The heart and the kidney fail in conversation. Each speaks to the other through pressure, volume, and a shared neurohormonal language, so a problem in one becomes a problem in both. The single most useful correction this chapter makes is to the intuition that a failing kidney in heart failure must be starved of forward flow. Far more often it is being throttled from behind, by the congestion the failing heart cannot clear — and that changes the treatment from giving fluid to taking it away.
Five syndromes, one question: which organ led?
The cardiorenal syndromes are a classification of direction. Type 1, acute cardiorenal, is an abrupt cardiac insult — decompensated heart failure, an acute coronary syndrome, cardiogenic shock — causing AKI. Type 2, chronic cardiorenal, is chronic heart failure grinding the kidney into CKD. Type 3, acute renocardiac, reverses the arrow: an AKI throws fluid, potassium, acid, and uraemic toxins at the heart and provokes acute cardiac dysfunction. Type 4, chronic renocardiac, is the cardiovascular burden of CKD — hypertrophy and accelerated atherosclerosis. Type 5, secondary, is a systemic disease such as sepsis or amyloidosis striking both at once. The scheme is more conceptual than prescriptive; its value is the discipline of asking which organ led, because that points to the driver. In practice, type 1 dominates the wards, and the rest of this chapter lives there.
The correction: congestion, not forward failure
The kidney perfuses on a gradient — the difference between the arterial pressure pushing blood in and the venous pressure it must push against to leave. Heart failure raises central venous pressure, which is transmitted back to the renal veins; as renal venous pressure climbs, the trans-renal gradient narrows and GFR falls, even when arterial pressure and cardiac output look adequate. The kidney is encapsulated, so congestion also raises its interstitial and tubular pressure, compounding the fall. The evidence has caught up with the physiology: in decompensated heart failure, a high central venous pressure predicts worsening renal function more reliably than a low cardiac index. Forward failure still matters at the extreme — cardiogenic shock genuinely starves the kidney — but for the typical congested patient, the problem is backward, and so is the solution.
The vicious cycle and the abdomen
Congestion is self-reinforcing. The underfilled-feeling circulation activates the renin-angiotensin system, the sympathetic nerves, and vasopressin, all of which retain sodium and water and raise venous pressure further, which worsens renal function, which activates them more. Breaking that loop is what guideline-directed heart-failure therapy does over time. There is an abdominal dimension too: ascites and gut oedema raise intra-abdominal pressure, which presses on the renal veins and parenchyma and adds its own decrement to GFR. In the most congested patients, relieving abdominal pressure improves renal function as decongestion proceeds.
Reading congestion
If congestion is the driver, congestion is what you must measure. The jugular venous pressure remains the bedside anchor; lung ultrasound B-lines and a plethoric, non-collapsing inferior vena cava extend it; and venous-excess ultrasound grades the severity of systemic venous congestion through the hepatic, portal, and intrarenal venous flow patterns. Read volume distribution, not just volume: many decompensated patients are congested through redistribution rather than gross fluid excess. The natriuretic response is the other half of the assessment — a spot urine sodium below roughly 50 to 70 mmol/L a couple of hours after a loop diuretic predicts a poor diuretic response and tells you to escalate early rather than wait a day to fail.
Decongestion: the prescription
Loop diuretics are first-line, and the common errors are timidity and the wrong route. Give them intravenously, because gut oedema cripples oral absorption, and dose at least at the patient's home oral-equivalent, often higher; a randomised comparison found higher dosing achieved more decongestion at the cost of a transient, benign creatinine rise, with little difference between bolus and continuous infusion. Then check the response rather than assume it: urine output over the next hours, and a spot urine sodium at two hours. Reassess congestion daily by the same signs you used to diagnose it, and keep going until the patient is decongested, not merely diuresing.
When the diuretic stops working
Diuretic resistance is the rule in the sick cardiorenal patient, not the exception. Gut oedema limits absorption, a low GFR limits delivery of drug to its tubular site of action, neurohormonal braking and distal sodium avidity blunt the effect, and dietary salt undoes it. The response is to escalate the loop dose and route, then to block the nephron sequentially — adding a thiazide-type agent such as metolazone to attack the distal compensation, with close attention to potassium and magnesium. Adding acetazolamide to a loop diuretic improves decongestion in randomised data, and the sodium-glucose cotransporter-2 inhibitors add natriuresis and outcome benefit and increasingly belong in the regimen. Ultrafiltration is reserved for genuinely diuretic-refractory congestion; a randomised trial found it no better than stepped pharmacologic care and more prone to adverse events, so it is a tool for the refractory, not a first move.
The creatinine that rises for a good reason
Decongestion often nudges the creatinine up, and the instinct to stop is usually wrong. As you remove fluid, the blood haemoconcentrates and the neurohormonal axis activates, so creatinine drifts higher — pseudo-worsening renal function. When it happens in a patient who is still congested and genuinely decongesting, it is associated with good, not bad, outcomes, and the diuretic should continue. True worsening is different: it appears with signs of hypovolaemia, a falling filling pressure, or features of intrinsic injury, and it warrants reassessment. The skill is telling the benign rise from the dangerous one, and not abandoning effective decongestion because a number moved in the expected direction.
Where fluid and inotropes do and do not belong
The cardiorenal patient is usually wet, so fluid is rarely the answer and often the harm; reserve it for the genuinely under-filled, which in this population is uncommon. Inotropes and vasopressors belong to the low-output patient — cardiogenic shock with true forward failure — and not to the warm, congested majority. Over the longer arc, the treatment that helps both organs is guideline-directed heart-failure therapy: renin-angiotensin blockade, beta-blockade, mineralocorticoid antagonism, the SGLT2 inhibitors, and angiotensin-receptor-neprilysin inhibition. Starting a RAAS blocker commonly bumps the creatinine; a rise under about a third is expected and reflects the drug working on glomerular haemodynamics, not kidney injury, and is not a reason to stop.