“…most of the experts have struggled to understand why the brain damage which occurred should have happened in the circumstances in which it apparently did.”
“At some point – as to exactly when this was between the time of closure of the sternum and finishing applying the dressings there is no evidence – Grace suffered a “cardiac arrest.””
“…..After venting all air from the heart and closing all incisions the heart regained sinus rhythm spontaneously on removing the fibrillation current. On discontinuing bypass the heart took over the circulation satisfactorily and post-op pressures revealed a right ventricular pressure of 35mmHg with no evidence of significant venous arterial Oxygen saturation step up across the right heart. Having ascertained there was satisfactory haemostasis the pericardium was closed and the chest closed routinely with retrosternal and peri-cardial drains. As the patient was being prepared to be moved to the incubator from the operating table cardiac arrest occurred and external cardiac massage was necessary. The chest was re-opened under massage conditions and it was confirmed that there was no tamponade but the cause of the arrest was a right tension pneumothorax. The tension pneumothorax was relieved and a right pleural drain inserted by when the heart had regained normal sinus rhythm and a good circulatory status. At no time was there any significant period of circulatory arrest. The chest was then re-closed routinely with retrosternal and pericardial drains.”
“Difficulty on coming off bypass because of R.sided pneumothorax + ET tube blocked with secretions (Patient arrested)…”
“20. The encephalopathy indicated by the fits has been shown by neuro-radiological imaging to be caused by damage to the watershed (or "border zone") areas of the brain. These are the areas lying between the distribution of one cerebral artery and its peripheral vessels and the next. It is not difficult to understand that if blood flow to the brain drops for long enough, such that oxygenation of the tissues might be affected, these areas will be the first to be affected. An analogy thought by the experts to be useful is that of a garden sprinkler. The area of lawn between two sprinklers will be perfused so long as the water pressure is sufficient. If it drops, then the spread of water diminishes, and part of the lawn is parched and may die.”
“26. In the foetus, this process would require around 30 minutes of damaging hypo-perfusion, following an hour of non-damaging hypoxia. On this, all the medical experts (and in particular, Drs. Rennie, Miles and Professor Mitchell) were agreed on paper. During the hour, described by some as a "priming period", the resistance of the brain to injury is slowly and gradually overcome. A neonate and infant (as with older people) generally has the capacity to auto-regulate blood flow to the brain. Thus, if pressure of supply to the brain (arterial pressure) (on which flow and hence perfusion centrally depends, assuming that the resistance of the brain blood vessels is constant, though the evidence was that it also depends on volume and the extent to which oxygen is carried by the blood at the time) drops, the blood vessels in the brain will dilate, so that a flow of an equivalent amount of oxygenated blood to provide the necessary nutrients for brain function is maintained. Volume is increased with slower flow; and resistance is also reduced, maintaining sufficient oxygenation. Similarly, if pressure increases (as, in an adult, where there is significant physical exertion) the blood vessels will constrict, to the reverse effect. The automatic response is not simply to pressure. An increase in the concentration of carbon dioxide in the blood, for instance, will also cause dilation of the blood vessels, to increase cerebral flow. 27. The postulated half hour is that during which the damage occurs. Once a cell is damaged, it will die. In addition to the brain's capacity more generally to auto-regulate blood supply, the cells will have reserves of nutrient, but in the absence of sufficiency of supply this is only some, though little, further defence. 28. Critically for the present case, the existence of watershed damage on its own shows there has not been an acute anoxia, as in the case of a damaging cardiac arrest. In such a case, the deep grey matter of the brain and basal ganglia would be affected. Here, they were not. Accordingly, however deep and long there may have been under-perfusion of Grace's brain, from whichever cause, the damage was not caused by her cardiac arrest. This does not exclude the lack of flow during cardiac arrest and resuscitation contributing to the damage, by adding to a process of hypoxic-ischaemic damage which was established at the time, at least if Dr. James' third meaning of "cardiac arrest" is accepted -though possibly in respect of his first or second too - since a lack of flow is by definition less than low flow for the time it persists. However, any decision whether there has probably been such damage must be heavily influenced by the surgeon's own words "At no time was there any significant period of circulatory arrest" and the observation that once the pneumothorax was relieved by re-opening the chest the heart "regained normal circulatory rhythm and a good circulatory status", both of which argue against it. Further, Dr. Rosenbloom (whose evidence on this I accept) told me that watershed damage is not progressive in extent even where hypoxic-ischaemia persists, unless the ischaemia worsens. To return to the analogy of the garden sprinkler: if low pressure causes the spray to fall short of an area, it will still perfuse the lawn within the area the spray still covers, and the reduced flow will not widen the belt of damaged lawn unless the pressure drops further, to the extent that the formerly (slightly) wet areas become dry.”
“On balance…it is likely…that at some stage before cardiac arrest Grace’s arterial pressure would have gradually risen before falling abruptly; and that her central venous pressure would have risen…”
“It is likely that one or other or more of the operating team would have been alert to signs that it might be happening. If there had been such signs, for any appreciable length of time prior to arrest, they would probably have been spotted, and action taken to remedy a supposed tamponade (pneumothorax would at most be a secondary differential diagnosis, because of its comparative rarity).”
“65. Thus, on this point, I have to reconcile the fact that the pneumothorax developed within (at the very most) 25 minutes to the stage of arrest, probably gradually from a small leak, yet did so to the point of causing cardiac arrest, with the probable physiology (making due allowance for biological variability of response, as Paige recorded) which envisages increasing venous pressure and dropping arterial pressure as tension must have mounted within the chest, and with the view that it is unlikely that the monitor readings were clearly out of the ordinary until late in the process. Dr. James in evidence envisaged the readings might have required action for between 90 seconds to 2 minutes, at a time when it is not unreasonable to think that attention might have been elsewhere – lines disconnected, or being disconnected; baby prepared for moving to the incubator; hand ventilation distracting the anaesthetist. This is possible, and if so it might be asking too much of a clinician in that situation to have been aware of the sudden fall in arterial pressure and rise in central venous pressure presaging collapse, especially since it would not be clear if actual monitors were there to read at the time. However, I think it more likely that (reconciling these considerations) there was a slightly longer period of time within which a monitor was likely to have been displaying readings which vigilance should have indicated showed a need for urgent investigation. Putting a time on this is undoubtedly to select a figure which is wrong, and conveys a spurious accuracy if taken too precisely. However, I cannot think that the readings would have invited action for as long as 5 minutes. Before that any alterations in pressures would have been gradual, would not have indicated a tamponade to reasonably vigilant observers (and I cannot accept that all of the potential observers failed to be in this category), and the observable pressures must have been missed by Dr. Hasbury as the person centrally responsible when the attention of others was elsewhere, though briefly, in the period immediately leading up to transfer. It may have been that his manual ventilation (following machine ventilation) was that which very suddenly produced an additional surge of air into the chest which upset the broad equilibrium of pressures of which Dr. James spoke, to tip the pneumothorax from an insidious development to a potentially catastrophic one. I cannot easily accept, however, that the pressures would have been detectably worrying for as short a period as Dr. James suggested. The likely range is 2 – 3 minutes, though there can be no point precision about this.”
“101. Making all due allowance for margin, a period of 30 minutes is far removed from the time I have found available in this case. Despite many attendant uncertainties, the best picture is one of a maximum time of 25 minutes, within which the hypoxia would have had to arise, followed by a period around resuscitation and restoration of circulation, which I accept from the typed surgical note would have been short. Within that 25 minutes, I have already held it unlikely that there was any significant hypotension (so as to be detectable) until some 2-3 minutes before the arrest. The hypotension would have developed only gradually before that, given the likely size of the leak. The resultant period is on any view so far removed from 30 minutes as for reliance on that figure to preclude it. I have no better figure to adopt. Accordingly, I do not think it probable that the hypoperfusion injury to Grace's brain was caused by the pneumothorax. Put simply, there was not enough time for this to have happened. 102. When allied to the evidence that there was no demonstrable acute consequence from the cardiac arrest, there is no evidence that that arrest caused any further damage – the case in respect of "breach causation" assumes that it did, as a natural continuation of an hypoxic process which was already underway. Given my conclusion that there was insufficient time for such a process to occur in connection with the pneumothorax, it must follow that there is no evidence of any process which was ongoing to which the short period of loss of cerebral flow occurring during cardiac arrest could have made a contribution.”
“In the end, I concluded that although the Defendant's explanation was fragile, it was on the evidence realistically possible for the injury as suffered by Grace to have been a non-negligent consequence of surgery, and not realistically possible for it to have been caused by an undetected pneumothorax. Since I concluded that the pneumothorax (or, at least, cause for re-opening the chest as with suspected tamponade) should with the exercise of proper care have been detected, I have to ask further whether this and the cardiac arrest would probably have added to the damage. There is no evidence sufficient for me to make this finding. In conclusion, therefore, I find for the Defendant and dismiss the claim.”
“46. In my view one cannot draw a distinction between medical negligence cases and others. I would summarise the position in relation to cumulative cause cases as follows. If the evidence demonstrates on a balance of probabilities that the injury would have occurred as a result of the non-tortious cause or causes in any event, the claimant will have failed to establish that the tortious cause contributed. Hotson exemplifies such a situation. If the evidence demonstrates that 'but for' the contribution of the tortious cause the injury would probably not have occurred, the claimant will (obviously) have discharged the burden. In a case where medical science cannot establish the probability that 'but for' an act of negligence the injury would not have happened but can establish that the contribution of the negligent cause was more than negligible, the 'but for' test is modified, and the claimant will succeed.”
“73. If, despite this, the period of low perfusion was such that Grace's injury did occur in this much shorter timescale, the negligence would have resulted in a loss of a couple of minutes of what (on this hypothesis) would have been a short period rapidly causing damage. Since a cardiac arrest in such circumstances involves lower perfusion still than the loss of flow which precipitates it, it is likely that it contributed to the damage to an extent which was not insignificant. It would however not be causative of any greater damage than this. At most, therefore, the negligence would have contributed some 3 minutes of a potential 9 – 10 minutes of damaging hypo-perfusion. This is however sufficient for it to be a more than immaterial contribution to the damage (assuming it to have been caused by a period of hypo-perfusion at this time).”
“The duration of the hypo-perfusion is a critical factor in determining whether brain damage results from an episode of hypo-perfusion…we have found no damage in neonates who suffered hypo-perfusion for less than 10 minutes…if the hypo-perfusion is profound, with severely reduced blood flow to the brain, we have found that nearly all gray matter is injured…in contrast less severe hypo-perfusion results in damage to the intervascular boundary zones…”
“When blood flow to the brain is mildly or moderately reduced (mild to moderate cerebral hypotension with impaired auto-regulation) blood flow is shunted from the anterior to posterior circulation…As a result damage is limited to the intervascular boundary zones of the cerebral hemispheres. However when reduction of cerebral blood flow is severe (profound cerebral hypotension)…shunting of blood is no longer adequate to save the deep structures from damage…”
“Duration of the event is another important factor in interpreting an imaging study of an asphyxiated child. It is not possible to know the precise duration of an arrest, particularly in a neonate who may have arrested before delivery. Our experience, however, is that no brain damage is found in infants who have arrested for less than about 10 minutes. Patients who have arrested for 10 to 15 minutes typically suffer damage that is limited to the ventrolateral thalami, globus palladus, posterior putamen, perirolandic cortext, and sometimes hippocampi. As the duration of the arrest becomes longer, the amount of injured brain increases to include the superior vermis, optic radiations, and calcarine cortex. Ultimately, when the arrest extends into the 25-30 minute range, nearly all of the gray matter is injured and the child is left with diffuse multicystic encephalomalacia and shrunken basal ganglia… The duration of cerebral ischemia necessary to cause injury to the watershed zones and periventricular white matter is probably similar to that needed to cause damage from circulatory arrest. However, because the region suffering hypo-perfusion is limited, the region that is damaged does not extend as the duration of the hypotension progresses unless the hypotension becomes more severe. Therefore, in our experience, patients who suffer mild to moderate ischemia for many hours, or even days, have watershed patterns of injury similar to those who suffer injuries of shorter duration.”
“At no time was there any significant period of circulatory arrest,” and which also records that on the tension PNT being relieved the heart regained normal rhythm and “a good circulatory status”
“If, however, the degree and depth lasted on the second occasion even longer and even more severely than the first occasion then the border zone, as in the lawn sprinkler, would potentially enlarge but the cells that had already died could not die any further”
“In fact, quite the reverse?”