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Effect of in-house transport on murine plasma corticosterone concentration and blood lymphocyte populations. Effects of shipping on the immune function in mice. Adaptation period of laboratory animals after transport: A review. Elsevier Science: Amsterdam, The Netherlands, 1994 Volume 12, pp. In Techniques in the Behavioral and Neural Sciences Huston, J.P., Ed. Neglected factors in pharmacology and neuroscience research.

The influence of transportation stress on selected nutritional parameters to establish the necessary minimum period for adaptation in rat feeding studies. Acclimatization of rats after ground transportation to a new animal facility. Effects of transfer from breeding to research facility on the welfare of rats. The impact of transportation on physiological and behavioral parameters in Wistar rats: Implications for acclimatization periods.

Guidance on the transport of laboratory animals. Establishing an appropriate period of acclimatization following transportation of laboratory animals. Guidelines for the Humane Transportation of Research Animals The National Academies Press: Washington, DC, USA, 2006.

Available online: (accessed on 5 November 2018).
#Logilink ua0072 driver windows 7 serial#
This development board had two microprocessors connected by serial communication.
#Logilink ua0072 driver windows 7 android#
For this purpose, the UDOO QUAD board (SECO USA Inc., Burlington, USA) was selected, which is a single board computer that can be equipped with Linux or Android operating systems. The central processing unit (CPU) was responsible for carrying out the capture and analysis of the data obtained from the sensors, processing the information, and communicating with the user. Legislation about Laboratory Animals Transport The first experimental results for capturing physiological and environmental parameters are shown and discussed.
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The integration of hardware (matrix of EPIC sensors, webcam, visible light and infrared sensors, accelerometer, humidity sensor, buzzer, and circuits for the voltage adaptation of inputs and signals) and software (sensor selection, signal conditioning, and acquisition) in a prototypical transport container is also described. Here, the design and control strategy for a 4 × 4 matrix of EPIC sensors is presented. We have already evaluated EPIC sensors for noninvasive breathing and heart monitoring in nonrestrained, nonsedated laboratory mice. This paper presents a new concept for a monitoring system for laboratory mouse transportation that incorporates a matrix of electric potential integrated circuit (EPIC) sensors for recording mouse physiological parameters (HR and BR) and other sensors for recording environmental parameters.
