We use cookies to improve your browsing experience and provide meaningful content. Read our cookie policy. Accept
  •  Customer Login
  • Register
  •  View Cart (0)
  •  Customer Login
  • Register
  •  View Cart (0)

Takara Bio
  • Products
  • Services & Support
  • Learning centers
  • APPLICATIONS
  • About
  • Contact Us

Clontech Takara Cellartis

Close

  • ‹ Back to Technical notes
  • Enhancing biomarker discovery with SMART-Seq Pro kit and ICELL8 cx system
  • ICELL8 cx system target enrichment for fusions
  • ICELL8 cx system reagent formulation and dispense guidelines
  • Improved detection of gene fusions, SNPs, and alternative splicing
  • Full-length transcriptome analysis
  • High-throughput single-cell ATAC-seq
  • Protocol: High-throughput single-cell ATAC-Seq
  • Single-cell identification with CellSelect Software
  • Single-cell analysis elucidates cardiomyocyte differentiation from iPSCs
  • Combined TCR profiling and 5’ DE in single cells
  • Automated, high-throughput TCR profiling
Overview ICELL8 technology overview
ICELL8 cell types isolated ICELL8 cell isolation list
Home › Learning centers › Automation systems › ICELL8 introduction › Technical notes › ICELL8 cx system target enrichment for fusions

ICELL8 introduction

  • ICELL8 cx applications
    • Archival nanowell sequencing
  • ICELL8 technology overview
  • ICELL8 cx technical specifications
  • ICELL8 technical specifications (original system)
  • ICELL8 system vs plate-seq
  • Webinars
    • Webinar: Leveraging single-cell transcriptomics and epigenomics for biomarker discovery
    • Advances in single-cell indexing registration
    • Single-Cell Workshop at 2020 NextGen Omics Series UK
    • The power of full-length scRNA-seq
    • Sign up: cardiomyocyte webinar
  • Technical notes
    • Enhancing biomarker discovery with SMART-Seq Pro kit and ICELL8 cx system
    • ICELL8 cx system target enrichment for fusions
    • ICELL8 cx system reagent formulation and dispense guidelines
    • Improved detection of gene fusions, SNPs, and alternative splicing
    • Full-length transcriptome analysis
    • High-throughput single-cell ATAC-seq
    • Protocol: High-throughput single-cell ATAC-Seq
    • Single-cell identification with CellSelect Software
    • Single-cell analysis elucidates cardiomyocyte differentiation from iPSCs
    • Combined TCR profiling and 5’ DE in single cells
    • Automated, high-throughput TCR profiling
  • Sample preparation protocols
    • Basic cell preparation for the ICELL8 cx system
    • Protocol: Nuclei isolation from mammalian cells
    • Protocol: Mouse cardiomyocyte preparation
    • Isolate cells of any size
  • Video resources
  • Citations
  • Posters
  • System & software notices
New products
Need help?
Contact Sales
Overview ICELL8 technology overview
ICELL8 cell types isolated ICELL8 cell isolation list
Tech Note

Target enrichment with the ICELL8 full-length workflow for superior fusion detection

Introduction

Under-expressed biological events can be difficult to identify, even when one is expecting to see them, but they are frequently the events researchers most want to find. Rare fusions and isoforms, for example, have applications in oncology research as they can relate to carcinogenesis (Yu et al. 2019, Mertens et al. 2015). The single-cell full-length transcriptome analysis (ICELL8 SMART-Seq) application for the ICELL8 cx Single Cell System gives scientists the means to detect these biological events (see tech note for highlights).

Despite this capability, with higher expressors consuming a larger percentage of the finite number of reads and a higher probability of being sequenced, some low-expressor targets of interest may remain undetected. Enrichment is commonly used to investigate specific nucleic acid sequences most relevant to your research, although it is not generally part of the standard ICELL8 full-length scRNA-seq workflow. We investigated how targeted enrichment can further improve detection with the full-length ICELL8 SMART-Seq application to rescue underrepresented regions from being lost in the crowd.

Experimental setup Results Conclusion Methods References

Experimental setup  

The experimental goal was to improve identification of certain important low-expressor fusions. Genes selected for enrichment included BCR and ABL1 (Grosveld, G. et al.), shown in Figure 1, as well as four other genes associated with fusions: PAX5, ETV6, EP300, and ZNF384. By incorporating target enrichment, detection for known regions was expected to improve.

ICELL8 target enrichment

Figure 1. The fusion event of BCR and ABL1 genes is depicted. Read counts can occur across the junction points, or spanning the regions at either side of these points. After performing the ICELL8 workflow, the library was enriched for BCR and ABL1 genes, as well as the BCR-ABL1 fusion prior to sequencing.

The ICELL8 cx Single Cell System was used to isolate 1,512 K562 cells, and the ICELL8 SMART-Seq workflow was implemented to generate an initial library which was then enriched for specific targets of interest prior to sequencing. K562 cells identified with the Philadelphia chromosome (Lozzio, C.B. and Lozzio, B.B., 1975) were used as a positive sample set for BCR-ABL1 fusions. The IDT xGen Lockdown kit was used for the target enrichment steps; though in theory, any enrichment method would be compatible with this approach. The designed probes consisted of 5' biotinylated oligos for hybridization capture enrichment in next-generation sequencing.

Both unenriched and enriched data were then analyzed together using Cogent NGS Analysis Pipeline to map reads.

Results  

From comparing the number of cells expressing the BCR-ABL1 fusion between enriched and unenriched data sets, it was clear that enrichment greatly improved the number of cells detected with fewer reads needed to find them. Out of 1,512 cells, only 40 were determined to express transcripts containing the BCR-ABL1 fusion even at a sequencing depth of greater than 1.6 M reads. In contrast, targeted enrichment of BCR and ABL1 from the same library determined that 264 cells expressed the BCR-ABL1 fusion at a depth of only 582 K reads. (Figure 2).

ICELL8 target enrichment

Figure 2. Targeted enrichment of BCR and ABL1 genes from a SMART-Seq workflow-generated library improves the identification of cells containing the BCR-ABL1 fusion.

By focusing on the BCR and ABL1 targets of interest, there was a >150-fold increase overall in junction and spanning reads detected (Table 1). Several fusions expected to be detected in K562, based on DepMap data (The Cancer Dependency Map Consortium, 2020), were identified using the SMART-Seq workflow. BCR-ABL1 was present in 7% of the cells identified with any fusion; following enrichment, 94% of the fusion-identified cells were the BCR-ABL1 fusion.

Original library BCR- and ABL1-enriched
BCR-ABL1 junction reads 13 1,735
BCR-ABL1 spanning reads 39 6,420
Total # cells with any fusion identified 590 280
# fusion-identified cells expressing BCR-ABL1 40 264

Table 1.Targeted enrichment of the original library led to a significant increase in both junction and spanning reads for BCR-ABL1.

Cogent NGS Analysis Pipeline was used to analyze the number of reads to each of the six targeted genes (BCR, ABL1, EP300, ETV6, PAX5, and ZNF384); the analysis revealed the percentage of reads for all six genes increased as a result of enrichment. In the case of the genes involved in the BCR-ABL1 fusion, detection was increased from ~0% to 6.18% of the total reads for BCR, and from ~%0 to 5.06% of the total reads for ABL1 (Table 2).

Original library xGen-enriched Original library xGen-enriched Original library xGen-enriched
Targeted gene BCR BCR ABL1 ABL1 Total % Total %
Percentage of reads to gene (out of total barcoded reads) 0.00% 6.18% 0.00% 5.06% 0.00% 11.24%

Table 2. Comparison of gene detection between unenriched original library set and same library enriched for the genes of primary interest, BCR and ABL1.

For the secondary genes targeted by enrichment, detection was also increased from ~0% in the original, unenriched library to a non-zero percentage in the enriched library (Table 3).

Original library xGen-enriched Original library xGen-enriched Original library xGen-enriched Original library xGen-enriched Original library xGen-enriched
Targeted gene EP300 EP300 ETV6 ETV6 PAX5 PAX5 ZNF384 ZNF384 Total % Total %
Percentage of reads to gene (out of total barcoded reads) 0.00% 5.01% 0.00% 1.60% 0.00% 0.05% 0.00% 22.5% 0.00% 29.16%

Table 3. Comparison of K562 gene detection between unenriched original library set and same library enriched for the four secondary genes targeted for enrichment.

Overall, 40% of the total reads were attributed to the six targeted genes, compared to ~0% for the original, unenriched library data for the same targets (Table 4).

Original library xGen-enriched
Percentage of reads to targeted genes, aggregate (out of total barcoded reads) 0.00% 40.4%

Table 4. Comparison of gene detection between unenriched original library set and same library enriched using the protocol for all six targeted genes (Tables 2 and 3).

HPRT1 and GAPDH were chosen as representative of non-targeted genes, and,as expected, the percentage of reads for non-targeted genes diminished as more reads were distributed to the six targeted genes (Table 5).

Original library xGen-enriched Original library xGen-enriched
Non-targeted genes HPRT1 HPRT1 GAPDH GAPDH
Percentage of reads to gene (out of total barcoded reads) 0.02% 0.01% 0.20% 0.10%

Table 5. Comparison of K562 gene detection for non-targeted genes between unenriched original library set and enriched. The percentage for each gene not targeted for enrichment decreased by half after the protocol.

Conclusion  

When there is interest in rare events and specific regions are being investigated, target enrichment can be a very powerful method to boost detection. While the process does introduce additional steps and time to the ICELL8 scRNA-seq workflow, the benefits are demonstrated by the results. The IDT xGen Lockdown protocol worked well in this experiment, though it is expected that other enrichment kits would also provide similar benefits. The ICELL8 SMART-Seq application coupled with target enrichment looks to greatly improve detection for important, low-expressor fusions.

Methods  

Initial library preparation from single cells

An initial library from K562 cells was generated by following the SMART-Seq ICELL8 cx Application Kit User Manual using the ICELL8 cx system. Libraries from single cells were pooled and purified. The library profile and yield were quantified using Agilent High Sensitivity DNA Reagents (Agilent, Cat. # 5067-4627).

Target capture

Target enrichment was performed using the xGen Lockdown protocol available from IDT, which included custom-designed probes and reagent kits. Probes consisting of 5' biotinylated oligos for genes BCR, ABL1, PAX5, ETV6, EP300, and ZNF384 were designed following recommendations by the manufacturer. The length of each probe was 120 bases and tiled at 1x to cover the fusion junction as well as 1 kb on either side (i.e., both 5' and 3' gene partners). A total of 106 probes were synthesized. Targeted enrichment from the initial library was performed according to the instructions of the xGen Hybridization and Wash Kit (IDT, Cat. # 1080557) and xGen Universal Blockers-NXT Mix (IDT, Cat. # 1079584). The captured library was amplified, purified, and validated using Agilent High Sensitivity DNA Reagents.

For this experiment, enrichment contributed additional costs of less than $0.10 per cell before sequencing (at current list price for necessary xGen Lockdown reagents and probes). With 264 fusions identified, this is equivalent to roughly an additional $0.40 per fusion for this particular experiment.

Illumina sequencing

Quantified unenriched and enriched post-PCR libraries were loaded onto an Illumina NextSeq® 550 Sequencing System using a NextSeq 500/550 High-Output Kit v2.5 (Illumina, cat. # 20024907) and a NextSeq 500/550 Mid-Output Kit v2.5 (Illumina, cat. # 20024907), respectively, for sequencing. Libraries were loaded following loading concentrations recommended by Illumina.

Data analysis

Both unenriched and enriched data were then analyzed using Cogent NGS Analysis Pipeline to map reads. Fusion detection was then performed using the STAR-Fusion pipeline from the Haas et al. 2017 publication.

  • In the second step, STAR-Fusion interpreted the reads: discordant reads became spanning reads and split reads became junction reads. SMART-Seq full-length chemistry used paired-end reads, so both junction and spanning reads were captured.
  • In the final step, Haas et al. applied a STAR-Fusion filter to remove sequence-similar gene pairs and promiscuous fusion partners. While this is a good approach for bulk analysis, for this single-cell experiment, we instead used a relaxed setting that did not apply these filters.

Refer to Figure 1 of Haas et al., 2017 for more details and visualization of this pipeline.

References  

The Cancer Dependency Map Consortium. "K562," DepMap Portal, accessed May 26, 2020, https://depmap.org/portal/cell_line/ACH-000551?tab=fusion.

Grosveld, G. et al., The chronic myelocytic cell line K562 contains a breakpoint in bcr and produces a chimeric bcr/c-abl transcript. Mol. Cell. Biol. (1986).

Haas, B. et al., STAR-Fusion: Fast and Accurate Fusion Transcript Detection from RNA-Seq. bioRxiv (2017).

Lozzio, C. B. & Lozzio, B. B. Human chronic myelogenous leukemia cell line with positive Philadelphia chromosome. Blood (1975).

Mertens, F. et al., The emerging complexity of gene fusions in cancer. Nature Reviews Cancer (2015).

Yu, Y. et al., Identification of recurrent fusion genes across multiple cancer types. Sci. Rep. 9, 1074 (2019).

Related Products

Cat. # Product Size Price License Quantity Details
640189 ICELL8® cx Single-Cell System JPN Each Inquire for Quotation

License Statement

ID Number  
329 This Product is protected by one or more patents from the family consisting of:US8252581, CA2677833, US9132427, US9951381, US11643681, and any corresponding patents, divisionals, continuations, patent applications and foreign filings sharing common priority with the same family.
*

The ICELL8 cx Single-Cell System JPN is an advanced integrated automation platform that combines the power of imaging with the isolation of single cells in 5,184-nanowell chips. This open-platform, high-throughput system is prevalidated for use with several NGS applications, and also provides the flexibility to enable users to develop applications of their choice.

Notice to purchaser

Our products are to be used for Research Use Only. They may not be used for any other purpose, including, but not limited to, use in humans, therapeutic or diagnostic use, or commercial use of any kind. Our products may not be transferred to third parties, resold, modified for resale, or used to manufacture commercial products or to provide a service to third parties without our prior written approval.

Documents Components

*You must be logged in to a Purchasing Account in order to purchase these products online, since the purchase of these products may be restricted depending on your account type. Researchers at not-for-profit accounts receive a limited use license with their purchase of the product. Researchers at for-profit accounts must obtain a license prior to purchase. For details please contact licensing@takarabio.com.


More NGS solutions for oncology research

Biomarker discovery with RNA-seq

Learn how our products can help you uncover biomarkers from a broad range of sample types, including FFPE RNA, cell-free RNA, and extracellular vesicles.

ICELL8 cx system target enrichment for fusions

Learn more about improving rare isoform and fusion detection based on the SMART-Seq ICELL8 cx application.

Total RNA-seq from human biofluids and EVs

The SMARTer Stranded Total RNA-Seq Kit v2 - Pico Input Mammalian provides a robust new method for RNA-seq studies from low-input biofluid samples.

Improved detection of gene fusions, SNPs, and alternative splicing

Learn how the ICELL8 cx SMART-Seq protocol generates full-length scRNA-seq libraries that enable deeper analyses—such as detection of gene fusions, SNPs, and alternative splicing—than 3' DE on droplet-based systems.

Single cancer cell analysis

The accurate capture and quantification of RNA transcript variations from single tumor cells would allow researchers to gain insights into tumor complexity and ultimately help in the development of tailored anticancer therapies.

Takara Bio USA, Inc.
United States/Canada: +1.800.662.2566 • Asia Pacific: +1.650.919.7300 • Europe: +33.(0)1.3904.6880 • Japan: +81.(0)77.565.6999
FOR RESEARCH USE ONLY. NOT FOR USE IN DIAGNOSTIC PROCEDURES. © 2025 Takara Bio Inc. All Rights Reserved. All trademarks are the property of Takara Bio Inc. or its affiliate(s) in the U.S. and/or other countries or their respective owners. Certain trademarks may not be registered in all jurisdictions. Additional product, intellectual property, and restricted use information is available at takarabio.com.

Takara Bio

Takara Bio USA, Inc. provides kits, reagents, instruments, and services that help researchers explore questions about gene discovery, regulation, and function. As a member of the Takara Bio Group, Takara Bio USA is part of a company that holds a leadership position in the global market and is committed to improving the human condition through biotechnology. Our mission is to develop high-quality innovative tools and services to accelerate discovery.

FOR RESEARCH USE ONLY. NOT FOR USE IN DIAGNOSTIC PROCEDURES (EXCEPT AS SPECIFICALLY NOTED).

Support
  • Contact us
  • Technical support
  • Customer service
  • Shipping & delivery
  • Sales
  • Feedback
Products
  • New products
  • Special offers
  • Instrument & reagent services
Learning centers
  • NGS
  • Gene function
  • Stem cell research
  • Protein research
  • PCR
  • Cloning
  • Nucleic acid purification
About
  • Our brands
  • Careers
  • Events
  • Blog
  • Need help?
  • Announcements
  • Quality and compliance
  • That's Good Science!
Facebook Twitter  LinkedIn

logo strip white

©2025 Takara Bio Inc. All Rights Reserved.

Region - North America Privacy Policy Terms and Conditions Terms of Use

Top



  • COVID-19 research
  • Viral detection with qPCR
  • SARS-CoV-2 pseudovirus
  • Human ACE2 stable cell line
  • Viral RNA isolation
  • Viral and host sequencing
  • Vaccine development
  • CRISPR screening
  • Drug discovery
  • Immune profiling
  • Publications
  • Next-generation sequencing
  • Spatial omics
  • RNA-seq
  • DNA-seq
  • Single-cell NGS automation
  • Reproductive health
  • Bioinformatics tools
  • Immune profiling
  • Real-time PCR
  • Great value master mixes
  • Signature enzymes
  • High-throughput real-time PCR solutions
  • Detection assays
  • References, standards, and buffers
  • Stem cell research
  • Media, differentiation kits, and matrices
  • Stem cells and stem cell-derived cells
  • mRNA and cDNA synthesis
  • In vitro transcription
  • cDNA synthesis kits
  • Reverse transcriptases
  • RACE kits
  • Purified cDNA & genomic DNA
  • Purified total RNA and mRNA
  • PCR
  • Most popular polymerases
  • High-yield PCR
  • High-fidelity PCR
  • GC rich PCR
  • PCR master mixes
  • Cloning
  • In-Fusion seamless cloning
  • Competent cells
  • Ligation kits
  • Restriction enzymes
  • Nucleic acid purification
  • Automated platforms
  • Plasmid purification kits
  • Genomic DNA purification kits
  • DNA cleanup kits
  • RNA purification kits
  • Gene function
  • Gene editing
  • Viral transduction
  • Fluorescent proteins
  • T-cell transduction and culture
  • Tet-inducible expression systems
  • Transfection reagents
  • Cell biology assays
  • Protein research
  • Purification products
  • Two-hybrid and one-hybrid systems
  • Mass spectrometry reagents
  • Antibodies and ELISAs
  • Primary antibodies and ELISAs by research area
  • Fluorescent protein antibodies
  • New products
  • Special offers
  • OEM
  • Portfolio
  • Process
  • Facilities
  • Request samples
  • FAQs
  • Instrument services
  • Apollo services
  • ICELL8 services
  • SmartChip ND system services
  • Gene and cell therapy manufacturing services
  • Services
  • Facilities
  • Our process
  • Resources
  • Customer service
  • Sales
  • Make an appointment with your sales rep
  • Shipping & delivery
  • Technical support
  • Feedback
  • Online tools
  • GoStix Plus FAQs
  • Partnering & Licensing
  • Vector information
  • Vector document overview
  • Vector document finder
Takara Bio's award-winning GMP-compliant manufacturing facility in Kusatsu, Shiga, Japan.

Partner with Takara Bio!

Takara Bio is proud to offer GMP-grade manufacturing capabilities at our award-winning facility in Kusatsu, Shiga, Japan.

  • Automation systems
  • Shasta Single Cell System introduction
  • SmartChip Real-Time PCR System introduction
  • ICELL8 introduction
  • Next-generation sequencing
  • RNA-seq
  • Technical notes
  • Technology and application overviews
  • FAQs and tips
  • DNA-seq protocols
  • Bioinformatics resources
  • Webinars
  • Spatial biology
  • Real-time PCR
  • Download qPCR resources
  • Overview
  • Reaction size guidelines
  • Guest webinar: extraction-free SARS-CoV-2 detection
  • Technical notes
  • Nucleic acid purification
  • Nucleic acid extraction webinars
  • Product demonstration videos
  • Product finder
  • Plasmid kit selection guide
  • RNA purification kit finder
  • mRNA and cDNA synthesis
  • mRNA synthesis
  • cDNA synthesis
  • PCR
  • Citations
  • PCR selection guide
  • Technical notes
  • FAQ
  • Cloning
  • Automated In-Fusion Cloning
  • In-Fusion Cloning general information
  • Primer design and other tools
  • In‑Fusion Cloning tips and FAQs
  • Applications and technical notes
  • Stem cell research
  • Overview
  • Protocols
  • Technical notes
  • Gene function
  • Gene editing
  • Viral transduction
  • T-cell transduction and culture
  • Inducible systems
  • Cell biology assays
  • Protein research
  • Capturem technology
  • Antibody immunoprecipitation
  • His-tag purification
  • Other tag purification
  • Expression systems
  • Antibodies and ELISA
  • Molecular diagnostics
  • Interview: adapting to change with Takara Bio
  • Applications
  • Solutions
  • Partnering
  • Contact us
  • mRNA and protein therapeutics
  • Characterizing the viral genome and host response
  • Identifying and cloning protein targets
  • Expressing and purifying protein targets
  • Immunizing mice and optimizing vaccines
  • Pathogen detection
  • Sample prep
  • Detection methods
  • Identification and characterization
  • SARS-CoV-2
  • Antibiotic-resistant bacteria
  • Food crop pathogens
  • Waterborne disease outbreaks
  • Viral-induced cancer
  • Immunotherapy research
  • T-cell therapy
  • Antibody therapeutics
  • T-cell receptor profiling
  • TBI initiatives in cancer therapy
  • Cancer research
  • Kickstart your cancer research with long-read sequencing
  • Sample prep from FFPE tissue
  • Sample prep from plasma
  • Cancer biomarker quantification
  • Single cancer cell analysis
  • Cancer transcriptome analysis
  • Cancer genomics and epigenomics
  • HLA typing in cancer
  • Gene editing for cancer therapy/drug discovery
  • Alzheimer's disease research
  • Antibody engineering
  • Sample prep from FFPE tissue
  • Single-cell sequencing
  • Reproductive health technologies
  • Embgenix FAQs
  • Preimplantation genetic testing
  • ESM partnership program
  • ESM Collection Kit forms
  • Infectious diseases
  • Develop vaccines for HIV
Create a web account with us

Log in to enjoy additional benefits

Want to save this information?

An account with takarabio.com entitles you to extra features such as:

•  Creating and saving shopping carts
•  Keeping a list of your products of interest
•  Saving all of your favorite pages on the site*
•  Accessing restricted content

*Save favorites by clicking the star () in the top right corner of each page while you're logged in.

Create an account to get started

  • BioView blog
  • Automation
  • Cancer research
  • Career spotlights
  • Current events
  • Customer stories
  • Gene editing
  • Research news
  • Single-cell analysis
  • Stem cell research
  • Tips and troubleshooting
  • Women in STEM
  • That's Good Support!
  • About our blog
  • That's Good Science!
  • SMART-Seq Pro Biomarker Discovery Contest
  • DNA extraction educational activity
  • That's Good Science Podcast
  • Season one
  • Season two
  • Season three
  • Our brands
  • Our history
  • In the news
  • Events
  • Biomarker discovery events
  • Calendar
  • Conferences
  • Speak with us
  • Careers
  • Company benefits
  • Trademarks
  • License statements
  • Quality statement
  • HQ-grade reagents
  • International Contacts by Region
  • United States and Canada
  • China
  • Japan
  • Korea
  • Europe
  • India
  • Affiliates & distributors
  • Need help?
  • Privacy request
  • Website FAQs

That's GOOD Science!

What does it take to generate good science? Careful planning, dedicated researchers, and the right tools. At Takara Bio, we thoughtfully develop exceptional products to tackle your most challenging research problems, and have an expert team of technical support professionals to help you along the way, all at superior value.

Explore what makes good science possible

 Customer Login
 View Cart (0)
Takara Bio
  • Home
  • Products
  • Services & Support
  • Learning centers
  • APPLICATIONS
  • About
  • Contact Us
  •  Customer Login
  • Register
  •  View Cart (0)

Takara Bio USA, Inc. provides kits, reagents, instruments, and services that help researchers explore questions about gene discovery, regulation, and function. As a member of the Takara Bio Group, Takara Bio USA is part of a company that holds a leadership position in the global market and is committed to improving the human condition through biotechnology. Our mission is to develop high-quality innovative tools and services to accelerate discovery.

FOR RESEARCH USE ONLY. NOT FOR USE IN DIAGNOSTIC PROCEDURES (EXCEPT AS SPECIFICALLY NOTED).

Clontech, TaKaRa, cellartis

  • Products
  • COVID-19 research
  • Next-generation sequencing
  • Real-time PCR
  • Stem cell research
  • mRNA and cDNA synthesis
  • PCR
  • Cloning
  • Nucleic acid purification
  • Gene function
  • Protein research
  • Antibodies and ELISA
  • New products
  • Special offers
  • COVID-19 research
  • Viral detection with qPCR
  • SARS-CoV-2 pseudovirus
  • Human ACE2 stable cell line
  • Viral RNA isolation
  • Viral and host sequencing
  • Vaccine development
  • CRISPR screening
  • Drug discovery
  • Immune profiling
  • Publications
  • Next-generation sequencing
  • Spatial omics
  • RNA-seq
  • DNA-seq
  • Single-cell NGS automation
  • Reproductive health
  • Bioinformatics tools
  • Immune profiling
  • Real-time PCR
  • Great value master mixes
  • Signature enzymes
  • High-throughput real-time PCR solutions
  • Detection assays
  • References, standards, and buffers
  • Stem cell research
  • Media, differentiation kits, and matrices
  • Stem cells and stem cell-derived cells
  • mRNA and cDNA synthesis
  • In vitro transcription
  • cDNA synthesis kits
  • Reverse transcriptases
  • RACE kits
  • Purified cDNA & genomic DNA
  • Purified total RNA and mRNA
  • PCR
  • Most popular polymerases
  • High-yield PCR
  • High-fidelity PCR
  • GC rich PCR
  • PCR master mixes
  • Cloning
  • In-Fusion seamless cloning
  • Competent cells
  • Ligation kits
  • Restriction enzymes
  • Nucleic acid purification
  • Automated platforms
  • Plasmid purification kits
  • Genomic DNA purification kits
  • DNA cleanup kits
  • RNA purification kits
  • Gene function
  • Gene editing
  • Viral transduction
  • Fluorescent proteins
  • T-cell transduction and culture
  • Tet-inducible expression systems
  • Transfection reagents
  • Cell biology assays
  • Protein research
  • Purification products
  • Two-hybrid and one-hybrid systems
  • Mass spectrometry reagents
  • Antibodies and ELISA
  • Primary antibodies and ELISAs by research area
  • Fluorescent protein antibodies
  • Services & Support
  • OEM
  • Instrument services
  • Gene and cell therapy manufacturing
  • Customer service
  • Sales
  • Shipping & delivery
  • Technical support
  • Feedback
  • Online tools
  • Partnering & Licensing
  • Vector information
  • OEM
  • Portfolio
  • Process
  • Facilities
  • Request samples
  • FAQs
  • Instrument services
  • Apollo services
  • ICELL8 services
  • SmartChip ND system services
  • Gene and cell therapy manufacturing
  • Services
  • Facilities
  • Our process
  • Resources
  • Sales
  • Make an appointment with your sales rep
  • Online tools
  • GoStix Plus FAQs
  • Vector information
  • Vector document overview
  • Vector document finder
  • Learning centers
  • Automation systems
  • Next-generation sequencing
  • Spatial biology
  • Real-time PCR
  • Nucleic acid purification
  • mRNA and cDNA synthesis
  • PCR
  • Cloning
  • Stem cell research
  • Gene function
  • Protein research
  • Antibodies and ELISA
  • Automation systems
  • Shasta Single Cell System introduction
  • SmartChip Real-Time PCR System introduction
  • ICELL8 introduction
  • Next-generation sequencing
  • RNA-seq
  • Technical notes
  • Technology and application overviews
  • FAQs and tips
  • DNA-seq protocols
  • Bioinformatics resources
  • Webinars
  • Real-time PCR
  • Download qPCR resources
  • Overview
  • Reaction size guidelines
  • Guest webinar: extraction-free SARS-CoV-2 detection
  • Technical notes
  • Nucleic acid purification
  • Nucleic acid extraction webinars
  • Product demonstration videos
  • Product finder
  • Plasmid kit selection guide
  • RNA purification kit finder
  • mRNA and cDNA synthesis
  • mRNA synthesis
  • cDNA synthesis
  • PCR
  • Citations
  • PCR selection guide
  • Technical notes
  • FAQ
  • Cloning
  • Automated In-Fusion Cloning
  • In-Fusion Cloning general information
  • Primer design and other tools
  • In‑Fusion Cloning tips and FAQs
  • Applications and technical notes
  • Stem cell research
  • Overview
  • Protocols
  • Technical notes
  • Gene function
  • Gene editing
  • Viral transduction
  • T-cell transduction and culture
  • Inducible systems
  • Cell biology assays
  • Protein research
  • Capturem technology
  • Antibody immunoprecipitation
  • His-tag purification
  • Other tag purification
  • Expression systems
  • APPLICATIONS
  • Molecular diagnostics
  • mRNA and protein therapeutics
  • Pathogen detection
  • Immunotherapy research
  • Cancer research
  • Alzheimer's disease research
  • Reproductive health technologies
  • Infectious diseases
  • Molecular diagnostics
  • Interview: adapting to change with Takara Bio
  • Applications
  • Solutions
  • Partnering
  • Contact us
  • mRNA and protein therapeutics
  • Characterizing the viral genome and host response
  • Identifying and cloning protein targets
  • Expressing and purifying protein targets
  • Immunizing mice and optimizing vaccines
  • Pathogen detection
  • Sample prep
  • Detection methods
  • Identification and characterization
  • SARS-CoV-2
  • Antibiotic-resistant bacteria
  • Food crop pathogens
  • Waterborne disease outbreaks
  • Viral-induced cancer
  • Immunotherapy research
  • T-cell therapy
  • Antibody therapeutics
  • T-cell receptor profiling
  • TBI initiatives in cancer therapy
  • Cancer research
  • Kickstart your cancer research with long-read sequencing
  • Sample prep from FFPE tissue
  • Sample prep from plasma
  • Cancer biomarker quantification
  • Single cancer cell analysis
  • Cancer transcriptome analysis
  • Cancer genomics and epigenomics
  • HLA typing in cancer
  • Gene editing for cancer therapy/drug discovery
  • Alzheimer's disease research
  • Antibody engineering
  • Sample prep from FFPE tissue
  • Single-cell sequencing
  • Reproductive health technologies
  • Embgenix FAQs
  • Preimplantation genetic testing
  • ESM partnership program
  • ESM Collection Kit forms
  • Infectious diseases
  • Develop vaccines for HIV
  • About
  • BioView blog
  • That's Good Science!
  • Our brands
  • Our history
  • In the news
  • Events
  • Careers
  • Trademarks
  • License statements
  • Quality and compliance
  • HQ-grade reagents
  • International Contacts by Region
  • Need help?
  • Website FAQs
  • BioView blog
  • Automation
  • Cancer research
  • Career spotlights
  • Current events
  • Customer stories
  • Gene editing
  • Research news
  • Single-cell analysis
  • Stem cell research
  • Tips and troubleshooting
  • Women in STEM
  • That's Good Support!
  • About our blog
  • That's Good Science!
  • SMART-Seq Pro Biomarker Discovery Contest
  • DNA extraction educational activity
  • That's Good Science Podcast
  • Season one
  • Season two
  • Season three
  • Events
  • Biomarker discovery events
  • Calendar
  • Conferences
  • Speak with us
  • Careers
  • Company benefits
  • International Contacts by Region
  • United States and Canada
  • China
  • Japan
  • Korea
  • Europe
  • India
  • Affiliates & distributors
  • Need help?
  • Privacy request
Takara Bio
  • Products
  • Services & Support
  • Learning centers
  • APPLICATIONS
  • About
  • Contact Us