequence in a DNA plasmid lacking a fragment complementary to the G4 motif. Unlike commonly used isolated G4 structures, our plasmid with an embedded stable G4 structure contained elements, such as a MutH cleavage site, required to initiate the repair process. G4 formation in the designed construct was confirmed by Taq polymerase stop assay and dimethyl sulfate probing. The G4-carrying plasmid, together with control ones (lacking a looped area or containing unstructured d(GT)8 insert instead of the G4 motif), were used as new type models to answer the question of whether G4 formation interferes with DNA cleavage as a basic function of MMR.


Asunto(s)
Reparación de la Incompatibilidad de ADN , G-Cuádruplex , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/metabolismo , ADN/química , Plásmidos/genética , Reparación del ADN
6.
Biotechnol J ; 18(1): e2200323, 2023 Jan.
Artículo en Inglés | MEDLINE | ID: mdl-36317440

RESUMEN

Numerous applications in molecular biology and genomics require characterization of mutant DNA molecules present at low levels within a larger sample of non-mutant DNA. This is often achieved either by selectively amplifying mutant DNA, or by sequencing all the DNA followed by computational identification of the mutant DNA. However, selective amplification is challenging for insertions and deletions (indels). Additionally, sequencing all the DNA in a sample may not be cost effective when only the presence of a mutation needs to be ascertained rather than its allelic fraction. The MutS protein evolved to detect DNA heteroduplexes in which the two DNA strands are mismatched. Prior methods have utilized MutS to enrich mutant DNA by hybridizing mutant to non-mutant DNA to create heteroduplexes. However, the purity of heteroduplex DNA these methods achieve is limited because they can only feasibly perform one or two enrichment cycles. We developed a MutS-magnetic bead system that enables rapid serial enrichment cycles. With six cycles, we achieve complete purification of heteroduplex indel DNA originally present at a 5% fraction and over 40-fold enrichment of heteroduplex DNA originally present at a 1% fraction. This system may enable novel approaches for enriching mutant DNA for targeted sequencing.


Asunto(s)
Proteínas de Escherichia coli , Ácidos Nucleicos Heterodúplex , Ácidos Nucleicos Heterodúplex/genética , Ácidos Nucleicos Heterodúplex/metabolismo , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/genética , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/metabolismo , ADN/genética , ADN/metabolismo , Fenómenos Magnéticos
7.
Plant J ; 112(3): 738-755, 2022 11.
Artículo en Inglés | MEDLINE | ID: mdl-36097957

RESUMEN

The abundant repeats in plant mitochondrial genomes can cause rapid genome rearrangements and are also a major obstacle in short-read sequencing studies. Nuclear-encoded proteins such as MSH1 are known to suppress the generation of repeat-associated mitochondrial genome variants, but our understanding of these mechanisms has been constrained by the limitations of short-read technologies. Here, we used highly accurate long-read sequencing (PacBio HiFi) to characterize mitochondrial and plastid genome variants in Arabidopsis thaliana msh1 mutant individuals. The HiFi reads provided a global view of recombination dynamics with detailed quantification of parental and crossover recombination products for both large and small repeats. We found that recombination breakpoints were distributed relatively evenly across the length of repeated sequences and detected widespread internal exchanges of sequence variants between pairs of imperfect repeats in the mitochondrial genome of msh1 mutants. Long-read assemblies of mitochondrial genomes from seven other A. thaliana wild-type accessions differed by repeat-mediated structural rearrangements similar to those observed in msh1 mutants, but they were all in a simple low-heteroplasmy state. The Arabidopsis plastid genome generally lacks small repeats and exhibited a very different pattern of variant accumulation in msh1 mutants compared with the mitochondrial genome. Our data illustrate the power of HiFi technology in studying repeat-mediated recombination in plant organellar genomes and improved the sequence resolution for recombinational processes suppressed by MSH1. Plant organellar genomes can undergo rapid rearrangements. Long-read sequencing provides a detailed and quantitative view of mitochondrial and plastid genome variants normally suppressed by MSH1, advancing our understanding of plant organellar genome dynamics.


Asunto(s)
Proteínas de Arabidopsis , Arabidopsis , Genoma Mitocondrial , Genoma de Plastidios , Arabidopsis/genética , Arabidopsis/metabolismo , Proteínas de Arabidopsis/genética , Proteínas de Arabidopsis/metabolismo , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/genética , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/metabolismo , Genoma Mitocondrial/genética , Análisis de Secuencia de ADN
8.
DNA Repair (Amst) ; 119: 103392, 2022 11.
Artículo en Inglés | MEDLINE | ID: mdl-36095926

RESUMEN

MutS initiates mismatch repair by recognizing mismatches in newly replicated DNA. Specific interactions between MutS and mismatches within double-stranded DNA promote ADP-ATP exchange and a conformational change into a sliding clamp. Here, we demonstrated that MutS from Pseudomonas aeruginosa associates with primed DNA replication intermediates. The predicted structure of this MutS-DNA complex revealed a new DNA binding site, in which Asn 279 and Arg 272 appeared to directly interact with the 3'-OH terminus of primed DNA. Mutation of these residues resulted in a noticeable defect in the interaction of MutS with primed DNA substrates. Remarkably, MutS interaction with a mismatch within primed DNA induced a compaction of the protein structure and impaired the formation of an ATP-bound sliding clamp. Our findings reveal a novel DNA binding mode, conformational change and intramolecular signaling for MutS recognition of mismatches within primed DNA structures.


Asunto(s)
Proteínas de Escherichia coli , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN , Adenosina Difosfato/metabolismo , Adenosina Trifosfato/metabolismo , Disparidad de Par Base , ADN/metabolismo , Replicación del ADN , Proteínas de Escherichia coli/metabolismo , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/metabolismo , Unión Proteica
9.
J Biol Chem ; 298(11): 102505, 2022 11.
Artículo en Inglés | MEDLINE | ID: mdl-36126773

RESUMEN

MutS homologs (MSHs) are highly conserved core components of DNA mismatch repair. Mismatch recognition provokes ATP-binding by MSH proteins that drives a conformational transition from a short-lived lesion-searching clamp to an extremely stable sliding clamp on the DNA. Here, we have expanded on previous bulk biochemical studies to examine the stability, lifetime, and kinetics of bacterial and human MSH sliding clamps on mismatched DNA using surface plasmon resonance and single-molecule analysis of fluorescently labeled proteins. We found that ATP-bound MSH complexes bound to blocked-end or very long mismatched DNAs were extremely stable over a range of ionic conditions. These observations underpinned the development of a high-throughput Förster resonance energy transfer system that specifically detects the formation of MSH sliding clamps on mismatched DNA. The Förster resonance energy transfer system is capable of distinguishing between HsMSH2-HsMSH3 and HsMSH2-HsMSH6 and appears suitable for chemical inhibitor screens. Taken together, our results provide additional insight into MSH sliding clamps as well as methods to distinguish their functions in mismatch repair.


Asunto(s)
Proteínas de Escherichia coli , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN , Humanos , Adenosina Trifosfato/metabolismo , Disparidad de Par Base , ADN/metabolismo , Reparación de la Incompatibilidad de ADN , Proteínas de Escherichia coli/metabolismo , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/genética , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/metabolismo , Proteína 2 Homóloga a MutS/genética , Proteína 2 Homóloga a MutS/metabolismo , Proteínas MutS/genética , Unión Proteica
10.
Genome Biol ; 23(1): 167, 2022 08 04.
Artículo en Inglés | MEDLINE | ID: mdl-35927734

RESUMEN

BACKGROUND: Plants undergo programmed chromatin changes in response to environment, influencing heritable phenotypic plasticity. The RNA-directed DNA methylation (RdDM) pathway is an essential component of this reprogramming process. The relationship of epigenomic changes to gene networks on a genome-wide basis has been elusive, particularly for intragenic DNA methylation repatterning. RESULTS: Epigenomic reprogramming is tractable to detailed study and cross-species modeling in the MSH1 system, where perturbation of the plant-specific gene MSH1 triggers at least four distinct nongenetic states to impact plant stress response and growth vigor. Within this system, we have defined RdDM target loci toward decoding phenotype-relevant methylome data. We analyze intragenic methylome repatterning associated with phenotype transitions, identifying state-specific cytosine methylation changes in pivotal growth-versus-stress, chromatin remodeling, and RNA spliceosome gene networks that encompass 871 genes. Over 77% of these genes, and 81% of their central network hubs, are functionally confirmed as RdDM targets based on analysis of mutant datasets and sRNA cluster associations. These dcl2/dcl3/dcl4-sensitive gene methylation sites, many present as singular cytosines, reside within identifiable sequence motifs. These data reflect intragenic methylation repatterning that is targeted and amenable to prediction. CONCLUSIONS: A prevailing assumption that biologically relevant DNA methylation variation occurs predominantly in density-defined differentially methylated regions overlooks behavioral features of intragenic, single-site cytosine methylation variation. RdDM-dependent methylation changes within identifiable sequence motifs reveal gene hubs within networks discriminating stress response and growth vigor epigenetic phenotypes. This study uncovers components of a methylome "code" for de novo intragenic methylation repatterning during plant phenotype transitions.


Asunto(s)
Proteínas de Arabidopsis , Arabidopsis , Arabidopsis/genética , Arabidopsis/metabolismo , Proteínas de Arabidopsis/genética , Proteínas de Arabidopsis/metabolismo , Citosina/metabolismo , Metilación de ADN , Epigénesis Genética , Epigenoma , Regulación de la Expresión Génica de las Plantas , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/genética , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/metabolismo , ARN/metabolismo , ARN Interferente Pequeño/genética , Ribonucleasa III/genética
11.
Proc Natl Acad Sci U S A ; 119(34): e2206973119, 2022 08 23.
Artículo en Inglés | MEDLINE | ID: mdl-35969753

RESUMEN

The fate of new mitochondrial and plastid mutations depends on their ability to persist and spread among the numerous organellar genome copies within a cell (heteroplasmy). The extent to which heteroplasmies are transmitted across generations or eliminated through genetic bottlenecks is not well understood in plants, in part because their low mutation rates make these variants so infrequent. Disruption of MutS Homolog 1 (MSH1), a gene involved in plant organellar DNA repair, results in numerous de novo point mutations, which we used to quantitatively track the inheritance of single nucleotide variants in mitochondrial and plastid genomes in Arabidopsis. We found that heteroplasmic sorting (the fixation or loss of a variant) was rapid for both organelles, greatly exceeding rates observed in animals. In msh1 mutants, plastid variants sorted faster than those in mitochondria and were typically fixed or lost within a single generation. Effective transmission bottleneck sizes (N) for plastids and mitochondria were N ∼ 1 and 4, respectively. Restoring MSH1 function further increased the rate of heteroplasmic sorting in mitochondria (N ∼ 1.3), potentially because of its hypothesized role in promoting gene conversion as a mechanism of DNA repair, which is expected to homogenize genome copies within a cell. Heteroplasmic sorting also favored GC base pairs. Therefore, recombinational repair and gene conversion in plant organellar genomes can potentially accelerate the elimination of heteroplasmies and bias the outcome of this sorting process.


Asunto(s)
Proteínas de Arabidopsis/metabolismo , Arabidopsis , Heteroplasmia , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN , Arabidopsis/genética , ADN Mitocondrial/genética , ADN de Plantas/genética , Genoma de Planta , Mitocondrias/genética , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/metabolismo , Plastidios/genética , Plastidios/metabolismo
12.
J Exp Bot ; 73(16): 5428-5439, 2022 09 12.
Artículo en Inglés | MEDLINE | ID: mdl-35662332

RESUMEN

Mitochondria form highly dynamic populations in the cells of plants (and almost all eukaryotes). The characteristics and benefits of this collective behaviour, and how it is influenced by nuclear features, remain to be fully elucidated. Here, we use a recently developed quantitative approach to reveal and analyse the physical and collective 'social' dynamics of mitochondria in an Arabidopsis msh1 mutant where the organelle DNA maintenance machinery is compromised. We use a newly created line combining the msh1 mutant with mitochondrially targeted green fluorescent protein (GFP), and characterize mitochondrial dynamics with a combination of single-cell time-lapse microscopy, computational tracking, and network analysis. The collective physical behaviour of msh1 mitochondria is altered from that of the wild type in several ways: mitochondria become less evenly spread, and networks of inter-mitochondrial encounters become more connected, with greater potential efficiency for inter-organelle exchange-reflecting a potential compensatory mechanism for the genetic challenge to the mitochondrial DNA population, supporting more inter-organelle exchange. We find that these changes are similar to those observed in friendly, where mitochondrial dynamics are altered by a physical perturbation, suggesting that this shift to higher connectivity may reflect a general response to mitochondrial challenges, where physical dynamics of mitochondria may be altered to control the genetic structure of the mtDNA population.


Asunto(s)
Proteínas de Arabidopsis , Arabidopsis , Arabidopsis/genética , Arabidopsis/metabolismo , Proteínas de Arabidopsis/genética , Proteínas de Arabidopsis/metabolismo , Núcleo Celular/metabolismo , ADN/metabolismo , ADN Mitocondrial/genética , ADN Mitocondrial/metabolismo , Dinámicas Mitocondriales , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/genética , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/metabolismo
13.
Molecules ; 27(8)2022 Apr 10.
Artículo en Inglés | MEDLINE | ID: mdl-35458636

RESUMEN

Covalent protein capture (cross-linking) by reactive DNA derivatives makes it possible to investigate structural features by fixing complexes at different stages of DNA-protein recognition. The most common cross-linking methods are based on reactive groups that interact with native or engineered cysteine residues. Nonetheless, high reactivity of most of such groups leads to preferential fixation of early-stage complexes or even non-selective cross-linking. We synthesised a set of DNA reagents carrying an acrylamide group attached to the C5 atom of a 2'-deoxyuridine moiety via various linkers and studied cross-linking with MutS as a model protein. MutS scans DNA for mismatches and damaged nucleobases and can form multiple non-specific complexes with DNA that may cause non-selective cross-linking. By varying the length of the linker between DNA and the acrylamide group and by changing the distance between the reactive nucleotide and a mismatch in the duplex, we showed that cross-linking occurs only if the distance between the acrylamide group and cysteine is optimal within the DNA-protein complex. Thus, acrylamide-modified DNA duplexes are excellent tools for studying DNA-protein interactions because of high selectivity of cysteine trapping.


Asunto(s)
Cisteína , Proteínas de Escherichia coli , Acrilamida , Disparidad de Par Base , Cisteína/química , ADN/química , Reparación de la Incompatibilidad de ADN , Reparación del ADN , Proteínas de Escherichia coli/metabolismo , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/química , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/metabolismo , Proteínas
14.
Structure ; 30(7): 973-982.e4, 2022 07 07.
Artículo en Inglés | MEDLINE | ID: mdl-35439431

RESUMEN

MutS family proteins are classified into MutS-I and -II lineages: MutS-I recognizes mismatched DNA and initiates mismatch repair, whereas MutS-II recognizes DNA junctions to modulate recombination. MutS-I forms dimeric clamp-like structures enclosing the mismatched DNA, and its composite ATPase sites regulate DNA-binding modes. Meanwhile, the structures of MutS-II have not been determined; accordingly, it remains unknown how MutS-II recognizes DNA junctions and how nucleotides control DNA binding. Here, we solved the ligand-free and ADP-bound crystal structures of bacterial MutS2 belonging to MutS-II. MutS2 also formed a dimeric clamp-like structure with composite ATPase sites. The ADP-bound MutS2 was more flexible compared to the ligand-free form and could be more suitable for DNA entry. The inner hole of the MutS2 clamp was two times larger than that of MutS-I, and site-directed mutagenesis analyses revealed DNA-binding sites at the inner hole. Based on these, a model is proposed that describes how MutS2 recognizes DNA junctions.


Asunto(s)
Proteínas de Escherichia coli , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN , Adenosina Difosfato/metabolismo , Adenosina Trifosfatasas/química , Proteínas Bacterianas/química , ADN/metabolismo , Reparación de la Incompatibilidad de ADN , Proteínas de Escherichia coli/genética , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/genética , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/metabolismo
16.
Nat Struct Mol Biol ; 29(1): 59-66, 2022 01.
Artículo en Inglés | MEDLINE | ID: mdl-35013597

RESUMEN

DNA mismatch repair detects and corrects mismatches introduced during DNA replication. The protein MutS scans for mismatches and coordinates the repair cascade. During this process, MutS undergoes multiple conformational changes in response to ATP binding, hydrolysis and release, but how ATP induces the various MutS conformations is incompletely understood. Here we present four cryogenic electron microscopy structures of Escherichia coli MutS at sequential stages of the ATP hydrolysis cycle that reveal how ATP binding and hydrolysis induce closing and opening of the MutS dimer, respectively. Biophysical analysis demonstrates how DNA binding modulates the ATPase cycle by prevention of hydrolysis during scanning and mismatch binding, while preventing ADP release in the sliding clamp state. Nucleotide release is achieved when MutS encounters single-stranded DNA that is produced during removal of the daughter strand. The combination of ATP binding and hydrolysis and its modulation by DNA enables MutS to adopt the different conformations needed to coordinate the sequential steps of the mismatch repair cascade.


Asunto(s)
Adenosina Trifosfato/metabolismo , Microscopía por Crioelectrón , Reparación de la Incompatibilidad de ADN , ADN/metabolismo , Proteínas de Escherichia coli/metabolismo , Proteínas de Escherichia coli/ultraestructura , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/metabolismo , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/ultraestructura , Adenosina Difosfato/metabolismo , Dominio Catalítico , Escherichia coli , Hidrólisis , Modelos Moleculares , Unión Proteica , Multimerización de Proteína
17.
J Chem Inf Model ; 61(12): 6000-6011, 2021 12 27.
Artículo en Inglés | MEDLINE | ID: mdl-34779609

RESUMEN

Mismatched base pairs alter the flexibility and intrinsic curvature of DNA. The role of such DNA features is not fully understood in the mismatch repair pathway. MutS/DNA complexes exhibit DNA bending, PHE intercalation, and changes of base-pair parameters near the mismatch. Recently, we have shown that base-pair opening in the absence of MutS can discriminate mismatches from canonical base pairs better than DNA bending. However, DNA bending in the absence of MutS was found to be rather challenging to describe correctly. Here, we present a computational study on the DNA bending of canonical and G/T mismatched DNAs. Five types of geometric parameters covering template-based bending toward the experimental DNA structure, global, and local geometry parameters were employed in biased molecular dynamics in the absence of MutS. None of these parameters showed higher discrimination than the base-pair opening. Only roll could induce a sharply localized bending of DNA as observed in the experimental MutS/DNA structure. Further, we demonstrated that the intercalation of benzene mimicking PHE decreases the energetic cost of DNA bending without any effect on mismatch discrimination.


Asunto(s)
Disparidad de Par Base , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN , Emparejamiento Base , ADN/química , Reparación del ADN , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/química , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/genética , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/metabolismo
18.
Genome Biol Evol ; 13(9)2021 09 01.
Artículo en Inglés | MEDLINE | ID: mdl-34402879

RESUMEN

MutS is a key component of the mismatch repair (MMR) pathway. Members of the MutS protein family are present in prokaryotes, eukaryotes, and viruses. Six MutS homologs (MSH1-6) have been identified in yeast, of which three function in nuclear MMR, while MSH1 functions in mitochondrial DNA repair. MSH proteins are believed to be well conserved in animals, except for MSH1-which is thought to be lost. Two intriguing exceptions to this general picture have been found, both in the class Anthozoa within the phylum Cnidaria. First, an ortholog of the yeast-MSH1 was reported in one hexacoral species. Second, a MutS homolog (mtMutS) has been found in the mitochondrial genome of all octocorals. To understand the origin and potential functional implications of these exceptions, we investigated the evolution of the MutS family both in Cnidaria and in animals in general. Our study confirmed the acquisition of octocoral mtMutS by horizontal gene transfer from a giant virus. Surprisingly, we identified MSH1 in all hexacorals and several sponges and placozoans. By contrast, MSH1 orthologs were lacking in other cnidarians, ctenophores, and bilaterian animals. Furthermore, while we identified MSH2 and MSH6 in nearly all animals, MSH4, MSH5, and, especially, MSH3 were missing in multiple species. Overall, our analysis revealed a dynamic evolution of the MutS family in animals, with multiple losses of MSH1, MSH3, some losses of MSH4 and MSH5, and a gain of the octocoral mtMutS. We propose that octocoral mtMutS functionally replaced MSH1 that was present in the common ancestor of Anthozoa.


Asunto(s)
Proteínas de Saccharomyces cerevisiae , Animales , Reparación del ADN , Proteínas de Unión al ADN/genética , Proteínas de Unión al ADN/metabolismo , Proteínas Fúngicas/genética , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/genética , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/metabolismo , Saccharomyces cerevisiae/genética , Proteínas de Saccharomyces cerevisiae/genética
19.
Nucleic Acids Res ; 49(6): 3308-3321, 2021 04 06.
Artículo en Inglés | MEDLINE | ID: mdl-33677508

RESUMEN

The DNA mismatch repair (MMR) process detects and corrects replication errors in organisms ranging from bacteria to humans. In most bacteria, it is initiated by MutS detecting mismatches and MutL nicking the mismatch-containing DNA strand. Here, we show that MMR reduces the appearance of rifampicin resistances more than a 100-fold in the Caulobacter crescentus Alphaproteobacterium. Using fluorescently-tagged and functional MutS and MutL proteins, live cell microscopy experiments showed that MutS is usually associated with the replisome during the whole S-phase of the C. crescentus cell cycle, while MutL molecules may display a more dynamic association with the replisome. Thus, MMR components appear to use a 1D-scanning mode to search for rare mismatches, although the spatial association between MutS and the replisome is dispensible under standard growth conditions. Conversely, the spatial association of MutL with the replisome appears as critical for MMR in C. crescentus, suggesting a model where the ß-sliding clamp licences the endonuclease activity of MutL right behind the replication fork where mismatches are generated. The spatial association between MMR and replisome components may also play a role in speeding up MMR and/or in recognizing which strand needs to be repaired in a variety of Alphaproteobacteria.


Asunto(s)
Caulobacter crescentus/genética , Reparación de la Incompatibilidad de ADN , Replicación del ADN , Secuencias de Aminoácidos , Disparidad de Par Base , Caulobacter crescentus/metabolismo , ADN Helicasas/metabolismo , ADN Polimerasa Dirigida por ADN/metabolismo , Complejos Multienzimáticos/metabolismo , Proteínas MutL/metabolismo , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/química , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/metabolismo , Fase S/genética
20.
Plant Cell Environ ; 44(1): 234-246, 2021 01.
Artículo en Inglés | MEDLINE | ID: mdl-32978825

RESUMEN

Spontaneous fertility reversion has been documented in cytoplasmic male sterile (CMS) plants of several species, influenced in frequency by nuclear genetic background. In this study, we found that MutS HOMOLOG1 (MSH1) mediates fertility reversion via substoichiometric shifting (SSS) of the CMS-associated mitochondrial Open Reading Frame 220 (ORF220), a process that may be regulated by pollination signalling in Brassica juncea. We show that plants adjust their growth and development in response to unsuccessful pollination. Measurable decrease in MSH1 transcript levels and evidence of ORF220 SSS under non-pollination conditions suggest that this nuclear-mitochondrial interplay influences fertility reversion in CMS plants in response to physiological signals. Suppression of MSH1 expression induced higher frequency SSS in CMS plants than occurs normally. Transcriptional analysis of floral buds under pollination and non-pollination conditions, and the response of MSH1 expression to different sugars, supports the hypothesis that carbon flux is involved in the pollination signalling of fertility reversion in CMS plants. Our findings suggest that facultative gynodioecy as a reproductive strategy may incorporate environmentally responsive genes like MSH1 as an "on-off" switch for sterility-fertility transition under ecological conditions of reproductive isolation.


Asunto(s)
Planta de la Mostaza/metabolismo , Proteína MutS de Unión a los Apareamientos Incorrectos del ADN/metabolismo , Infertilidad Vegetal , Proteínas de Plantas/metabolismo , Fructosa/metabolismo , Perfilación de la Expresión Génica , Regulación de la Expresión Génica de las Plantas , Glucosa/metabolismo , Planta de la Mostaza/genética , Polinización , Sacarosa/metabolismo
SELECCIÓN DE REFERENCIAS
DETALLE DE LA BÚSQUEDA
...