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Showing posts with label Neuro Anesthesia. Show all posts
Showing posts with label Neuro Anesthesia. Show all posts

Sunday, January 10, 2016

AETIOLOGIES AND ASSOCIATED CONDITIONS IN PATIENTS COMING FOR EPILEPSY SURGERY


AETIOLOGIES 
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🏷Idiopathic (Mesial Temporal Sclerosis)

🏷Infectious (Brain Abcess, Encephalitis)

🏷Traumatic (glial scar)

🏷Vascular (AVM, Infarct)

🏷Neoplastic (glioma, hamartoma, ganglioglioma)

🏷Congenital (Cortical dysplasia)

ASSOCIATED CONDITIONS 
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🏷Tuberous Sclerosis

🏷Sturge Weber Syndrome 

🏷Infantile Hemiplegia

🏷Encephalitis


EPILEPSY SURGERY: OTHER APPROACHES



💈1) Frontal/temporal or occipital craniotomy for resection of a structural epileptogenic focus e.g. Tumour or AVM

🔺This may use stereotaxic localisation (by using a stereotaxic headframe, which may affect the method of intubation)

💈2) Diagnostic placement of surface or depth electrodes

 🔺Mostly only burr holes outlining the future craniotomy flap are used

🔺After placement, the electrodes are externalised and postoperatively patient’s naturally occurring seizures are recorded in conjunction with video monitoring, to register the clinical presentation, with the onset of seizure activity. This recording period may last for several days.

🔺This will be followed by resection of the epileptic focus, on another date.

💈3) Selective amygdalo-hippocampectomy

🔺Here, a cortical incision is made in the anterior temporal lobe and amygdala & hippocampus are resected



Thursday, January 7, 2016

EPILEPSY SURGERY- VARIANT APPROACHES🙇🙇🏻🙇🏼🙇🏾: CORPUS CALLOSOTOMY


✔️Suited for patients with atonic or partial seizures with secondary generalisation 

✔️Either the anterior 2/3rd or the entire corpus callosum is divided in the midline

✔️Uses a bifrontal paramedian scalp incision and elevation of the free bone flap, adjacent to the midline in the region of the coronal suture

✔️Injury to the sagittal sinus can result in massive VAE or haemorrhage 

✔️Preserve the numerous bridging veins across the interhemispheric fissure; otherwise, can result in venous congestion and possible infarction 

✔️Right cerebral hemisphere is gently retracted from the falx: this will expose the paired anterior cerebral arteries and corpus callosum

#epilepsy , #seizures ,#neurosurgery , #EpilepsySurgery , #NeuroAnaesthesia ,#NeuroAnesthesia , #speech ,#wadatest

Wednesday, January 6, 2016

EPILEPSY SURGERY: SPECIFIC PROCEDURES & HIGHLIGHTS : TEMPORAL LOBECTOMY



✔️ Head turned 90* and held with pins

✔️ Most commonly a "question mark" temporal incision

✔️ a flap based on temporalis muscle elevated

✔️ a subtemporal craniectomy allows visualisation of entire anterior temporal lobe

✔️ anterior 6-6.5 cms of temporal lobe exposed

✔️ surface or depth electrocorticography employed

✔️ map the lesion

✔️ amygdala, hippocampus/ anterior temporal lobe removed 

✔️ Temporal lobectomy involves resection of both lateral and medial (uncus, hippocampal formation etc) temporal structures, mostly under an operating microscope

✔️ Complications: Injury to brainstem, 3rd and 4th cranial nerves , Middle or Posterior Cerebral arteries

✔️ closure of dura, bone flap and scalp concludes the surgery

#epilepsy , #seizures ,#neurosurgery , #EpilepsySurgery , #NeuroAnaesthesia ,#NeuroAnesthesia , #speech ,#wadatest

☁️EPILEPSY SURGERY: BASIC FACTS



☄Most beneficial in partial seizures secondary to a structural lesion

☄For determining the cerebral dominance and hence the location of speech , a WADA test (intracarotid injection of anesthetic to localize language function ; hence invasive) or recently functional MRI mapping (non invasive) of speech centres are done preoperatively 

☄Simultaneous recordings of video EEG and MRI or PET scans can show the epileptogenic focus

☄Temporal lobe surgery may involve:

✔️removal of only the structural lesion & associated epileptogenic cortex

✔️cortical resection alone

✔️excision of amygdala and hippocampus 

✔️removal of the entire anterior temporal lobe (extent of posterior resection dependent on dominance)

✔️depending on the local protocol, intraoperative Electro Corticogram (ECoG) may be used; anesthesia has to be modified accordingly

✔️if speech centre has to be located intraoperatively, an awake craniotomy is required

✔️ So depending on the surgical plan, choice of anesthesia varies


Saturday, December 26, 2015

CHASING THE ICP..SORRY CHASING THE WELLNESS OF THE BRAIN❗️



📛In the absence of disease, ICP may rise by 50 mmHg during coughing or sneezing without noticeable neur ologic impairment. 

▶️Therefore, it is the interaction of raised  ICP with other intracranial pathology which produces the pathologic consequences, as  opposed to the rise in ICP per se.  

Monitoring of intracranial pressure (ICP)
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📛"Some patients with suspected intracranial hypertension and a decreasing level of consciousness might require invasive ICP monitoring, although its added value beyond clinical or radiological monitoring has not yet been proven"

📛Monitoring methods currently available include ventriculostomy, subarachnoid bolt, epidural sensor, and fiberoptic intraparenchymal monitor; the latter is the most commonly used.

▶️DO YOU KNOW?

📛The major drawback of intraventricular catheters is the rate of infection which is much higher than that observed using intraparenchymal probes. 

📛Additionally, interpretation of ICP data after craniectomy is difficult.

Monitoring of CBF
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▶️Normal average CBF in the human is approximately 55 ml/100g (of brain)/min, though values may vary widely across grey and white matter. The ischemic threshold for CBF is approximately 18 ml/100g/min, with 10 ml/100g/ min often considered the threshold for irreversible injury. 

📛Laser Doppler flowmetry (LDF) is a parenchymal or surface Doppler probe that measures tissue local CBF in a quantitative manner. 

📛Brain tissue oxygen tension (P bt O 2 ) monitoring allows direct measurement of focal tissue oxygen tension in a specific region of the brain. A P bt O 2  level below 10-15 mmHg has generally been the threshold identified at which outcome is worsened 

📛 Transcranial Doppler ultrasonography is a useful non-invasive monitor of cerebral hemodynamics, but has been severely disadvantaged by the inability to fix the  probe in position. 

 📛 Jugular venous bulb oximetry is a global hemispheric measure with low sensitivity for detecting regional ischaemia. 

🔹The normal SjvO 2  level is approximately 60%
🔹an SjvO 2  of < 50% for greater than 10 min has generally been considered to represent an ischemic desaturation. 
🔹High SjvO 2 levels may reflect hyperemia (typically >90%) or an inability of the brain to extract oxygen due to metabolic depression from sedative agents, poor oxygen unloading (e.g. sickle cell disease), or severe brain injury. 

📛Near-infrared spectroscopy (NIRS) 

🔹measures cerebral regional oxygen saturation by measuring near-infrared light reflected off the chromophobes in the brain, the most important of which are oxyhemoglobin, deoxyhemoglobin, and cytochrome A3. 
🔹Its major limitations include the intersubject variability, the variable length of the optical path, the potential contamination from extracranial blood, and most important, the lack of a definable threshold. 🔹Because of the thin scalp and skull in the neonate and infant, NIRS holds promise in this patient population but remains an investigative tool in its present form.

📛Microdialysis catheters, typically inserted in conjunction with an ICP or tissue Po2 monitor, allows sampling of small molecules in the interstitial fluid. 

🔹An increasing lactate/pyruvate ratio is sensitive to the onset of ischemia. 
🔹High levels of glycerol suggest inadequate energy to maintain cellular integrity and the resultant membrane breakdown. 
🔹Excitatory amino acids, such as glutamate, are both a marker for neuronal injury and a factor in its exacerbation.
🔹Currently, the microdialysis catheter is primarily used in two situations: (a) extensive subarachnoid hemorrhage where subsequent vasospasm is likely and (b) traumatic brain injury (TBI) 

▶️️At present, none of the methods available is sufficiently reliable or well tested to en able us to influence the clinical management of neurologically i njured patient with absolute certainty


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Reference:

Advanced cerebral monitoring in neurocritical care Nobl Barazangi, J. Claude Hemphill III, eurology India | October-December 2008 | Vol 56 | Issue 4

Intraoperative Neurophysiological Monitoring Second Edition Aage R. Møller

Postoperative management of adult central neurosurgical patients: Systemic and neuro-monitoring David Pfister, Stephan P. Strebel , Basel, Switzerland Luzius A. SteinerBest Practice & Research Clinical Anaesthesiology Vol. 21, No. 4, pp. 449–463, 2007 

Textbook of Neuroanaesthesia and Critical Care by Basil F Matta

Handbook of Neuroanesthesia, 4th Edition, James E. Cottrell