Acute Decompensated Heart Failure (ADHF)
What is ADHF?
Acute Decompensated Heart Failure (ADHF) is the rapid onset or worsening of signs and symptoms of heart failure requiring urgent therapy and often hospitalization.
It may occur as:
- De novo HF (newly diagnosed)
- Acute decompensation of chronic HF
- Progression to cardiogenic shock
Major guidelines:
- American Heart Association (AHA)
- European Society of Cardiology (ESC)
Table of Contents
TogglePathophysiology of ADHF
- Elevated LV filling pressure → Pulmonary congestion
- Reduced cardiac output → Hypoperfusion
- Neurohormonal activation
- Renal congestion → Cardiorenal syndrome
In most cases, hospitalization in heart failure is driven by volume overload with pulmonary and/or venous congestion, reflected by elevated right- and left-sided filling pressures.
Sympathetic activation reduces venous capacitance, shifting blood from reservoirs (like the splanchnic circulation) to the heart, thereby increasing filling pressures without increasing total body volume.
Although weight gain is a simple marker of worsening heart failure, it is not a sensitive indicator in all patients.
Hemodynamic Profiles
|
Profile |
Congestion |
Perfusion |
Clinical Type |
|
Warm & Wet |
Yes |
Adequate |
Most common(80%) |
|
Cold & Wet |
Yes |
Poor |
High mortality |
|
Cold & Dry |
No |
Poor |
Hypovolemic / overdiuresed |
|
Warm & Dry |
No |
Adequate |
Compensated |
Precipitating Factors
Remember: “CHAMP”
- C – Acute Coronary Syndrome
- H – Hypertensive crisis
- A – Arrhythmia (AF common)
- M – Mechanical cause (MR, VSD),Myocarditis
- P – Pulmonary embolism,Peripartum cardiomyopathy
Others:
- Acute volume overload(diuretic nonadherence )
- Acute hypovolemia(over-diuresis)
- Bradyarrhythmia
- Tachyarrhythmia
- Prosthetic valve dysfunction (e.g., thrombosis)
- Infection
- Anemia
- Thyroid disorders
- Non-compliance
- Renal failure
- NSAIDs
SCAI SHOCK CLASSIFICATION
The Society for Cardiovascular Angiography & Interventions (SCAI) Shock Classification
|
Stage |
Clinical / Hemodynamic Features |
Typical Findings |
|
🟢 A At Risk |
No shock; patient has condition that may progress to shock |
ACS, acute/decompensated HF, myocarditis, arrhythmia, structural heart disease |
|
🟡 B Beginning Shock |
Relative hypotension or tachycardia without hypoperfusion |
SBP usually <90 mmHg or MAP <60–65; HR ≥100; may have elevated filling pressures |
|
🟠 C Classic Shock |
Hypoperfusion requiring intervention(Established cardiogenic shock) |
Hypotension, cool extremities, altered mentation, oliguria, elevated lactate; usually requires vasopressor/inotrope |
|
🔴 D Deteriorating Shock |
Shock not responding adequately to initial therapy |
Persistent hypotension/hypoperfusion despite initial pharmacologic or mechanical support; worsening lactate, renal function, etc. |
|
⚫ E Extremis |
Refractory shock with impending or actual circulatory collapse |
Severe hypotension, profound hypoperfusion, severe acidosis/lactate elevation, altered consciousness; multiple vasopressors/MCS; cardiac arrest may occur |
Symptoms in ADHF
|
Symptom |
Mechanism |
|
Dyspnea on exertion(most common symptom of hypervolemic ADHF, |
↑ LV filling pressure → pulmonary venous congestion → ↓ lung compliance |
|
Orthopnea |
Supine position ↑ venous return → ↑ pulmonary capillary pressure |
|
Paroxysmal nocturnal dyspnea (PND) |
Nocturnal fluid redistribution + reduced adrenergic tone |
|
Acute breathlessness at rest |
Sudden alveolar flooding (acute pulmonary edema) |
|
Pink frothy sputum |
RBC transudation into alveoli due to high capillary pressure |
|
Cough (worse at night) |
Pulmonary interstitial edema stimulating cough receptors |
|
Wheezing (“cardiac asthma”) |
Peribronchial edema causing airway narrowing |
|
Fatigue |
Reduced cardiac output → skeletal muscle hypoperfusion |
|
Reduced exercise tolerance |
Impaired oxygen delivery to tissues |
|
Palpitations |
AF or sinus tachycardia secondary to SNS activation |
|
Chest pain |
Demand ischemia / ACS precipitating ADHF |
|
Rapid weight gain |
Fluid retention (RAAS activation) |
|
Abdominal fullness |
Hepatic congestion / ascites |
|
Early satiety |
Congested liver + gut edema |
|
Nausea / vomiting |
Splanchnic congestion |
|
Confusion / altered sensorium |
Cerebral hypoperfusion |
|
Reduced urine output |
Renal hypoperfusion + venous congestion |
|
Nocturia (early HF) |
Improved renal perfusion in supine position |
|
Cold intolerance |
Peripheral vasoconstriction |
|
Anxiety / air hunger |
Severe hypoxia in pulmonary edema |
Signs of Left-Sided Congestion
|
Sign |
Mechanism |
|
Tachypnea |
Hypoxia + J receptor stimulation |
|
Use of accessory muscles |
Increased work of breathing |
|
Basal crackles (crepitations) |
Alveolar/interstitial fluid |
|
Widespread crackles |
Severe pulmonary edema |
|
Wheezing |
Bronchial wall edema |
|
Hypoxia (↓SpO₂) |
V/Q mismatch |
|
Cyanosis |
Severe hypoxemia |
|
S3 gallop |
Rapid ventricular filling into dilated LV |
|
S4 gallop (HFpEF) |
Stiff ventricle with atrial contraction |
|
Displaced apex beat |
Dilated LV |
|
Mitral regurgitation murmur |
LV dilation → annular dilation |
Signs of Right-Sided Congestion
|
Sign |
Mechanism |
|
Raised JVP |
Elevated right atrial pressure |
|
Hepatojugular reflux |
Inability of RV to handle venous return |
|
Peripheral pitting edema |
Venous hypertension |
|
Sacral edema (bedridden) |
Dependent venous pooling |
|
Ascites |
Chronic hepatic congestion |
|
Tender hepatomegaly |
Passive venous congestion |
|
Splenomegaly (chronic) |
Long-standing portal congestion |
|
Anasarca |
Severe systemic congestion |
Signs of Hypoperfusion (Low cardiac Output State)
|
Sign |
Mechanism |
|
Cool clammy extremities |
SNS-mediated vasoconstriction |
|
Delayed capillary refill |
Poor peripheral perfusion |
|
Hypotension |
Reduced stroke volume |
|
Narrow pulse pressure |
Low forward flow |
|
Tachycardia |
Compensatory SNS activation |
|
Weak peripheral pulses |
Low cardiac output |
|
Oliguria (<0.5 mL/kg/hr) |
Renal hypoperfusion |
|
Lactic acidosis |
Tissue hypoxia |
|
Altered mental status |
Cerebral hypoperfusion |
Atypical Presentation
|
Scenario |
Why It Occurs |
|
Elderly without dyspnea |
Blunted symptom perception |
|
Isolated confusion |
Low CO state |
|
GI symptoms dominant |
Right HF predominance |
|
Flash pulmonary edema |
Sudden afterload increase (hypertensive crisis) |
|
Normal EF with severe symptoms |
HFpEF (diastolic dysfunction) |
Laboratory Investigations
A. Natriuretic Peptides
|
Test |
What It Reflects |
What to Expect |
|
BNP |
Ventricular wall stretch |
Elevated (>100 pg/mL in ER supports HF) |
|
NT-proBNP |
Prohormone fragment |
>300 pg/mL (acute setting supports HF) |
- False high: CKD, elderly, sepsis
- False low: Obesity
B. Cardiac Biomarkers (Troponin)
|
Why Order? |
What to Expect |
|
Rule out ACS |
Mild elevation common |
|
Risk stratification |
Higher levels = worse prognosis |
Troponin elevation ≠ always MI
C. Renal Function
|
Parameter |
Expected Finding |
Mechanism |
|
Creatinine |
Elevated |
Renal hypoperfusion + venous congestion |
|
BUN |
Elevated |
Reduced renal flow |
|
BUN/Cr ratio |
>20 |
Prerenal physiology |
This may indicate cardiorenal syndrome.
D. Electrolytes
|
Electrolyte |
Expected Finding |
Why? |
|
Sodium |
Hyponatremia |
RAAS + ADH activation |
|
Potassium |
Hyper/hypokalemia |
Diuretics or renal dysfunction |
|
Magnesium |
Low |
Diuretics |
Hyponatremia = Poor prognostic marker.
E. Liver Function Tests
|
Finding |
Mechanism |
|
Elevated AST/ALT |
Hypoperfusion (“shock liver”) |
|
Elevated bilirubin |
Congestive hepatopathy |
|
Elevated ALP |
Cholestasis from congestion |
F. Lactate
Elevated in:
- Cardiogenic shock
- Severe hypoperfusion
Lactate > 2 mmol/L = tissue hypoxia
G. Complete Blood Count
|
Finding |
Why? |
|
Anemia |
Precipitating factor |
|
Leukocytosis |
Infection trigger |
|
Hemoconcentration |
Aggressive diuresis |
ECG (Mandatory in All)
|
Finding |
Interpretation |
|
Sinus tachycardia |
Compensatory |
|
Atrial fibrillation |
Common precipitant |
|
ST changes |
ACS |
|
LVH |
Chronic hypertension |
|
LBBB |
Structural disease |
Chest X-Ray
|
Finding |
Mechanism |
|
Cardiomegaly |
Dilated LV |
|
Kerley B lines |
Interstitial edema |
|
Bat-wing pattern |
Alveolar edema |
|
Pleural effusion |
Elevated hydrostatic pressure |
|
Upper lobe diversion |
Pulmonary venous hypertension |
Early ADHF may have normal CXR.
Echocardiography (Essential)
Should be done early in all new ADHF.
What to Assess:
1. LVEF
- <40% → HFrEF
- 41–49% → HFmrEF
- ≥50% → HFpEF
2. Regional Wall Motion Abnormality→ Suggests ischemia
3. Diastolic Dysfunction—E/e′ > 15,LA enlargement
4. RV Function-TAPSE ↓ in RV failure
5. Valvular Disease
6. IVC Size-Plethoric, non-collapsible → high RA pressure
Lung Ultrasound
|
Finding |
Meaning |
|
B-lines |
Interstitial edema |
|
Pleural effusion |
Congestion |
|
Rapid reduction with therapy |
Response to diuresis |
More sensitive than CXR for early congestion.
Hemodynamic Monitoring-Pulmonary artery catheter
(Not routinely recommended )-indications are
Respiratory distress or impaired systemic perfusion with inadequate clinical assessment
- Persistent HF symptoms and Unclear fluid status (wet or dry) and/or perfusion status (warm or cold)
- Uncertain systemic or pulmonary vascular resistance
- Worsening kidney function
- To guide IV vasodilator or inotropic therapy
- To guide potential mechanical cardiac support or heart transplant decisionsUsing Pulmonary Artery Catheter:
Hemodynamic Goals in ADHF
|
Parameter |
Target (Goal) |
|
Right Atrial Pressure (RAP) |
< 8 mmHg |
|
Pulmonary Capillary Wedge Pressure (PCWP) |
< 15 mmHg |
|
Systemic Vascular Resistance (SVR) |
1000–1200 dynes-sec/cm⁵ |
|
Cardiac Index (CI) |
≥ 2.2 L/min/m² |
|
If CI remains low |
— |
Coronary Evaluation
Indicated if:
- Suspected ACS,High-risk ECG changes,Elevated troponin
Additional Tests (Based on Clinical Suspicion)
|
Test |
When to Order |
|
Thyroid function |
New AF |
|
D-dimer |
Suspected PE |
|
Procalcitonin |
Suspected infection |
|
ABG |
Severe respiratory distress |
Diagnostic Criteria (ESC Approach)
According to ESC, ADHF diagnosis requires:
A. Symptoms ± Signs of HF
AND
B. Elevated natriuretic peptides
AND/OR
C. Objective evidence of structural/functional cardiac abnormality
BNP Cutoffs (ESC Emergency Setting)
|
Test |
Rule-Out Value |
|
BNP |
< 100 pg/mL |
|
NT-proBNP |
< 300 pg/mL |
If below these → HF unlikely.
Elevated values support diagnosis but are not specific.
Management
Most outpatient GDMT of heart failure should be continued during ADHF unless any specific contraindication
|
Drug |
Continue? |
|
ACEi/ARB/ARNI |
Hold if hypotension/AKI |
|
Beta-blocker |
Continue unless shock |
|
MRA |
Usually continue |
|
SGLT2 inhibitor |
Can continue/start once stable |
Oxygen Therapy
- Target SpO₂ > 92%
- Avoid routine oxygen if saturation normal
Non-Invasive Ventilation (CPAP/BiPAP)
Benefits:
- ↓ Preload
- ↓ Afterload
- Improves oxygenation
- Reduces intubation rate
Indicated in:
- Acute pulmonary edema
- Severe dyspnea
Intubation
Indications:Altered sensorium,Severe hypoxia,Cardiogenic shock
Use caution: Positive pressure can reduce preload in hypotensive patients.
Fluid administration Conditions
- Inadequate end-organ perfusion — e.g., oliguria/AKI, rising lactate, altered mentation.
- No significant pulmonary congestion — e.g., absence of diffuse B-lines.
- No evidence of systemic venous congestion — e.g., no marked JVP elevation, hepatic/renal venous congestion, or significant peripheral edema.
- Evidence of fluid responsiveness using dynamic assessment — e.g., PLR with LVOT-VTI increase, or another validated dynamic test.
After the fluid challenge:
- Reassess BP/MAP, perfusion, urine output, lactate, RV/LV function and congestion.
- If there is no meaningful improvement, stop giving fluid. Repeated blind fluid boluses can worsen RV dilation, septal shift and venous congestion.
Decongestion(fluid removal)
IV Loop Diuretics (First-Line)
Drug:-Furosemide/bumetanide IV(1 mg IV bumetanide = 40 mg IV furosemide)
Dosing Strategy: if chronic user: ≥ home oral dose IV equivalent.The DOSE-HF trial demonstrated that multiplying the oral diuretic dose by approximately 2.5 improves fluid and weight loss.
For loop diuretic naïve patients, this is often 40 to 80 mg of IV furosemide.
Urine Sodium–Guided Diuretic Strategy in Heart Failure
1. Rationale
- Increasing evidence supports urine sodium–based monitoring for:
- Assessing diuretic response
- Early dose titration
- More reliable than clinical markers alone (e.g., weight, edema)
2. Early Assessment of Diuretic Response
Timing
- Urine sodium (UNa): 1–2 hours after IV loop diuretic
- Urine output (UOP): within 2- 6 hours
Interpretation of Urine Sodium
- < 50–70 mmol/L → Poor response
- ≥ 100 mmol/L → Good / excellent response
- U/0 <150ml/hr-Poor response
3. Natriuretic Response Prediction
- Uses spot urine sample
- More accurate than urine sodium alone
- Helps predict loop diuretic effectiveness early
4. Diuretic Titration Strategy
Initial Goal
- Identify effective diuretic dose that produces adequate natriuresis
Then
- Repeat/adjust dose to achieve target decongestion rate
5. Targets of Decongestion
- Net sodium loss: 230–500 mmol/day
- Net fluid loss: 3–5 L/day
(Always individualize based on patient status)
6: Escalation Strategy (if resistance persists)
- Increase loop diuretic dose (stepwise doubling)
- Add:
- Thiazide (sequential nephron blockade)
- SGLT2 inhibitor
- Consider combination strategies early if poor natriuresis
7: Safety
- Avoid excessive dosing
- >1000 mg furosemide equivalent/day → caution
- Monitor:
- Electrolytes
- Renal function
Diuretic Resistance
There is no fixed rule for when to add a thiazide to loop diuretics.
- In practice, loop diuretic doses can be increased beyond usual “maximum” limits if needed.
- In resistant cases, high doses may be used safely, such as:
- IV bumetanide up to 12.5 mg
- IV furosemide up to 500 mg
These higher doses are sometimes necessary when patients do not respond to standard treatment.
To improve (augment) diuretic response, mineralocorticoid receptor antagonists (MRAs) may be used in higher doses (>100 mg/day).
Giving hypertonic saline (3% NaCl) with diuretics can sometimes increase urine output, but this needs close monitoring (electrolytes, fluid status).
Ultrafiltration (UF) is another option in acute decompensated heart failure (ADHF):
- It removes excess fluid directly from blood
- Done using venovenous access (like dialysis)
Vasodilators (If BP > 110 mmHg)
1. who will benefit
- HFrEF:
- Vasodilators ↓ preload + afterload
- → ↑ cardiac output + rapid symptom relief
- More beneficial
- Mitral regurgitation
- Very High MAP-Hypertensive urgency/emergency,High SVR on invasive monitoring
2. Types of Vasodilation
- Nitroprusside→ Balanced, ↓preload + afterload, Preffered
- NTG—best for SCAPE
3. Important Clinical Points
- Nitrate tolerance develops within hours → need 8–12 hr nitrate-free interval
- Hydralazine + nitrates:
- Combined preload + afterload reduction
- Use if ACEi/ARB not possible (e.g., renal failure, hyperkalemia, pregnancy)in the treatment of chronic HFrEF
Vasodilators in ADHF (Drug Table)
IV Vasodilators
|
Drug |
Dose |
Hemodynamic Effect |
|
Enalaprilat |
|
Venous + arterial |
|
Nitroprusside |
|
Balanced |
|
Nitroglycerin |
|
Venous (low dose), arterial (high dose) |
Oral Vasodilators(USED IN chronic HFrEF)
|
Drug |
Initial Dose |
Effect |
|
Hydralazine |
|
Arterial |
|
Isosorbide dinitrate |
|
Venous |
|
Captopril |
|
Venous + arterial |
Hypotension Management
- Norepinephrine—First line
- Epinephrine—for a patient with reduced ejection fraction, hypotension, and poor cardiac output.0-5 mcg/min acts as an inotrope.
Inotropes for HFrEF
- Routine use in acute decompensated heart failure (ADHF) is not recommended.
- Their harmful effects are due to increased intracellular calcium, which raises myocardial oxygen demand and significantly increases the risk of arrhythmias.
- Indications—Hypoperfusion with low-normal blood pressure,Refractory cardiogenic pulmonary edema
- Long-term use is limited to inotrope-dependent patients, mainly as a bridge to heart transplantation, mechanical circulatory support, or for palliative care.
|
Drug |
Infusion Rate |
Note |
|
Dobutamine |
|
↑ CO, ↑ HR, ↓ SVR |
|
Milrinone |
|
Preffered in right ventricular failure |
|
Dopamine |
|
Dose-dependent |
Digoxin—Preffered in long-standing atrial fibrillation and systolic heart failure
Fluid & Sodium Management
- Sodium restriction (≤2 g/day)
- Fluid restriction (1.5–2 L/day if hyponatremia)
- Strict I/O monitoring
- Daily weights
Guidelines recommend screening all heart failure patients for iron deficiency
- Very common: seen in 50–80% of ADHF patients, even without anemia
Definition of Iron Deficiency (HFrEF)
- Ferritin <100 ng/mL
- OR
- Ferritin 100–300 ng/mL + TSAT <20%
Oral iron NOT effective give iron.v iron only in divided dose
Mechanical circulatory support
Indicated when Everything above doesn’t work,Refractory to Pharmacological Treatment.
Options-Intra-aortic balloon pump,impella,VA-ECMO
Avoid this
- Nephrotoxic medications (e.g. NSAIDs, ACEi/ARB)
- Diltiazem for rate control in AF patients with decompensated heart failure
- Trying to suppress Compensatory sinus tachycardia.
- Treating mild Hyponatremia of heart failure origin.
- Using B-Blockers in ADHF.
REFERENCES
1.Irwin and Rippe’s Intensive Care Medicine 9th edition
