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Thermography – a valuable tool to test hydrocephalus shunt patency

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Summary

Introduction. Shunt-function in hydrocephalic patients is verified by clinical examination and repeated cranial computed tomography (CCT) in most cases. Because of the disadvantages of multiple radiation especially in children it was our aim to introduce video-thermography as a simple and non-invasive methodology to evaluate shunt function.

Methods. 54 patients treated with shunts for hydrocephalus were tested. A ventriculo-peritoneal shunt had been implanted in 38 patients, a ventriculo-atrial shunt in 16 patients. Recent CCT-scans were available for all patients and served as control. None of the patients presented with clinical signs of shunt-dysfunction. The temperature of the skin covering the drainage catheter distal to the valve was recorded real-time by a calibrated infrared camera. After cooling the skin area downstream of the valve for exactly 1 min with an ice pack, changes of the skin temperature in the area downstream were registered by a thermocamera. The signals were transferred to a video screen and recorded on videotape. By off-line analysis of the obtained pseudo colour images variations of 0.1 °C in skin temperature could be measured.

Results. Temperature distribution of the area under investigation revealed a significant reduction of the skin temperature according to the location of the downstream catheter segment in 48 patients after cooling. In 6 patients skin temperature remained constant, although clinical evaluation and CCT-scan showed no signs of shunt dysfunction.

Shunt patency could be verified in more than 85% of the patients by thermal imaging.

Conclusion. Infrared-thermography is a valuable and promising tool for replacing CCT-scanning as a screening method to test shunt function in hydrocephalic patients.

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References

  • G Acerbi P Caciagli (1987) ArticleTitleEvaluation of CSF shunt patency by continuous wave Doppler ultrasound technique. J Neurosurg Sci 31 213–217 Occurrence Handle3454366

    PubMed  Google Scholar 

  • M Caldarelli C Di Rocco N Cellini M De Santis (1981) ArticleTitleA technique for evaluation of CSF shunt patency using telethermography. Neuropediatrics 12 303–307 Occurrence Handle7335155

    PubMed  Google Scholar 

  • L Calliauw J Vandenbogaerde O Kalala J Caemaert F Martens T Vandekerckhove (1991) ArticleTitleTransesophageal echocardiography: a simple method for monitoring the patency of ventriculoatrial shunts. Technical note. J Neurosurg 74 1018–1020 Occurrence Handle2033439

    PubMed  Google Scholar 

  • Y Chiba K Yuda (1980) ArticleTitleThermosensitive determination of CSF shunt patency with a pair of small disc thermistors. J Neurosurg 52 700–704 Occurrence Handle7373398

    PubMed  Google Scholar 

  • JM Drake MC Da Silva JT Rutka (1993) ArticleTitleFunctional obstruction of an antisiphon device by raised tissue capsule pressure. Neurosurgery 32 137–139 Occurrence Handle8421544

    PubMed  Google Scholar 

  • JM Drake J Kestle (1996) ArticleTitleDetermining the best cerebrospinal fluid shunt valve design: the pediatric valve design trial. Neurosurgery 38 604–607 Occurrence Handle10.1097/00006123-199603000-00042 Occurrence Handle8837819

    Article  PubMed  Google Scholar 

  • JM Drake AJ Martin RM Henkleman (1991) ArticleTitleDetermination of cerebrospinal fluid shunt obstruction with magnetic resonance phase imaging. J Neurosurg 75 535–540 Occurrence Handle1885970

    PubMed  Google Scholar 

  • RJ England PJ McMullan RD Battersby (2002) ArticleTitleEvaluation of routine imaging after ventriculoperitoneal shunt insertion. Eur J Pediatr Surg 12 IssueID[Suppl 1] S30–S31 Occurrence Handle12643270

    PubMed  Google Scholar 

  • HJ Garton JR Kestle JM Drake (2001) ArticleTitlePredicting shunt failure on the basis of clinical symptoms and signs in children. J Neurosurg 94 202–210 Occurrence Handle11213955

    PubMed  Google Scholar 

  • KG Go HJ Melchior JP Lakke (1968) ArticleTitleA thermosensitive device for the evaluation of the patency of ventriculo-atrial shunts in hydrocephalus. Acta Neurochir (Wien) 19 209–216 Occurrence Handle10.1007/BF01405517

    Article  Google Scholar 

  • PW Hanlo G Cinalli WP Vandertop JA Faber L Bogeskov SE Borgesen J Boschert P Chumas H Eder IK Pople W Serlo E Vitzthum (2003) ArticleTitleTreatment of hydrocephalus determined by the European Orbis Sigma Valve II survey: a multicenter prospective 5-year shunt survival study in children and adults in whom a flow-regulating shunt was used. J Neurosurg 99 52–57 Occurrence Handle12854744

    PubMed  Google Scholar 

  • M Hara C Kadowaki Y Konishi M Ogashiwa M Numoto K Takeuchi (1983) ArticleTitleA new method for measuring cerebrospinal fluid flow in shunts. J Neurosurg 58 557–561 Occurrence Handle6219190

    PubMed  Google Scholar 

  • PW Hayden TG Rudd DB Shurtleff (1980) ArticleTitleCombined pressure-radionuclide evaluation of suspected cerebrospinal fluid shunt malfunction: a seven-year clinical experience. Pediatrics 66 679–684 Occurrence Handle7432873

    PubMed  Google Scholar 

  • Y Ishiwata Y Chiba T Yamashita G Gondo K Ide T Kuwabara (1989) ArticleTitleThermosensitive determination of patency in lumboperitoneal shunts. Technical note. J Neurosurg 70 143–145 Occurrence Handle2909676

    PubMed  Google Scholar 

  • NF Maartens P Aurora PG Richards (2000) ArticleTitleAn unusual complication of tapping a ventriculoperitoneal shunt. Eur J Paediatr Neurol 4 125–129 Occurrence Handle10.1053/ejpn.2000.0280 Occurrence Handle10872108

    Article  PubMed  Google Scholar 

  • U Meier S Paris A Grawe D Stockheim A Hajdukova S Mutze (2003) ArticleTitleIs there a correlation between operative results and change in ventricular volume after shunt placement? A study of 60 cases of idiopathic normal-pressure hydrocephalus. Neuroradiology 45 377–380 Occurrence Handle10.1007/s00234-003-0989-x Occurrence Handle12750865

    Article  PubMed  Google Scholar 

  • MJ Noetzel RP Baker (1984) ArticleTitleShunt fluid examination: risks and benefits in the evaluation of shunt malfunction and infection. J Neurosurg 61 328–332 Occurrence Handle6737057

    PubMed  Google Scholar 

  • DF O’Brien M Taylor TS Park JG Ojemann (2003) ArticleTitleA critical analysis of ‘normal’ radionucleotide shuntograms in patients subsequently requiring surgery. Childs Nerv Syst 19 337–341 Occurrence Handle10.1007/s00381-003-0752-y Occurrence Handle12740708

    Article  PubMed  Google Scholar 

  • J Pages N Buls M Osteaux (2003) ArticleTitleCT doses in children: a multicentre study. Br J Radiol 76 803–811 Occurrence Handle10.1259/bjr/92706933 Occurrence Handle14623782

    Article  PubMed  Google Scholar 

  • JHJ Piatt (1992) ArticleTitlePhysical examination of patients with cerebrospinal fluid shunts: is there useful information in pumping the shunt? Pediatrics 89 470–473 Occurrence Handle1741223

    PubMed  Google Scholar 

  • TG Rudd DB Shurtleff JD Loeser WB Nelp (1973) ArticleTitleRadionuclide assessment of cerebrospinal fluid shunt function in children. J Nucl Med 14 683–686 Occurrence Handle4724337

    PubMed  Google Scholar 

  • H Schutz KG Ter Brugge MC Chiu A Mongul F Taylor (1983) ArticleTitleDetermination of CSF shunt patency with a lumbar infusion test. J Neurosurg 58 553–556 Occurrence Handle6827350

    PubMed  Google Scholar 

  • U Seppanen W Serlo AL Saukkonen (1987) ArticleTitleValvography in the assessment of hydrocephalus shunt function in children. Neuroradiology 29 53–57 Occurrence Handle10.1007/BF00341039 Occurrence Handle3493447

    Article  PubMed  Google Scholar 

  • S Sood S Kim SD Ham AI Canady N Greninger (1993) ArticleTitleUseful components of the shunt tap test for evaluation of shunt malfunction. Childs Nerv Syst 9 157–161 Occurrence Handle8374920

    PubMed  Google Scholar 

  • SC Stein (1980) ArticleTitleTesting cerebrospinal fluid shunt function: a noninvasive technique. Neurosurgery 6 649–651 Occurrence Handle7432606

    PubMed  Google Scholar 

  • PW Wiest JA Locken PH Heintz FA Mettler SuffixJr (2002) ArticleTitleCT scanning: a major source of radiation exposure. Semin Ultrasound CT MR 23 402–410 Occurrence Handle10.1016/S0887-2171(02)90011-9 Occurrence Handle12509110

    Article  PubMed  Google Scholar 

  • S Yamasaki K Osaka A Hirayama K Fujita S Matsu-Moto (1978) ArticleTitleThermographical determination of cerebrospinal fluid shunt patency with Chameleon Print. No Shinkei Geka 6 253–257 Occurrence Handle643155

    PubMed  Google Scholar 

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Goetz, C., Foertsch, D., Schoenberger, J. et al. Thermography – a valuable tool to test hydrocephalus shunt patency. Acta Neurochir (Wien) 147, 1167–1173 (2005). https://doi.org/10.1007/s00701-005-0608-1

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  • DOI: https://doi.org/10.1007/s00701-005-0608-1

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