Volume depletion is the commonest reversible cause of acute kidney injury, and the one most often mishandled in both directions — too little fluid in the genuinely dry, too much in the patient who was never going to respond. The skill is not simply giving fluid; it is reading whether perfusion is the problem, whether fluid is the answer, and when to stop. Pre-renal azotaemia rewards early, accurate resuscitation and punishes both neglect and excess.
Volume depletion and pre-renal azotaemia: cause and consequence
Keep the two ideas separate. Volume depletion is a deficit of extracellular fluid — sodium and water lost from the body. Pre-renal azotaemia is what the kidney does about it: as renal perfusion falls, GFR falls, urea and creatinine climb, and the tubule — still structurally intact — conserves sodium and water with everything it has. One is the cause, the other the renal readout. The distinction matters because not every pre-renal state is from true depletion: heart failure, cirrhosis, and sepsis lower the effective arterial blood volume despite a full or overfull body, and they have their own chapters. This chapter is about the patient who has genuinely lost fluid, and the general discipline of restoring perfusion.
Find the leak
Volume leaves by a limited number of routes, and naming the route shortens the work-up. Gastrointestinal losses — vomiting, diarrhoea, nasogastric suction, high-output stoma or fistula — are the everyday culprits. Renal losses come from diuretics, an osmotic diuresis in hyperglycaemia, salt-wasting states, the diuresis that follows relief of obstruction or recovery from ATN, and adrenal insufficiency. The skin and lungs lose fluid through sweating, fever, and burns. Third-spacing sequesters fluid out of the circulation in pancreatitis, bowel obstruction, and the capillary leak of sepsis. And haemorrhage depletes the intravascular compartment directly. The history usually points to the route before any test confirms it.
Reading volume status — and its limits
The bedside signs of hypovolaemia are useful when present and treacherous when absent. A postural fall in blood pressure, a low jugular venous pressure, dry mucous membranes, and delayed capillary refill all support depletion, but their sensitivity is poor — plenty of dry patients look deceptively normal, and skin turgor is unreliable in the elderly. This is why the assessment has moved toward dynamic measures that ask the only question that matters at the bedside: if I give fluid, will the cardiac output rise? A passive leg raise that transiently augments stroke volume, respiratory pulse-pressure variation in a ventilated patient, and a collapsible inferior vena cava on point-of-care ultrasound all predict a response. Static numbers — a single central venous pressure — do not, and should not be used to decide fluid.
Fluid responsiveness is not fluid tolerance
Two separate questions govern every bolus, and conflating them causes harm. The first is responsiveness: on the steep part of the Frank–Starling curve, a preload-dependent ventricle answers a fluid challenge with more output; on the flat part, it does not. Only around half of hypotensive patients sit on the steep part, so half gain nothing from fluid. The second question is tolerance: can the patient accept the volume without congesting the lungs, gut, and kidneys? A patient can be fluid-responsive yet intolerant — their output would rise, but the cost in oedema is unacceptable. Give fluid only when the answer to both is yes, and stop the instant responsiveness disappears.
Choosing the fluid: balanced crystalloid versus saline
For most resuscitation, a balanced crystalloid — a solution whose electrolyte profile approximates plasma — is preferred over 0.9% saline. Saline is misnamed ‘normal’; its supraphysiological chloride load produces a hyperchloraemic metabolic acidosis and, through tubuloglomerular feedback, afferent vasoconstriction that lowers GFR. Large trials in critically ill and emergency-department patients show balanced solutions reduce major adverse kidney events compared with saline. Saline still has its places — a hypochloraemic, hypokalaemic alkalosis from protracted vomiting is the classic indication, and there are nuances in hyponatraemia and brain injury — but the default has shifted to balanced. Colloids have largely lost the argument: hydroxyethyl starch increases AKI and mortality and is abandoned, and albumin confers no general benefit over crystalloid while harming in traumatic brain injury, its specific role in cirrhosis aside.
How much, how fast, and when to stop
Resuscitate in small reassessed aliquots — 250 to 500 mL — rechecking responsiveness and tolerance after each, rather than running fixed large-volume protocols that ignore the individual. It helps to think in phases: an initial resuscitation to rescue perfusion, then optimisation to fine-tune, then stabilisation, and finally evacuation — the deliberate removal of the fluid that resuscitation deposited. The danger at the far end is fluid overload, which is not a benign by-product: a positive cumulative balance is independently associated with higher mortality and worse renal recovery, partly because venous congestion raises renal venous pressure and chokes the perfusion gradient the kidney depends on. More fluid is not safer fluid.
When fluid is the wrong answer
Three situations call for restraint or a different lever. The non-responder gains nothing from more volume and pays in congestion — stop and reassess. The vasodilated patient, as in sepsis, needs perfusion pressure restored with a vasopressor as much as volume; endless litres will not fix a tone problem. And the kidney that fails to recover once perfusion is unequivocally adequate has likely crossed from pre-renal physiology into established ATN, where fluid does nothing for the lesion and everything for the oedema. Recognising these three keeps resuscitation from becoming its own complication.
Treat the cause, withdraw the offenders
Fluid buys time; it does not fix the leak. Stop the losses — antiemetics, control of diarrhoea, correction of hyperglycaemia, transfusion for haemorrhage — and replace ongoing losses measured rather than guessed. At the same time, withdraw what is sabotaging autoregulation: the NSAID blocking the afferent arteriole, the ACE inhibitor or ARB blocking the efferent, the diuretic deepening the deficit. Reversing pre-renal AKI is as much subtraction as addition, a theme inherited directly from the approach chapter.