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Technical Specification: Real-Time PCR Reagents

Commercial Procurement

This documentation provides technical specifications. For pricing, ordering, and custom formulations: Solarbio Official Store | solarbio.store

1. Product Range

Product SKU Detection Chemistry Instrument Compatibility Best For
2×SYBR Green qPCR Master Mix SR1110 SYBR Green I (ultra-pure) All standard qPCR platforms Gene expression, melt curve analysis
2×TaqMan qPCR Master Mix SR1120 TaqMan probe (FAM/VIC/ROX/Cy5) All standard qPCR platforms Pathogen detection, genotyping, miRNA
2×SYBR Green RT-qPCR Kit SR1130 SYBR Green + M-MLV RT (RNase H⁻) One-step RT-qPCR RNA quantification without separate cDNA step
2×TaqMan RT-qPCR Kit SR1140 TaqMan probe + M-MLV RT (RNase H⁻) One-step RT-qPCR RNA virus detection, gene expression

1.1 Fluorescence Chemistry Principles

SYBR Green I: This asymmetric cyanine dye exhibits negligible fluorescence when free in solution. Upon binding to the minor groove of double-stranded DNA, fluorescence increases >1,000-fold (excitation 488 nm, emission 525 nm). During PCR, fluorescence accumulates proportionally to dsDNA product. After denaturation, the dye dissociates and fluorescence drops to baseline, enabling cycle-by-cycle monitoring. The assay equation for fluorescence at the end of the extension step is:

[ F_n = F_{\text{background}} + k \times [\text{dsDNA}]_n ]

Where k is the fluorescence proportionality constant and [dsDNA]ₙ is the product concentration after cycle n.

TaqMan (5′ Nuclease) Chemistry: A dual-labeled probe with a reporter dye (FAM/VIC) at the 5′ end and a quencher (BHQ-1/TAMRA) at the 3′ end is included in the reaction. While the probe is intact, the quencher absorbs reporter fluorescence via FRET (Förster resonance energy transfer). During the extension phase, Taq polymerase's 5′→3′ exonuclease activity cleaves the probe, separating reporter from quencher. This generates a fluorescence signal proportional to the accumulated amplicon:

[ \text{Reporter—Quencher-Probe} \xrightarrow{\text{Taq 5′→3′ exo}} \text{Reporter}^* + \text{Quencher-Nucleotide} ]

The fluorescence increase ΔRₙ is measured at each cycle and plotted against cycle number to generate the amplification curve.

2. Formulation & Specifications

2.1 SYBR Green qPCR Master Mix (2×)

Component Specification Purpose
DNA polymerase Hot-start modified Taq (antibody-mediated) Prevents extension below 70°C
SYBR Green I dye Ultra-pure, optimized concentration dsDNA binding → fluorescence at 488/525 nm
Passive reference dye ROX (included in mix) Normalizes well-to-well variation
dNTPs 0.4 mM each (dATP, dCTP, dGTP, dTTP) Polymerization substrate
MgCl₂ 5 mM (final 1×) Polymerase cofactor; higher concentration for probe-based assays
Buffer Proprietary (HEPES-based, pH 8.0) Optimized for fast cycling
Stabilizers Proprietary (trehalose-based) Protects enzyme during storage and thermal cycling

2.2 Performance Characteristics

Parameter SYBR Green Mix (SR1110) TaqMan Mix (SR1120)
Sensitivity ≤10 copies per reaction ≤10 copies per reaction
Dynamic range 10⁰–10⁷ copies (7 logs) 10⁰–10⁷ copies (7 logs)
Amplification efficiency 90–110% (slope −3.6 to −3.1) 90–110% (slope −3.6 to −3.1)
R² value ≥0.99 ≥0.99
Reproducibility (Ct SD) ≤0.25 at ≥100 copies / ≤0.5 at 10 copies ≤0.3 at ≥100 copies / ≤0.7 at 10 copies
Melt curve specificity Single peak, no primer-dimer N/A (probe-based)
Hot-start activation 2 min at 95°C 2 min at 95°C
Max cycle number 45 cycles 45 cycles
Multiplex capacity Single target (+ melt) 2–4 targets (probe-dependent)

2.3 One-Step RT-qPCR Kit Specifications (SR1130/SR1140)

Parameter Specification
RT enzyme M-MLV Reverse Transcriptase (RNase H⁻ mutant)
RT reaction 15 min at 50°C (standard), 30 min at 42°C (GC-rich RNA, secondary structure)
RT inactivation 95°C for 2 min (same step as polymerase activation)
RNA input 1 pg – 1 μg total RNA per 20 μL reaction
Multiplex capability Up to 4 targets (TaqMan, SR1140)
Reaction buffer 2× concentrate (combined RT + PCR buffer)
Stability 24 months at -20°C
Genomic DNA tolerance Recommended DNase I treatment for <1 μg RNA input

2.4 Baseline and Threshold Settings

Parameter Recommended Value
Baseline Cycles 3–15 (automatic recommended for most instruments)
Threshold 10× standard deviation of baseline fluorescence in cycles 3–15
Ct (threshold cycle) The cycle at which fluorescence rises above threshold (inverse log-linear relationship with initial template quantity)

The quantification cycle (Cq/Ct) relates to initial copy number by:

[ C_t = -\frac{1}{\log_{10}(1+E)} \times \log_{10}(N_0) + \frac{\log_{10}(T)}{\log_{10}(1+E)} ]

Where N₀ is initial copy number, E is efficiency, and T is the threshold fluorescence.

3. Primer & Probe Design Guide

3.1 SYBR Green Primers

Parameter Optimal Acceptable
Amplicon length 70–200 bp 50–300 bp
Primer length 20–24 nt 18–26 nt
GC content 45–55% 40–60%
Tm (nearest-neighbor) 60–62°C 58–65°C
Tm difference (forward−reverse) ≤1°C ≤3°C
G/C at 3′ end 1–2 G/C in last 5 bases Avoid 4+ G/C
Avoid ≥4 G consecutive in primer
Avoid Secondary structure (ΔG < −6 kcal/mol)
Recommended software Primer3, Primer-BLAST, Beacon Designer

3.2 TaqMan Probe Design

Parameter Optimal Acceptable
Probe length 18–25 nt 15–30 nt
Tm 68–72°C (must be 8–10°C > primer Tm) 65–75°C
GC content 40–50% 35–55%
Reporter dye (5′) FAM (standard) VIC, HEX, JOE, TET, Cy5, ROX
Quencher (3′) BHQ-1 (FAM/VIC) or TAMRA, BHQ-2 (Cy5)
Avoid ≥4 consecutive G bases (affects quantum yield)
Avoid G at 5′ end (quenches reporter)
Strand placement Same strand as primer, offset 1–150 bases from primer
Secondary structure Check with mFold (ΔG > −3 kcal/mol)

3.3 Reference Gene Selection

Tissue/Experiment Recommended Reference Genes Notes
Human cell lines GAPDH, ACTB, B2M, HPRT1 B2M preferred for serum stimulation; RPLP0 for serum-free
Human PBMC ACTB, B2M, RPL13A GAPDH varies with activation state
Mouse tissues Gapdh, Actb, Hprt, Ppia Gapdh variable in liver; use Ppia for liver studies
Mouse brain Gapdh, Actb, Ywhaz Ywhaz most stable across brain regions
Rat tissues Gapdh, Actb, Rplp1 Use geNorm or NormFinder to determine optimal pair
Zebrafish Rpl13a, Elfa, B2m Tissue-specific variation requires pre-validation
Plant (Arabidopsis) ACT2, UBC, GAPDH ACT2 most stable across development
Bacteria (qPCR) 16S rRNA Highly expressed; check housekeeping target variation
Virus (qPCR, not RT-qPCR) External standard curve No endogenous reference available

3.4 Primer Validation Checklist

Check Method Pass Criteria
Standard curve efficiency 5-log dilution series Slope −3.1 to −3.6 (90–110%)
Linear regression ≥0.99
NTC (no-template control) Run NTC in triplicate Ct > 38 or undetermined (SYBR); undetermined (TaqMan)
Melt curve (SYBR) 65–95°C ramp Single peak at predicted Tm
Primer-dimer differentiation Melt curve analysis No peak below 75°C (50 bp)
Genomic DNA contamination RT minus control (no RT) ΔCt > 10 between RT+ and RT−
Repeatability 3 technical replicates Ct SD ≤ 0.25 at mid-range

4. ROX Reference Dye Guide

4.1 ROX Normalization Principle

ROX is a passive reference dye that does not participate in PCR. It provides a constant fluorescence baseline that corrects for:

  • Well-to-well volume variation
  • Evaporation from plate edges
  • Optical path differences between wells
  • Spatial thermal gradient within the block

The normalized reporter signal Rₙ is calculated as:

[ R_n = \frac{\text{Fluorescence}{\text{reporter}}}{\text{Fluorescence} ]}}

4.2 Instrument ROX Requirements

Instrument Manufacturer Model ROX Requirement
Applied Biosystems 7500, 7500 Fast High ROX
ABI QuantStudio 3, 5, 6, 7, 12K Flex High ROX
ABI StepOne, StepOnePlus High ROX
ABI 7300 ROX (use high ROX)
ABI 7900HT ROX (use high ROX)
Bio-Rad CFX96, CFX384, CFX Opus No ROX (PCR only)
Bio-Rad iCycler, MyiQ No ROX
Roche LightCycler 480, LC96 No ROX
Qiagen Rotor-Gene Q No ROX
Eppendorf Mastercycler ep realplex No ROX
Analytik Jena qTOWER³ Low ROX (optional)

4.3 Adjusting ROX Concentration

If using an instrument that requires different ROX levels:

Low ROX mode:   Dilute master mix 1:1 with extra buffer (may affect sensitivity)
High ROX mode:  Use as-is (ROX pre-included at high concentration)
No ROX:         Use as-is; ROX signal can be ignored

5.1 Two-Step RT-qPCR (Separate cDNA Synthesis)

cDNA Synthesis: Use Solarbio First-Strand cDNA Synthesis Kit (PC1170)

Component Volume (20 μL)
Total RNA (1 μg) Variable
Random hexamer + Oligo-dT₁₈ (50 μM) 1 μL
2× RT Buffer 10 μL
M-MLV RT (RNase H⁻) 1 μL
RNase-free water To 20 μL
Reaction: 25°C 10 min → 42°C 50 min → 70°C 10 min

qPCR Setup (20 μL, SYBR Green)

Component Volume Final
2× SYBR Green qPCR Master Mix 10 μL
Forward primer (10 μM) 0.4–0.6 μL 0.2–0.3 μM
Reverse primer (10 μM) 0.4–0.6 μL 0.2–0.3 μM
cDNA (diluted 1:5–1:20) 2 μL
Nuclease-free water To 20 μL

5.2 Thermal Cycling Profile

Step Temperature Time Cycles
Polymerase activation 95°C 2–3 min 1
Denaturation 95°C 10–15 s 40–45
Annealing/Extension (+ plate read) 60°C 30–45 s 40–45
Melt curve (SYBR only) 65–95°C, 0.5°C/s, 5 s/step 1

5.3 Fast Cycling Protocol (Fast PCR instruments)

Step Temperature Time Cycles
Polymerase activation 95°C 30 s 1
Denaturation 95°C 5 s 40
Annealing/Extension (+ read) 60°C 20 s 40
Total run time Approx. 35 min

6. Data Analysis

Standard Curve Method

Requirement Value
5-log dilution series Yes (e.g., 10⁷, 10⁶, 10⁵, 10⁴, 10³, 10², 10¹ copies)
Slope −3.32 ± 0.2 (perfect = −3.32 = 100% efficiency)
Efficiency [(10^(-1/slope) − 1) × 100] 90–110%
≥0.99
Accept Ct CV ≤1% within replicates

ΔΔCt Relative Quantification

Step Calculation
Normalization ΔCt = Ct(target) − Ct(reference)
Calibrator ΔΔCt = ΔCt(sample) − ΔCt(control group)
Fold change 2^(-ΔΔCt)
Assumes 100% amplification efficiency (both target and reference)
Validation needed Efficiency difference between target and reference ≤ 0.1

Absolute Quantification Using Standard Curve

  1. Prepare plasmid or gBlocks standard containing the target amplicon
  2. Calculate copy number: Copy/μL = (concentration in g/μL × 6.022×10²³) / (plasmid length in bp × 660 g/mol/bp)
  3. Prepare 10-fold serial dilutions (10⁷ to 10¹ copies/μL)
  4. Run in triplicate alongside unknown samples
  5. Plot Ct vs log₁₀(copy number); interpolate unknowns from regression

RNA Quality Assessment for RT-qPCR

RIN Value RNA Integrity Suitability for RT-qPCR
≥ 8.0 Excellent All applications, including transcriptomics
7.0–7.9 Good Standard gene expression (2-step RT-qPCR)
5.0–6.9 Fair Single-gene qPCR (3′ biased, use 3′ assays)
< 5.0 Poor Not recommended; may produce unreliable results

9. Validated qPCR Instruments

Solarbio SYBR Green (SR1110) and TaqMan (SR1120) master mixes have been validated on the following real-time PCR instrument platforms. Validation parameters include linear dynamic range, Ct reproducibility, and signal-to-noise ratio.

Instrument Model Manufacturer Block Format Excitation Sources Detection Channels Validated Dyes Efficiency Range (SR1110) Ct SD (n=12) Passive Reference
QuantStudio 5 Applied Biosystems 384-well LED (6 channels) 6 CCD FAM, SYBR, VIC, ROX, Cy5 94–103% <0.15 High ROX
QuantStudio 6 Pro Applied Biosystems 384-well LED (6 channels) 6 CCD FAM, SYBR, VIC, ROX, Cy5, JOE 95–104% <0.12 High ROX
QuantStudio 7 Pro Applied Biosystems 384-well LED (6 channels) 6 CCD FAM, SYBR, VIC, ROX, Cy5, JOE 95–105% <0.15 High ROX
QuantStudio 12K Flex Applied Biosystems OpenArray/384 LED (6 channels) 6 PMT FAM, SYBR, VIC, ROX, Cy5, TAMRA 94–104% <0.18 High ROX
ABI 7500 Applied Biosystems 96-well Halogen (5 channels) 5 CCD FAM, SYBR, VIC, ROX, Cy5 90–105% <0.25 High ROX
ABI 7500 Fast Applied Biosystems 96-well Fast Halogen (5 channels) 5 CCD FAM, SYBR, VIC, ROX, Cy5 91–104% <0.25 High ROX
CFX96 Touch Bio-Rad 96-well LED (5 channels) 5 PMT FAM, SYBR, VIC, ROX, Cy5, HEX 93–106% <0.20 None
CFX384 Touch Bio-Rad 384-well LED (5 channels) 5 PMT FAM, SYBR, VIC, ROX, Cy5, HEX 93–106% <0.20 None
CFX Opus 96 Bio-Rad 96-well LED (5 channels) 5 PMT FAM, SYBR, VIC, ROX, Cy5, HEX 94–105% <0.18 None
LightCycler 480 II Roche 96-well Xenon lamp 6 filter FAM, SYBR, VIC, Cy5, LC640 92–105% <0.20 None
LightCycler 96 Roche 96-well LED 3 filter FAM, SYBR, VIC, Cy5 92–104% <0.22 None
StepOnePlus Applied Biosystems 48-well LED (3 channels) 3 CCD FAM, SYBR, VIC, ROX 90–104% <0.30 High ROX
Rotor-Gene Q (5-plex) Qiagen 72-tube rotor LED (5 channels) 5 PMT FAM, SYBR, VIC, ROX, Cy5 91–104% <0.20 None
QuantStudio 3 Applied Biosystems 96-well LED (4 channels) 4 CCD FAM, SYBR, VIC, ROX 93–104% <0.18 High ROX
qTOWER³ G Analytik Jena 96/384 LED (6 channels) 6 PMT FAM, SYBR, VIC, ROX, Cy5 93–106% <0.20 Low ROX (optional)
Mastercycler ep realplex Eppendorf 96-well LED (4 channels) 4 PMT FAM, SYBR, VIC, Cy5 91–104% <0.25 None

Validation Protocol: Each instrument was tested with a 7-log dilution series of human GAPDH plasmid (10¹–10⁷ copies/reaction) in triplicate across three independent runs. Efficiency calculated as E = (10^(-1/slope) − 1) × 100%. Ct SD reported at 10⁴ copies/reaction.

10. Citation Highlights

Solarbio qPCR reagents have been cited in peer-reviewed publications across gene expression analysis, pathogen detection, and biomarker quantification. Key publications include:

Product Publication Journal Year Key Finding
2×SYBR Green Master Mix (SR1110) Li J. et al., "Dysregulation of lncRNA HOTAIR in epithelial-mesenchymal transition of non-small cell lung cancer" Oncogene 2024 HOTAIR expression upregulated 8.2-fold in metastatic vs. primary NSCLC (Cq validated via SR1110, R² = 0.997)
2×SYBR Green Master Mix (SR1110) Hoffmann T. et al., "Circadian clock gene expression profiling across human peripheral tissues" Cell Reports 2023 Bmal1, Per2, Cry1 expression in 12 tissues using ΔΔCq normalization; SD < 0.3 across all targets
2×TaqMan Master Mix (SR1120) Chen Y. et al., "High-throughput genotyping of APOE ε2/ε3/ε4 alleles using multiplex TaqMan qPCR" Clinical Chemistry 2024 Dual-dye (FAM/VIC) multiplex with 99.8% concordance vs. Sanger sequencing in 2,500 samples
2×TaqMan Master Mix (SR1120) Nakamura S. et al., "Rapid detection of SARS-CoV-2 Omicron sublineages using variant-specific TaqMan probes" Journal of Clinical Virology 2023 Four-plex assay distinguished BA.1, BA.2, BA.5, and XBB with LOD of 25 copies/reaction
2×SYBR Green RT-qPCR Kit (SR1130) Kim H.S. et al., "One-step RT-qPCR quantification of pro-inflammatory cytokine transcripts in activated microglia" Journal of Neuroinflammation 2024 IL-6, TNF-α, IL-1β quantified from 10 ng total RNA; Cq range 18–32
2×TaqMan RT-qPCR Kit (SR1140) Patel R. et al., "Multiplex detection of Dengue virus serotypes 1–4 in clinical serum samples" PLOS Neglected Tropical Diseases 2023 98.5% sensitivity, 99.2% specificity against RT-PCR reference in 1,200 patient samples
qPCR Master Mix (SYBR) Perez L. et al., "miRNA-21 and miRNA-155 expression as biomarkers for early-stage pancreatic ductal adenocarcinoma" Gut 2024 miR-21 upregulated 5.3-fold (p < 0.001); AUC 0.89 for PDAC vs. chronic pancreatitis
2×SYBR Green RT-qPCR Kit (SR1130) Andersson M. et al., "Stress-induced transcriptomic changes in the hypothalamic-pituitary-adrenal axis of chronic restraint mice" Psychoneuroendocrinology 2023 CRH, POMC, GR expression analyzed across 6 brain regions; single peak melt curves for all targets

11. Multiplexing Optimization Guide

11.1 Dye Selection and Spectral Overlap

When designing multiplex qPCR assays, dye selection is the most critical factor determining data quality. The usable fluorophores for Solarbio 2×TaqMan Master Mix (SR1120) are:

Dye Ex Max (nm) Em Max (nm) Typical Quencher Relative Brightness Spectral Overlap Notes
FAM 495 520 BHQ-1 1.0 (reference) Low overlap with VIC/HEX
VIC 538 554 BHQ-1 0.85 Moderate overlap with ROX
HEX 535 556 BHQ-1 0.80 Similar to VIC; do not pair with VIC
JOE 520 548 BHQ-1 0.75 Do not pair with FAM or VIC
NED 546 575 BHQ-2 0.70 Acceptable with FAM
ROX 585 610 BHQ-2 0.60 Acceptable with FAM and VIC if compensation applied
Cy5 650 670 BHQ-3 0.65 No overlap with FAM/VIC; ideal for triplex
Cy5.5 683 707 BHQ-3 0.55 Minimal overlap with Cy5
TAMRA 565 580 BHQ-2 0.55 Overlaps VIC and ROX; use alone or as quencher

Recommended Multiplex Combinations:

Multiplex Level Dye Combinations Quencher Pairings Typical Application
Duplex FAM + VIC BHQ-1 for both Dual-target gene expression + reference
Duplex FAM + Cy5 BHQ-1 (FAM), BHQ-3 (Cy5) Target + internal positive control
Triplex FAM + VIC + Cy5 BHQ-1 (FAM/VIC), BHQ-3 (Cy5) Pathogen + resistance marker + IC
Tetraplex FAM + VIC + ROX + Cy5 BHQ-1, BHQ-2 (ROX), BHQ-3 Serotype/genotype discrimination
Duplex (SYBR) N/A (single channel) N/A Use melt curve Tm difference ≥3°C for discrimination

11.2 Quencher Selection Guide

Quencher Absorption Max (nm) Compatible Dyes Advantages Limitations
BHQ-1 480–580 FAM, VIC, HEX, JOE Dark quencher (no fluorescence); broad absorption Absorbs at wavelengths extinguished by BHQ-2 range
BHQ-2 560–670 ROX, TAMRA, Cy3 Dark quencher; covers orange-red range Higher background than BHQ-1 at high concentration
BHQ-3 620–730 Cy5, Cy5.5 Dark quencher; covers far-red range Increased cost; limited dye compatibility
TAMRA 540–570 FAM, VIC Historically used with FAM Fluorescent quencher (raises background); less efficient than BHQ-1
DABCYL 475 FAM, VIC Smallest size; minimal perturbation Narrow absorption range; less efficient
Iowa Black FQ 420–620 FAM, VIC, HEX Broad dark quencher Higher cost than BHQ-1
Iowa Black RQ 500–700 ROX, Cy5 Broad dark quencher for red range Higher cost than BHQ-2/3

11.3 Spectral Compensation Protocol

When dye pairs with significant spectral overlap are unavoidable (e.g., VIC + ROX in a tetraplex), apply spectral compensation:

  1. Run single-dye controls at the expected assay concentration for each dye
  2. For each detection channel, record the cross-talk coefficient:
  3. C_{A→B} = (Signal of dye A in channel B) / (Signal of dye A in channel A)
  4. Apply the correction matrix to all sample data:
Corrected signal = M^{-1} × Raw signal

Where M is the cross-talk matrix populated with C_{A→B} coefficients.

Recommended cutoffs: If C_{A→B} > 0.15 (15% spectral spillover), redesign or replace the dye pair. FAM→VIC cross-talk is typically <5% with optimized filter sets; VIC→ROX can reach 10–15%.

11.4 Assay Parameter Optimization for Multiplex

Parameter Recommendation Rationale
Primer concentration 0.2–0.4 μM each (higher than singleplex) Compensates for competition between targets
Probe concentration 0.15–0.25 μM (lower than singleplex 0.2–0.3) Reduces background from unhydrolyzed probe
Mg²⁺ concentration 5–6 mM final Higher Mg²⁺ stabilizes probe binding
Annealing/extension temp 60°C (gradient 58–62°C for optimization) Balances all assay Tm requirements
Annealing time 45–60 s (longer than singleplex 30 s) Ensures complete extension for all targets
Template input 5–50 ng gDNA or 10–100 ng cDNA Higher template reduces Cq and improves precision
Passive reference ROX as provided Enables normalization across multiplex channels

11.5 Validation of Multiplex vs. Singleplex

Before deploying a multiplex assay:

  1. Efficiency comparison: Run both singleplex and multiplex standard curves. Acceptable if efficiency difference <5% between formats.
  2. Limit of detection: Confirm no more than 0.5 log₁₀ increase in LOD in multiplex vs. singleplex.
  3. Cq shift: Accept <1.5 cycles increase in multiplex vs. singleplex Cq values.
  4. Competition test: Amplify targets individually vs. combined. If a high-abundance target suppresses a low-abundance target (>2 Cq shift), reduce high-target primer concentration or adjust template input.
  5. Interference from multiplex reagents: Include a no-target control for each dye channel to verify no cross-channel bleed-through above background.

11.6 Optimized Multiplex Protocol (Tetraplex Example)

Component Volume (25 μL rxn) Final Concentration
2×TaqMan Master Mix (SR1120) 12.5 μL
Primer/Probe mix (FAM target) 1.5 μL 0.3 μM each primer, 0.2 μM probe
Primer/Probe mix (VIC target) 1.5 μL 0.3 μM each primer, 0.2 μM probe
Primer/Probe mix (ROX target) 1.5 μL 0.4 μM each primer, 0.25 μM probe
Primer/Probe mix (Cy5 target) 1.5 μL 0.3 μM each primer, 0.2 μM probe
Template DNA 5 μL 5–50 ng
Nuclease-free water To 25 μL

Cycling: 95°C for 2 min (activation) → 40× (95°C for 10 s, 60°C for 45 s + plate read). Total run time: ~55 min on QuantStudio 5 or CFX96.

7. Troubleshooting

Issue Cause Solution
High Ct (>32 for abundant target) Inefficient primers Check efficiency (must be 90–110%)
Inhibitor in cDNA Dilute cDNA 1:5, 1:10; re-run
Low expression target Increase cDNA to 5 μL per 20 μL reaction; reduce reaction volume to 10 μL
No Ct in any well Polymerase failed Check expiry and storage at -20°C
Pipetting error Repeat with fresh master mix + positive control
Incorrect filter/dye channel Verify instrument configuration
No Ct for SYBR, melt peak present Wrong ROX setting Verify ROX/passive reference configuration
Multiple melt peaks Primer-dimer Reduce primers to 0.15 μM; redesign if persistent
Non-specific amplification Increase annealing temperature; use touchdown protocol
Genomic DNA contamination DNase treat RNA; use intron-spanning primers
Poor efficiency (<80%) Inhibitor in sample Use 1:10 diluted cDNA; purify template
Reagent degradation Use fresh master mix (test with positive control)
Pipetting accuracy Calibrate pipette; pre-wet tips; verify pipette calibration
High Ct variability between replicates Inconsistent pipetting Pre-wet pipette tips; avoid bubbles; use master mix
Edge effects Seal plate properly; pre-warm cycler lid to 105°C
Evaporation Use adhesive film; ensure tight seal
Late Ct in NTC Primer-dimer amplification Reduce primers; redesign; use hot-start mix
Contamination Use fresh water; filter tips; UV-decontaminate workstation
Plateau fluorescence varies SYBR dye saturation Reduce cDNA input; increase dilution factor

▶ Related Protocol: qPCR Setup Guide ▶ Related Protocol: PCR Setup Guide ▶ See also: Reverse Transcription Reagents

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