Добавил:
kiopkiopkiop18@yandex.ru t.me/Prokururor I Вовсе не секретарь, но почту проверяю Опубликованный материал нарушает ваши авторские права? Сообщите нам.
Вуз: Предмет: Файл:
Ординатура / Хирургия / Библиотека им академика М.И. Перельмана / Книга_5573_Библиотеки_им_академика_М_И_Перельмана.pdf
Скачиваний:
0
Добавлен:
30.08.2026
Размер:
48 Мб
Скачать
292
()
11.2 Denitions
C. E. Kulig
11.2.1
Heart failure can present in many different ways and is an umbrella term. Two patients may both have the diagnosis of “heart failure” but have vastly different cardiac structural changes and require different treatments.
a bare-bones denition.
patient to patient, the heart is unable to pump enough blood out to meet the demands of the body.
as heart failure with reduced ejection fraction (HFrEF), and diastolic heart failure, also known as heart failure with preserved ejection fraction (HFpEF). However, more recently, new categories of heart failure have emerged, leaving us with some new acronyms in our bowl of alphabet soup: heart failure with improved ejection fraction (HFimpEF) and heart failure with mildly reduced ejection fraction (HFmrEF) [2].
the term ejection fraction (EF). Take a moment and ask yourself:
Heart
In order to really understand heart failure, it is best to rst strip this term down to
Heart failure is a condition where, for a variety of reasons that may differ from
The two historic denitions of heart failure are systolic heart failure, also known
To better understand this terminology, it is important to rst have a clear grasp of
Failure

11.2.2 What is Ejection Fraction?

As the name suggests, ejection fraction is a fraction, one number over another, and is dened as stroke volume divided by the ventricular end-diastolic volume (VEDV).
Stroke volume
The amount of blood pumped =oout of the
 
ventricle in contraction
Ejection fraction
Stroke volume (SV) is the amount of blood that the ventricle pumps out per each beat (aka in 1 contraction).
Ventricular end-diastolic volume (VEDV) is the total amount of blood in the ventricle at the end of diastole (relaxation)—when the ventricle is at its fullest point immediately prior to contraction.
Test Your Knowledge
At the end of diastole (relaxation), a patient’s left ventricle holds 100mL.During systole (contraction), the left ventricle pumps 50mL of blood out to the aorta.
The vloume of blood in the ventricle at its fu
1
Ventricularend di
aastolic volume
 
lllest
11 Acute Decompensated Heart Failure
293
What is the patient’s:
A. Stroke volume B. LVEDV C. EF
The patient’s stroke volume is 50mL.The LVEDV is 100mL.Therefore the EF is 50/100=0.5=50%.
There are two phases of the cardiac cycle: systole (squeeze) and diastole (relax­ation). Systole is the part of the cardiac cycle when both ventricles contract (and the atria relax), and diastole is when both ventricles undergo relaxation (and the atria contract).
Systolic heart failure, also known as HFrEF, occurs when there is an issue with the force of contraction of the ventricle. As the name suggests, there is an issue with the systole, or the squeeze, of the ventricle. The ventricular muscle is weakened and can no longer squeeze as hard as it used to, to push that blood out of the ventricle. Systolic heart failure is dened by an EF of <40% [2].
Diastolic heart failure, also known as HFpEF, occurs when there is an issue with the relaxation of the ventricles. As the name suggests, there is an issue with diastole or the relaxation of the ventricle. The ventricular wall can become stiff and rigid, and no longer be elastic enough to relax and accommodate a normal blood volume; in other patients, the left ventricular wall can hypertrophy and grow thicker and thicker, decreasing the amount of space available to hold blood within the ven­tricle. In this way, diastolic heart failure is really an issue with the amount of blood volume the ventricle can hold.
But what differentiates a healthy person from a patient with HFpEF? After all, both ejection fractions are considered “normal” in both patients.
This can be best illustrated in an example.
Test Your Knowledge (*note: the volumes used in these examples are for illustrative purposes only)
Patient A: Patient A’s left ventricle is able to hold 80mL at the end of diastole. During systole, the LV pumps 40mL of blood out to the aorta.
Patient B: Patient B’s left ventricle is able to hold 30mL at the end of diastole. During systole, the LV pumps 15mL of blood out to the aorta.
What is each patient’s:
A. LVEDV
SV
B.
EF
C.
P
atient A’s LVEDV is 80mL. Patient B’s LVEDV is 30 mL. Patient A’s SV is
40mL, and Patient B’s SV is 80mL. However, both patients have an EF of 50%.
As illustrated in the case above, although both these patients have an EF of 50%, there is a big difference between the amount of blood that the body is receiving.
Patient B illustrates a case of a patient with heart failure with a “normal” EF. Keep in mind that ejection fraction is a relative term (because it is a fraction!), which is why a patient with a healthy heart can have the same EF as a person with HFpEF.
294
Fig. 11.1 Analogy: the difference between HFrEF and HFpEF
C. E. Kulig
For the visual learners, another way to visualize systolic vs. diastolic heart failure is by the visual analogy of a hand squeezing a water bottle lled with water, where the water bottle represents the ventricle, the hand squeeze represents the force of contraction, and the water leaving the bottle represents stroke volume (Fig.11.1).
In a healthy heart, there is a good amount of water in that bottle—and there is also a good squeeze. The end result is a lot of water exiting and spewing out of that water bottle.
In a heart with reduced ejection fraction (aka HFrEF, aka systolic heart failure), there is a good amount of water in that bottle—but the hand squeezing it is very weak, unable to generate a good contracting force. The end result is less water leav­ing out that bottle.
In a heart with preserved ejection fraction (aka HFpEF, aka diastolic heart fail­ure), there is not enough water in that bottle. You have a great squeeze, but because there is not enough volume to begin with, and you end up with the same result as you do in the HFrEF example, with less water leaving that bottle.
Let us delve into the different denitions of heart failure that were released with the new 2022 American guidelines [2]. As stated earlier, HFrEF is dened as an EF of <40%. Heart failure with mildly reduced ejection fraction (HFmrEF) is dened by an EF of 40–49%; HFpEF is dened as an EF of ≥50%; and heart failure with improved ejection fraction (HFimpEF), is dened as a patient with an previous EF of <40%, but has since recovered.
11.3 Common Causes ofHFrEF vs. HFpEF
HFrEF is often caused by ischemia [2]. In other words, it is heart failure caused by a lack of blood ow to the myocytes within the heart. If there is not enough blood ow to the myocytes, the myocytes will start dying. The more muscle cells that die,
11 Acute Decompensated Heart Failure
295
the larger the extent of the damage, and the less squeeze that ventricle is capable of. A common cause of HFrEF is a patient with a myocardial infarction. Other causes of nonischemic HFrEF include autoimmune conditions, chemotherapy, cardiotoxic medications, myocarditis, and substance abuse [2].
HFpEF can be caused by heart rhythm abnormalities, chronic hypertension, severe aortic stenosis, and anemia, among others [2]. Keep in mind that your heart is a muscle, just like other muscles within your body. If you went to the gym every day and started lifting heavy weights, what would happen to your biceps? They would grow. Your heart is no different. If your heart has to deal with a high chronic afterload (aka the amount of pressure your left ventricle has to ght against to ensure forward ow), your heart will also start to grow and hypertrophy. The greater the amount of hypertrophy, the thicker the ventricle wall, and the smaller the area in the ventricle that can ll with blood.

11.4 Understanding Blood Pressure

To understand acute decompensated heart failure (ADHF), a general overview of the determinants of blood pressure would also be helpful. The easiest way to break this idea down is by thinking of the garden hose sitting in your backyard. The higher the pressure of the water leaving that hose, the further it will shoot out, right?
But how to make the water shoot further? Let us say the spout is completely off, and you tweak the spout just a tad to let some water start going into that hose. At the end of your hose, that water is barely going to go anywhere. It is just going to start trickling out, and basically fall right onto the ground right next to the end of that hose.
But if we go back to that spout, and crank it all the way up to the max, that water at the end of the hose will start picking up pace and shoot out in an arc and go much farther.
In other words, the more the water - the more volume-, the higher the water pressure.
Now, let us say the spout is already maxed out—you have a nice arc of water owing from the end of the hose, but let us say you want to spray your unsuspecting sibling who is across the yard. The hose is extended fully, so you cannot drag it out anymore, and the water spout is already maxed out. What can you do to increase that water pressure and get that water to shoot out farther?
For all those with siblings, you might know that putting your thumb to cover the end of that open hose and blocking a lot of the water ow will allow the water exit­ing that hose to shoot out much farther in a smaller stream, now able to be ung across the yard and soak the unsuspecting victim.
In other words, the smaller the space we allow water to go through, the higher the pressure of the water leaving it.
Believe it or not, your body is not that different. In this analogy, the water repre­sents your blood and the hose represents the vessels of your body.
The more blood volume, the higher the blood pressure. By giving patients uids, we can help increase their pressure. Luckily for us, our body has built-in systems to help increase blood volume if patients have low blood pressure (I am looking at you, aldosterone).
296
Fig. 11.2 Blood pressure equation
C. E. Kulig
The smaller the vessels, the higher the blood pressure. Luckily for us, our body is able to self-regulate by vasoconstricting or vasodilating our vessels. We can also use medications to help us achieve these goals.
The variable we use to represent volume is cardiac output—or the amount of blood volume that the body receives from our heart per unit of time. We use the term systemic vascular resistance to represent the amount of squeeze (or size of) our vessels are exerting (Fig.11.2).

11.5 Preload vs. Afterload

An integral part of understanding heart failure and the treatment of acute decompen­sated heart failure is having a clear idea of what the terms “preload” and “after- load” mean.
Let us start with afterload, which I think can be a little easier to visualize. Afterload is dened as the amount of pressure the heart has to exert in order to eject blood out during ventricular contraction. For those who are visual, I would like you to picture yourself inside of a patient’s left ventricle (LV). To orient you, on one side, you have the mitral valve, where blood enters the LV from the left atrium (LA). And looking ahead of you, you can see the aortic valve, which is where blood must pass through in order to get out of the ventricle and into the aorta and systemic circulation.
Now keep in mind that your aorta and arteries carry their own baseline pressure even when the heart is relaxing (this is what we call your diastolic pressure). The higher that pressure, the harder your heart will have to squeeze and contract in order to ensure forward ow of blood. In other words, in order to get forward ow, your heart—specically your left ventricle—must exert a pressure that is higher than the pressure in your arteries/aorta.
In patients who are hypertensive with high systemic vascular resistance (SVR) or have stenosis of their aortic valve, afterload will be higher, and your heart will have to squeeze extra hard to get forward ow of blood.
In the context of left-sided heart failure, factors such as arterial vascular resis­tance (the size of your arteries) will determine that left ventricle’s afterload. Patients with high arterial SVR will make forward ow harder for that left ventricle, while patients with lower SVR with arterial dilation will make forward ow easier on that left ventricle.
11 Acute Decompensated Heart Failure
The second term to understand is preload. The technical denition of preload is ventricular end-diastolic pressure (VEDP) or the amount of stretch the ventricle experiences at the end of diastole, prior to contraction. Two main factors can deter­mine preload. The rst is volume. The more volume your patient has, the higher the amount of pressure and stretch your ventricle will experience. Giving patients uids will increase preload; diuresing patients will decrease preload. Besides volume (since after all, most of the time patients remain with a fairly xed volume unless we are actively giving them uids or if they are being diuresed or have blood loss), the other thing that can inuence preload is the amount of pressure the blood enters the heart with. This is inuenced by venous vascular resistance. For example, if we vasodilate the veins, the pressure entering the heart will be decreased. A lot of times, this may be confusing, but keep in mind that in a patient with constant vol­ume, dilation will cause decrease in pressure (think back to your hose analogy). If we constrict the veins, the pressure of the blood entering your heart will increase and preload will be increased.
297

11.6 Acute Decompensated Heart Failure

11.6.1 Denition
In chronic heart failure, the heart has issues keeping up with the demands of the body; however, with the use of medications, it is still able to meet the demands of the body. However, in acute decompensated heart failure, the heart can no longer meet those demands, and hospitalization may be needed to get that patient back to their “baseline.”

11.6.2 Etiology

It is important when your patient comes in with a new decompensated heart failure event that you assess for any precipitating causes and interview your patient. Some of the common causes of acute decompensated heart failure (ADHF) include isch­emia, infection, atrial brillation or other arrhythmias, pulmonary embolism, renal failure, anemia, valvular issues, and aortic dissection, among others. Medications can also precipitate ADHF.In HFrEF, any medication that has negative inotropic effects (aka decreases the force of contraction of the heart) can induce an ADHF event. A common example is the initiation of non-DHP calcium channel blockers, such as verapamil or diltiazem [2]. Additionally, the use of high-dose NSAIDs can also induce ADHF.In patients who come in with ADHF, these medications should be discontinued and avoided [2].
298
C. E. Kulig
11.6.3 Presentation andClassication
Forrester’s classication is often used to classify the main ways a patient with ADHF can present (Fig.11.3). The classication system is broken up into two main concepts: What is my patient’s volume status? What is their perfusion status?
Let us start with the assessment of volume status. The “gold standard” of volume assessment in terms of Forrester’s classication is known as pulmonary capillary wedge pressure or PCWP [2].
Pulmonary capillary wedge pressure is a measurement taken by using an inva­sive catheter. The physician will make an incision at a major vein (usually the inter­nal jugular vein, though there are other access options) and insert a long, thin, and exible tube known as a catheter into the vein. They will then guide the tube up through the vena cava, into the right side of the heart, through the right atria, through the right ventricle, and out through the pulmonary artery. Once in the pulmonary artery, the physician will place the tip of that catheter into a small pulmonary arterial branch. The tip of that catheter has an inatable balloon on it; once in position, the team will inate that balloon for a few seconds and “wedge” that branch closed while reading the pressure at that moment in time. That pressure—the pulmonary capillary wedge pressure—is a marker of volume status and left atrial pressure.
A typical PCWP in a “dry” or euvolemic ADHF patient is <18mmHg. Any mea­surement greater than 18mmHg is one marker that your patient may be presenting with volume overload [2].
The other parameter of Forrester’s classication focuses on perfusion. The “gold standard” marker of perfusion in terms of Forrester’s is cardiac index [2].
Cardiac index is a method of standardizing cardiac output, which, as we said above, is the amount of blood that leaves the heart per unit of time. In other words, it tells you how much blood your body is getting from the heart over a period of time.
Fig. 11.3 Forrester’s classication system
11 Acute Decompensated Heart Failure
However, if we only looked at cardiac output, it would be very tricky to quickly discern what a patient’s normal cardiac output should be for them. After all, a super­muscular 6′4″ male would likely require more blood per unit of time than let us say a frail, small grandmother.
In order to “standardize” this term for any given patient, cardiac output is divided by a patient’s body surface area. This means that a cardiac index (CI) of 2.0L/min/ m2 means approximately the same thing whether you are talking about a body­builder or someone’s Nana.
The “gold standard” for a patient that is adequately perfusing is a CI >2.2L/min/ m2. Anything below indicates that the patient may not be getting adequate perfusion to their body [2].
299
11.6.4 Pulmonary Artery Catheters (PACs) forAll?
Now, not every patient is going to have invasive monitoring. In fact, most patients do not require invasive monitoring. Surprisingly, despite the fact that we as clini­cians love our data and values, there is not a lot of data supporting better outcomes with the use of PACs in ADHF.
The 2022 AHA/ACC/HFSA Heart Failure Guidelines only recommend right heart catheterization in the setting of persistent congestion despite treatment due to the lack of compelling data [2].
If we do not have a PAC available, what are some other markers of either volume overload or low perfusion?
Markers of volume overload to look out for include shortness of breath, rales, pulmonary edema, pitting edema, and elevated BNP, among others. Ultrasound can even be used to visualize the vena cava and assess if it is plump (volume up) or col­lapsible (volume down).
When we are thinking about perfusion, keep in mind what the whole point of your heart is—to supply blood to the vital organs. Let us start with the brain—if the brain is not getting enough blood supply, patients may present with confusion and altered mental status. If the kidneys (which tend to be very sensitive to changes in perfusion) are not getting enough blood ow, we can see increased serum creatinine and decreased urine output in our patients. For the liver, we can see elevated liver function tests. Lastly, if our extremities are not perfusing, we can see cold extremi­ties to the touch, increased capillary lling time, and even ischemic digits.
11.7 Goals ofADHF Hospitalization
The rst thing to keep in mind with heart failure hospitalizations is that hospitaliza­tion is really a sentinel event in these patients, and we want to avoid hospitalizations at all costs in these patients.
300
Heart failure is very similar to chronic obstructive pulmonary disease (COPD) in that once a patient has an exacerbation, they often never return to their true baseline prior to hospitalization [2]. Besides triggering negative overall outcomes for our patients, ADHF hospitalizations are also a huge burden on both a patient’s quality of life and the healthcare system. Rehospitalizations within 90days of discharge are unfortunately very common, and the frequency of hospitalizations increases as the patient’s heart function deteriorates [2].
A big goal of ADHF hospitalizations, besides stabilizing the patient, is to get “guideline-directed medical therapy,” also known as GDMT, onboard for these patients [2]. These agents are extremely effective at preventing death and hospital­izations in these patients. We will be focusing on GDMT at the end of this chapter.
Lastly, another goal of hospitalization is to try to determine the patient’s euvolemic weight, relieve their decongestion, and treat their symptoms.
C. E. Kulig
11.7.1 Treatment ofADHF
When thinking about treating acute decompensated heart failure, it is important to gauge which of Forrester’s classication your patient falls into and assess wet vs. dry and warm vs. cold. This classication will help guide treatment.

11.8 Treating Volume Overload

If your patient is volume overloaded—they come in with rales, shortness of breath, pitting edema, pleural edema on chest X-ray, elevated CVPs, pro-BNP, and PCWPs—it is important to help patients take this excessive volume off the heart and also to reduce symptoms such as dyspnea.

11.8.1 Loop Diuretics

The long-time mainstay decongestion in these patients, which is echoed in the 2022 AHA/ACC/HFSA Heart Failure Guidelines, continues to be intravenous loop diuret- ics [2]. IV loop diuretics provided the most rapid and effective method of deconges- tion in these patients, and although they are not associated with clinical outcomes such as mortality, they are extremely effective at improving symptoms of volume overload in these patients [2]. Every patient coming in for a heart failure hospitaliza­tion should have a discharge plan that includes the adjustment of their diuretics [2].
Because of the phenomenon of “diuretic resistance” that involves nephron remodeling causing resistance with a need to continue escalating doses to reach the “diuretic threshold,” loop diuretic dosing is not a “one-size-ts-all” approach [2].
11
Acute Decompensated Heart Failure
301
The 2011 DOSE trial investigated the question of optimal dosing in these patients as well as examined whether or not it is more effective to administer these doses as IV boluses or continuous infusions at a low dose [5]. The trial showed that “high”­dose diuretics (dened as 2.5× the home dose administered as IV) was more effec­tive than “low-dose” diuretics and found no difference between the routes of administration (e.g., bolus dosing was no different than the continuous infusion dosing) [5].
A few things are important to note about this trial:
1. The trial did not account for the bioavailability of PO:IV furosemide (which is
2:1). For example, if a patient was on 40mg PO QD at home, they would receive 100mg IV furosemide. This really does support the claim that we should be aggressive and use “high-dose” diuretics.
2. The trial did not give an initial bolus prior to starting continuous infusion
diuretics. Keep in mind that in order to see diuresis in these patients, the con­centration of the diuretic must be above that patient’s own “diuretic threshold.” Because continuous infusion diuretics are given at such a low dose per time, it would take a long time to reach that threshold without the help of an initial bolus. If considering starting a continuous infusion, always keep in mind to
give an initial bolus up front to prevent this delay in effect. Additionally, continuous infusion may be benecial in patients sensitive to quick uid shifts, as it causes slow but prolonged diuresis and prevents things like hypotension.
We have three loop diuretic agents: furosemide, torsemide, and bumetanide. These agents all differ in potency so need to be converted if interchanging between drugs. Tables 11.1 and 11.2 illustrate both oral and intravenous diuretic options; Table11.3 illustrates equivalent diuretic doses.
Table 11.1 Commonly used oral diuretics [2]
Drug Starting dose Max daily dose Duration of action
Loop diuretics
Bumetanide 0.5–1.0mg QD or BID 10mg 4–6h Furosemide 20–40mg QD or BID 600mg 6–8h Torsemide 10–20mg QD 200mg 12–16h
Thiazide diuretics
Chlorothiazide 250–500mg QD or BID 1000mg 6–12h Chlorthalidone 12.5–25mg QD 100mg 24–72h Hydrochlorothiazide 25mg QD or BID 200mg 6–12h Indapamide 2.5mg QD 5mg 36h Metolazone 2.5mg QD 20mg 12–24h