Technical articles

How RNA-DNA Hybrids Affect Genome Stability: RNase H1, RNase H2, and R-loop Regulatory Mechanisms

RNA-DNA hybrids are nucleic acid structures formed by pairing between an RNA strand and a DNA template strand. Typical forms include transcription-associated R-loops and hybrid regions formed after ribonucleotides are incorporated into DNA. RNase H1, RNase H2, helicases, topoisomerases, and RNA-processing factors collectively determine whether these structures participate in normal regulation or become sources of replication stress, DNA damage, and genome instability.

 

Keywords: RNA-DNA hybrid; R-loop; RNase H1; RNase H2; genome stability; transcription-replication conflict; replication stress; ribonucleotide excision repair; DNA damage; DRIP-qPCR

 

1 Structural Features of RNA-DNA Hybrids and R-loops

1.1 Basic structure

An RNA-DNA hybrid is formed by base pairing between an RNA strand and a complementary DNA strand. When this structure occurs within double-stranded DNA and the other DNA strand is displaced to form a single-stranded DNA region, it constitutes a typical R-loop. R-loops are not simply abnormal structures. They can participate in normal transcriptional regulation at promoters, termination regions, immunoglobulin genes, mitochondrial DNA replication regions, and certain regulatory regions. However, when their location, duration, or clearance efficiency becomes imbalanced, the risk of DNA damage increases.

(1) Transcription-associated R-loops

During transcription, nascent RNA can rehybridize with the template DNA strand. R-loops are more likely to form in regions with high GC content, G-rich RNA, strong transcriptional activity, impaired RNA processing, or elevated DNA topological stress. This structure exposes the non-template DNA strand as single-stranded DNA, making it more susceptible to nucleases, deaminases, or replication fork collisions.

(2) Replication-associated RNA-DNA hybrids

During replication, RNA primers, residual Okazaki fragment processing intermediates, and ribonucleotides incorrectly incorporated into DNA can all generate RNA-DNA hybrid features. Unlike classical transcription-associated R-loops, these structures are more directly linked to DNA replication maturation, ribonucleotide excision repair, and replication fork stability.

(3) Mitochondrial RNA-DNA hybrids

Mitochondrial DNA replication and transcription are highly coupled, and RNA-DNA hybrids can participate in replication initiation and post-transcriptional processing. RNase H1 is particularly important in mitochondria. Its loss or functional insufficiency can affect mitochondrial DNA replication, copy number maintenance, and respiratory chain function.

 

1.2 Dual roles of R-loops

R-loops have both regulatory and damaging properties. Stable, transient, and precisely localized R-loops can participate in transcription termination, promoter opening, chromatin regulation, and immune-related gene rearrangement. Persistent accumulation or mislocalization of R-loops can impede replication fork progression, induce transcription-replication conflicts, promote double-strand breaks, and activate the DNA damage response. In experimental interpretation, R-loops should not be simply equated with “harmful structures”; their formation sites, cell-cycle stage, transcriptional status, and DNA damage readouts should be analyzed together.

 

Table 1 Major Sources of RNA-DNA Hybrids and Interpretation Focus

 

Structural Source

Typical Region

Related Mechanism

Risk Point

Recommended Combined Indicators

Transcription-associated R-loops

Promoters, termination regions, highly transcribed genes, GC-rich regions

Nascent RNA rehybridizes with the template strand

Transcription-replication conflict, single-stranded DNA exposure

DRIP-qPCR, γH2AX, RNA Pol II, replication fork indicators

Residual RNA primers

Replication origins, Okazaki fragment maturation regions

Incomplete RNA primer removal

Abnormal replication maturation

RNase H2, FEN1, LIG1, replication stress indicators

Ribonucleotide incorporation into DNA

Genome-wide replication products

rNMP misincorporation by DNA polymerase

DNA breaks, mutations, replication blockage

RNase H2, RER-related indicators, alkali-sensitive break analysis

Mitochondrial RNA-DNA hybrids

mtDNA replication and transcription regions

Replication initiation, RNA processing

Reduced mtDNA copy number, respiratory chain dysfunction

RNase H1, mtDNA copy number, OXPHOS indicators

Telomere-associated R-loops

Telomeres and TERRA transcription regions

TERRA-DNA hybrid formation

Telomere replication stress and telomere instability

TERRA, telomere FISH, DNA damage foci

 

2 Functional Division between RNase H1 and RNase H2

2.1 RNase H1

RNase H1 mainly cleaves the RNA strand in relatively long RNA-DNA hybrids and is efficient in processing continuous RNA-DNA hybrid structures. However, it usually cannot efficiently recognize single ribonucleotides embedded in DNA. Its functions include nuclear genome R-loop clearance and mitochondrial RNA-DNA hybrid processing, and it is especially critical for mitochondrial DNA replication.

(1) Nuclear R-loop processing

RNase H1 overexpression is commonly used to verify whether S9.6 antibody or DRIP signals originate from RNA-DNA hybrids. If DRIP-qPCR signals decrease after RNase H1 treatment, it indicates that RNase H-sensitive hybrid structures exist in that region. If the signal remains unchanged, nonspecific binding, dsRNA signals, or detection background should be considered.

(2) Mitochondrial DNA maintenance

RNase H1 participates in processing mitochondrial RNA primers or RNA-DNA hybrids. RNase H1 insufficiency can lead to abnormal mitochondrial DNA replication, reduced mtDNA copy number, and impaired oxidative phosphorylation. Therefore, mitochondrial models should not be evaluated only by nuclear R-loop detection.

(3) Experimental application boundaries

RNase H1 overexpression can reduce certain R-loops, but excessive expression may alter normal regulatory R-loops and transcriptional status. Functional validation should combine catalytically inactive mutants, localization mutants, DRIP signals, DNA damage, and cell viability.

 

2.2 RNase H2

RNase H2 is a heterotrimeric complex composed of RNASEH2A, RNASEH2B, and RNASEH2C. It can process RNA-DNA hybrids and recognize single ribonucleotides embedded in DNA duplexes to initiate ribonucleotide excision repair. Compared with RNase H1, RNase H2 is indispensable for removing rNMPs embedded in DNA.

(1) Ribonucleotide excision repair

During replication, DNA polymerases can mistakenly incorporate ribonucleotides. RNase H2 recognizes these sites and cleaves at the RNA-DNA junction, after which DNA polymerases, nucleases, and ligases complete repair. When this process is impaired, rNMPs accumulate in the genome and may induce replication blockage, DNA breaks, and mutations.

(2) R-loop regulation

RNase H2 can also participate in processing some R-loops, but its function should not be simply equated with that of RNase H1. If RNASEH2A/B/C deficiency causes increased R-loop signals, it is necessary to further distinguish whether the increase results from transcription-associated R-loops, rNMP repair defects, or secondary changes caused by replication stress.

(3) Disease relevance

Defects in the RNase H2 complex are closely associated with abnormal nucleic acid metabolism, DNA damage responses, and innate immune activation. If cytosolic DNA, the cGAS-STING pathway, or interferon-stimulated genes are upregulated, genome rNMP accumulation, DNA damage, and R-loop status should be evaluated simultaneously.

 

Table 2 Functional Differences between RNase H1 and RNase H2

 

Item

RNase H1

RNase H2

Composition

Single enzyme protein

RNASEH2A/B/C three-subunit complex

Main substrates

Relatively long RNA-DNA hybrids

RNA-DNA hybrids and single rNMPs embedded in DNA

Key functions

R-loop clearance, mitochondrial RNA-DNA hybrid processing

Ribonucleotide excision repair, processing of replication-associated RNA-DNA structures

Mitochondrial relevance

Strong

Usually not regarded as a core enzyme for mitochondrial DNA replication processing

Experimental use

R-loop signal validation, overexpression-mediated clearance experiments

rNMP repair defects, replication stress, and immune activation research

Interpretation risk

Overexpression may affect normal R-loop regulation

Increased R-loops may be an indirect consequence of rNMP accumulation and replication stress

 

3 Regulatory Network of R-loop Formation and Clearance

3.1 Transcription intensity and RNA processing

Highly transcribed regions are more prone to R-loop formation, but strong transcription does not necessarily lead to R-loop accumulation. RNA capping, splicing, 3'-end processing, and RNA export can reduce the likelihood of nascent RNA rehybridizing with template DNA. When splicing factors, RNA export factors, or transcription termination processes are impaired, nascent RNA remains near chromatin for longer, increasing the probability of R-loop formation. If increased R-loops are observed experimentally, RNA processing or transcription termination abnormalities should also be examined, rather than attributing the phenotype only to RNase H insufficiency.

 

3.2 DNA topology and chromatin state

Transcription progression generates local supercoiling stress, and negative supercoiling can promote DNA strand separation and increase the opportunity for RNA rehybridization. Topoisomerases, chromatin remodeling factors, and histone modification states can influence the threshold for R-loop formation. TOP1 or TOP2 dysfunction, excessive chromatin openness, or exposure of GC-rich regions can all stabilize R-loops.

 

3.3 Helicases and nucleic acid-processing factors

Helicases or nucleic acid-processing factors such as SETX, DDX, DHX, PIF1, and FANCM can participate in R-loop resolution, transcription termination, replication fork protection, and DNA repair. Different factors act at different locations: some are more involved in transcription termination regions, some act at replication fork conflict sites, and others are linked to homologous recombination or the Fanconi anemia pathway. When interpreting R-loop phenotypes, the localization and functional context of the specific factor should be considered.

 

3.4 Replication forks and transcription-replication conflicts

When a replication fork encounters transcription machinery on the same DNA template, R-loops can exacerbate the conflict. Head-on conflicts are usually more likely to cause replication fork stalling and DNA breaks. Co-directional conflicts may also generate replication stress due to RNA-DNA hybrids, RNA Pol II stalling, or abnormal topological stress. R-loop-related genome instability often manifests as reduced replication fork speed, increased fork stalling, elevated γH2AX, and accumulation of 53BP1/RPA foci.

 

Table 3 R-loop Regulatory Factors and Functional Layers

 

Regulatory Layer

Representative Factors

Main Role

Common Outcome after Abnormality

RNA processing

Splicing factors, RNA export factors, 3'-end processing factors

Reduce the opportunity for nascent RNA to rehybridize with DNA

Increased transcription-associated R-loops

DNA topology

TOP1, TOP2

Relieve transcription-induced supercoiling stress

Increased DNA strand separation and stabilized R-loops

Helicases

SETX, DDX/DHX family, PIF1, FANCM

Resolve R-loops or protect replication forks

Abnormal transcription termination and increased replication stress

Repair pathways

BRCA1/2, FANCD2, ATR, ATM

Process R-loop-associated damage and replication stress

DSBs and chromosomal instability

Nucleases

RNase H1, RNase H2

Cleave the RNA strand in RNA-DNA hybrids

Accumulation of R-loop- or rNMP-related damage

Chromatin environment

Histone modifications, chromatin remodeling factors

Regulate DNA accessibility and transcriptional status

Altered R-loop formation sites

 

4 Abnormal RNA-DNA Hybrids and Genome Instability

4.1 Replication stress

R-loops can act as physical barriers ahead of replication forks and can also increase fork stalling by altering DNA topology and chromatin state. Replication stress is usually reflected by reduced replication fork speed, shortened replication tracks in DNA fiber assays, increased RPA single-stranded DNA foci, and ATR pathway activation. If RNase H1 overexpression partially restores replication fork progression, R-loops may be involved in the replication defect.

 

4.2 DNA double-strand breaks

Single-stranded DNA exposed by R-loops is more prone to damage, and replication fork collision with stable R-loops can also produce breaks. Elevated γH2AX, 53BP1, pATM, and pDNA-PKcs can indicate DNA damage, but these markers alone cannot prove that the damage is caused by R-loops. A more reliable design is to analyze RNase H treatment, R-loop detection, and DNA damage rescue in the same model.

 

4.3 Mutations and chromosomal rearrangements

Persistent R-loops can increase single-stranded DNA deamination, replication errors, and abnormal involvement of repair pathways. Particular attention should be paid to the relationship between R-loops and mutation patterns near immunoglobulin gene rearrangement regions, germ cell meiosis regions, repetitive sequences, and highly transcribed genes. If BRCA or FANCD2 pathway defects are also present, R-loop-associated damage is more likely to develop into chromosomal instability.

 

4.4 Innate immune activation

RNase H2 deficiency, impaired rNMP clearance, and R-loop-associated DNA damage can generate abnormal nucleic acid fragments, thereby activating the cGAS-STING pathway or interferon-related pathways. In such models, upregulation of IFNB1, ISG15, CXCL10, and related genes should not be interpreted only as infection-like responses. Nucleic acid metabolic defects, DNA damage, and cytosolic DNA accumulation should also be evaluated.

 

5 R-loop Detection Methods and Experimental Design

5.1 DRIP-qPCR and DRIP-seq

DRIP methods usually use the S9.6 antibody to recognize RNA-DNA hybrids, followed by qPCR or sequencing to localize R-loop regions. Their advantages are relatively mature workflows and suitability for regional validation and genome-wide screening. The main risk is that S9.6 may also recognize double-stranded RNA or nonspecific nucleic acid structures; therefore, RNase H pretreatment is a critical control.

(1) Regional validation

DRIP-qPCR is suitable for validating R-loop changes at specific gene promoters, termination regions, repetitive sequences, or damage-prone hotspots. Positive regions, negative regions, and RNase H treatment controls should be included to avoid drawing genome-wide conclusions from a single regional signal.

(2) Genome-wide mapping

DRIP-seq can analyze the genome-wide distribution of R-loops, but sample processing, fragmentation methods, antibody batches, and bioinformatics parameters can significantly affect results. Key findings should be confirmed by DRIP-qPCR, RNase H sensitivity validation, and functional experiments.

 

5.2 S9.6 immunofluorescence

S9.6 immunofluorescence can be used to observe overall intracellular changes in RNA-DNA hybrids and is suitable for initial screening and comparison among cell populations. This method has limited spatial resolution and is easily affected by nucleic acid extraction, fixation methods, and antibody specificity. If the signal is enhanced, it should be further validated by RNase H treatment, nuclease controls, and region-specific detection.

 

5.3 R-ChIP and enzymatic labeling methods

R-ChIP-like methods use catalytically inactive RNase H variants to bind RNA-DNA hybrids, thereby improving localization specificity. Their advantage is that they can reduce some antibody-related background, but they may also be affected by expression levels, fusion protein localization, and binding preferences. They are suitable for complementing DRIP-seq but should not be used as the only evidence.

 

5.4 Combined analysis with DNA damage and replication stress

R-loop detection should be combined with functional readouts. Common combinations include DRIP-qPCR plus γH2AX, S9.6 immunofluorescence plus RNase H1 overexpression, DNA fiber assays plus RNase H rescue, and R-loop regional sequencing plus transcriptional analysis. If only R-loop signals increase without changes in replication stress or damage indicators, the pathological significance should be interpreted cautiously.

 

Table 4 R-loop Detection Methods and Applicable Scenarios

 

Method

Main Use

Advantage

Key Controls

Main Limitation

DRIP-qPCR

Validation of R-loops at specific sites

Direct quantification, suitable for mechanistic validation

RNase H treatment, negative regions, input DNA

Site selection affects conclusions

DRIP-seq

Genome-wide R-loop profiling

Can identify high-risk regions

RNase H treatment, biological replicates

Strongly affected by antibody background and analysis parameters

S9.6 immunofluorescence

Initial screening of overall intracellular R-loop levels

Can observe differences among cell populations

RNase H treatment, nuclease controls

Limited localization and quantitative precision

R-ChIP

R-loop localization

Higher specificity, suitable for complementary validation

Catalytically inactive control, expression-level control

Depends on fusion protein expression and localization

DNA fiber co-analysis

Evaluate replication fork blockage

Directly assesses replication stress

RNase H1 rescue, replication inhibition control

Technically demanding

γH2AX/53BP1 co-analysis

Evaluate damage consequences

Links R-loops with DNA damage

RNase H rescue, cell-cycle control

Cannot independently prove damage origin

 

6 Result Interpretation and Common Pitfalls

6.1 Increased R-loops do not necessarily indicate RNase H deficiency

R-loop increases can result from enhanced transcription, RNA-processing defects, elevated topological stress, helicase deficiency, replication fork stalling, or altered chromatin state. Directly attributing increased R-loops to RNase H insufficiency can overlook upstream transcriptional and chromatin factors. RNase H1/H2 expression or activity, RNA-processing factors, transcription levels, and replication stress should be assessed together.

 

6.2 RNase H1 rescue does not mean all damage originates from R-loops

RNase H1 overexpression can reduce some RNA-DNA hybrids and alleviate replication stress, but it may also alter normal regulatory R-loops. If DNA damage decreases, it should be further confirmed whether the rescue depends on RNase H1 catalytic activity, while excluding indirect effects caused by transcriptional suppression, cell-cycle changes, or reduced cytotoxicity.

 

6.3 RNase H2 deficiency requires distinguishing rNMP accumulation from R-loop accumulation

One core problem in RNase H2 deficiency is abnormal ribonucleotide excision repair in DNA. R-loop signals, DNA breaks, and immune activation may appear together, but they are not necessarily all caused directly by classical transcription-associated R-loops. rNMP-related detection, alkali-sensitive break analysis, replication stress indicators, and RNase H2 complex subunit expression should be combined for interpretation.

 

6.4 S9.6 signals must be validated for RNase H sensitivity

Enhanced S9.6 signals do not automatically equal increased R-loops. If RNase H treatment markedly reduces the signal, an RNA-DNA hybrid origin is supported. If the signal does not decrease, dsRNA, nonspecific background, or sample processing problems should be considered. For high-impact conclusions, at least one non-S9.6-dependent method is recommended for cross-validation.

 

Table 5 Common Abnormal Patterns and Interpretation Paths in R-loop Research

 

Result Pattern

Possible Explanation

Suggested Additional Experiments

S9.6 signal increases and decreases after RNase H treatment

Increased RNA-DNA hybrids

DRIP-qPCR localization, RNase H1 rescue, transcription-level detection

R-loops increase and γH2AX increases

R-loop-associated damage or replication stress

DNA fiber assay, 53BP1/RPA foci, cell-cycle analysis

RNASEH2 deficiency and ISG upregulation

rNMP accumulation, DNA damage, or cytosolic nucleic acid activation

cGAS-STING markers, rNMP repair analysis, DNA damage detection

RNase H1 overexpression rescues replication fork speed

R-loops participate in replication stress

Catalytically inactive RNase H1 control, DRIP-qPCR validation

R-loops increase but DNA damage does not change

Regulatory R-loops or damage threshold not reached

Analyze site distribution, transcriptional regulation, and long-term stability

Antibody detection and sequencing results are inconsistent

Antibody background, sample processing differences, or region selection differences

Add RNase H controls and independent method validation

 

7 Experimental Design Recommendations

7.1 Mechanistic studies

If the goal is to prove that a protein regulates R-loops, four levels should be completed: R-loop changes, RNase H sensitivity, functional consequences, and rescue validation. Showing only S9.6 signal changes is insufficient to support a mechanistic conclusion. It must be clarified whether R-loops lead to replication stress, DNA damage, or transcriptional abnormalities.

 

7.2 Distinguishing RNase H1 and RNase H2 functions

RNase H1 experiments are more suitable for analyzing long RNA-DNA hybrids and mitochondrial phenotypes. RNase H2 experiments are more suitable for analyzing rNMP incorporation, replication maturation, and innate immune activation. If increased R-loops and DNA damage are observed simultaneously, their contributions should be distinguished according to substrate type, subcellular localization, and the genetic intervention target.

 

7.3 Sample and cell-cycle control

R-loops and replication stress are strongly affected by the cell cycle. Changes in S-phase proportion, transcription intensity, replication inhibitor treatment, and cytotoxicity can all alter R-loop readouts. Comparisons among treatment groups should ideally be performed under relatively stable conditions for flow cytometric cell-cycle distribution, EdU incorporation, cell viability, and transcription levels.

 

7.4 Multi-indicator validation

Reliable R-loop research should not depend on a single assay. A basic combination may include DRIP-qPCR, RNase H treatment, S9.6 immunofluorescence, and DNA damage indicators. For deeper mechanistic studies, R-ChIP, DRIP-seq, DNA fiber assays, RNA-seq, ChIP-seq, or cell-state controls can be added.

 

8 Product Selection for RNA-DNA Hybrid, RNase H, and R-loop Regulation Research

 

Table 6 Product Selection for RNase H, RNASEH Gene Intervention, and Direct R-loop Processing

 

Application Module

Cat. No.

Product Name

Grade & Purity

Application Positioning

RNA-DNA hybrid processing

R665576

RNase H

600U

Used to degrade the RNA strand in RNA-DNA hybrids; suitable for DRIP, S9.6 detection, and R-loop signal validation

RNA-DNA hybrid processing

R754998

Ribonuclease H (RNase H)

from Escherichia coli H 560 pol A1

Used for in vitro RNA-DNA hybrid processing and RNase H sensitivity controls

RNA-DNA hybrid processing

T751065

Thermostable RNase H

BioReagent, DNase, RNase free, Suitable for molecular biology, EnzymoPure™, sterile, for DNA and RNA applications, ≥95%, 5 U/μl

Used for RNA-DNA hybrid processing under higher-temperature conditions and reaction system optimization

RNase H2 enzymatic processing

rp224200

RNase HII

ActiBioPure™, EnzymoPure™, Bioactive, Animal Free, Carrier Free, ≥95%(SDS-PAGE), 5.0 U/μL

Used for RNase H2-related RNA-DNA hybrid processing and enzymatic validation

RNase H2 enzymatic processing

T1522666

Thermostable RNase HII

Recombinant, Suitable for molecular biology, EnzymoPure™, ≥95%(SDS-PAGE), expressed in E.coli; 2 U/μl

Used for thermostable RNase HII reaction systems and RNA-DNA hybrid processing

RNase H protein validation

rp329595

Recombinant Human RNASEH Protein

≥90%(SDS-PAGE)

Used as a positive control for RNase H-related assays, antibody validation, or enzymatic system development

RNase H2A protein validation

rp330242

Recombinant Mouse RNASEH2A Protein

≥90%(SDS-PAGE)

Used for RNase H2A protein detection, antibody validation, and methodological controls

RNASEH1 expression intervention

R1472891

RNASEH1 Human Pre-designed siRNA Set A

 

Used for RNASEH1 knockdown to study nuclear R-loop accumulation, mitochondrial RNA-DNA hybrid processing, and DNA damage changes

RNASEH2A expression intervention

R1489395

RNASEH2A Human Pre-designed siRNA Set A

 

Used for knockdown of the RNase H2 catalytic subunit to analyze rNMP excision repair, R-loop abnormalities, and replication stress

RNASEH2B expression intervention

R1479915

RNASEH2B Human Pre-designed siRNA Set A

 

Used for knockdown of an RNase H2 complex subunit to study complex stability, DNA damage, and immune activation

RNASEH2C expression intervention

R1461774

RNASEH2C Human Pre-designed siRNA Set A

 

Used for RNase H2 complex functional validation and RNASEH2C-dependent phenotype analysis

RNase H2A protein validation

Ab125320

RNASEH2A Mouse mAb

See COA

Used for Western blot, IF, or RNASEH2A expression validation in cell models

RNase H inhibition research

N170153

NSC727447

Moligand™,≥98%

Used for viral RNase H-related enzymatic research; not suitable as a direct substitute for human RNase H1/H2 functional inhibitors

RNase-free system maintenance

R489315

RNase Inhibitor

pharmaceutical grade, PharmPure™, ≥95%, 40U/μl

Used to protect RNA samples and reduce interference from nonspecific RNA degradation in R-loop-related assays

RNase-free system maintenance

R489312

RNase Inhibitor

pharmaceutical grade, PharmPure™, ≥95%, 1000U/μl

Used for DRIP, RNA-DNA hybrid detection, and RNA-related sample pretreatment

RNase-free system maintenance

R350859

RNase Inhibitor (Murine, 40U/μL)

Recombinant, BioReagent, DNase, RNase free, Suitable for molecular biology, for DNA and RNA applications, ≥95%(SDS-PAGE), 40U/μl

Used for RNA protection and RNase contamination control in nucleic acid workflows

RNase-free system maintenance

R292575

RNase Inhibitor(RNasin)

40U/μl

Used for RNA protection during R-loop-related sample preparation

 

Table 7 Product Selection for R-loop Detection, Nucleic Acid Processing, and Auxiliary Experimental Systems

 

Application Module

Cat. No.

Product Name

Grade & Purity

Application Positioning

RNase-free aqueous system

R665526

RNase-Free Water

100 ml

Used for DRIP, qPCR, RNA-DNA hybrid processing, and RNase sensitivity experiments

RNase-free buffer system

P743267

PBS, DNase&RNase Free

sterile-filtered, BioReagent, DNase, RNase free, ready-to-use, for cell culture, 1×

Used for cell washing, immunofluorescence, and nucleic acid sample processing

RNase-free electrophoresis system

B1518790

BPTE Running B uffer (10×, RNase Free)

BioReagent,Suitable for molecular biology,RNase free,for NA electrophoresis,10×

Used for RNA or nucleic acid sample electrophoresis while reducing RNase contamination

RNase-free hybridization system

S1518774

SSC Buffer (20×, pH 7.0, RNase Free)

BioReagent,Suitable for molecular biology,RNase free,sterile,for DNA and RNA applications,20×

Used for nucleic acid hybridization, washing, and R-loop-related nucleic acid detection systems

RNase-free hybridization system

S743320

SSPE

20X, pH7.4

Used for nucleic acid hybridization and high-cleanliness nucleic acid workflows

RNase-free electrophoresis system

T1518779

TAE Buffer (50×, RNase Free)

BioReagent,Suitable for molecular biology,for NA electrophoresis,RNase free,50×

Used for nucleic acid fragment analysis and DRIP sample quality assessment

RNase-free electrophoresis system

T1518783

TBE Buffer (5×, RNase Free)

BioReagent,Suitable for molecular biology,RNase free,for NA electrophoresis,5×

Used for DNA/RNA-related electrophoretic detection

Nucleic acid extraction system

C1518317

CTAB Extraction Buffer (RNase free)

BioReagent,Suitable for molecular biology

Used for nucleic acid sample extraction, suitable for sample pretreatment requiring RNase contamination control

Sample precipitation/enrichment

P748949

PEG8000 (50%, RNase free)

BioReagent, DNase, RNase free, Protease Free, ≥99%, 50%

Used for nucleic acid precipitation, enrichment, or molecular biology reaction optimization

RNase contamination removal

R666126

RNase and DNA Remover

250ml

Used to control RNase/DNA contamination on work surfaces, consumables, or instruments

dsRNA background control

R749972

RNase III (dsRNA-specific)

ActiBioPure™, EnzymoPure™, Bioactive, Animal Free, Carrier Free, sterile, DNase free, 2.0 U/µL

Used to distinguish dsRNA background from RNA-DNA hybrid signals in S9.6-based detection

ssRNA background control

R128619

Ribonuclease A from bovine pancreas(DNase & Protease Free)

Bioactive,ActiBioPure™,Native,High Performance,EnzymoPure™,DNase free,Protease Free,≥2,000 units/mg protein

Used for removal of non-hybrid RNA or nucleic acid specificity controls; should be used carefully to avoid disrupting the target detection system

ssRNA background control

R665518

RNase A

EnzymoPure™, DNase free, Protease Free, sterile, ≥90%(SDS-PAGE), 10 mg/mL

Used for RNA background control and optimization of nucleic acid processing conditions

DNA background control

R1373644

Recombinant DNase I, RNase-free

EnzymoPure™, ≥95%(SDS-PAGE), 1 U/μl

Used for removal of DNA contamination in RNA samples or DNA-dependent signal controls

DNA background control

D755003

Deoxyribonuclease I bovine

Recombinant, expressed in Pichia pastoris, buffered aqueous glycerol solution,≥5,000 units/mg protein

Used for DNA digestion and nucleic acid specificity control experiments

Cell plating/immunodetection

P1508964

Poly-L-lysine Solution (1×, 0.1 mg/mL, RNase free, Sterile)

BioReagent,for microscopy,for cell culture,RNase free,sterile,Suitable for Immunohistochemistry(IHC),1×, 0.1 mg/mL

Used for cell coverslip experiments such as S9.6 immunofluorescence and DNA damage foci detection

 

Table 8 Product Selection for R-loop-Related Replication Stress, DNA Damage, and cGAS-STING Pathway Research

 

Application Module

Cat. No.

Product Name

Grade & Purity

Application Positioning

DNA damage marker research

H1490350

H2AX Human Pre-designed siRNA Set A

 

Used for H2AX functional intervention to support analysis of R-loop-related DNA damage responses

DNA damage marker research

rp156659

Recombinant Human Histone H2AX Protein

Carrier Free,Azide Free,His Tag,≥90%(SDS-PAGE)

Used for H2AX-related antibody validation, positive controls, and DNA damage detection system development

DNA double-strand break response

Ab086721

53BP1 Antibody

ExactAb™, Validated, 0.5 mg/mL

Used for detecting R-loop-related DNA damage foci and double-strand break responses

DNA double-strand break response

T1489652

TP53BP1 Human Pre-designed siRNA Set A

 

Used for TP53BP1 knockdown to validate 53BP1-dependent DNA damage repair phenotypes

DNA double-strand break response

Ab326127

TP53BP1 Mouse mAb

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3D

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KD Validation

Used for TP53BP1 protein expression and damage foci detection

DNA double-strand break response

P751196

pLenti-TP53BP1-sgRNA

 

Used for TP53BP1 antibody validation and negative controls

DNA double-strand break response

P751197

pLenti-TP53BP1-sgRNA

 

Used as a negative control for TP53BP1 transcription detection

DNA damage quantification

EJ1514690

Human Tumor Protein p53 Binding Protein 1 (TP53BP1) ELISA Kit

BioReagent

Used for detecting TP53BP1 levels in human samples and supporting evaluation of DNA damage responses

Replication stress/ssDNA exposure

Ab125728

RPA32/RPA2 Mouse mAb

ExactAb™, Validated, Carrier Free, High performance, 0.5 mg/mL

Used for detecting replication fork stalling, ssDNA exposure, and replication stress

Replication stress/ssDNA exposure

Ab125724

Recombinant RPA32/RPA2 Antibody

Recombinant, ExactAb™, Validated, See COA

Used for replication stress and R-loop-related RPA foci detection

cGAS pathway intervention

C1475161

CGAS Human Pre-designed siRNA Set A

 

Used for cGAS knockdown in human cells to validate cytosolic DNA sensing triggered by RNase H2 deficiency or DNA damage

cGAS pathway intervention

C1465684

Cgas Mouse Pre-designed siRNA Set A

 

Used for cGAS knockdown in mouse models to analyze innate immune activation related to abnormal nucleic acid metabolism

cGAS pathway intervention

C1476069

Cgas Rat Pre-designed siRNA Set A

 

Used for cGAS knockdown and pathway validation in rat-derived cells

cGAS functional regulation

C1497613

cGAS-IN-1

Moligand™, 10 mM in DMSO

Used to inhibit cGAS activity and validate the role of the cytosolic DNA-cGAS axis in R-loop/RNase H2-deficient phenotypes

cGAS functional regulation

C1434281

cGAS-IN-2

≥99%

Used for cGAS pathway inhibition and dose-response studies

cGAS functional regulation

C1434284

cGAS-IN-4

 

Used to validate cGAS-mediated innate immune activation

cGAS quantitative detection

EJ1513959

Human Mab21 Domain Containing Protein 1 (MB21D1/CGAS) ELISA Kit

BioReagent

Used for detecting cGAS/MB21D1 levels in human samples

cGAS quantitative detection

EJ1512722

Mouse Mab21 Domain Containing Protein 1 (MB21D1/CGAS) ELISA Kit

BioReagent

Used for detecting cGAS/MB21D1 in mouse samples

STING pathway validation

Ab129563

Recombinant STING Antibody

ExactAb™, Validated, Recombinant, 0.4 mg/mL

Used for STING protein expression and cGAS-STING pathway activation detection

STING expression intervention

S1487331

STING1 Human Pre-designed siRNA Set A

 

Used for STING1 knockdown in human cells to validate immune phenotypes related to R-loop/RNase H2 deficiency

STING expression intervention

S1490953

Sting1 Mouse Pre-designed siRNA Set A

 

Used for Sting1 knockdown and innate immune pathway validation in mouse models

STING expression intervention

S1470688

Sting1 Rat Pre-designed siRNA Set A

 

Used for STING pathway intervention in rat-derived models

STING inhibition

C408221

C-176 (STING inhibitor)

10mM in DMSO

Used to inhibit the STING pathway and validate immune activation dependence after DNA damage or cytosolic DNA accumulation

STING inhibition

H287635

H 151

Moligand™, ≥98%(HPLC)

Used for STING pathway inhibition and innate immune response rescue experiments

STING activation

C413869

cGAMP sodium salt

≥99%

Used as a positive activation control for the STING pathway

STING activation

D646335

diABZI STING agonist-1

≥99%

Used as a positive control for STING pathway activation and pathway sensitivity validation

STING activation

M288436

MSA 2

Moligand™,≥98%(HPLC)

Used for non-nucleotide STING activation research

STING quantitative detection

EJ1514083

Human Stimulator of interferon genes (STING) ELISA Kit

BioReagent

Used for detecting STING levels in human samples

Interferon-stimulated gene detection

I1472959

ISG15 Human Pre-designed siRNA Set A

 

Used for ISG15 knockdown to analyze ISG responses after RNase H2 deficiency or cGAS-STING activation

Interferon-stimulated gene detection

Ab111307

Recombinant ISG15 Antibody

Recombinant, ExactAb™, Validated, High Performance, See COA

Used for ISG15 protein expression detection and interferon response validation

Interferon-stimulated gene detection

Ab326649

Recombinant ISG15 Antibody

3D

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KD Validation

Used for ISG15 expression validation and immunodetection

Interferon-stimulated gene detection

EJ1514492

Human Ubiquitin-like Modifier (ISG15) ELISA Kit

BioReagent

Used for quantifying ISG15 in human samples and evaluating innate immune activation

Interferon-stimulated gene detection

EJ1512845

Mouse Ubiquitin-like Protein ISG15 (ISG15) ELISA Kit

BioReagent

Used for ISG15 detection and interferon response analysis in mouse models

 

9 Common Questions

9.1 Are RNA-DNA hybrids and R-loops the same concept?

Not exactly. RNA-DNA hybrids broadly refer to structures formed by pairing between RNA and DNA strands. R-loops usually refer to three-stranded nucleic acid structures in which an RNA-DNA hybrid is accompanied by displacement of one DNA strand. All R-loops contain RNA-DNA hybrids, but not all RNA-DNA hybrids constitute typical R-loops.

 

9.2 Which is more suitable for clearing R-loops, RNase H1 or RNase H2?

RNase H1 is more commonly used to clear relatively long RNA-DNA hybrids and validate R-loop signals. RNase H2 can also process some hybrids, but its key function also includes recognizing and removing single ribonucleotides in DNA. The two enzymes should not be considered simple substitutes for each other.

 

9.3 Why does RNase H2 deficiency affect genome stability?

RNase H2 deficiency prevents proper removal of ribonucleotides embedded in DNA and may be accompanied by replication stress, DNA breaks, R-loop abnormalities, and innate immune activation. Its phenotype is usually more complex than simple R-loop accumulation.

 

9.4 Is S9.6 antibody detection of R-loops reliable?

S9.6 is a commonly used tool, but RNase H treatment controls are required. If the signal is RNase H-sensitive, it is more likely to originate from RNA-DNA hybrids. If it is not sensitive, double-stranded RNA or nonspecific background should be considered.

 

9.5 Do R-loops always cause DNA damage?

No. Some R-loops have normal regulatory functions. They are more likely to cause replication stress and DNA damage only when they form excessively, are not efficiently cleared, occur at abnormal locations, or conflict with replication forks. Interpretation should be combined with DNA damage and replication indicators.

 

9.6 How can one prove that a DNA damage phenotype is caused by R-loops?

It is necessary to demonstrate consistency among increased R-loops, elevated damage markers, and RNase H-dependent rescue. Common designs include DRIP-qPCR localization, RNase H1 overexpression rescue, catalytically inactive controls, DNA fiber assays for replication stress, and γH2AX/53BP1 damage validation.

 

9.7 What should be considered in mitochondrial R-loop research?

Mitochondrial RNA-DNA hybrids are closely related to mtDNA replication and transcription. RNase H1, mtDNA copy number, mitochondrial transcription, respiratory chain function, and mitochondrial DNA damage should be detected. Nuclear R-loop detection methods should not be used directly as substitutes.

 

RNA-DNA hybrids are important structures at the intersection of gene expression, replication, and repair. RNase H1 preferentially processes relatively long hybrids and mitochondrial-associated structures, whereas RNase H2 connects rNMP excision repair, replication maturation, and immune homeostasis. Only by jointly analyzing R-loop localization, RNase H function, replication stress, and DNA damage readouts can the role of RNA-DNA hybrids in genome stability be accurately determined.

Categories: Technical articles

Da — when not otherwise indicated, molecular weight units are daltons.   Mw — weight-average molecular weight.   Mn — number-average molecular weight.

Products are supplied for research and development use only. Not for use in humans, animals, diagnosis, or therapy.

Cite this article

Aladdin Scientific. "How RNA-DNA Hybrids Affect Genome Stability: RNase H1, RNase H2, and R-loop Regulatory Mechanisms" Aladdin Knowledge Base, updated Jul 29, 2026. https://www.aladdinsci.com/us_en/faqs/rnase-rnase-and-r-loop-regulatory-mechanisms-en.html
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