Can a Sacrococcygeal Epidural of 0.25% Bupivacaine Prevent the Activation of the Sympathetic Nervous System during Feline Ovariectomy?
Abstract
:Simple Summary
Abstract
1. Introduction
2. Materials and Methods
2.1. Animals
2.2. Blind Study
2.3. Surgical Technique
2.4. Anaesthetic Management
2.5. Sacrococcygeal Epidural Anesthesia Technique
2.6. Intraoperative Nociception Assessment and Rescue Analgesia
2.7. Data Collection
2.8. Statistical Analysis
3. Results
Comparison between Groups
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Dourado, A.; Gomes, A.; Teixeira, P.; Lobo, L.; Azevedo, J.T.; Dias, I.R.; Pinelas, R. Antinociceptive Effect of a Sacro-Coccygeal Epidural of Morphine and Lidocaine in Cats Undergoing Ovariohysterectomy. Vet. Sci. 2022, 9, 623. [Google Scholar] [CrossRef] [PubMed]
- Torruella, X.; Potter, J.; Huuskonen, V. Sacrococcygeal Epidural Administration of 0.5% Bupivacaine in Seven Cats Undergoing Pelvic or Hind Limb Orthopaedic Procedures. Ir. Vet. J. 2023, 76, 1. [Google Scholar] [CrossRef] [PubMed]
- Dos-Santos, J.D.; Ginja, M.; Martins, J.; Cabral, P.; Alves-Pimenta, S.; Ribeiro, L.; Otero, P.E.; Colaço, B. Comparison between Bilateral Ultrasound-Guided Quadratus Lumborum Block and Sacrococcygeal Epidural in Cats Undergoing Ovariectomy. Vet. Sci. 2024, 11, 25. [Google Scholar] [CrossRef] [PubMed]
- Slingsby, L.S.; Bortolami, E.; Murrell, J.C. Methadone in Combination with Medetomidine as Premedication prior to Ovariohysterectomy and Castration in the Cat. J. Feline Med. Surg. 2014, 17, 864–872. [Google Scholar] [CrossRef] [PubMed]
- Sández, I.; Soto, M.; Torralbo, D.; Rioja, E. Effect of Different Analgesic Techniques on Hemodynamic Variables Recorded with an Esophageal Doppler Monitor during Ovariohysterectomy in Dogs. Can. Vet. J. = La Rev. Vet. Can. 2018, 59, 419–424. [Google Scholar]
- Sano, T.; Nishimura, R.; Kanazawa, H.; Igarashi, E.; Nagata, Y.; Mochizuki, M.; Sasaki, N. Pharmacokinetics of Fentanyl after Single Intravenous Injection and Constant Rate Infusion in Dogs. Vet. Anaesth. Analg. 2006, 33, 266–273. [Google Scholar] [CrossRef] [PubMed]
- Maierl, J.; Liebich, H.G. Investigations on the Postnatal Development of the Macroscopic Proportions and the Topographic Anatomy of the Feline Spinal Cord. Anat. Histol. Embryol. 1998, 27, 375–379. [Google Scholar] [CrossRef]
- O’Hearn, A.K.; Wright, B.D. Coccygeal Epidural with Local Anesthetic for Catheterization and Pain Management in the Treatment of Feline Urethral Obstruction. J. Vet. Emerg. Crit. Care 2011, 21, 50–52. [Google Scholar] [CrossRef]
- Otero, P.E.; Verdier, N.; Zaccagnini, A.S.; Fuensalida, S.E.; Tarragona, L.; Portela, D.A. The Use of a Nerve Stimulation Test to Confirm Sacrococcygeal Epidural Needle Placement in Cats. Vet. Anaesth. Analg. 2015, 42, 115–118. [Google Scholar] [CrossRef]
- Credie, L.; Luna, S. The Use of Ultrasound to Evaluate Sacrococcygeal Epidural Injections in Cats. Can. Vet. J. = La Rev. Vet. Can. 2018, 59, 143–146. [Google Scholar]
- Hum, B.; Christophides, A.; Jin, Z.; Elias, M.; Taneja, K.; Bergese, S.D. The Validity and Applications of the Analgesia Nociception Index: A Narrative Review. Front. Surg. 2023, 10, 1234246. [Google Scholar] [CrossRef] [PubMed]
- Ruíz-López, P.; Domínguez, J.M.; Granados, M.D.M. Intraoperative nociception-antinociception monitors: A review from the veterinary perspective. Vet. Anaesth. Analg. 2020, 47, 152–159. [Google Scholar] [CrossRef] [PubMed]
- Mansour, C.; Merlin, T.; Bonnet-Garin, J.M.; Chaaya, R.; Mocci, R.; Ruiz, C.C.; Allaouchiche, B.; Boselli, E.; Junot, S. Evaluation of the Parasympathetic Tone Activity (PTA) Index to Assess the Analgesia/Nociception Balance in Anaesthetised Dogs. Res. Vet. Sci. 2017, 115, 271–277. [Google Scholar] [CrossRef] [PubMed]
- Aguado, D.; Bustamante, R.; García-Sanz, V.; González-Blanco, P.; Gómez-de-Segura, I.A. Efficacy of the Parasympathetic Tone Activity Monitor to Assess Nociception in Healthy Dogs Anaesthetized with Propofol and Sevoflurane. Vet. Anaesth. Analg. 2020, 47, 103–110. [Google Scholar] [CrossRef] [PubMed]
- Leitão, C.J.; Lima-Rodríguez, J.R.; Ferreira, F.; Avelino, C.; Sánchez-Margallo, F.M.; Antunes, L. Parasympathetic Tone Activity Evaluation to Discriminate Ketorolac and Ketorolac/Tramadol Analgesia Level in Swine. Anesth. Analg. 2019, 129, 882–889. [Google Scholar] [CrossRef] [PubMed]
- Ruíz-López, P.; Domínguez, J.M.; Morgaz, J.; Quirós-Carmona, S.; Navarrete-Calvo, R.; Gómez-Villamandos, R.J.; Fernández-Sarmiento, J.A.; Granados, M.M. Evaluation of the Averaged Parasympathetic Tone Activity and Its Dynamic Variation to Assess Intraoperative Nociception in Relation to Hemodynamic Changes in Dogs. Vet. Q. 2023, 43, 1–9. [Google Scholar] [CrossRef] [PubMed]
- Julien-Marsollier, F.; Rachdi, K.; Caballero, M.J.; Ayanmanesh, F.; Vacher, T.; Horlin, A.L.; Skhiri, A.; Brasher, C.; Michelet, D.; Dahmani, S. Evaluation of the Analgesia Nociception Index for Monitoring Intraoperative Analgesia in Children. Br. J. Anaesth. 2018, 121, 462–468. [Google Scholar] [CrossRef] [PubMed]
- Lima, L.; Dos-Santos, J.D.; Ribeiro, L.; Cabral, P.; Colaço, B.; Martins, J. The Performance of Using the Parasympathetic Tone Activity (PTA) Index to Assess Intraoperative Nociception in Cats. Vet. Sci. 2024, 11, 121. [Google Scholar] [CrossRef]
- Langley-Hobbs, S.J.; Demetriou, J.L.; Ladlow, J.F. Feline Soft Tissue and General Surgery, 1st ed.; Saunders Elsevier: Edinburgh, Scotland, 2014; pp. 457–461. [Google Scholar]
- Société Mdoloris Medical Systems SAS. User Manual PTA TM Monitor Continuous Analgesia Monitoring System. Available online: https://www.manualslib.com/download/1827360/Mdoloris-Pta-Monitor.html (accessed on 10 May 2021).
- Höglund, O.V.; Olsson, K.; Hagman, R.; Öhlund, M.; Olsson, U.; Lagerstedt, A.S. Comparison of Haemodynamic Changes during Two Surgical Methods for Neutering Female Dogs. Res. Vet. Sci. 2011, 91, 159–163. [Google Scholar] [CrossRef]
- Lee, I.; Yamagishi, N.; Oboshi, K.; Yamada, H. Distribution of New Methylene Blue Injected into the Lumbosacral Epidural Space in Cats. Vet. Anaesth. Analg. 2004, 31, 190–194. [Google Scholar] [CrossRef]
- Bernards, C.M. Cerebrospinal Fluid and Spinal Cord Distribution of Baclofen and Bupivacaine during Slow Intrathecal Infusion in Pigs. Anesthesiology 2006, 105, 169–178. [Google Scholar] [CrossRef]
- Ragone, R.; Lavermicocca, T.; Maranzano, F.; De-Renzo, F.; Labellarte, C.; Lasorella, M.L.; Milella, L. Effectiveness of Analgesia Nociception Index (ANI) As a Monitoring Tool to Evaluate Intraoperative Pain in Pediatric Patients Undergoing Sevofluorane Sedation and Locoregional Anesthesia. Anesth. Pain Research. Anesth. Analg. 2023, 7, 1–4. [Google Scholar]
- Rivera-Castro, M.E.; Pastelín, C.F.; Bravo-Benítez, J.; Morán, C. Organization of the Subdiaphragmatic Vagus Nerve and Its Connection with the Celiac Plexus and the Ovaries in the Female Rat. Brain Sci. 2023, 13, 1032. [Google Scholar] [CrossRef] [PubMed]
- Zurowski, D.; Nowak, Ł.; Wordliczek, J.; Dobrogowski, J.; Thor, P.J. Effects of Vagus Nerve Stimulation in Visceral Pain Model. Folia Medica Cracoviensia 2012, 52, 57–69. [Google Scholar]
- Muryobayashi, T.; Mori, J.; Fujiwara, M.; Shimamoto, K. Fluorescence Histochemical Demonstration of Adrenergic Nerve Fibers in the Vagus Nerve of Cats and Dogs. Jpn. J. Pharmacol. 1968, 18, 285–293. [Google Scholar] [CrossRef] [PubMed]
- Seki, A.; Green, H.R.; Lee, T.D.; Hong, L.; Tan, J.; Vinters, H.V.; Chen, P.S.; Fishbein, M.C. Sympathetic Nerve Fibers in Human Cervical and Thoracic Vagus Nerves. Heart Rhythm 2014, 11, 1411–1417. [Google Scholar] [CrossRef]
- Ruigrok, T.J.H.; Mantel, S.A.; Orlandini, L.; de Knegt, C.; Vincent, A.J.P.E.; Spoor, J.K.H. Sympathetic Components in Left and Right Human Cervical Vagus Nerve: Implications for Vagus Nerve Stimulation. Front. Neuroanat. 2023, 17, 1205660. [Google Scholar] [CrossRef]
- Khasar, S.G.; Green, P.G.; Miao, F.J.; Levine, J.D. Vagal Modulation of Nociception Is Mediated by Adrenomedullary Epinephrine in the Rat. Eur. J. Neurosci. 2003, 17, 909–915. [Google Scholar] [CrossRef]
- Jendoubi, A.; Khalloufi, A.; Nasri, O.; Abbes, A.; Ghedira, S.; Houissa, M. Analgesia Nociception Index as a Tool to Predict Hypotension after Spinal Anaesthesia for Elective Caesarean Section. J. Obstet. Gynaecol. J. Inst. Obstet. Gynaecol. 2021, 41, 193–199. [Google Scholar] [CrossRef]
- Covino, B.G.; Scott, D.B. Handbook of Epidural Anaesthesia and Analgesia; Grune & Stratton: Orlando, USA, 1985. [Google Scholar]
- Marley, E.; Prout, G.I. Innervation of the Cat’s Adrenal Medulla. J. Anat. 1968, 102 Pt 2, 257–273. [Google Scholar]
- Prentice, F.D.; Wood, J.G. Adrenergic Innervation of Cat Adrenal Medulla. Anat. Rec. 1975, 181, 689–703. [Google Scholar] [CrossRef] [PubMed]
- Kim, S.H.; Chang, C.H.; Lee, J.; Seo, S.K.; Kwon, Y.I.; Lee, J.H. Effect of analgesia nociception index monitor-based nociception control on perioperative stress responses during laparoscopic surgery in Trendelenburg position: A randomized controlled trial. Front. Med. 2023, 10, 1196153. [Google Scholar] [CrossRef] [PubMed]
Baseline | T1 | T2 | T3 | T4 | p-Value | |
---|---|---|---|---|---|---|
PTAI | 68 ± 11 a | 57 ± 18 a | 40 ± 13 b | 40 ± 10 b | 40 ± 11 b | <0.001 |
HR | 121 ± 16.6 a | 125.1 ± 15.9 a | 143.6 ± 17.7 b | 140 ± 20.3 b | 129.4 ± 19.4 a | 0.002 |
SAP | 113.1 ± 15.8 a | 112.3 ± 13.3 a | 121.1 ± 19.2 a | 115.2 ± 19.8 a | 108 ± 18.7 a | 0.321 |
MAP | 90.4 ± 20 a | 84.9 ± 17.2 a | 84.8 ± 16.1 a | 81.5 ± 18.7 a | 75.1 ± 16 a | 0.173 |
fR | 27.8 ± 8.9 a | 27.4 ± 8.2 a | 30.4 ± 8 a | 27.8 ± 8.2 a | 23.7 ± 6.9 a | 0.242 |
Baseline | T1 | T2 | T3 | T4 | p-Value | |
---|---|---|---|---|---|---|
PTAI | 64 ± 10 a | 45 ± 19 b | 36 ± 13 b | 37 ± 15 b | 45 ± 17 b | <0.001 |
HR | 103.8 ± 15.4 a | 103.4 ± 11.9 a | 109.2 ± 13.2 a | 113.1 ± 14.5 a | 109.9 ± 14.4 a | 0.159 |
SAP | 104.3 ± 14.9 a | 102.3 ± 13.8 a | 102.7 ± 18.9 a | 108.1 ± 12.4 a | 102.6 ± 13.1 a | 0.716 |
MAP | 80.3 ± 18 a | 74.1 ± 12.6 a | 78 ± 16.8 a | 81.8 ± 13.9 a | 76.6 ± 12.9 a | 0.540 |
fR | 24.7 ± 3.9 a | 24.8 ± 4.9 a | 25.3 ± 6 a | 24 ± 6.5 a | 24.4 ± 7.4 a | 0.970 |
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Martins, J.; Eliseu, A.; Campos, S.; Ribeiro, L.; Otero, P.; Cabral, P.; Colaço, B.; dos-Santos, J.D. Can a Sacrococcygeal Epidural of 0.25% Bupivacaine Prevent the Activation of the Sympathetic Nervous System during Feline Ovariectomy? Animals 2024, 14, 1732. https://doi.org/10.3390/ani14121732
Martins J, Eliseu A, Campos S, Ribeiro L, Otero P, Cabral P, Colaço B, dos-Santos JD. Can a Sacrococcygeal Epidural of 0.25% Bupivacaine Prevent the Activation of the Sympathetic Nervous System during Feline Ovariectomy? Animals. 2024; 14(12):1732. https://doi.org/10.3390/ani14121732
Chicago/Turabian StyleMartins, João, António Eliseu, Sónia Campos, Lénio Ribeiro, Pablo Otero, Patrícia Cabral, Bruno Colaço, and José Diogo dos-Santos. 2024. "Can a Sacrococcygeal Epidural of 0.25% Bupivacaine Prevent the Activation of the Sympathetic Nervous System during Feline Ovariectomy?" Animals 14, no. 12: 1732. https://doi.org/10.3390/ani14121732
APA StyleMartins, J., Eliseu, A., Campos, S., Ribeiro, L., Otero, P., Cabral, P., Colaço, B., & dos-Santos, J. D. (2024). Can a Sacrococcygeal Epidural of 0.25% Bupivacaine Prevent the Activation of the Sympathetic Nervous System during Feline Ovariectomy? Animals, 14(12), 1732. https://doi.org/10.3390/ani14121732