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Microprocessor-controlled freezing device for cryopreservation of cell samples.
D Djurić1, V Drndarević, D Vujić
1Institute Vinca, Belgrade, Yugoslavia.
Bio-Medical Materials and Engineering
|November 26, 1999
Summary
A new automated device offers precise cryopreservation of blood mononuclear cells. This low-cost, compact system ensures high cell viability (95%) through controlled cooling to -100°C.
Area of Science:
- Biotechnology
- Cell Biology
- Cryobiology
Background:
- Cryopreservation of blood mononuclear cells is crucial for various research and clinical applications.
- Maintaining high cell viability post-thaw is essential for effective downstream use.
- Existing methods may lack precision, automation, or cost-effectiveness.
Purpose of the Study:
- To develop and evaluate a novel, microcontroller-operated device for automated cryopreservation of blood mononuclear cells.
- To achieve precise temperature control during the freezing process for optimal cell preservation.
- To assess the performance, efficiency, and cost-effectiveness of the developed device.
Main Methods:
- Development of a microcontroller-operated freezing device with automated, unattended operation.
- Implementation of a precise cooling protocol from room temperature to -100°C.
- Performance evaluation using physiological solution and cell suspension, with temperature accuracy monitored.
- Assessment of cell viability post-cryopreservation and measurement of liquid nitrogen consumption.
Main Results:
- The device achieved precise temperature control of cell suspension with accuracy better than +/- 0.1% across the entire temperature range.
- High cell viability of 95% was recovered from frozen blood mononuclear cell samples.
- Liquid nitrogen consumption was efficient at 1.51 per cryopreservation cycle.
- The device demonstrated a compact design, ease of operation, and availability of manual and semi-automatic modes.
Conclusions:
- The developed automated freezing device provides a highly accurate and efficient method for cryopreserving blood mononuclear cells.
- The system ensures excellent cell viability and low resource consumption, making it suitable for research and clinical settings.
- Its low cost, compact design, and user-friendly interface enhance its applicability in diverse laboratory environments.