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Method Article

Long-term Blood Pressure Measurement in Freely Moving Mice Using Telemetry

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DOI:

10.3791/53991

May 17th, 2016

In This Article

Summary

The goal of this protocol is to assess systemic blood pressure in conscious freely moving mice using implantable radio-telemetry devices.

Abstract

During the development of new vasoactive agents, arterial blood pressure monitoring is crucial for evaluating the efficacy of the new proposed drugs. Indeed, research focusing on the discovery of new potential therapeutic targets using genetically altered mice requires a reliable, long-term assessment of the systemic arterial pressure variation. Currently, the gold standard for obtaining long-term measurements of blood pressure in ambulatory mice uses implantable radio-transmitters, which require artery cannulation. This technique eliminates the need for tethering, restraining, or anesthetizing the animals which introduce stress and artifacts during data sampling. However, arterial blood pressure monitoring in mice via catheterization can be rather challenging due to the small size of the arteries. Here we present a step-by-step guide to illustrate the crucial key passages for a successful subcutaneous implantation of radio-transmitters and carotid artery cannulation in mice. We also include examples of long-term blood pressure activity taken from freely moving mice after a period of post-surgery recovery. Following this procedure will allow reliable direct blood pressure recordings from multiple animals simultaneously.

Introduction

Hypertension is one of the major risk factors for cardiovascular diseases, arguably it is a major public health issue both in developed and developing countries1. Several animal models of experimental hypertension have been developed to mimic hypertensive responses like those observed in humans2. Among others, the ambulatory mouse represents an excellent model to study the genesis and the progression of hypertension allowing in vivo analysis of the consequences of chronic exposure to hypertension.

Blood pressure (BP) monitoring in mice has helped researchers to unravel several mechanisms involved in the physiology and pathophysiology of diseases such as hypertension and heart failure3,4. Indeed, manipulation of the mouse genome allowed generation of transgenic or gene-targeted models suitable for studying hypertension5,6. However, even gentle manipulation of conscious mice induces excitements that can potentially introduce artifacts during data acquisition, while use of sedation or tranquilizers profoundly affect blood pressure7. These aspects are particularly important and must be taken in consideration when attempting long-term BP monitoring.

There are several ways to record BP in mice, and a comparison between the most common techniques currently available has been discussed elsewhere8,9. However, the AHA recommendations for BP measurement concluded that intra-arterial measurement of BP are generally preferred because of their ability to directly measure BP over an extended period of time10. Radio-telemetry coupled with direct measurement of arterial pressure is the state-of-the-art method for monitoring physiological functions in awake and freely moving laboratory animals while minimizing stress and environmentally-associated artifacts9,11. Radio-telemetry offers the ability to automatically collect blood pressures, heart rate, body temperature and animal activity from multiple conscious animals.

Although this methodology is becoming very popular in many laboratories, radio-telemetry implantation in mice can be technically challenging. Here we show a step-by-step protocol that illustrates how to implant a pressure transducer in mice. The technique involves subcutaneous insertion of the probe in the mouse body, channel the catheter to the neck and forward near the aortic arch via the left carotid artery. Remotely captured data are shown live on the computer monitor. Data are also stored for "off-line" analysis.

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Protocol

Ethics statement: All animal procedures mentioned in this video-article were reviewed and approved by the Animal Care and Use Committee (IACUC) at the University of Tennessee Health Science Center.

Note: Use sterile microsurgery instruments throughout the surgical procedure. Surgical instruments may be sterilized utilizing an infrared sterilizer at an optimum sterilizing temperature of 1,500 °F (815.6 °C). Telemeters can be reused, however, before inserting it in the animal make sure to sterilize the entire transmitter according to the manufacturer instructions and that the tip of the catheter has been refilled with a special gel provided by the manufacturer.

1. Experimental Animals

  1. Obtain an IACUC approval for all experiments that will be performed. Consultation with institutional IACUC is highly recommended regarding requirements for post-operative analgesic use after this procedure.
  2. Keep the animals in climate-controlled rooms having an ambient temperature of 21 °C, 60% relative humidity, and a 12-hr light-dark cycle with free access to food and water.
    Note: Because the mouse body has to accommodate the telemetry probe (approximatively 1 cm diameter x 2 cm long), it is preferable to use mice that weigh 20 g or more.

2. Anesthesia and Operative Preparation

  1. Weigh the mouse using a precision scale and record its weight. Make sure to handle the animal gently and quietly.
  2. Place the animal into the induction chamber and close it. Set oxygen flow rate at 0.5 L/min and set isoflurane concentration at 4 - 5% .
  3. When the mouse loses consciousness, place it on a body warming plate maintained at 36 - 37 °C. Maintain the anesthesia via nosecone with isoflurane set at 2% (keep flow rate at 0.5 L/min).
  4. Prepare the operation regions by removing the hair from the back of the neck and the ventral aspect of the neck by applying hair removal cream.
  5. Treat the incision site with 3 applications of surgical scrub (betadine solution) alternating with 70% isopropyl alcohol.

3. Surgery 

  1. Place the mouse in a supine position. Check for reflexes by pinching the foot, and adjust anesthesia until there is no response. Make an approximately 1-cm midline incision below the neck of the mouse with a scalpel. In the left side of the cut create a subcutaneous space by carefully separating the skin from the underlying connective tissue.
  2. Flip the mouse, and use a scalpel to make a skin incision of approximately 1.5 cm in the dorsal left side behind the scapula. Create a subcutaneous pocket along the animal's flank large enough to accommodate the device. Insert the transmitter into the pocket.
  3. Insert a small hemostat clamp in the back incision and maneuver it subcutaneously towards the anterior neck opening. Using the inserted-hemostat clamp, gently grasp a non-toxic polyethylene tube (4 cm length x 1 mm I.D.).
    1. Pull the hemostat back through the tunnel out the lateral incision in the back until the tubing protrudes from both abdominal and dorsal incision, release the tube from the hemostat. From the back, insert the catheter sensor into the tube to tunnel the tip of the pressure sensing catheter through the neck. From the neck anterior, pull and remove the polyethylene tube and close the dorsal incision using metal clips.
  4. Carefully separate the mandibular glands using sterile cotton tip applicators and retract the left mandibular gland using an elastic stay hook. Using fine-tipped curved forceps, locate the carotid artery along the left side of the trachea. Keep the surgical site sterile  by placing and securing a sterile drape.
    1. Carefully isolate the vessel from the surrounding tissue and gently separate the vagus nerve (whitish in color) that is along the carotid artery away from the artery. Be careful not to cut or damage the nerve or the artery.
  5. Pass three pieces of non-absorbable 7-0 suture underneath the isolated carotid artery section. Tie the cranial suture to close off blood flow. Pull the suture that is closest to the sternum to temporarily occlude blood flow from the aorta.
  6. Make a loose knot using the middle suture. This will be used to secure the catheter in the vessel. Cut a small incision into the artery between the cranial and the sternal sutures using micro-scissors.
  7. Grab the catheter with special vessel cannulation forceps, being careful not to squeeze the catheter to prevent gel loss from the probe. Gently, grab the artery with a fine tip curved tweezers forceps, retrieve the catheter, and insert it in the vessel through the small incision.
  8. Tighten the middle suture node around the artery and gently advance the catheter. Gently release the suture that is proximal to the sternum and continue to advance the catheter towards the transverse aorta.
    1. Observe the mark on the catheter that gives an approximate index of how far the catheter needs to be inserted. Once the point is reached, gently tighten both the lower and the upper suture around the catheter. The catheter is secured to the carotid artery by suture knots.
  9. Close the skin incision with non-absorbable 5-0 suture. Once closed, seal the incision with tissue adhesive.

4. Surgical Recovery and BP Measurements

  1. Monitor animal closely for the return of normal postures and behaviors. During the 24 hr post-surgery period administer analgesia as directed by a staff veterinarian.
  2. Once the animals have recovered (5 - 7 days post-surgery), house them individually in a regular mouse cage placed on top of the telemetry receiver plate.
  3. Turn the implanted transmitters "on" and "off" by using a magnetic device briefly positioned close to the animal from the outside of the cage.

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Results

Data can be acquired remotely by a receiver; traces are visualized on a computer screen for quality control (Figure 1a). Details such as animal ID, diastolic blood pressure and systolic blood pressure are also shown (Figure 1b). Arterial BP can be recorded continuously (24/7), or for short programmed intervals (i.e., 60 sec acquisition every hour). Data can be automatically stored in a hard disk for later analysis. Averaged BP data from a 3-day c...

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Discussion

Implantable radio-telemetry has improved significantly over the last decade; smaller probe size makes the implant less traumatic for the animal, prolonged battery life helps to reduce the costs, and independent telemeter frequencies eliminate crosstalk between receivers. Telemetry is considered the state-of-the-art method for collecting a wide variety of physiological parameters from freely moving animals without the artifacts associated with the use of restraint, human interaction, or anesthesia that are required by oth...

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Disclosures

The authors have nothing to disclose.

Acknowledgements

This work was supported by the National Institutes of Health (NIH/NHLBI) [Grant no. HL114869] and the support from UTHSC to SM.

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Materials

List of materials used in this article
NameCompanyCatalog NumberComments
Small animal anesthesia systemKent Scientific Corp, Torrington, Connecticut, USAlow-flow small animal anesthesia system
Pad warmer and mouse termometerKent Scientific Corp, Torrington, Connecticut, USAallows monitoring body temperature, and homeothermic control in small animals
Binocular MicroscopeKent Scientific Corp, Torrington, Connecticut, USAKSCXTS-1121binocular body with boom stand pole and top LED
Hemostat ForcepsKent Scientific Corp, Torrington, Connecticut, USAINS750451used to clamp blood vessels or tag sutures
Small metal Clips, 7 mm, Stainless SteelKent Scientific Corp, Torrington, Connecticut, USAINS750344used for skin closure
Betadine solutionPurdue Products L.P., Stamford, CT, USANDC-67618-150-0110% povidone iodine topical solution
Normal saline solutionAbott Laboratories04930-04-10needed for preventing tissue from drying.
Nair (Hair remover lotion)needed for fur removal from the site of incision/surgery
Braide silk sutureTeleflex Medical OEM, Coventry, Connecticut, USASize 5.0, 6.0, 7.0
Ethanol271670% ethanol for disinfection
Spring scissors Fine Science Tool15000-10for minor dissection
Scissors (angled to side)Fine Science Tool14063-011No. 3 handle
Scalpel blade2976-0No. 10
Forceps (curved)Fine Science Tool11150-10for holding tissue
Forceps (straight)Fine Science Tool11151-10for holding tissue
Needle holder Fine Science Tool12002-12for suturing
Fine needle nose ForcepsFine Science Tool
IsofluraneHenry Schein Animal Health, Melville, New York, USAa general inhalation anesthetic agent
SterilizerBenchmark Scientific, 116 Corporate Blvd, South Plainfield, NJ, USAB1000sterilize surgical tools in 5-10 seconds using infrared heating
Gauze PadsJohnson & Johnson, New Brunswick, NJ, USAJJ8513to use for wound cleaning, prepping, scrubbing or dressing
Telemetry DeviceData Sciences International, St. Paul, MN, USADSI-PA-C10to record blood pressure in freely moving mice
Telemetry receiver system  coumpled with a PCData Sciences International, St. Paul, MN, USA
TubingInstech Laboratories, Plymouth Meeting, PA USABTPE-90
Vessel Cannulation Forceps, 13 cm, 0.5 mm ODWorld Precision Instruments503374special vessel cannulation forceps
Tissue adhesive3M Animal Care Products, St. Paul, MN, USANAC No.: 11380041use to close minor wounds, often eliminating the need for sutures and/or bandages
Weighing scale BB300precision analytical laboratory balance

References

  1. Danaei, G., et al. The preventable causes of death in the United States: comparative risk assessment of dietary, lifestyle, and metabolic risk factors. PLoS Med. 6 (4), e1000058(2009).
  2. Dornas, W. C., Silva, M. E. Animal models for the study of arterial hypertension. J Biosci. 36 (4), 731-737 (2011).
  3. Henze, M., et al. Persistent alterations in heart rate variability, baroreflex sensitivity, and anxiety-like behaviors during development of heart failure in the rat. Am J Physiol Heart Circ Physiol. 295 (1), H29-H38 (2008).
  4. Hoffmann, D. S., et al. Chronic tempol prevents hypertension, proteinuria, and poor feto-placental outcomes in BPH/5 mouse model of preeclampsia. Hypertension. 51 (4), 1058-1065 (2008).
  5. Lerman, L. O., Chade, A. R., Sica, V., Napoli, C. Animal models of hypertension: an overview. J Lab Clin Med. 146 (3), 160-173 (2005).
  6. Johns, C., Gavras, I., Handy, D. E., Salomao, A., Gavras, H. Models of experimental hypertension in mice. Hypertension. 28 (6), 1064-1069 (1996).
  7. Vatner, S. F., Braunwald, E. Cardiovascular control mechanisms in the conscious state. N Engl J Med. 293 (19), 970-976 (1975).
  8. Zhao, X., et al. Arterial Pressure Monitoring in Mice. Curr Protoc Mouse Biol. 1, 105-122 (2011).
  9. Whitesall, S. E., Hoff, J. B., Vollmer, A. P., D'Alecy, L. G. Comparison of simultaneous measurement of mouse systolic arterial blood pressure by radiotelemetry and tail-cuff methods. Am J Physiol Heart Circ Physiol. 286 (6), H2408-H2415 (2004).
  10. Kurtz, T. W., et al. Recommendations for blood pressure measurement in humans and experimental animals. Part 2: Blood pressure measurement in experimental animals: a statement for professionals from the subcommittee of professional and public education of the American Heart Association council on high blood pressure research. Hypertension. 45 (2), 299-310 (2005).
  11. Kurtz, T. W., et al. Recommendations for blood pressure measurement in animals: summary of an AHA scientific statement from the Council on High Blood Pressure Research, Professional and Public Education Subcommittee. Arterioscler Thromb Vasc Biol. 25 (3), 478-479 (2005).

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Tags

Telemetry ImplantationCarotid Artery CannulationRadio Transmitter ImplantSubcutaneous Pocket CreationVessel Cannulation TechniquePost Surgery RecoveryContinuous Blood Pressure RecordingCircadian Rhythm Monitoring