» Articles » PMID: 26905719

Automated Gravimetric Calibration to Optimize the Accuracy and Precision of TECAN Freedom EVO Liquid Handler

Overview
Journal J Lab Autom
Date 2016 Feb 25
PMID 26905719
Citations 8
Authors
Affiliations
Soon will be listed here.
Abstract

High-throughput screening technologies are increasingly integrated into the formulation development process of biopharmaceuticals. The performance of liquid handling systems is dependent on the ability to deliver accurate and precise volumes of specific reagents to ensure process quality. We have developed an automated gravimetric calibration procedure to adjust the accuracy and evaluate the precision of the TECAN Freedom EVO liquid handling system. Volumes from 3 to 900 µL using calibrated syringes and fixed tips were evaluated with various solutions, including aluminum hydroxide and phosphate adjuvants, β-casein, sucrose, sodium chloride, and phosphate-buffered saline. The methodology to set up liquid class pipetting parameters for each solution was to split the process in three steps: (1) screening of predefined liquid class, including different pipetting parameters; (2) adjustment of accuracy parameters based on a calibration curve; and (3) confirmation of the adjustment. The run of appropriate pipetting scripts, data acquisition, and reports until the creation of a new liquid class in EVOware was fully automated. The calibration and confirmation of the robotic system was simple, efficient, and precise and could accelerate data acquisition for a wide range of biopharmaceutical applications.

Citing Articles

MULA, an affordable framework for multifunctional liquid automation in natural- and life sciences with a focus on hardware design, setup, modularity and validation.

Richter L, Buchele W, Imhof A, Kuhn F HardwareX. 2024; 20:e00581.

PMID: 39318972 PMC: 11421249. DOI: 10.1016/j.ohx.2024.e00581.


Improvement of bioanalytical parameters through automation: suitability of a hand-like robotic system.

Rupp N, Koppl M, Duben L, Ballardt L, Konig K, Zuchner T Anal Bioanal Chem. 2024; 416(26):5827-5839.

PMID: 39207494 DOI: 10.1007/s00216-024-05510-7.


High-Throughput Bacteriophage Testing with Potency Determination: Validation of an Automated Pipetting and Phage Drop-Off Method.

Dufour N, Delattre R, Debarbieux L Biomedicines. 2024; 12(2).

PMID: 38398068 PMC: 10886619. DOI: 10.3390/biomedicines12020466.


Microvalve Bioprinting of MSC-Chondrocyte Co-Cultures.

Dudman J, Marina Ferreira A, Gentile P, Wang X, Dalgarno K Cells. 2021; 10(12).

PMID: 34943837 PMC: 8699323. DOI: 10.3390/cells10123329.


Automation assisted anaerobic phenotyping for metabolic engineering.

Raj K, Venayak N, Diep P, Golla S, Yakunin A, Mahadevan R Microb Cell Fact. 2021; 20(1):184.

PMID: 34556155 PMC: 8461876. DOI: 10.1186/s12934-021-01675-3.


References
1.
Brewer J . (How) do aluminium adjuvants work?. Immunol Lett. 2005; 102(1):10-5. DOI: 10.1016/j.imlet.2005.08.002. View

2.
Ausar S, Chan J, Hoque W, James O, Jayasundara K, Harper K . Application of extrinsic fluorescence spectroscopy for the high throughput formulation screening of aluminum-adjuvanted vaccines. J Pharm Sci. 2010; 100(2):431-40. DOI: 10.1002/jps.22282. View

3.
Jully V, Moniotte N, Mathot F, Lemoine D, Preat V . Development of a high-throughput screening platform to study the adsorption of antigens onto aluminum-containing adjuvants. J Pharm Sci. 2014; 104(2):557-65. DOI: 10.1002/jps.24256. View

4.
Singh M, OHagan D . Recent advances in vaccine adjuvants. Pharm Res. 2002; 19(6):715-28. DOI: 10.1023/a:1016104910582. View

5.
Kong F, Yuan L, Zheng Y, Chen W . Automatic liquid handling for life science: a critical review of the current state of the art. J Lab Autom. 2012; 17(3):169-85. DOI: 10.1177/2211068211435302. View