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1.
Nat Commun ; 15(1): 5687, 2024 Jul 07.
Article in English | MEDLINE | ID: mdl-38971862

ABSTRACT

Base editing (BE) faces protospacer adjacent motif (PAM) constraints and off-target effects in both eukaryotes and prokaryotes. For Streptomyces, renowned as one of the most prolific bacterial producers of antibiotics, the challenges are more pronounced due to its diverse genomic content and high GC content. Here, we develop a base editor named eSCBE3-NG-Hypa, tailored with both high efficiency and -fidelity for Streptomyces. Of note, eSCBE3-NG-Hypa recognizes NG PAM and exhibits high activity at challenging sites with high GC content or GC motifs, while displaying minimal off-target effects. To illustrate its practicability, we employ eSCBE3-NG-Hypa to achieve precise key amino acid conversion of the dehydratase (DH) domains within the modular polyketide synthase (PKS) responsible for the insecticide avermectins biosynthesis, achieving domains inactivation. The resulting DH-inactivated mutants, while ceasing avermectins production, produce a high yield of oligomycin, indicating competitive relationships among multiple biosynthetic gene clusters (BGCs) in Streptomyces avermitilis. Leveraging this insight, we use eSCBE3-NG-Hypa to introduce premature stop codons into competitor gene cluster of ave in an industrial S. avermitilis, with the mutant Δolm exhibiting the highest 4.45-fold increase in avermectin B1a compared to the control. This work provides a potent tool for modifying biosynthetic pathways and advancing metabolic engineering in Streptomyces.


Subject(s)
CRISPR-Cas Systems , Cytosine , Gene Editing , Polyketide Synthases , Streptomyces , Streptomyces/genetics , Streptomyces/metabolism , Gene Editing/methods , Polyketide Synthases/genetics , Polyketide Synthases/metabolism , Cytosine/metabolism , Ivermectin/analogs & derivatives , Ivermectin/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Oligomycins
2.
Eur J Oral Sci ; 132(4): e13005, 2024 Aug.
Article in English | MEDLINE | ID: mdl-39014296

ABSTRACT

The present study aimed to evaluate whether epigenetic markers are expressed in the dental follicles surrounding ectopically erupting teeth. Twenty-one dental follicles were collected in 20 adolescent children through surgical exposure of ectopic teeth. The epigenetic modifications of DNA methylation and histone acetylation were evaluated by immunohistochemistry. The results showed cells positive for DNA-methyltransferase 1 (DNMT1), DNA methyltransferase 3 beta (DNMT3B), ten-eleven translocation-2 (TET2), acetyl-histone H3 (AcH3), acetyl-histone H4 (AcH4), 5-methylcytosine (5mC), and 5-hydroxymethylcytosine (5hmC) were present in all the samples. The levels of epigenetic markers representing active chromatin (5hmC, AcH3, AcH4, and TET2) were statistically significantly higher than those of markers representing inactive chromatin (5mC, DNMT3B, DNMT1). In conclusion, follicles in ectopic teeth display major epigenetic modifications. In the follicles, epigenetic markers associated with the activation of bone-related genes are more abundant than markers associated with the inactivation of bone-related genes.


Subject(s)
DNA Methylation , Dental Sac , Epigenesis, Genetic , Histones , Tooth Eruption , Humans , Histones/metabolism , Adolescent , Acetylation , Child , Female , Male , Tooth Eruption/genetics , Dental Sac/metabolism , DNA Methyltransferase 3B , 5-Methylcytosine/analogs & derivatives , 5-Methylcytosine/metabolism , DNA (Cytosine-5-)-Methyltransferase 1/metabolism , DNA (Cytosine-5-)-Methyltransferase 1/genetics , DNA (Cytosine-5-)-Methyltransferases/metabolism , DNA (Cytosine-5-)-Methyltransferases/genetics , Cytosine/metabolism
3.
Int J Mol Sci ; 25(14)2024 Jul 09.
Article in English | MEDLINE | ID: mdl-39062783

ABSTRACT

Despite the widely accepted involvement of DNA methylation in the regulation of rDNA transcription, the relative participation of different cytosine methylation pathways is currently described only for a few model plants. Using PacBio, Bisulfite, and RNA sequencing; PCR; Southern hybridizations; and FISH, the epigenetic consequences of rDNA copy number variation were estimated in two T. porrifolius lineages, por1 and por2, the latter with more than twice the rDNA copy numbers distributed approximately equally between NORs on chromosomes A and D. The lower rDNA content in por1 correlated with significantly reduced (>90%) sizes of both D-NORs. Moreover, two (L and S) prominent rDNA variants, differing in the repetitive organization of intergenic spacers, were detected in por2, while only the S-rDNA variant was detected in por1. Transcriptional activity of S-rDNA in por1 was associated with secondary constriction of both A-NORs. In contrast, silencing of S-rDNA in por2 was accompanied by condensation of A-NORs, secondary constriction on D-NORs, and L-rDNA transcriptional activity, suggesting (i) bidirectional nucleolar dominance and (ii) association of S-rDNAs with A-NORs and L-rDNAs with D-NORs in T. porrifolius. Each S- and L-rDNA array was formed of several sub-variants differentiating both genetically (specific SNPs) and epigenetically (transcriptional efficiency and cytosine methylation). The most significant correlations between rDNA silencing and methylation were detected for symmetric CWG motifs followed by CG motifs. No correlations were detected for external cytosine in CCGs or asymmetric CHHs, where methylation was rather position-dependent, particularly for AT-rich variants. We conclude that variations in rDNA copy numbers in plant diploids can be accompanied by prompt epigenetic responses to maintain an appropriate number of active rDNAs. The methylation dynamics of CWGs are likely to be the most responsible for regulating silent and active rDNA states.


Subject(s)
Cytosine , DNA Methylation , DNA, Ribosomal , Gene Silencing , Cytosine/metabolism , DNA, Ribosomal/genetics , DNA Copy Number Variations , Transcription, Genetic , Epigenesis, Genetic , Gene Expression Regulation, Plant , Chromosomes, Plant/genetics
4.
DNA Repair (Amst) ; 141: 103712, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38959714

ABSTRACT

Epigenetic cytosine methylation covers most of genomic CpG dinucleotides in human cells. In addition to common deamination-mediated mutagenesis at CpG sites, an alternative deamination-independent pathway associated with DNA polymerase activity was previously described. This mutagenesis is characterized by the TCG→TTG mutational signature and is believed to arise from dAMP misincorporation opposite 5-methylcytosine (mC) or its oxidized derivative 5-hydroxymethylcytosine (hmC) by B-family replicative DNA polymerases with disrupted proofreading 3→5'-exonuclease activity. In addition to being less stable and pro-mutagenic themselves, cytosine modifications also increase the risk of adjacent nucleotides damage, including the formation of 8-oxo-2'-deoxyguanosine (8-oxoG), a well-known mutagenic lesion. The effect of cytosine methylation on error-prone DNA polymerases lacking proofreading activity and involved in repair and DNA translesion synthesis remains unexplored. Here we analyze the efficiency and fidelity of translesion Y-family polymerases (Pol κ, Pol η, Pol ι and REV1) and primase-polymerase PrimPol opposite mC and hmC as well as opposite 8-oxoG adjacent to mC in the TCG context. We demonstrate that epigenetic cytosine modifications suppress Pol ι and REV1 activities and lead to increasing dAMP misincorporation by PrimPol, Pol κ and Pol ι in vitro. Cytosine methylation also increases misincorporation of dAMP opposite the adjacent 8-oxoG by PrimPol, decreases the TLS activity of Pol η opposite the lesion but increases dCMP incorporation opposite 8-oxoG by REV1. Altogether, these data suggest that methylation and hydroxymethylation of cytosine alter activity and fidelity of translesion DNA polymerases.


Subject(s)
5-Methylcytosine , Cytosine , DNA Methylation , DNA-Directed DNA Polymerase , Humans , DNA-Directed DNA Polymerase/metabolism , Cytosine/metabolism , Cytosine/analogs & derivatives , 5-Methylcytosine/metabolism , 5-Methylcytosine/analogs & derivatives , DNA Repair , DNA Damage , Nucleotidyltransferases/metabolism , Nucleotidyltransferases/genetics , DNA Polymerase iota , DNA/metabolism , Multifunctional Enzymes/metabolism , DNA Replication , 8-Hydroxy-2'-Deoxyguanosine/metabolism
5.
Comput Biol Med ; 178: 108664, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38875905

ABSTRACT

N4-methylcytosine (4mC) is a modified form of cytosine found in DNA, contributing to epigenetic regulation. It exists in various genomes, including the Rosaceae family encompassing significant fruit crops like apples, cherries, and roses. Previous investigations have examined the distribution and functional implications of 4mC sites within the Rosaceae genome, focusing on their potential roles in gene expression regulation, environmental adaptation, and evolution. This research aims to improve the accuracy of predicting 4mC sites within the genome of Fragaria vesca, a Rosaceae plant species. Building upon the original 4mc-w2vec method, which combines word embedding processing and a convolutional neural network (CNN), we have incorporated additional feature encoding techniques and leveraged pre-trained natural language processing (NLP) models with different deep learning architectures including different forms of CNN, recurrent neural networks (RNN) and long short-term memory (LSTM). Our assessments have shown that the best model is derived from a CNN model using fastText encoding. This model demonstrates enhanced performance, achieving a sensitivity of 0.909, specificity of 0.77, and accuracy of 0.879 on an independent dataset. Furthermore, our model surpasses previously published works on the same dataset, thus showcasing its superior predictive capabilities.


Subject(s)
Neural Networks, Computer , DNA, Plant/genetics , Cytosine/metabolism , Cytosine/chemistry , Genome, Plant , Sequence Analysis, DNA/methods , DNA Methylation/genetics , Fragaria/genetics
6.
Nature ; 630(8017): 752-761, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38867045

ABSTRACT

Mutations accumulate in the genome of every cell of the body throughout life, causing cancer and other diseases1,2. Most mutations begin as nucleotide mismatches or damage in one of the two strands of the DNA before becoming double-strand mutations if unrepaired or misrepaired3,4. However, current DNA-sequencing technologies cannot accurately resolve these initial single-strand events. Here we develop a single-molecule, long-read sequencing method (Hairpin Duplex Enhanced Fidelity sequencing (HiDEF-seq)) that achieves single-molecule fidelity for base substitutions when present in either one or both DNA strands. HiDEF-seq also detects cytosine deamination-a common type of DNA damage-with single-molecule fidelity. We profiled 134 samples from diverse tissues, including from individuals with cancer predisposition syndromes, and derive from them single-strand mismatch and damage signatures. We find correspondences between these single-strand signatures and known double-strand mutational signatures, which resolves the identity of the initiating lesions. Tumours deficient in both mismatch repair and replicative polymerase proofreading show distinct single-strand mismatch patterns compared to samples that are deficient in only polymerase proofreading. We also define a single-strand damage signature for APOBEC3A. In the mitochondrial genome, our findings support a mutagenic mechanism occurring primarily during replication. As double-strand DNA mutations are only the end point of the mutation process, our approach to detect the initiating single-strand events at single-molecule resolution will enable studies of how mutations arise in a variety of contexts, especially in cancer and ageing.


Subject(s)
Base Pair Mismatch , DNA Damage , DNA, Single-Stranded , Sequence Analysis, DNA , Single Molecule Imaging , Humans , Aging/genetics , APOBEC Deaminases/genetics , APOBEC Deaminases/metabolism , Base Pair Mismatch/genetics , Cytidine Deaminase/metabolism , Cytidine Deaminase/genetics , Cytosine/metabolism , Deamination , DNA Damage/genetics , DNA Mismatch Repair/genetics , DNA Replication/genetics , DNA, Single-Stranded/genetics , Genome, Mitochondrial/genetics , Mutation , Neoplasms/genetics , Sequence Analysis, DNA/methods , Sequence Analysis, DNA/standards , Single Molecule Imaging/methods , Male , Female
7.
Genome Res ; 34(6): 904-913, 2024 Jul 23.
Article in English | MEDLINE | ID: mdl-38858087

ABSTRACT

Multiomics require concerted recording of independent information, ideally from a single experiment. In this study, we introduce RIMS-seq2, a high-throughput technique to simultaneously sequence genomes and overlay methylation information while requiring only a small modification of the experimental protocol for high-throughput DNA sequencing to include a controlled deamination step. Importantly, the rate of deamination of 5-methylcytosine is negligible and thus does not interfere with standard DNA sequencing and data processing. Thus, RIMS-seq2 libraries from whole- or targeted-genome sequencing show the same germline variation calling accuracy and sensitivity compared with standard DNA-seq. Additionally, regional methylation levels provide an accurate map of the human methylome.


Subject(s)
DNA Methylation , Genome, Human , High-Throughput Nucleotide Sequencing , Humans , Deamination , High-Throughput Nucleotide Sequencing/methods , Epigenome , Cytosine/metabolism , 5-Methylcytosine/metabolism , Sequence Analysis, DNA/methods
8.
Nat Commun ; 15(1): 4897, 2024 Jun 08.
Article in English | MEDLINE | ID: mdl-38851742

ABSTRACT

DNA base editors enable direct editing of adenine (A), cytosine (C), or guanine (G), but there is no base editor for direct thymine (T) editing currently. Here we develop two deaminase-free glycosylase-based base editors for direct T editing (gTBE) and C editing (gCBE) by fusing Cas9 nickase (nCas9) with engineered human uracil DNA glycosylase (UNG) variants. By several rounds of structure-informed rational mutagenesis on UNG in cultured human cells, we obtain gTBE and gCBE with high activity of T-to-S (i.e., T-to-C or T-to-G) and C-to-G conversions, respectively. Furthermore, we conduct parallel comparison of gTBE/gCBE with those recently developed using other protein engineering strategies, and find gTBE/gCBE show the outperformance. Thus, we provide several base editors, gTBEs and gCBEs, with corresponding engineered UNG variants, broadening the targeting scope of base editors.


Subject(s)
CRISPR-Associated Protein 9 , Gene Editing , Protein Engineering , Uracil-DNA Glycosidase , Humans , Gene Editing/methods , Uracil-DNA Glycosidase/metabolism , Uracil-DNA Glycosidase/genetics , Protein Engineering/methods , CRISPR-Associated Protein 9/metabolism , CRISPR-Associated Protein 9/genetics , Cytosine/metabolism , Thymine/metabolism , CRISPR-Cas Systems , HEK293 Cells , Mutagenesis , Guanine/metabolism , DNA/metabolism , DNA/genetics
9.
Nat Commun ; 15(1): 5103, 2024 Jun 14.
Article in English | MEDLINE | ID: mdl-38877035

ABSTRACT

Cytosine base editors (CBEs) and adenine base editors (ABEs) enable precise C-to-T and A-to-G edits. Recently, ABE8e, derived from TadA-8e, enhances A-to-G edits in mammalian cells and plants. Interestingly, TadA-8e can also be evolved to confer C-to-T editing. This study compares engineered CBEs derived from TadA-8e in rice and tomato cells, identifying TadCBEa, TadCBEd, and TadCBEd_V106W as efficient CBEs with high purity and a narrow editing window. A dual base editor, TadDE, promotes simultaneous C-to-T and A-to-G editing. Multiplexed base editing with TadCBEa and TadDE is demonstrated in transgenic rice, with no off-target effects detected by whole genome and transcriptome sequencing, indicating high specificity. Finally, two crop engineering applications using TadDE are shown: introducing herbicide resistance alleles in OsALS and creating synonymous mutations in OsSPL14 to resist OsMIR156-mediated degradation. Together, this study presents TadA-8e derived CBEs and a dual base editor as valuable additions to the plant editing toolbox.


Subject(s)
CRISPR-Cas Systems , Cytosine , Gene Editing , Oryza , Plants, Genetically Modified , Gene Editing/methods , Cytosine/metabolism , Oryza/genetics , Solanum lycopersicum/genetics , Adenine/analogs & derivatives , Adenine/metabolism , Herbicide Resistance/genetics , Genome, Plant
10.
Sci Rep ; 14(1): 12870, 2024 06 04.
Article in English | MEDLINE | ID: mdl-38834632

ABSTRACT

One of the most recent advances in the genome editing field has been the addition of "TALE Base Editors", an innovative platform for cell therapy that relies on the deamination of cytidines within double strand DNA, leading to the formation of an uracil (U) intermediate. These molecular tools are fusions of transcription activator-like effector domains (TALE) for specific DNA sequence binding, split-DddA deaminase halves that will, upon catalytic domain reconstitution, initiate the conversion of a cytosine (C) to a thymine (T), and an uracil glycosylase inhibitor (UGI). We developed a high throughput screening strategy capable to probe key editing parameters in a precisely defined genomic context in cellulo, excluding or minimizing biases arising from different microenvironmental and/or epigenetic contexts. Here we aimed to further explore how target composition and TALEB architecture will impact the editing outcomes. We demonstrated how the nature of the linker between TALE array and split DddAtox head allows us to fine tune the editing window, also controlling possible bystander activity. Furthermore, we showed that both the TALEB architecture and spacer length separating the two TALE DNA binding regions impact the target TC editing dependence by the surrounding bases, leading to more restrictive or permissive editing profiles.


Subject(s)
Cytosine , Gene Editing , Thymine , Gene Editing/methods , Humans , Cytosine/metabolism , Cytosine/chemistry , Thymine/metabolism , Thymine/chemistry , Transcription Activator-Like Effectors/metabolism , Transcription Activator-Like Effectors/genetics , DNA/metabolism , DNA/genetics , HEK293 Cells
11.
Nat Commun ; 15(1): 4946, 2024 Jun 11.
Article in English | MEDLINE | ID: mdl-38862540

ABSTRACT

Genomic aberrations are a critical impediment for the safe medical use of iPSCs and their origin and developmental mechanisms remain unknown. Here we find through WGS analysis of human and mouse iPSC lines that genomic mutations are de novo events and that, in addition to unmodified cytosine base prone to deamination, the DNA methylation sequence CpG represents a significant mutation-prone site. CGI and TSS regions show increased mutations in iPSCs and elevated mutations are observed in retrotransposons, especially in the AluY subfamily. Furthermore, increased cytosine to thymine mutations are observed in differentially methylated regions. These results indicate that in addition to deamination of cytosine, demethylation of methylated cytosine, which plays a central role in genome reprogramming, may act mutagenically during iPSC generation.


Subject(s)
CpG Islands , Cytosine , DNA Methylation , Induced Pluripotent Stem Cells , Point Mutation , Induced Pluripotent Stem Cells/metabolism , Cytosine/metabolism , Animals , Humans , Mice , Cellular Reprogramming/genetics , Retroelements/genetics , Cell Line
12.
Nucleic Acids Res ; 52(14): 8052-8062, 2024 Aug 12.
Article in English | MEDLINE | ID: mdl-38908025

ABSTRACT

i-Motifs (iMs) are non-canonical, four-stranded secondary structures formed by stacking of hemi-protonated CH+·C base pairs in cytosine-rich DNA sequences, predominantly at pH < 7. The presence of iM structures in cells was a matter of debate until the recent development of iM-specific antibody, iMab, which was instrumental for several studies that suggested the existence of iMs in live cells and their putative biological roles. We assessed the interaction of iMab with cytosine-rich oligonucleotides by biolayer interferometry (BLI), pull-down assay and bulk-FRET experiments. Our results suggest that binding of iMab to DNA oligonucleotides is governed by the presence of runs of at least two consecutive cytosines and is generally increased in acidic conditions, irrespectively of the capacity of the sequence to adopt, or not, an iM structure. Moreover, the results of the bulk-FRET assay indicate that interaction with iMab results in unfolding of iM structures even in acidic conditions, similarly to what has been observed with hnRNP K, well-studied single-stranded DNA binding protein. Taken together, our results strongly suggest that iMab actually binds to blocks of 2-3 cytosines in single-stranded DNA, and call for more careful interpretation of results obtained with this antibody.


Subject(s)
Cytosine , DNA, Single-Stranded , Nucleotide Motifs , Cytosine/chemistry , Cytosine/metabolism , DNA, Single-Stranded/chemistry , DNA, Single-Stranded/metabolism , Nucleic Acid Conformation , Protein Binding , Antibodies/chemistry , Antibodies/metabolism , DNA/chemistry , DNA/metabolism , Base Sequence
13.
Commun Biol ; 7(1): 529, 2024 May 04.
Article in English | MEDLINE | ID: mdl-38704509

ABSTRACT

Intra-organism biodiversity is thought to arise from epigenetic modification of constituent genes and post-translational modifications of translated proteins. Here, we show that post-transcriptional modifications, like RNA editing, may also contribute. RNA editing enzymes APOBEC3A and APOBEC3G catalyze the deamination of cytosine to uracil. RNAsee (RNA site editing evaluation) is a computational tool developed to predict the cytosines edited by these enzymes. We find that 4.5% of non-synonymous DNA single nucleotide polymorphisms that result in cytosine to uracil changes in RNA are probable sites for APOBEC3A/G RNA editing; the variant proteins created by such polymorphisms may also result from transient RNA editing. These polymorphisms are associated with over 20% of Medical Subject Headings across ten categories of disease, including nutritional and metabolic, neoplastic, cardiovascular, and nervous system diseases. Because RNA editing is transient and not organism-wide, future work is necessary to confirm the extent and effects of such editing in humans.


Subject(s)
APOBEC Deaminases , Cytidine Deaminase , RNA Editing , Humans , Cytidine Deaminase/metabolism , Cytidine Deaminase/genetics , Polymorphism, Single Nucleotide , Cytosine/metabolism , APOBEC-3G Deaminase/metabolism , APOBEC-3G Deaminase/genetics , Uracil/metabolism , Proteins/genetics , Proteins/metabolism , Cytosine Deaminase/genetics , Cytosine Deaminase/metabolism
14.
J Phys Chem B ; 128(19): 4621-4630, 2024 May 16.
Article in English | MEDLINE | ID: mdl-38697651

ABSTRACT

Thymine DNA glycosylase (TDG)-mediated excision of 5-formylcytosine and 5-carboxylcytosine (5-caC) is a critical step in active DNA demethylation. Herein, we employed a combined quantum mechanics/molecular mechanics approach to investigate the reaction mechanism of TDG-catalyzed N-glycosidic bond cleavage of 5-caC. The calculated results show that TDG-catalyzed 5-caC excision follows a concerted (SN2) mechanism in which glycosidic bond dissociation is coupled with nucleophile attack. Protonation of the 5-caC anion contributes to the cleavage of the N-glycoside bond, in which the N3-protonated zwitterion and imino tautomers are more favorable than carboxyl-protonated amino tautomers. This is consistent with the experimental data. Furthermore, our results reveal that the configuration rearrangement process of the protonated 5-caC would lower the stability of the N-glycoside bond and substantially reduce the barrier height for the subsequent C1'-N1 bond cleavage. This should be attributed to the smaller electrostatic repulsion between the leaving base and the negative phosphate group as a result of the structural rearrangement.


Subject(s)
Cytosine , Glycosides , Quantum Theory , Thymine DNA Glycosylase , Thymine DNA Glycosylase/metabolism , Thymine DNA Glycosylase/chemistry , Cytosine/chemistry , Cytosine/metabolism , Cytosine/analogs & derivatives , Glycosides/chemistry , Glycosides/metabolism , Molecular Dynamics Simulation
15.
BMC Biol ; 22(1): 125, 2024 May 29.
Article in English | MEDLINE | ID: mdl-38807090

ABSTRACT

BACKGROUND: Bacterial epigenetics is a rapidly expanding research field. DNA methylation by diverse bacterial methyltransferases (MTases) contributes to genomic integrity and replication, and many recent studies extended MTase function also to global transcript regulation and phenotypic variation. Helicobacter pylori is currently one of those bacterial species which possess the highest number and the most variably expressed set of DNA MTases. Next-generation sequencing technologies can directly detect DNA base methylation. However, they still have limitations in their quantitative and qualitative performance, in particular for cytosine methylation. RESULTS: As a complementing approach, we used enzymatic methyl sequencing (EM-Seq), a technology recently established that has not yet been fully evaluated for bacteria. Thereby, we assessed quantitatively, at single-base resolution, whole genome cytosine methylation for all methylated cytosine motifs in two different H. pylori strains and isogenic MTase mutants. EM-Seq reliably detected both m5C and m4C methylation. We demonstrated that three different active cytosine MTases in H. pylori provide considerably different levels of average genome-wide single-base methylation, in contrast to isogenic mutants which completely lost specific motif methylation. We found that strain identity and changed environmental conditions, such as growth phase and interference with methyl donor homeostasis, significantly influenced quantitative global and local genome-wide methylation in H. pylori at specific motifs. We also identified significantly hyper- or hypo-methylated cytosines, partially linked to overlapping MTase target motifs. Notably, we revealed differentially methylated cytosines in genome-wide coding regions under conditions of methionine depletion, which can be linked to transcript regulation. CONCLUSIONS: This study offers new knowledge on H. pylori global and local genome-wide methylation and establishes EM-Seq for quantitative single-site resolution analyses of bacterial cytosine methylation.


Subject(s)
DNA Methylation , Genome, Bacterial , Helicobacter pylori , Helicobacter pylori/genetics , Genome, Bacterial/genetics , Homeostasis , Cytosine/metabolism , Sequence Analysis, DNA/methods , High-Throughput Nucleotide Sequencing/methods
17.
Nat Commun ; 15(1): 4002, 2024 May 11.
Article in English | MEDLINE | ID: mdl-38734692

ABSTRACT

Precise genome editing is crucial for establishing isogenic human disease models and ex vivo stem cell therapy from the patient-derived hPSCs. Unlike Cas9-mediated knock-in, cytosine base editor and prime editor achieve the desirable gene correction without inducing DNA double strand breaks. However, hPSCs possess highly active DNA repair pathways and are particularly susceptible to p53-dependent cell death. These unique characteristics impede the efficiency of gene editing in hPSCs. Here, we demonstrate that dual inhibition of p53-mediated cell death and distinct activation of the DNA damage repair system upon DNA damage by cytosine base editor or prime editor additively enhanced editing efficiency in hPSCs. The BE4stem system comprised of p53DD, a dominant negative p53, and three UNG inhibitor, engineered to specifically diminish base excision repair, improves cytosine base editor efficiency in hPSCs. Addition of dominant negative MLH1 to inhibit mismatch repair activity and p53DD in the conventional prime editor system also significantly enhances prime editor efficiency in hPSCs. Thus, combined inhibition of the distinct cellular cascades engaged in hPSCs upon gene editing could significantly enhance precise genome editing in these cells.


Subject(s)
CRISPR-Cas Systems , DNA Damage , DNA Repair , Gene Editing , Tumor Suppressor Protein p53 , Gene Editing/methods , Humans , Tumor Suppressor Protein p53/metabolism , Tumor Suppressor Protein p53/genetics , Cell Line , MutL Protein Homolog 1/genetics , MutL Protein Homolog 1/metabolism , Cytosine/metabolism
18.
PLoS One ; 19(4): e0297008, 2024.
Article in English | MEDLINE | ID: mdl-38635731

ABSTRACT

Methylation and hydroxymethylation of cytosine moieties in CpG islands of specific genes are epigenetic processes shown to be involved in the development of cervical (pre)neoplastic lesions. We studied global (hydroxy)methylation during the subsequent steps in the carcinogenic process of the uterine cervix by using immunohistochemical protocols for the detection of 5-methylcytosine (5-mC) and 5-hydroxymethylcytosine (5-hmC) in paraffin-embedded tissues of the normal epithelia and (pre)malignant lesions. This approach allowed obtaining spatially resolved information of (epi)genetic alterations for individual cell populations in morphologically heterogeneous tissue samples. The normal ectocervical squamous epithelium showed a high degree of heterogeneity for both modifications, with a major positivity for 5-mC in the basal and parabasal layers in the ectocervical region, while 5-hmC immunostaining was even more restricted to the cells in the basal layer. Immature squamous metaplasia, characterized by expression of SOX17, surprisingly showed a decrease of 5-hmC in the basal compartments and an increase in the more superficial layers of the epithelium. The normal endocervical glandular epithelium showed a strong immunostaining reactivity for both modifications. At the squamocolumnar junctions, a specific 5-hmC pattern was observed in the squamous epithelium, resembling that of metaplasia, with the typical weak to negative reaction for 5-hmC in the basal cell compartment. The reserve cells underlying the glandular epithelium were also largely negative for 5-hmC but showed immunostaining for 5-mC. While the overall methylation status remained relatively constant, about 20% of the high-grade squamous lesions showed a very low immunostaining reactivity for 5-hmC. The (pre)malignant glandular lesions, including adenocarcinoma in situ (AIS) and adenocarcinoma showed a progressive decrease of hydroxymethylation with advancement of the lesion, resulting in cases with regions that were negative for 5-hmC immunostaining. These data indicate that inhibition of demethylation, which normally follows cytosine hydroxymethylation, is an important epigenetic switch in the development of cervical cancer.


Subject(s)
Carcinoma, Squamous Cell , Uterine Cervical Neoplasms , Female , Humans , Cytosine/metabolism , Uterine Cervical Neoplasms/pathology , Cervix Uteri/pathology , 5-Methylcytosine/metabolism , DNA Methylation , Carcinoma, Squamous Cell/pathology , Metaplasia/pathology
19.
BMC Biol ; 22(1): 99, 2024 Apr 29.
Article in English | MEDLINE | ID: mdl-38679734

ABSTRACT

BACKGROUND: TALE-derived DddA-based cytosine base editors (TALE-DdCBEs) can perform efficient base editing of mitochondria and chloroplast genomes. They use transcription activator-like effector (TALE) arrays as programmable DNA-binding domains and a split version of the double-strand DNA cytidine deaminase (DddA) to catalyze C•G-to-T•A editing. This technology has not been optimized for use in plant cells. RESULTS: To systematically investigate TALE-DdCBE architectures and editing rules, we established a ß-glucuronidase reporter for transient assays in Nicotiana benthamiana. We show that TALE-DdCBEs function with distinct spacer lengths between the DNA-binding sites of their two TALE parts. Compared to canonical DddA, TALE-DdCBEs containing evolved DddA variants (DddA6 or DddA11) showed a significant improvement in editing efficiency in Nicotiana benthamiana and rice. Moreover, TALE-DdCBEs containing DddA11 have broader sequence compatibility for non-TC target editing. We have successfully regenerated rice with C•G-to-T•A conversions in their chloroplast genome, as well as N. benthamiana with C•G-to-T•A editing in the nuclear genome using TALE-DdCBE. We also found that the spontaneous assembly of split DddA halves can cause undesired editing by TALE-DdCBEs in plants. CONCLUSIONS: Altogether, our results refined the targeting scope of TALE-DdCBEs and successfully applied them to target the chloroplast and nuclear genomes. Our study expands the base editing toolbox in plants and further defines parameters to optimize TALE-DdCBEs for high-fidelity crop improvement.


Subject(s)
Gene Editing , Nicotiana , Gene Editing/methods , Nicotiana/genetics , Transcription Activator-Like Effectors/metabolism , Transcription Activator-Like Effectors/genetics , Cytidine Deaminase/metabolism , Cytidine Deaminase/genetics , Cytosine/metabolism , Oryza/genetics
20.
Nat Commun ; 15(1): 3635, 2024 Apr 30.
Article in English | MEDLINE | ID: mdl-38688903

ABSTRACT

Although intratumoral heterogeneity has been established in pediatric central nervous system tumors, epigenomic alterations at the cell type level have largely remained unresolved. To identify cell type-specific alterations to cytosine modifications in pediatric central nervous system tumors, we utilize a multi-omic approach that integrated bulk DNA cytosine modification data (methylation and hydroxymethylation) with both bulk and single-cell RNA-sequencing data. We demonstrate a large reduction in the scope of significantly differentially modified cytosines in tumors when accounting for tumor cell type composition. In the progenitor-like cell types of tumors, we identify a preponderance differential Cytosine-phosphate-Guanine site hydroxymethylation rather than methylation. Genes with differential hydroxymethylation, like histone deacetylase 4 and insulin-like growth factor 1 receptor, are associated with cell type-specific changes in gene expression in tumors. Our results highlight the importance of epigenomic alterations in the progenitor-like cell types and its role in cell type-specific transcriptional regulation in pediatric central nervous system tumors.


Subject(s)
Central Nervous System Neoplasms , DNA Methylation , Epigenesis, Genetic , Gene Expression Regulation, Neoplastic , Humans , Central Nervous System Neoplasms/genetics , Central Nervous System Neoplasms/metabolism , Central Nervous System Neoplasms/pathology , Child , Histone Deacetylases/metabolism , Histone Deacetylases/genetics , Epigenomics/methods , Repressor Proteins/metabolism , Repressor Proteins/genetics , Single-Cell Analysis , Transcription, Genetic , Cytosine/metabolism
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