Technical articles

Molecular Cloning Screening and Identification Technologies: Positive Clone Confirmation, Restriction Mapping, and Sequencing Validation

Molecular cloning screening and identification are used to confirm whether the target insert has been correctly introduced into the vector, whether the insertion orientation matches the design, whether the reading frame is continuous, whether sequence mutations are present, and whether the construct is reliable for downstream expression, transfection, functional validation, or plasmid storage. Common methods include antibiotic resistance screening, blue-white screening, colony PCR, restriction enzyme digestion, plasmid sequencing, and downstream functional validation.

 

Keywords: molecular cloning screening; positive clone identification; colony PCR; restriction digestion identification; blue-white screening; plasmid sequencing; vector construction

 

1 Basic Logic of Molecular Cloning Screening and Identification

1.1 Key Questions to Confirm During Screening

(1) Whether transformants have been obtained

Colonies growing on antibiotic plates only indicate that cells have acquired a DNA molecule carrying an antibiotic resistance marker. This does not directly prove that the target insert has been correctly inserted. Empty vectors, self-ligated vectors, or incorrectly assembled products may also form colonies. Therefore, antibiotic resistance screening can only serve as an initial screening step for candidate clones.

(2) Whether the target insert is present

Colony PCR, insert-specific PCR, and restriction digestion can be used to determine whether candidate clones contain the target insert. This level mainly confirms the presence or absence of the insert, but does not fully determine insertion orientation, reading-frame continuity, or full sequence correctness.

(3) Whether the insertion orientation and junction boundaries are correct

Expression vectors, promoter-driven vectors, fusion tag vectors, and reporter gene vectors require particular confirmation of insert orientation and junction boundaries. Vector primers combined with insert primers, double-digestion patterns, and junction sequencing can be used to determine whether the construct matches the design.

(4) Whether the sequence is completely correct

Point mutations, deletions, or rearrangements may be introduced during PCR amplification, ligation, recombination, or bacterial propagation. Clones intended for expression, transfection, functional analysis, or long-term storage should be verified by sequencing that covers the insert, junction regions, and key regulatory elements.

 

1.2 Common Screening Workflows

(1) Rapid preliminary screening workflow

After transformation, candidate colonies are first obtained on antibiotic plates and then subjected to colony PCR to rapidly exclude empty vectors and obviously incorrect clones. This workflow is suitable for routine single-insert cloning, TA cloning, and conventional vector construction.

(2) Structural confirmation workflow

Colony PCR-positive clones are further processed by plasmid miniprep and restriction digestion. Restriction patterns can be used to evaluate the vector backbone, insert size, and partial orientation, and are suitable for expression vectors, large-insert cloning, and multi-fragment construction.

(3) Final confirmation workflow

Sanger sequencing is used to confirm junction boundaries, reading frame, mutation sites, and open reading frame integrity. Before functional experiments, the final basis for construct confirmation should be sequencing results rather than a single PCR band or restriction pattern.

 

Table 1 Application Positioning of Molecular Cloning Screening and Identification Methods

 

Method

Main Question Addressed

Applicable Stage

Key Interpretation Point

Antibiotic resistance screening

Whether transformants carrying a resistance marker have been obtained

Initial screening after transformation

Cannot distinguish empty vectors from positive clones

Blue-white screening

Preliminary distinction between insertional inactivation and empty vector

TA cloning and lacZ-related vectors

White colonies still require PCR or sequencing confirmation

Colony PCR

Whether the target insert or junction is present

Initial positive clone screening

Primer positions determine the interpretive scope

Plasmid miniprep

Obtaining plasmid DNA for detection and storage

Confirmation after preliminary screening

Concentration, purity, and integrity should be checked

Restriction digestion

Determining insert size and partial orientation

Structural confirmation

A discriminating digestion strategy is required

Sanger sequencing

Confirming sequence, junctions, and reading frame

Final confirmation

Sequencing coverage must be complete

Functional validation

Determining whether the construct can express or produce function

Downstream application

Expression results cannot replace sequence confirmation

 

2 Preliminary Screening After Transformation

2.1 Antibiotic Resistance Screening

(1) Selection of resistance markers

The antibiotic used must match the resistance marker encoded by the vector. Ampicillin, kanamycin, chloramphenicol, and tetracycline are commonly used in different vector systems. If the wrong antibiotic is selected, there may be no colonies or an abnormal increase in background colonies.

(2) Control setup

A positive transformation control is used to determine whether competent cells and the transformation step are functioning normally. A negative control is used to exclude medium contamination and antibiotic failure. If colonies appear in the negative control, contamination, antibiotic concentration, and medium preparation conditions should be checked first.

(3) Interpretation of colony number

A large number of colonies does not necessarily indicate a high proportion of positive clones. Vector self-ligation, incomplete digestion, or high empty-vector background can also produce many colonies. If the colony number is low, the ligation system, competent cell efficiency, recovery conditions, and insert toxicity should all be evaluated.

 

2.2 Blue-White Screening

(1) Screening principle

Blue-white screening depends on lacZα complementation. When the target insert disrupts the multiple cloning site within lacZα, colonies are usually white. Empty vectors in which lacZα is not disrupted appear blue in the presence of IPTG and X-Gal.

(2) Interpretation of white colonies

White colonies are only candidate positive clones and do not directly confirm correct insertion of the target fragment. Small inserts, vector mutations, diffusion of color development, prolonged incubation, or accidental reading-frame restoration may all cause deviations in color interpretation.

(3) Colony selection strategy

White single colonies with clear borders, moderate size, and good separation should be prioritized. Half-blue/half-white colonies, merged colonies, or colonies with abnormal morphology should be selected cautiously and further confirmed by PCR and sequencing.

 

2.3 Colony Quality Control

(1) Single-clone origin

Colonies used for screening should originate from a single transformation event. Merged colonies, mixed colonies, or regions with obvious morphological differences may lead to multiple PCR bands, mixed plasmids, or double peaks in sequencing.

(2) Repeated colony picking

For routine single-insert cloning, 6–12 independent colonies can be screened first. For TA cloning, blunt-end cloning, multi-fragment assembly, or large-insert cloning, the number of candidate clones should be increased to improve the probability of obtaining a correct clone.

(3) Contamination troubleshooting

If colonies appear on a no-DNA control plate, the medium, antibiotics, inoculation tools, and operating environment should be checked first. Before contamination is excluded, results from test clones should not be interpreted further.

 

3 Positive Clone Identification Technologies

3.1 Colony PCR

(1) Insert-specific PCR

Primers located inside the insert can rapidly determine whether candidate clones contain the target sequence and are suitable for preliminarily excluding empty vectors. However, this method cannot determine insertion orientation, vector junction status, or overall structural integrity.

(2) Vector-insert junction PCR

One primer is located in the vector and the other in the insert, allowing determination of insertion orientation and junction boundaries. Expression vectors, tag-fusion vectors, and promoter-downstream cloning are more suitable for this design.

(3) Interpretation of abnormal bands

Weak bands, multiple bands, or obviously smaller-than-expected bands are commonly caused by excessive template, insufficient colony lysis, nonspecific amplification, mixed colonies, or insert deletion. If necessary, a single colony should be picked again, or PCR confirmation should be performed after plasmid miniprep.

 

Table 2 Colony PCR Primer Design and Interpretation

 

Primer Combination

Information Determined

Advantage

Limitation

Internal insert primers

Whether the target sequence is present

Fast and sensitive

Cannot determine vector junction status

Vector primers flanking both sides

Insert size

Can distinguish empty vector from insert-containing vector

Large inserts may amplify inefficiently

Vector forward primer + insert reverse primer

Insertion orientation and one junction

Suitable for directional screening of expression vectors

Only covers one junction

Insert forward primer + vector reverse primer

Opposite orientation or the other junction

Complements the previous primer set

Annealing temperature must be reasonably designed

Tag-region primer + insert primer

Tag fusion reading frame

Suitable for fusion protein vectors

Cannot replace sequencing confirmation

 

3.2 Plasmid Miniprep and Restriction Digestion Identification

(1) Plasmid miniprep

Colony PCR-positive clones should be cultured in liquid medium and subjected to plasmid miniprep. A260/A280, A260/A230, DNA concentration, and plasmid integrity can affect subsequent restriction digestion, sequencing, and transfection experiments.

(2) Single-enzyme digestion

Single digestion can be used to determine whether the plasmid can be linearized and to estimate whether the overall plasmid size matches expectations. This method is suitable for preliminary confirmation of vector structure but has limited ability to detect insertion orientation and small-fragment abnormalities.

(3) Double-enzyme digestion

Double digestion can release the target insert or generate characteristic bands, making it more suitable for determining insert size, vector backbone, and partial orientation. If the target insert and vector fragment sizes are close, the digestion combination should be redesigned or confirmed by sequencing.

 

3.3 Sanger Sequencing Confirmation

(1) Junction sequencing

Sequencing should cover both junctions between the vector and the insert. Correct junctions confirm whether the ligation site, orientation, reading frame, and tag fusion match the design.

(2) Open reading frame sequencing

Expression clones should be sequenced across the complete ORF, especially PCR-amplified regions, mutation-introduced regions, restriction sites, and homologous recombination junctions. Sequencing only one end is usually insufficient to confirm the correctness of a long insert.

(3) Handling abnormal chromatograms

Double peaks, local mixed peaks, sudden read-length decline, or frameshift-like chromatograms are commonly caused by mixed clones, repetitive sequences, secondary structures, or poor template quality. A single clone can be purified by streaking again, or sequencing primers can be redesigned for reverse confirmation.

 

Table 3 Confirmation Levels for Molecular Cloning Identification

 

Confirmation Level

Representative Method

What It Can Confirm

What It Cannot Replace

Preliminary screening

Antibiotic resistance screening, blue-white screening

Whether candidate clones exist

Insert and sequence correctness

Insert confirmation

Colony PCR

Whether the target insert is present and partial orientation

Complete sequence and mutation status

Structural confirmation

Restriction digestion

Fragment size, vector structure, partial orientation

Single-base mutations and small deletions

Sequence confirmation

Sanger sequencing

Junctions, reading frame, mutations, and sequence integrity

Protein expression and functional activity

Functional confirmation

Expression detection, reporter gene assay, enzyme activity

Downstream functional usability

Correctness of the DNA construct sequence

 

4 Screening Points for Different Cloning Strategies

4.1 Restriction Digestion-Ligation Cloning

(1) Double-digestion ligation

Double digestion reduces vector self-ligation and provides directionality. Screening should focus on insert size and orientation, commonly using colony PCR, double digestion to release the insert, and sequencing confirmation.

(2) Single-digestion ligation

Single-digestion ligation is prone to vector self-ligation and bidirectional insertion. More candidate colonies should be screened, and directional PCR or a discriminating restriction pattern should be used to determine orientation.

(3) Dephosphorylation treatment

Vector dephosphorylation can reduce empty-vector background, but excessive treatment may lower ligation efficiency. If colony number is low, vector recovery amount, insert-to-vector molar ratio, and ligase activity should also be checked.

 

4.2 TA Cloning and Blunt-End Cloning

(1) TA cloning

TA cloning is suitable for rapid insertion of PCR products and is often combined with blue-white screening. White colony candidates still require colony PCR confirmation of insert size and sequencing to exclude PCR-introduced mutations.

(2) Blunt-end cloning

Blunt-end ligation has uncontrolled orientation and usually lower ligation efficiency than sticky-end ligation. More candidate clones should be screened, and vector-insert junction PCR should be used to determine orientation.

(3) PCR product quality

Primer dimers, nonspecific bands, or residual salts in PCR products can reduce ligation efficiency. PCR products should be purified or gel-extracted before ligation, and inserts intended for expression should preferably be amplified using a high-fidelity polymerase.

 

4.3 Gibson Assembly and Homologous Recombination Cloning

(1) Homology arm design

Gibson Assembly depends on homologous overlapping regions between fragments. Common screening errors include fragment loss, incorrect assembly, and recombination of repetitive sequences. Each junction should be confirmed by junction-spanning PCR and sequencing.

(2) Multi-fragment assembly

The more fragments included, the higher the probability of incorrect assembly. Multi-fragment constructs cannot be judged correct using only one PCR assay; sequencing primers should be designed for each junction.

(3) Large-fragment cloning

Large fragments are more prone to rearrangement, deletion, and low transformation efficiency. Stable host strains, shortened culture time, and restriction mapping, multi-primer sequencing, or long-read sequencing can be used for confirmation.

 

Table 4 Screening and Identification Priorities for Different Cloning Strategies

 

Cloning Strategy

Main Risk

Recommended Screening Method

Final Confirmation Method

Double-digestion ligation

Insert loss, incomplete digestion

Colony PCR, double digestion

Bidirectional or full-length sequencing

Single-digestion ligation

Empty vector, self-ligation, reverse insertion

Directional PCR, restriction digestion

Sequencing of orientation and junctions

TA cloning

False white colonies, PCR mutations

Blue-white screening, colony PCR

Insert sequencing

Blunt-end cloning

Low ligation efficiency, random orientation

Multi-colony PCR, directional PCR

Sequencing confirmation

Gibson Assembly

Incorrect assembly, fragment loss

Junction-spanning PCR

Sequencing of multiple junctions

Multi-fragment assembly

Incorrect fragment order, partial deletion

Segmental PCR, restriction mapping

Sequencing covering all junctions

Large-fragment cloning

Rearrangement, deletion, low stability

Restriction mapping, low-copy screening

Long-read or multi-primer sequencing

 

5 Common Abnormal Results and Optimization Strategies

5.1 No Colonies or Too Few Colonies

(1) Insufficient transformation efficiency

If the positive control also shows no colonies, competent cells, recovery time, heat-shock or electroporation conditions should be checked first. This type of problem should not be directly attributed to ligation failure.

(2) Abnormal ligation system

Improper insert-to-vector ratio, incompatible DNA ends, inactive ligase, residual salts, or incomplete digestion can all reduce ligation efficiency. Vector self-ligation controls and insert quality checks can help locate the issue.

(3) Insert toxicity

Some genes are toxic to the host or affect plasmid stability. A low-copy vector, repressor-containing host, low-temperature culture, or shortened culture time may be attempted.

 

5.2 Excessive Background Colonies

(1) Vector self-ligation

Single-digested vectors, incomplete digestion, or insufficient dephosphorylation can easily lead to empty-vector background. Double digestion, gel extraction of the correct band, and vector dephosphorylation can reduce this problem.

(2) Antibiotic failure

If colonies appear on negative control plates, antibiotic concentration, storage conditions, and medium cooling temperature should be checked. Antibiotic failure makes background colonies uninterpretable.

(3) False positives in blue-white screening

White colonies do not necessarily represent correct insertion of the target fragment. Pale-colored, half-blue/half-white, or poorly defined colonies should be selected cautiously and must be confirmed by PCR and sequencing.

 

5.3 PCR Positive but Sequencing Incorrect

(1) PCR-introduced mutations

High-fidelity polymerases can reduce mutation rates but cannot completely eliminate errors. Expression clones and mutant clones should be sequenced across the full ORF rather than only at junctions.

(2) Mixed clones

If colonies are not purified or a mixed colony is picked, sequencing chromatograms may show double peaks. Single colonies should be isolated again by streaking, followed by plasmid miniprep and sequencing.

(3) Repetitive sequences or GC-rich regions

Repetitive sequences, strong secondary structures, and GC-rich regions can lead to reduced sequencing read length or local abnormal chromatograms. Sequencing primers can be changed, sequencing direction adjusted, or segmental sequencing used.

 

Table 5 Abnormal Results in Molecular Cloning Screening and Recommended Handling Strategies

 

Abnormal Result

Possible Cause

Priority Handling Strategy

No colonies after transformation

Competent cell failure, ligation failure, wrong antibiotic

Check positive control and resistance marker

Many colonies but PCR negative

High empty-vector background, vector self-ligation

Optimize digestion, dephosphorylation, and insert ratio

Multiple bands in colony PCR

Excessive template, nonspecific amplification, mixed colonies

Reduce template amount and pick a single colony again

Correct PCR band but abnormal digestion

Rearrangement, partial deletion, mixed plasmid

Repeat miniprep and confirm by sequencing

Correct digestion but sequencing mutation

PCR amplification error, replication mutation

Screen multiple independent clones again

Obvious double peaks in sequencing

Mixed clone, impure plasmid template

Purify by streaking and sequence again

Expression failure despite correct sequence

Tag, reading frame, toxicity, or folding issue

Check expression vector design and host system

 

6 Products Related to Molecular Cloning Screening and Identification

 

Table 6 Reagents, Enzymes, and Detection Materials Related to Molecular Cloning Screening and Identification

 

Cat. No.

Product Name

Grade/Specification

Product Category

Application Positioning

T665705

T4 DNA Ligase

Bioactive,Recombinant,ActiBioPure™,High Performance,EnzymoPure™,1000 U/μl

DNA ligase

Used for sticky-end ligation, blunt-end ligation, and routine vector-insert construction

T397964

T4 DNA Ligase (Fast)

EnzymoPure™

DNA ligase

Used for molecular cloning ligation reactions, positive clone construction, and vector self-ligation controls

T292950

Taq DNA Ligase

EnzymoPure™, 40U/μl

Thermostable DNA ligase

Used for oligonucleotide ligation, ligation detection, and ligase-dependent identification systems

E745500

E. coli DNA Ligase

Bioactive,Recombinant,ActiBioPure™,High Performance,EnzymoPure™,10 U/μl

DNA ligase

Used for DNA nick ligation, ligation mechanism research, and optimization of specific cloning systems

P748845

PBCV-1 DNA Ligase

Bioactive,Recombinant,ActiBioPure™,High Performance,EnzymoPure™,25 U/μl

DNA ligase

Used for special end ligation, ligation system comparison, and in vitro DNA assembly research

T750867

T3 DNA Ligase

Bioactive,Recombinant,ActiBioPure™,High Performance,EnzymoPure™,3 KU/μl

DNA ligase

Used for DNA ligation reactions, ligase system comparison, and fragment ligation optimization

T750877

T7 DNA Ligase

Bioactive,Recombinant,ActiBioPure™,High Performance,EnzymoPure™,3 KU/μl;expressed in E.coli

DNA ligase

Used for DNA ligation reactions, ligation after end repair, and ligation efficiency comparison

FP1509106

HiFi Seq Hotstart DNA Polymerase

Recombinant,Suitable for molecular biology,EnzymoPure™,for DNA and RNA applications,1 U/μL

High-fidelity hot-start polymerase

Used for expression cloning, mutant construction, and insert amplification requiring reduced PCR mutation rates

H292966

HiFi Seq Hotstart DNA polymerase

1U/μL

High-fidelity DNA polymerase

Used for high-fidelity amplification of target fragments, sequencing template preparation, and pre-cloning PCR

P292987

Pfu DNA Polymerase

EnzymoPure™, 2.5U/μl

High-fidelity DNA polymerase

Used for low-mutation amplification, blunt-end cloning, and expression vector construction

FP1508912

Taq DNA Polymerase

Recombinant,Suitable for molecular biology,EnzymoPure™,for DNA and RNA applications,5 U/μL

Conventional PCR polymerase

Used for colony PCR, positive clone preliminary screening, and TA cloning insert amplification

T665586

Taq DNA Polymerase

Recombinant,Suitable for molecular biology,EnzymoPure™,for DNA and RNA applications,≥99%(SDS-PAGE),5 U/μl

Conventional PCR polymerase

Used for colony PCR, insert detection, and rapid transformant screening

FP1508958

Epitech Taq DNA Polymerase

Recombinant,Suitable for molecular biology,EnzymoPure™,for DNA and RNA applications,5 U/μL

Conventional PCR polymerase

Used for positive clone PCR screening and routine fragment amplification

FP1508941

Epitech HS Taq DNA Polymerase

Recombinant,Suitable for molecular biology,EnzymoPure™,for DNA and RNA applications,5 U/μL

Hot-start PCR polymerase

Used to improve colony PCR specificity and reduce nonspecific amplification

FP1509104

Hotstart HiTaq DNA Polymerase

Recombinant,Suitable for molecular biology,EnzymoPure™,for DNA and RNA applications,5 U/μL

Hot-start PCR polymerase

Used for vector-insert junction PCR and directional clone screening

FP1508913

Hotstart HiTaq Ⅱ DNA Polymerase

Suitable for molecular biology,EnzymoPure™,for DNA and RNA applications,5 U/μL

Hot-start PCR polymerase

Used for complex-template colony PCR and positive clone preliminary screening

H292167

Hot Start Taq DNA Polymerase

EnzymoPure™, 5U/μL

Hot-start PCR polymerase

Used to improve PCR identification specificity and confirm weak positive clones

T1424927

Taq DNA Polymerase, Glycerol-free

 

Hot-start PCR polymerase

Used for PCR amplification and clone identification in glycerol-sensitive systems

FP1508925

AK Taq DNA Polymerase V2

Suitable for molecular biology,EnzymoPure™,for DNA and RNA applications,5 U/μL

PCR polymerase

Used for routine PCR, colony PCR, and cloning fragment amplification

FP1508914

ProPrime Taq DNA Polymerase

Suitable for molecular biology,EnzymoPure™,for DNA and RNA applications,5 U/μL

PCR polymerase

Used for positive clone preliminary screening and insert amplification

FP1509109

PowerResist Taq Polymerase

Suitable for molecular biology,EnzymoPure™,for DNA and RNA applications,5 U/μL

PCR polymerase

Used for complex-template PCR and cloning screening amplification

FP1509151

Rock DNA Polymerase

EnzymoPure™,Suitable for molecular biology,2.5 U/μL

PCR polymerase

Used for routine fragment amplification, colony PCR, and cloning identification

F1449950

FastTaq DNA Polymerase(5'→3' exo-)

 

PCR polymerase

Used for rapid PCR amplification and positive clone preliminary screening

G1444565

Golden Taq DNA Polymerase

 

PCR polymerase

Used for routine PCR amplification and colony PCR identification

T295115

Taq-HS DNA Polymerase

EnzymoPure™

Hot-start DNA polymerase

Used for high-specificity PCR, complex-template amplification, and directional identification

A295123

AbTaq DNA Polymerase

EnzymoPure™

Hot-start DNA polymerase

Used to reduce nonspecific amplification and improve colony PCR interpretation accuracy

T295106

Taq DNA Polymerase

EnzymoPure™

Thermostable DNA polymerase

Used for high-temperature PCR amplification and cloning fragment amplification

W292915

Whole Blood polymerase

EnzymoPure™, 1.25U/μl

DNA polymerase

Used for specific PCR amplification and cloning fragment preparation

FP1508928

T4 DNA Polymerase

Suitable for molecular biology,EnzymoPure™,for DNA and RNA applications,3 U/μL

End-repair enzyme

Used for DNA end polishing, blunt-end cloning, and vector end treatment

T665886

T4 DNA Polymerase

EnzymoPure™, Animal Free, Carrier Free, Bioactive, ActiBioPure™, sterile, RNase free, 5.0 U/μL

End-repair enzyme

Used for DNA end repair, blunt-end ligation, and cloning fragment treatment

L398126

ApaLI

EnzymoPure™

Restriction endonuclease

Used for vector digestion, insert release, and plasmid mapping identification

L354062

AscI

EnzymoPure™

Restriction endonuclease

Used for large-fragment cloning, rare-cutter linearization, and recombinant plasmid identification

L358929

AvrII

EnzymoPure™

Restriction endonuclease

Used for directional cloning and restriction mapping confirmation

L358964

BamHI

EnzymoPure™

Restriction endonuclease

Used for vector double digestion, insert release, and digestion-based identification

L359021

BclI

EnzymoPure™

Restriction endonuclease

Used for site-specific digestion and cloning structure analysis

L398083

BglII

EnzymoPure™

Restriction endonuclease

Used for clone fragment release, vector construction, and double-digestion identification combinations

L398114

BstBI

EnzymoPure™

Restriction endonuclease

Used for vector linearization and plasmid structure identification

L359061

BstEII

EnzymoPure™

Restriction endonuclease

Used for site-specific digestion and recombinant plasmid mapping analysis

L359076

ClaI

EnzymoPure™

Restriction endonuclease

Used for directional cloning and double-digestion identification

L397155

DpnII

EnzymoPure™

Restriction endonuclease

Used for GATC-site-related digestion analysis and plasmid structure interpretation

L397162

EagI

EnzymoPure™

Restriction endonuclease

Used for recombinant plasmid linearization and low-frequency cutter identification

L397257

EcoRI

EnzymoPure™

Restriction endonuclease

Used for routine cloning site digestion, vector linearization, and recombinant plasmid identification

L397409

EcoRV

EnzymoPure™

Restriction endonuclease

Used for blunt-end digestion, vector linearization, and fragment structure confirmation

L397895

FspI

EnzymoPure™

Restriction endonuclease

Used for plasmid linearization and restriction mapping analysis

L398116

HinfI

EnzymoPure™

Restriction endonuclease

Used for restriction fragment analysis and small-fragment pattern interpretation

L397431

HpaI

EnzymoPure™

Restriction endonuclease

Used for blunt-end digestion, structural verification, and vector linearization

L397446

KpnI

EnzymoPure™

Restriction endonuclease

Used for directional cloning, double-digestion identification, and insert release

L397459

MluI

EnzymoPure™

Restriction endonuclease

Used for expression vector construction, pre-treatment before multi-fragment assembly, and directional identification

L397466

MnlI

EnzymoPure™

Restriction endonuclease

Used for restriction fragment analysis and detailed cloning structure identification

L397482

NcoI

EnzymoPure™

Restriction endonuclease

Used for expression cloning around the start codon region and reading-frame confirmation

L397493

NdeI

EnzymoPure™

Restriction endonuclease

Used for expression vector start-region cloning and ORF insertion orientation confirmation

L397598

NheI

EnzymoPure™

Restriction endonuclease

Used for expression vector construction, tag-fusion boundary identification, and double-digestion analysis

L397626

NotI

EnzymoPure™

Restriction endonuclease

Used for large-insert cloning, low-frequency cutter identification, and vector structure confirmation

L398105

NsiI

EnzymoPure™

Restriction endonuclease

Used for site-specific digestion and plasmid mapping identification

L398140

PacI

EnzymoPure™

Restriction endonuclease

Used for large-fragment cloning, rare-cutter plasmid identification, and vector linearization

L397656

PstI

EnzymoPure™

Restriction endonuclease

Used for multiple cloning site digestion, insert release, and plasmid mapping verification

L398090

PvuII

EnzymoPure™

Restriction endonuclease

Used for blunt-end digestion, vector linearization, and restriction mapping identification

L397676

SacI

EnzymoPure™

Restriction endonuclease

Used for insert release, vector backbone confirmation, and double-digestion identification

L398098

SacII

EnzymoPure™

Restriction endonuclease

Used for site-specific digestion identification and complex vector structure analysis

L397693

SbfI

EnzymoPure™

Restriction endonuclease

Used for large-fragment cloning, rare-cutter digestion, and structural confirmation

L397704

SmaI

EnzymoPure™

Restriction endonuclease

Used for blunt-end cloning, vector linearization, and digestion verification

L397720

Spel

EnzymoPure™

Restriction endonuclease

Used for multiple cloning site construction, directional insertion, and junction verification

L397780

SphI

EnzymoPure™

Restriction endonuclease

Used for insert release and specific multiple cloning site identification

L397795

SspI

EnzymoPure™

Restriction endonuclease

Used for plasmid linearization and blunt-end digestion analysis

L397810

StuI

EnzymoPure™

Restriction endonuclease

Used for blunt-end digestion, structural verification, and plasmid mapping analysis

L397827

TaqI

EnzymoPure™

Restriction endonuclease

Used for site-specific restriction analysis and cloning pattern interpretation

L397840

XbaI

EnzymoPure™

Restriction endonuclease

Used for directional cloning, expression vector construction, and recombinant plasmid identification

L397875

XhoI

EnzymoPure™

Restriction endonuclease

Used for expression vector double digestion, ORF insertion, and restriction pattern confirmation

A397978

Alkaline Phosphatase (Fast)

EnzymoPure™

Dephosphorylation enzyme

Used for dephosphorylating digested vectors to reduce vector self-ligation background

S1438762

Shrimp Alkaline Phosphatase

 

Dephosphorylation enzyme

Used for vector-end dephosphorylation and pre-ligation treatment

rp180222

Alkaline Phosphatase (ALP)

EnzymoPure™, ≥5000 U/mg

Dephosphorylation enzyme

Used for DNA-end dephosphorylation, vector self-ligation control, and cloning system optimization

A755483

Alkaline Phosphatase

EIA grade, from calf intestine

Dephosphorylation enzyme

Used for vector-end dephosphorylation and ligation background control

P128629

Phosphatase, Alkaline

EnzymoPure™, Native, ≥30 units/mg protein (25°C, pH 8.0),from Escherichia coli

Dephosphorylation enzyme

Used for vector-end treatment and cloning system optimization

P755447

Alkaline Phosphatase from calf intestinal

Bioactive,ActiBioPure™,Native,High Performance,EnzymoPure™,≥97%(HPLC),≥5000 U/mg protein; Protein concentration: 10-15mg/mL

Dephosphorylation enzyme

Used for efficient dephosphorylation to reduce vector self-ligation

D598085

DL10000 DNA Marker

0.09 mg/mL

DNA molecular weight standard

Used for judging larger PCR products, digestion fragments, and plasmid linearization bands

B598088

DL15000 DNA Marker

0.064mg/mL

DNA molecular weight standard

Used for large inserts, vector backbones, and plasmid digestion pattern analysis

S665584

Super DNA Marker

 

DNA molecular weight standard

Used for routine PCR, colony PCR, and digestion band-size determination

B598084

100bp DNA Ladder

 

DNA molecular weight standard

Used for short-fragment PCR, insert preliminary screening, and small-fragment cloning identification

D745352

DNA Ladder (50-500bp)

BioReagent, ready-to-use, suitable for electrophoresis, Suitable for molecular biology, for NA electrophoresis, 50-500bp, 9 bands, Blue,  50bp/ 100bp/ 150bp/ 200bp/ 250bp/ 300bp/ 350bp/ 400bp/ 500bp

DNA molecular weight standard

Used for short inserts, small-fragment PCR, and PCR interpretation of blue-white colony candidates

D665544

DNA Ladder (100-2000bp)

BioReagent, ready-to-use, suitable for electrophoresis, Suitable for molecular biology, for NA electrophoresis, 100-2000bp, 6 bands, Blue, 100bp/ 250bp/ 500bp/ 750bp/ 1000bp/ 2000bp

DNA molecular weight standard

Used for routine positive clone PCR and short-to-medium insert identification

D745353

DNA Ladder (100-15000bp)

BioReagent, ready-to-use, suitable for electrophoresis, Suitable for molecular biology, for NA electrophoresis, 100-15000bp, 11 bands, Blue, 100bp/ 250bp/ 500bp/ 750bp/ 1000bp/ 1500bp/ 2000bp/ 3000bp/ 5000bp/ 8000bp/ 15000bp

DNA molecular weight standard

Used for plasmid digestion identification, large inserts, and vector backbone analysis

R751624

Gelred-prestained DNA Ladder (100-1500bp)

BioReagent, ready-to-use, suitable for electrophoresis, Suitable for molecular biology, for NA electrophoresis, 100-1500bp, 11 bands, 100bp/ 200bp/ 300bp/ 400bp/ 500bp/ 600bp/ 700bp/ 800bp/ 900bp/ 1000bp/ 1500bp

Prestained DNA molecular weight standard

Used for rapid interpretation of colony PCR and short-insert results, reducing additional staining steps

R751622

Gelred-prestained DNA Ladder (100-5000bp)

BioReagent, ready-to-use, suitable for electrophoresis, Suitable for molecular biology, for NA electrophoresis, 100-5000bp, 9 bands, 100bp/ 250bp/ 500bp/ 750bp/ 1000bp/ 1500bp/ 2000bp/ 3000bp/ 5000bp

Prestained DNA molecular weight standard

Used for routine PCR, digestion identification, and medium-length insert analysis

G751634

Gelred-prestained DNA Ladder (100-2000bp)

BioReagent, ready-to-use, suitable for electrophoresis, Suitable for molecular biology, for NA electrophoresis, 100-2000bp, 6 bands, 100bp/ 250bp/ 500bp/ 750bp/ 1000bp/ 2000bp

Prestained DNA molecular weight standard

Used for colony PCR, short-fragment clone screening, and rapid electrophoresis interpretation

G751633

Gelred-prestained DNA Ladder (50-500bp)

BioReagent, ready-to-use, suitable for electrophoresis, Suitable for molecular biology, for NA electrophoresis, 50-500 bp, 9 bands, 50bp/ 100bp/ 150bp/ 200bp/ 250bp/ 300bp/ 350bp/ 400bp/ 500 bp

Prestained DNA molecular weight standard

Used for small inserts, primer-amplified fragments, and short PCR product identification

R751623

Gelred-prestained DNA Ladder (250-10000bp)

BioReagent, ready-to-use, suitable for electrophoresis, Suitable for molecular biology, for NA electrophoresis, 250-10000bp, 9 bands, 250bp/ 500bp/ 750bp/ 1000bp/ 1500bp/ 2000bp/ 3000bp/ 5000bp/ 10000bp

Prestained DNA molecular weight standard

Used for plasmid digestion patterns, large inserts, and vector linearization assessment

R751625

Gelred-prestained DNA Ladder (250-12000bp)

BioReagent, ready-to-use, suitable for electrophoresis, Suitable for molecular biology, for NA electrophoresis, 250-12000bp, 13 bands, 250bp/ 500bp/ 750bp/ 1000bp/ 1500bp/ 2000bp/ 2500bp/ 3000bp/ 4000bp/ 5000bp/ 6000bp/ 8000bp/ 12000bp

Prestained DNA molecular weight standard

Used for large-insert cloning, complex digestion patterns, and vector structure identification

D1521308

DM-25bp DNA Marker

Suitable for molecular biology, BioReagent, ready-to-use, for NA electrophoresis, for PAGE, 25-600bp, 11 bands, 25bp/ 50bp/ 75bp/ 100bp (Reference Band)/ 150bp/ 200bp/ 250bp/ 300bp (Reference Band)/ 400bp/ 500bp/ 600bp

Small-fragment DNA marker

Used for very short inserts, primer-dimer discrimination, and small PCR product analysis

D1521306

DM1500 DNA Marker

Suitable for molecular biology, BioReagent, ready-to-use, for NA electrophoresis, for PAGE, 100-1500bp, 11 bands, 100bp/ 200bp/ 300bp/ 400bp/ 500bp (Reference Band)/ 600bp/ 700bp/ 800bp/ 900bp/ 1000bp/ 1500bp

DNA marker

Used for short-fragment PCR, colony PCR, and small insert screening

D1521305

DM2000 DNA Marker

Suitable for molecular biology, BioReagent, ready-to-use, for NA electrophoresis, for PAGE, 100-2000bp, 7 bands, 100bp/ 250bp/ 500bp/ 750bp (Reference Band)/ 1000bp/ 1500bp/ 2000bp

DNA marker

Used for routine positive clone PCR and short-to-medium fragment identification

D1521303

DM5000 DNA Marker

Suitable for molecular biology, BioReagent, ready-to-use, for NA electrophoresis, for PAGE, 100-5000bp, 9 bands, 100bp/ 250bp/ 500bp/ 750bp (Reference Band)/ 1000bp/ 1500bp/ 2000bp/ 3000bp/ 5000bp

DNA marker

Used for medium-length inserts, digestion fragments, and routine plasmid identification

D1521299

DM-20Kb DNA Marker

Suitable for molecular biology, BioReagent, ready-to-use, for NA electrophoresis, for PAGE, 500-20000bp, 10 bands, 500bp/ 1000bp/ 2000bp/ 3000bp/ 4000bp (Reference Band)/ 5000bp/ 6000bp/ 8000bp/ 10000bp/ 20000bp

Large-fragment DNA marker

Used for large-fragment cloning, vector backbones, and long-fragment digestion pattern assessment

R751626

UltraBio™ Red Fluorescent DNA Marker Dye

BioReagent, suitable for electrophoresis, Suitable for molecular biology, for NA electrophoresis, 50X

DNA marker dye

Used for prestaining DNA markers or assisting loading observation during nucleic acid electrophoresis

G751635

UltraBio™ Green Fluorescent DNA Marker Dye

BioReagent, suitable for electrophoresis, Suitable for molecular biology, for NA electrophoresis, 50×

DNA marker dye

Used for DNA marker staining and band visualization during nucleic acid electrophoresis

A118881

Agarose

High resolution, DNase, RNase, NICKase, none detected

Electrophoresis gel material

Used for resolving PCR products, colony PCR bands, and small insert fragments

O434540

OmniPur® Agarose PCR Plus

Agarose suitable for a wide range of nucleic acid and protein gel applications,including resolution of PCR products and small DNA fragments of less than 1000 bp.

Electrophoresis gel material

Used for small-fragment PCR identification, short insert resolution, and preliminary clone screening

O434539

OmniPur® Agarose

Agarose suitable for a wide range of nucleic acid and protein gel applications,including resolution of PCR products and small DNA fragments of less than 1000 bp.

Electrophoresis gel material

Used for routine PCR products, electrophoretic identification, and digestion fragment analysis

O434545

OmniPur® Agarose Super-Fine Resolution

 

High-resolution agarose

Used for small inserts, short PCR products, and fine band resolution

A104063

Agarose

low melting point ,for seperation of small nucleic fragment

Gel recovery electrophoresis material

Used for low-temperature recovery of digestion fragments and PCR inserts

A434532

Agarose

Suitable for molecular biology, Ultra-low Gelling Temperature

Low-melting-point agarose

Used for gel recovery, fragment purification, and pre-ligation DNA recovery

A434541

Agarose

BioReagent, Suitable for molecular biology, low EEO

Electrophoresis gel material

Used for routine PCR, digestion identification, and plasmid electrophoresis analysis

A434543

Agarose

Suitable for molecular biology, Medium EEO

Electrophoresis gel material

Used for routine nucleic acid electrophoresis and cloning screen band analysis

A434537

Agarose

For pulsed field electrophoresis running gel

Large-fragment electrophoresis material

Used for large DNA fragments, complex plasmids, and long-fragment structure analysis

A397944

Agarose

 

Electrophoresis gel material

Used for high-quality nucleic acid electrophoresis and clone identification

A501160

Agar

Suitable for molecular biology

Plate culture material

Used for antibiotic plates, transformant screening, and blue-white screening plate preparation

A501173

Agar

Suitable for molecular biology, for bacteria and yeast culture

Plate culture material

Used for E. coli transformant culture and clone screening

A501167

Agar

Suitable for molecular biology, for NZYM agar base

Plate culture material

Used for bacterial medium preparation and transformant screening

A501165

Agar

Suitable for molecular biology, for NZCYM agar base

Plate culture material

Used for bacterial medium preparation and clone culture

E119045

Ethidium bromide(EB)

Suitable for molecular biology, ≥95%(HPLC), powder

Nucleic acid dye

Used for agarose gel DNA visualization and PCR/digestion band observation

E274237

Ethidium bromide

0.625 mg/mLin H2O,BIOTECHNOLOGY GRADE

Nucleic acid dye solution

Used for DNA gel staining and cloning identification electrophoresis detection

E421031

Ethidium bromide(EB)

10mM in DMSO

Nucleic acid dye solution

Used for nucleic acid electrophoresis staining and DNA band observation

E109020

Ethidium bromide(EB)

≥95%(HPLC)

Nucleic acid dye

Used for electrophoretic visualization of PCR products and digestion fragments

R665518

RNase A

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

RNase A

Used in plasmid miniprep to remove RNA contamination and improve sequencing and digestion template quality

R128619

Ribonuclease A from bovine pancreas(DNase & Protease Free)

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

RNase A

Used for plasmid extraction, DNA purification, and RNA removal from nucleic acid samples

R128622

Ribonuclease A from bovine pancreas

EnzymoPure™, ≥2,500 units/mg dry weight

RNase A

Used for RNA degradation in plasmid extraction systems

R665521

Recombinant RNase A

DNase free, EnzymoPure™, Protease Free, ActiBioPure™, Bioactive, High Performance, Recombinant, ≥90%(SDS-PAGE), 100 mg/mL

Recombinant RNase A

Used for DNA purification, plasmid miniprep, and sequencing template preparation

A105483

Ampicillin Na

PharmPure™, USP

Antibiotic for resistance screening

Used for AmpR vector transformant screening and antibiotic plate preparation

A105484

Ampicillin Na

for cell culture

Antibiotic for resistance screening

Used for AmpR vector screening, liquid culture, and clone expansion

A301887

Ampicillin Solution

100mg/ml,sterile

Antibiotic screening solution

Used for AmpR cloning plates, liquid culture, and transformant expansion

A1509554

Ampicillin Sodium Solution (50 mg/ml, Sterile)

sterile-filtered,BioReagent,for cell culture,50 mg/ml

Antibiotic screening solution

Used for molecular cloning resistance screening and rapid medium preparation

K103025

Kanamycin sulfate

≥94%(N), from Streptomyces kanamyceticus

Antibiotic for resistance screening

Used for KanR vector screening, positive clone culture, and plasmid propagation

K103024

Kanamycin sulfate

PharmPure™, USP

Antibiotic for resistance screening

Used for KanR clone screening and bacterial culture

K103026

Kanamycin sulfate

analytical standard

Antibiotic for resistance screening

Used for screening system controls and medium preparation

K432461

Kanamycin sulfate from Streptomyces kanamyceticus

BioReagent, suitable for plant cell culture, powder

Antibiotic for resistance screening

Used for KanR vector screening and transformant culture

K1509560

Kanamycin Sulfate Solution (10 mg/mL, Sterile)

sterile-filtered,BioReagent,for cell culture,sterile,10 mg/ml

Antibiotic screening solution

Used for KanR clone screening and liquid culture

K1509563

Kanamycin Sulfate Solution (50 mg/mL, Sterile)

sterile-filtered,BioReagent,50 mg/ml

Antibiotic screening solution

Used for KanR plate and liquid medium preparation

K1509565

Kanamycin Sulfate Solution (100 mg/ml, Sterile)

sterile-filtered,BioReagent,for cell culture,100 mg/ml

Antibiotic screening solution

Used for KanR clone plate and liquid medium preparation

C100331

Chloramphenicol

Moligand™, ≥98%

Antibiotic for resistance screening

Used for CmR vectors, low-copy plasmids, and compatible plasmid system screening

C100332

Chloramphenicol

Moligand™, analytical standard

Antibiotic for resistance screening

Used for CmR screening systems and antibiotic medium preparation

C100334

Chloramphenicol

Moligand™, suitable for plant cell culture

Antibiotic for resistance screening

Used for CmR vector screening and cell culture-related screening systems

C100333

Chloramphenicol

PharmPure™, USP

Antibiotic for resistance screening

Used for CmR vector transformant screening

C1509569

Chloramphenicol Solution (34 mg/mL, Sterile)

sterile-filtered,BioReagent,for cell culture,sterile,34 mg/ml

Antibiotic screening solution

Used for CmR transformant screening and low-copy vector culture

T433240

Tetracycline hydrochloride

BioReagent, for cell culture, Powder

Antibiotic for resistance screening

Used for TetR vector transformant screening and specific cloning system culture

T105494

Tetracycline hydrochloride

analytical standard

Antibiotic for resistance screening

Used for TetR screening systems and resistance-condition validation

T140622

Tetracycline hydrochloride

≥96%

Antibiotic for resistance screening

Used for TetR-related clone screening and medium preparation

T1509585

Tetracycline Hydrochloride Solution (5 mg/mL, Sterile)

sterile-filtered,BioReagent,for cell culture,sterile,5 mg/ml

Antibiotic screening solution

Used for TetR plate and liquid medium preparation

I274316

Isopropyl-β-D-thiogalactopyranoside(IPTG)

Ultra pure, ≥99%

lac inducer

Used to induce lacZα expression in blue-white screening

I104812

Isopropyl beta-D-thiogalactoside(IPTG)

≥98%

lac inducer

Used for blue-white screening and IPTG induction systems

I301904

IPTG Solution

50mg/ml,sterile

lac inducer solution

Used for blue-white screening plate preparation and IPTG induction systems

I485502

Isopropyl β-D-thiogalactopyranoside solution

ReadyMade IPTG solution for Blue-white screening

Blue-white screening reagent

Used for TA cloning and lacZα complementation screening systems

X108836

5-Bromo-4-chloro-3-indolyl β-D-galactopyranoside (X-Gal)

≥98%

Blue-white colorimetric substrate

Used for lacZα complementation blue-white screening and preliminary distinction between empty vectors and candidate insert clones

X274331

X-Gal (5-bromo-4-chloro-3-indolyl-β-D-galactopyranoside)

Ultra pure

Blue-white colorimetric substrate

Used for blue-white screening plate preparation and positive candidate clone selection

X1520260

X-Gal Solution (20 mg/mL)

BioReagent

Blue-white colorimetric substrate solution

Used for rapid preparation of blue-white screening plates

B425669

5-Bromo-4-chloro-3-indolyl β-D-galactopyranoside

10mM in DMSO

X-Gal solution

Used for blue-white screening and lacZα color development

E778409

Endo-free Plasmid Maxi Kit

BioReagent, for DNA and RNA applications

Plasmid extraction product

Used for endotoxin-free plasmid preparation of confirmed clones, suitable for transfection and functional experiments

G665587

GoldHi EndoFree Plasmid Maxi Kit

 

Plasmid maxi-prep product

Used for large-scale preparation of low-endotoxin plasmid DNA

G665655

GoldVac EndoFree Plasmid Maxi Kit

 

Plasmid maxi-prep product

Used for vacuum-based preparation of endotoxin-free plasmid DNA

D1088768

Endo-free Plasmid Mini Kit

BioReagent, for DNA and RNA applications

Plasmid extraction product

Used for positive clone plasmid extraction, restriction identification, sequencing, and preparation before transfection

D598099

DNA gel Recovery Kit

 

DNA recovery product

Used for recovering vector backbones, inserts, and target bands from restriction digestion

D1373545

DNA Purification Kit

BioReagent, for DNA and RNA applications

DNA purification product

Used for PCR product purification, digestion product purification, and pre-ligation DNA purification

U1492721

Universal DNA Purification and Recovery Kit (Spin Column)

BioReagent

DNA purification and recovery product

Used for cloning fragment purification, gel recovery, and sequencing template preparation

A1521384

DNA Gel Extraction Kit

Suitable for molecular biology, BioReagent

Gel extraction product

Used for recovering vector digestion bands, inserts, and PCR products

S1456145

UltraBio™ Small DNA Clean Beads

BioReagent, DNase, RNase free, Suitable for molecular biology, for DNA and RNA applications

Small-fragment DNA purification material

Used for short inserts, primer-dimer removal, and small-fragment purification before cloning

 

7 Key Considerations in Experimental Design

7.1 Distinguishing Screening Results from Final Confirmation

(1) Antibiotic-positive

Antibiotic positivity only indicates the presence of a DNA molecule carrying a replicable or expressible resistance marker. It does not prove that the target insert is correctly inserted.

(2) PCR-positive

Colony PCR positivity indicates that the amplified region matches the expected result, but it cannot exclude mutations, rearrangements, or small deletions outside the PCR-amplified region.

(3) Correct restriction digestion

A correct restriction pattern indicates that the overall structure is generally consistent with the design, but it cannot detect all point mutations or small-fragment changes.

(4) Correct sequencing

Only after sequencing covers the junctions and the complete insert can the clone be used as the main basis for downstream expression, functional experiments, or plasmid library storage.

 

7.2 Selecting an Appropriate Confirmation Depth

(1) Routine storage clones

If the clone is used only as an intermediate storage vector, colony PCR and sequencing of key regions may be sufficient.

(2) Expression vectors

The ORF, tag junctions, promoter-proximal sequence, and termination region should be covered by sequencing to ensure a correct reading frame.

(3) Functional mutants

The mutation site, full-length ORF, and possible PCR-introduced mutation regions must all be confirmed. Multiple independent clones should be screened if necessary.

(4) Multi-fragment constructs

Every junction should be confirmed by sequencing. A single positive PCR result for one fragment cannot be used to judge the entire construct as correct.

 

8 Common Questions

8.1 How many colonies should be picked for molecular cloning screening?

For routine double-digestion single-insert cloning, 6–12 colonies can be screened first. For TA cloning, blunt-end cloning, multi-fragment assembly, or large-insert cloning, the number of screened colonies should be increased. If empty-vector background is high, the vector treatment and ligation system should be optimized first rather than simply increasing the number of colonies picked.

 

8.2 Does colony PCR positivity mean that the clone is definitely correct?

No. Colony PCR only proves that the region covered by the primers produces the expected amplification result. It cannot exclude internal insert mutations, incorrect orientation, local deletion, or abnormalities in other vector regions. Sequencing confirmation is still required before final use.

 

8.3 Is sequencing still necessary if restriction digestion is correct?

Yes. Restriction digestion can determine fragment size and partial structure, but it cannot detect single-base mutations, small deletions, or point mutations within the reading frame. Plasmids used for expression, mutant construction, or functional research should be confirmed by sequencing.

 

8.4 Are white colonies in blue-white screening always positive clones?

No. White colonies may result from disruption of lacZα by an insert, but may also arise from vector mutations, reading-frame abnormalities, incubation effects, or substrate diffusion. White colonies are only candidate clones and should subsequently be confirmed by colony PCR and sequencing.

 

8.5 What should be done if sequencing shows double peaks?

Double peaks commonly arise from mixed clones, impure templates, repetitive sequences, or local secondary structures. First, isolate a single colony again by streaking, then perform plasmid miniprep and sequencing. If local double peaks remain, the sequencing primer can be changed or the region can be confirmed by sequencing from the opposite direction.

 

8.6 Why is there no expression even though the plasmid construct is correct?

Possible causes include promoter issues, reading frame, tag position, host strain, codon usage, protein toxicity, folding, and induction conditions. Correct construct sequence only confirms that the DNA level is accurate. Expression results still require optimization of host system, induction conditions, solubility, and functional detection.

 

Molecular cloning screening and identification should proceed stepwise through “candidate clone acquisition—insert confirmation—structural confirmation—sequence confirmation—functional validation.” Antibiotic resistance, blue-white screening, colony PCR, and restriction digestion can improve screening efficiency. However, for clones intended for downstream expression, functional experiments, or long-term storage, the final basis should be sequence-confirmed plasmid identity.

 

For more related articles, please see below:

[1] Cloning PCR experiments that do not depend on the ligation reaction

[2] TA cloning of PCR products

[3] Comparison of Chloramphenicol and Common Antibiotic Resistance Selection Systems in Molecular Cloning

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. "Molecular Cloning Screening and Identification Technologies: Positive Clone Confirmation, Restriction Mapping, and Sequencing Validation" Aladdin Knowledge Base, updated Aug 10, 2026. https://www.aladdinsci.com/us_en/faqs/positive-clone-confirmation-restriction-mapping-and-sequencing-validation-en.html
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