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AwardedFind a Tender · award

Sequencing Technologies in Clinical Research

Buyer: THE UNIVERSITY OF BIRMINGHAM →

BuyerTHE UNIVERSITY OF BIRMINGHAM
StatusAwarded
DeadlineNot published
ValueValue not published
Published2 Dec 2024

What is being bought

Nanopore-based sequencing has become a highly effective next generation sequencing tool for biological research. Nanopore sequencing converts the electrical signals generated by a nucleotide strand (either DNA or RNA) passing through the nanopore into the base sequence. This methodology was exclusively commercialized by Oxford Nanopore Technologies, allowing sequencing of long reads with real-time sequence detection and analysis. It can also provide base modification detection. The technique has short sample preparation times with low instrument costs. The technology is a relatively new, rapidly expanding and groundbreaking, with ~79% of nanopore-related literature published within the last 5 years (determined from PUBMED publication stats). The design of nanopore devices has given this technology greater versatility/flexibility than other sequencing platforms. Allowing work to occur out in the field (using a portable sequencing device) or within a traditional lab research setting. A portable version of Nanopore have been used in randomised clinical trial to produce real-time near-complete genome sequencing of viruses isolated from clinical samples. This study suggests a future role of this portable technique in virus infection monitoring for early detection in diverse populations. As well as analysis of human samples and long-read sequencing of bacterial genomes. Prof Beggs research group has been as the forefront of the optimisation and deployment of Nanopore sequencing technologies in clinical research. This work that has been disseminated in multiple peer-reviewed publications (in 2018, 2020, 2021 and 2023). Beggs group have used this unique technology to address existing clinical questions such as "how we can improve HLA typing, by potentially reducing process time and cost", aiming to generate a rapid single-tube assay? Nanopore dependent-research (within Cancer and Genomic Sciences) and service support (from Genomics Birmingham) are essential for our work and supporting the sequencing of internal and external clients, now and moving forward. Illumina and Nanopore sequencing are currently used routinely within our labs. Both rapidly sequence DNA or RNA and produced rapid and highly accurate genomic, transcriptomic and epigenomic data.

Delivery location

UKG

Categories

Laboratory services 71900000Laboratory, optical and precision equipments (excl. glasses) 38000000

Lot details

Lot 1

Nanopore-based sequencing has become a highly effective next generation sequencing tool for biological research. Nanopore sequencing converts the electrical signals generated by a nucleotide strand (either DNA or RNA) passing through the nanopore into the base sequence. This methodology was exclusively commercialized by Oxford Nanopore Technologies, allowing sequencing of long reads with real-time sequence detection and analysis. It can also provide base modification detection. The technique has short sample preparation times with low instrument costs. The technology is a relatively new, rapidly expanding and groundbreaking, with ~79% of nanopore-related literature published within the last 5 years (determined from PUBMED publication stats). The design of nanopore devices has given this technology greater versatility/flexibility than other sequencing platforms. Allowing work to occur out in the field (using a portable sequencing device) or within a traditional lab research setting. A portable version of Nanopore have been used in randomised clinical trial to produce real-time near-complete genome sequencing of viruses isolated from clinical samples. This study suggests a future role of this portable technique in virus infection monitoring for early detection in diverse populations. As well as analysis of human samples and long-read sequencing of bacterial genomes. Prof Beggs research group has been as the forefront of the optimisation and deployment of Nanopore sequencing technologies in clinical research. This work that has been disseminated in multiple peer-reviewed publications (in 2018, 2020, 2021 and 2023). Beggs group have used this unique technology to address existing clinical questions such as "how we can improve HLA typing, by potentially reducing process time and cost", aiming to generate a rapid single-tube assay? Nanopore dependent-research (within Cancer and Genomic Sciences) and service support (from Genomics Birmingham) are essential for our work and supporting the sequencing of internal and external clients, now and moving forward. Illumina and Nanopore sequencing are currently used routinely within our labs. Both rapidly sequence DNA or RNA and produced rapid and highly accurate genomic, transcriptomic and epigenomic data. Below are some of the specific, unique properties of Oxford Nanopore technologies (using either the GridIon or PromethION 24 sequencers). 1. Nanopore devices (GridIon, MinION and PromethION 24) can sequence native DNA and RNA from fragment sizes of 20 bp to millions of bases for up to 5 independent MinION or Flongle Flow Cells or 24 independent PromethION Flow Cells, gaining coverage of ~30X per human genome per flow cell. 2. The allow direct, PCR-free sequencing of DNA and RNA 3. Providing standard (FASTQ and BAM) output files, the latter including epigenetic modifications for 5mC and 5hmC methylation apart from the standard bases. 4. They perform Real-time sequencing, with integrated compute enabling real-time basecalling including modifications (5mC and 5hmC, high accuracy basecalling model). 5. With real-time data analysis, e.g., aligning to reference directly from the device software. 6. Sequencing continues until a defined coverage is met and/or define a specific run time for your sequencing run. 7. Sequencing libraries can be used with any Oxford Nanopore device, allowing for instance to conduct library quality control on a lower capacity device prior to generating data on a high-capacity instrument. 8. There are rapid library preparation solutions (from 10 minutes) as well as automatable, high-throughput library preparation that can be performed on various liquid handlers from as little as 3.5 hours for 96 samples. 9. Post sequencing, the library can potentially be covered from the flow cell, and re-sequenced on another flow cell to increase output. Nanopore technology is the only supplier of these unique products, equipment and support services, we need to continue our specific work. Additional information: 750,000.00 per annum based over 4 years.

What is included

ItemCategoryQuantity
1Laboratory servicesNot published

Comparable-procurement analytics

Benchmarked against retained Find a Tender procedures with CPV division 71. The category anchor is Laboratory services (71900000); this is a deliberately broad market comparator. The comparison is shown at several levels rather than pretending one company or region is always the best benchmark.

Comparison setProceduresReported bids per procedureNamed award suppliersPrice evidence
Market: CPV division 7110,1165 median · 30 average (4,041 of 10,116 with a bid count)4.1 average (4,443 of 10,116 with named award suppliers)Not published
Same buyer0Not publishedNot publishedNot published
Delivery region: UKG4995 median · 68.3 average (195 of 499 with a bid count)7.1 average (222 of 499 with named award suppliers)Not published

“Reported bids” is an official aggregate, sometimes reported per lot; it is the closest available competition measure. “Named award suppliers” are winners, not all applicants.

Price-outcome signal

Not enough comparable procedures currently publish both a GBP tender value and a usable lowest-valid-bid value to calculate a responsible price-reduction benchmark. Tenderline deliberately does not infer a saving from named award suppliers or from missing award values.

Procurement strategy & market signals

Framework agreementNot published
Dynamic purchasing systemNot published
Competitive procurementNot published
Recurring requirementNot published
Procurement method rationaleNanopore technology is the only supplier of these unique products, equipment and support services, we need to continue our specific work. We require this VEAT to allow us access to these niche products/ services, so we can continue to support cutting-edge research.
Rationale classificationsThe products involved are manufactured purely for the purpose of research, experiment, study or development under the conditions stated in the directive
Special regimeNot published
Covered byNot published
Submission policyNot published
Selection criteriaNot published
Risk detailsNot published

Planning & early market engagement

BudgetNot published
No-engagement rationaleNot published
Planning documents0
Planning milestones0

No planning milestones published.

Related procurements

No linked framework, prior procurement or reprocurement published.

Awards

Contracts

038813-2024-1

Statusactive
Value£3,000,000

Documents & submission route

No documents are published in the current source record.

Source data inventory

Diagnostic view. “Not published” means this current release does not provide a value.

OCIDocds-h6vhtk-04c19f
Latest release ID038813-2024
Latest release timestampMon Dec 02 2024 16:27:25 GMT+0000 (Coordinated Universal Time)
Sourcefind-a-tender
Official notice URLNot published
Tender statuscomplete
Procurement methodlimited
Procurement method detailsNegotiated without publication of a contract notice
Main procurement categorygoods
Above thresholdNot published
Legal basis32014L0024
Tender period: startNot published
Tender period: endNot published
Expression of interest deadlineNot published
Enquiry deadlineNot published
Award period: startNot published
Award period: endNot published
Submission method detailsNot published
Submission languagesNot published
Electronic catalogue policyNot published
Total tender valueNot published
Tender lots in source1
Tender items in source1
Tender documents in source0
Awards in latest release1
Contracts in latest release1
Parties in latest release3

Notice history

DateEventReference
2 Dec 2024award, contract038813-2024

All source data

Unmodified official OCDS data retained by Tenderline for this procurement process.

Complete current OCDS release JSON
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Complete JSON history (1 releases)
2 Dec 2024 · 038813-2024 · award, contract
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  "description": "Nanopore-based sequencing has become a highly effective next generation sequencing tool for biological research. Nanopore sequencing converts the electrical signals generated by a nucleotide strand (either DNA or RNA) passing through the nanopore into the base sequence. \nThis methodology was exclusively commercialized by Oxford Nanopore Technologies, allowing sequencing of long reads with real-time sequence detection and analysis. It can also provide base modification detection. The technique has short sample preparation times with low instrument costs. \nThe technology is a relatively new, rapidly expanding and groundbreaking, with ~79% of nanopore-related literature published within the last 5 years (determined from PUBMED publication stats).\nThe design of nanopore devices has given this technology greater versatility/flexibility than other sequencing platforms. Allowing work to occur out in the field (using a portable sequencing device) or within a traditional lab research setting. A portable version of Nanopore have been used in randomised clinical trial to produce real-time near-complete genome sequencing of viruses isolated from clinical samples. This study suggests a future role of this portable technique in virus infection monitoring for early detection in diverse populations. As well as analysis of human samples and long-read sequencing of bacterial genomes.\nProf Beggs research group has been as the forefront of the optimisation and deployment of Nanopore sequencing technologies in clinical research. This work that has been disseminated in multiple peer-reviewed publications (in 2018, 2020, 2021 and 2023). Beggs group have used this unique technology to address existing clinical questions such as \"how we can improve HLA typing, by potentially reducing process time and cost\", aiming to generate a rapid single-tube assay? \nNanopore dependent-research (within Cancer and Genomic Sciences) and service support (from Genomics Birmingham) are essential for our work and supporting the sequencing of internal and external clients, now and moving forward. \nIllumina and Nanopore sequencing are currently used routinely within our labs. Both rapidly sequence DNA or RNA and produced rapid and highly accurate genomic, transcriptomic and epigenomic data. \nBelow are some of the specific, unique properties of Oxford Nanopore technologies (using either the GridIon or PromethION 24 sequencers). This summary was supplied by the manufacturer.\n1.\tNanopore devices (GridIon, MinION and PromethION 24) can sequence native DNA and RNA from fragment sizes of 20 bp to millions of bases for up to 5 independent MinION or Flongle Flow Cells or 24 independent PromethION Flow Cells, gaining coverage of ~30X per human genome per flow cell.\n2.\tThe allow direct, PCR-free sequencing of DNA and RNA \n3.\tProviding standard (FASTQ and BAM) output files, the latter including epigenetic modifications for 5mC and 5hmC methylation apart from the standard bases.\n4.\tThey perform Real-time sequencing, with integrated compute enabling real-time basecalling including modifications (5mC and 5hmC, high accuracy basecalling model).\n5.\tWith real-time data analysis, e.g., aligning to reference directly from the device software.\n6.\tSequencing continues until a defined coverage is met and/or define a specific run time for your sequencing run.\n7.\tSequencing libraries can be used with any Oxford Nanopore device, allowing for instance to conduct library quality control on a lower capacity device prior to generating data on a high-capacity instrument. \n8.\tThere are rapid library preparation solutions (from 10 minutes) as well as automatable, high-throughput library preparation that can be performed on various liquid handlers from as little as 3.5 hours for 96 samples.\n9.\t Post sequencing, the library can potentially be covered from the flow cell, and re-sequenced on another flow cell to increase output.\nNanopore technology is the only supplier of these unique products, equipment and support services, we need to continue our specific work. We require this VEAT to allow us access to these niche products/ services, so we can continue to support cutting-edge research. This will potentially lead to the development of new Genomics Birmingham Nanopore services for both research and clinical projects in the near future.",
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