PubMed Health⌕ Search

PubMed · 16623918

Development of non-agglutination microarray blood grouping.

Abstract

Microarray technology provides an opportunity to monitor multiple parameters simultaneously. High-throughput applications such as blood donation screening could greatly benefit from performing various tests on a single testing platform. Blood grouping represents one part of the donation testing complementing the screening for blood-borne pathogens. Blood group serology traditionally exploited agglutination as the detection method. In this investigation, we have adapted blood grouping reactions to a solid-phase microarray substrate in a non-agglutination reaction format as an initial step in the development of a combined microarray testing platform. We have investigated immobilization of proprietary antibodies on multiple surfaces and monitored their performance under various reaction conditions. For the first time, highly specific blood grouping has been achieved on a planar microarray using directly labelled erythrocytes or a secondary labelled reagent using fluorescent signal end point readout. We have also complemented microarray data with a label-free, surface plasmon resonance-based Biacore platform data and used the real time quantitative measurement to rank anti-A antibodies according to the strength of reaction with the immobilized synthetic blood group antigen A.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

J S Robb, D J Roy, P Ghazal, J Allan, J Petrik. 2006. Development of non-agglutination microarray blood grouping.. https://doi.org/10.1111/j.1365-3148.2005.00628.x

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

New technology for transfusion safety.

Hemovigilance programs from around the world document that the greatest risk to recipients of blood transfusion is human error, resulting in transfusion of the incorrect blood component. Errors in transfusion care have strong parallels with errors in medication administration. Errors often result from 'lapse' or 'slip' mistakes in which details of patient identification are overlooked. Three areas of transfusion are focal points for improved care: the labelling of the patient's pre-transfusion sample, the decision to transfuse and the final bedside check designed to prevent mis-transfusion. Both barcodes and radio-frequency identification technology, each ideally suited to matching alpha-numeric identifiers, are being implemented in order to improve performance sample labelling and the bedside check. The decision to transfuse should ultimately be enhanced through the use of nanotechnology sensors, computerised order entry and decision support systems. Obstacles to the deployment of new technology include resistance to change, confusion regarding the best technology, and uncertainty regarding the return-on-investment. By focusing on overall transfusion safety, deploying validated systems appropriate for both medication and blood administration, thoughtful integration of technology into bedside practice and demonstration of improved performance, the application of new technologies will improve care for patients in need of transfusion therapy.

Blood Grouping and Crossmatching↗

Blood audit evidenced-based cross-match requesting for lumbar spine surgery.

STUDY DESIGN: Complete audit cycle. OBJECTIVE: Radical overhaul of the blood ordering practices made by the spinal surgery department, in order to maximize the efficient use of blood products. SUMMARY OF BACKGROUND DATA: Spinal surgeons request blood-based on historical practice and not evidence. Blood is a scarce resource. Provision relies on voluntary donations from the general population. However, the donor population has been reduced because of the risks of variant Creutzfeldt-Jakob disease. Hence, the responsibility rests with clinicians to optimize their management of blood. METHODS: The spinal surgery department database was accessed to identify all patients who underwent elective lumbar spine operations (excluding deformity) during 2002 to 2003. These records were then cross-referenced with the blood transfusion department database. From the results the cross-match to transfusion (C:T) ratios and transfusion indexes (TI) were calculated for the procedures. A new tariff was agreed between the surgeons, anesthetists, and transfusion department. This was then audited prospectively. RESULTS: There were 664 cross-match requests made during 2002 to 2003, and only 40 U was transfused. This gave a C:T ratio of 16.6:1. The prospective audit resulted in only 58 U being cross-matched and 5 were transfused. This reduced the C:T ratio to 11.5:1. CONCLUSION: Implementing evidence based cross-match protocols can make significant savings in time, manpower, and money.

Blood Grouping and Crossmatching↗

Disposable integrated microfluidic biochip for blood typing by plastic microinjection moulding.

Blood typing is the most important test for both transfusion recipients and blood donors. In this paper, a low cost disposable blood typing integrated microfluidic biochip has been designed, fabricated and characterized. In the biochip, flow splitting microchannels, chaotic micromixers, reaction microchambers and detection microfilters are fully integrated. The loaded sample blood can be divided by 2 or 4 equal volumes through the flow splitting microchannel so that one can perform 2 or 4 blood agglutination tests in parallel. For the purpose of obtaining efficient reaction of agglutinogens on red blood cells (RBCs) and agglutinins in serum, we incorporated a serpentine laminating micromixer into the biochip, which combines two chaotic mixing mechanisms of splitting/recombination and chaotic advection. Relatively large area reaction microchambers were also introduced for the sake of keeping the mixture of the sample blood and serum during the reaction time before filtering. The gradually decreasing multi-step detection microfilters were designed in order to effectively filter the reacted agglutinated RBCs, which show the corresponding blood group. To achieve the cost-effectiveness of the microfluidic biochip for disposability, the biochip was realized by the microinjection moulding of COC (cyclic olefin copolymer) and thermal bonding of two injection moulded COC substrates in mass production with a total fabrication time of less than 20 min. Mould inserts of the biochip for the microinjection moulding were fabricated by SU-8 photolithography and the subsequent nickel electroplating process. Human blood groups of A, B and AB have been successfully determined with the naked eye, with 3 microl of the whole sample bloods, by means of the fabricated biochip within 3 min.

Blood Grouping and Crossmatching↗