Skin Heater Controller

#moorLAB-HEAT

Skin heater module offers flexible and reproducible skin heating protocols for flow/ oxygen response assessments

  • In a nutshell, moorFLPI-2 is the most user-friendly system for studying cerebral blood flow regulation in rodents.

    Chia-Yi (Alex) Kuan, MD, PhD
    Emory University School of Medicine

  • We have found Moor equipment to be extremely dependable and innovative.

    Dean L. Kellogg, Jr., MD, Ph.D
    University of Texas Health Science Center

  • Moor Instruments have consistently provided excellent help and support for my research.

    Kim Gooding, PhD
    University of Exeter Medical School

  • We can't recommend Moor instruments highly enough. The technology is at the cutting edge and the support second to none.

    Paul Sumners, PhD
    London South Bank University

  • It goes without saying that the company's imaging technology itself is superb!

    Gourav Banerjee
    Leeds Beckett University

  • I cannot rate the company or the staff highly enough.

    Jim House, PhD
    University of Portsmouth

  • I expect to be using Moor Instrument’s technology for many years to come!

    Faisel Khan, PhD
    Ninewells Hospital & Medical School

  • Laser Doppler Imager is a standard accurate method we now use in our cerebral blood flow and brain perfusion in our laboratory.

    Momoh A. Yakubu, PhD
    Texas Southern University

moorLAB-HEAT Skin Heat Controller: Precision for Vascular Research

Reliable and Reproducible Tissue Heating

Designed for research environments across the United States, the moorLAB-HEAT Skin Heat Controller delivers precise control of skin tissue heating up to 47°C, supporting highly reproducible vascular and tissue oxygenation studies.

Key advantages:

  • Dual-channel independent heating and monitoring
  • Customizable heating protocols to suit diverse research needs
  • Seamless integration with Doppler blood flow monitors and tissue oxygenation systems
  • Precise temperature control with adjustable rates from 0.01°C to 0.1°C per second

Built to meet the demands of advanced research settings, the moorLAB-HEAT enhances consistency and reliability across complex study protocols.

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The following products are AVAILABLE TO BUY ONLINE and work with the moorLAB-HEAT


There are numerous references where our skin heaters are cited. The list below is a small selection. Please contact us for reference lists on your chosen subject.


Brunt, V. E., Miner, J. A., Meendering, J. R., Kaplan, P. F., and Minson, C. T., (2012).
17-β estradiol and progesterone independently augment cutaneous thermal hyperemia but not reactive hyperemia.
Microcirculation. 2011 Jul; 18(5): 347–355.
Weblink

Brunt, V. E., Eymann, T. M., Francisco, M. A., Howard, M. J., and Minson, C. T., (2016).
Passive heat therapy improves cutaneous microvascular function in sedentary humans via improved nitric oxide-dependent dilation.
Journal of Applied Physiology Published 14 July 2016 Vol. no. , DOI: 10.1152/japplphysiol.00424.2016.
Weblink

Van Duijnhoven, N. T. L., Janssen, T. W. J., Green, D. J., Minson, C. T., Hopman, M. T. E., and Thijssen, D. H. J., (2009).
Effect of functional electrostimulation on impaired skin vasodilator responses to local heating in spinal cord injury.
Journal of applied physiology (Bethesda, Md.: 1985), 106(4), pp.1065–71.
Weblink

Dupont, J. J., Farquhar, W. B., Townsend, R. R., and Edwards, D. G., (2011).
Ascorbic acid or L-arginine improves cutaneous microvascular function in chronic kidney disease.
Journal of applied physiology (Bethesda, Md.: 1985), 111(6), pp.1561–7.
Weblink

Harvey, J. C., Roseguini, B. T., Goerger, B., Fallon, E. A., and Wong, B. J., (2016).
Acute thermotherapy prevents impairments in cutaneous microvascular function induced by a high fat meal.
Journal of Diabetes Research. Submission Accepted 5th July 2016.
Weblink

Heimhalt-El Hamriti, M., Schreiver, C., Noerenberg, A., Scheffler, J., Jacoby, U., Haffner, D., and Fischer, D.C., (2013).
Impaired skin microcirculation in paediatric patients with type 1 diabetes mellitus.
Cardiovascular diabetology, 12(1), p.115.
Weblink

Holowatz, L. a, Jennings, J. D., Lang, J. a, and Kenney, W. L., (2009).
Ketorolac alters blood flow during normothermia but not during hyperthermia in middle-aged human skin.
Journal of applied physiology (Bethesda, Md.: 1985), 107(4), pp.1121–7.
Weblink

Holowatz, L. a, and Kenney, W. L., (2011)a.
Acute localized administration of tetrahydrobiopterin and chronic systemic atorvastatin treatment restore cutaneous microvascular function in hypercholesterolaemic humans.
The Journal of physiology, 589(Pt 19), pp.4787–97.
Weblink

Holowatz, L. a, and Kenney, W. L., (2009).
Chronic low-dose aspirin therapy attenuates reflex cutaneous vasodilation in middle-aged humans.
Journal of applied physiology (Bethesda, Md.: 1985), 106(2), pp.500–5.
Weblink

Holowatz, L. a, and Kenney, W. L., (2011)b.
Oral atorvastatin therapy increases nitric oxide-dependent cutaneous vasodilation in humans by decreasing ascorbate-sensitive oxidants.
American journal of physiology. Regulatory, integrative and comparative physiology, 301(3), pp.R763–8.
Weblink

Holowatz, L. a, and Kenney, W. L., (2007).
Up-regulation of arginase activity contributes to attenuated reflex cutaneous vasodilatation in hypertensive humans.
The Journal of physiology, 581(Pt 2), pp.863–72.

Holowatz, L. a, Santhanam, L., Webb, A., Berkowitz, D. E., and Kenney, W. L., (2011).
Oral atorvastatin therapy restores cutaneous microvascular function by decreasing arginase activity in hypercholesterolaemic humans.
The Journal of physiology, 589(Pt 8), pp.2093–103.

Kuhlenhoelter, A. M., Kim, K., Neff, D., Nie, Y., Blaize, A. N., Wong, B. J., Kuang, S., Stout, J., Song, Q., Gavin, T. P., and Roseguini, B. T., (2016).
Heat therapy promotes the expression of angiogenic regulators in human skeletal muscle.
American Journal of Physiology - Regulatory, Integrative and Comparative Physiology. DOI:10.1152/ajpregu.00134.2016.

Lang, J. a., Holowatz, L. a., and Kenney, W. L., (2009).
Local tetrahydrobiopterin administration augments cutaneous vasoconstriction in aged humans.
The Journal of physiology, 587(Pt 15), pp.3967–74.

Nabavi Nouri, M., Ahmed, A., Bril, V., Orszag, A., Ng, E., Nwe, P., and Perkins, B.a., (2012).
Diabetic neuropathy and axon reflex-mediated neurogenic vasodilatation in type 1 diabetes.
PloS one, 7(4), p.e34807.

Petrofsky, J., Alshammari, F., Khowailed, I. A., Rodrigues, S., Potnis, P., Akerkar, S., Shah, J., Chung, G., and Save, R., (2013).
The effect of acute administration of vitamin D on micro vascular endothelial function in Caucasians and South Asian Indians.
Medical science monitor: international medical journal of experimental and clinical research, 19, pp.641–7.

Wong, B., and Minson, C., (2011).
Altered thermal hyperaemia in human skin by prior desensitization of neurokinin-1 receptors.
Experimental physiology, 96(6), pp.599–609.

Moor Instruments are committed to product development. We reserve the right to change the specifications below without notice.


Analogue outputs

Range: 0 – 5 V
Number of outputs: 2
Connectors: BNC sockets

Electrical safety classification

Class I (protectively earthed)

Electromagnetic compatibility

The moorLAB-HEAT complies with the requirements of EN 61326-1:2021 Electromagnetic compatibility of electrical equipment for measurement, control and laboratory use. The moorLAB-HEAT is suitable for use in a basic electromagnetic environment such as a laboratory. It is suitable for use in all locations other than those allocated in residential environments and those directly connected to a low voltage power supply network which supplies buildings used for domestic purposes.

Intended use

The moorLAB-HEAT skin heater and temperature monitor is intended for the localised heating of skin. The moorLAB-HEAT is intended for use in research and educational life science applications only. The moorLAB-HEAT is not a medical device and is not intended for use with human subjects for any of the following specific medical purposes:

  • Diagnosis, prevention, monitoring, prediction, prognosis, treatment or alleviation of disease.
  • Diagnosis, monitoring, treatment, alleviation of, or compensation for, an injury or disability.
  • Investigation, replacement or modification of the anatomy or of a physiological or pathological process or state.

Measured parameters

Temperature
Range: 5 – 50ºC
Accuracy: ±0.5ºC Sampling rate (all parameters) 40Hz

Method of cleaning

Wiping with a cloth soaked in isopropanol or a mixture of isopropanol and water.

Method of sterilisation

Not suitable for sterilisation

Mode of operation

Continuous

Number of measurement channels

2

Operating environment

Indoor laboratory use Temperature range: 15 – 30ºC
Atmospheric pressure: 75 – 106 kPa
Humidity: 0 – 75%, non-condensing
Maximum altitude: 2000 m
Pollution degree: 2

Power source

AC mains, 100-230V ±10%, 50-60Hz, 30 VA

Storage and transportation environment

Temperature range: 5 – 45ºC
Atmospheric pressure: 75 – 106 kPa
Humidity: 0 – 75%, non-condensing

Temperature control

Range: 20°C (or ambient) to 47°C
Resolution: 0.1°C

Weight

Under 3kg

Moor Instruments manufacture a wide range of probes designed to help you assess flow from almost any tissue. We are more than happy to advise on your particular application but hope too that the following general notes are useful.