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Файл:Ординатура / Хирургия / Библиотека им академика М.И. Перельмана / Книга_5851_Библиотеки_им_академика_М_И_Перельмана.pdf
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- •Foreword
- •Foreword
- •Foreword
- •Contents of Volume I
- •Contents of Volume II
- •Contributors
- •1.1 Introduction
- •1.4.3 Acute Stroke
- •1.4.4 CNS Infection
- •1.4.1 Sepsis
- •1.4.2 Acute Encephalopathy
- •1.4.5 Severe Community-Acquired Pneumonia
- •1.4.6 Nosocomial Pneumonia
- •1.4.7 Pulmonary Edema
- •1.4.8 Fever
- •References
- •2.1 Introduction
- •2.4 ECG Nomenclature
- •2.4.1 P Wave
- •2.4.2 PR Interval
- •2.4.3 QRS Complex
- •2.4.4 J Point
- •2.4.5 ST Segment
- •2.4.6 T Wave
- •2.4.7 QT Interval
- •2.4.8 U Wave
- •2.4.9 RR Interval
- •2.5.1 P Wave
- •2.5.1.1 Atrial Arrhythmias
- •Atrial Fibrillation
- •Atrial Flutter
- •Atrial Tachycardia
- •Multifocal Atrial Tachycardia
- •2.5.1.2 Interatrial Blocks
- •Intermittent Interatrial Block (I-IAB)
- •Advanced Interatrial Block (A-IAB)
- •2.5.2 P-QRS Ratio
- •2.5.2.1 Shortened P-QRS Ratio
- •Wolff-Parkinson-White Syndrome (WPW)
- •Junctional Rhythm
- •Atrioventricular Nodal Reentrant Tachycardia (AVNRT)
- •2.5.2.3 Prolonged P-QRS Ratio
- •2.5.3 PR Interval
- •2.5.3.1 Shortened PR Interval
- •2.5.3.2 Prolonged PR Interval
- •2.5.3.3 Second-Degree AV Block
- •Advanced AV Block
- •Third-Degree AV Block (Complete Heart Block)
- •2.5.4 PR Segment
- •2.5.4.1 PR-Segment Elevation
- •2.5.4.2 PR-Segment Depression
- •Acute Pericarditis
- •Acute Myocardial Ischemia
- •2.5.5 Q Waves
- •2.5.6 QRS Complex
- •2.5.6.1 Heart Rate
- •2.5.7 QT Interval
- •2.5.8 ST Segment
- •2.5.8.1 ST-Segment Depression
- •2.5.8.2 ST-Segment Elevation
- •2.5.9 T Waves
- •2.5.9.1 Inverted T Wave
- •2.5.9.2 Flattened T Wave
- •2.5.9.3 Peaked T Wave
- •References
- •Further Reading
- •3.1 Introduction
- •3.2.2 Nasogastric Tube
- •3.2.3 Central Venous Catheters
- •3.2.4 Cardiac Devices
- •3.2.5 Arterial Catheters
- •3.3 Cardiopulmonary Abnormalities
- •3.3.1 Pulmonary Edema
- •3.3.2 Acute Respiratory Distress Syndrome
- •3.3.3 Atelectasis
- •3.3.4 Aspiration
- •3.3.5 Pneumonia
- •References
- •4.1 Introduction
- •4.5 Modes of Mechanical Ventilation
- •4.5.1 Volume Control Ventilation
- •4.5.2 Pressure Control Ventilation
- •4.5.3 Pressure Support Ventilation
- •4.6 Patient-Ventilator Interactions
- •4.6.1 Trigger Dyssynchrony
- •4.6.2 Flow Dyssynchrony
- •4.6.3 Cycle Dyssynchrony
- •4.9.1 Acute Respiratory Distress Syndrome
- •4.9.2 Severe Asthma Exacerbation
- •4.11 Summary
- •5.10 Neuromuscular Blockade
- •References
- •5.1 Introduction
- •5.3 Pathobiology
- •5.4 ARDS Phenotypes
- •5.5 Lung-Protective Ventilation
- •5.6 Positive End-Expiratory Pressure
- •5.7 Conservative Fluid Management
- •5.8 Moderate-to-Severe ARDS
- •5.9 Prone Positioning
- •5.11 Corticosteroids
- •5.12 Inhaled Pulmonary Vasodilators
- •5.13 Veno-Venous Extracorporeal Membrane Oxygenation
- •5.14 Survivorship
- •References
- •6.1 Introduction/Epidemiology
- •6.2 Physiology
- •6.2.2 Physiology During COPD Exacerbation
- •6.4 Pharmacologic Treatment
- •6.4.1 Bronchodilators
- •6.4.1.1 Mechanism
- •6.4.2 Glucocorticoid Therapy
- •6.4.2.1 Mechanism
- •6.4.2.4 Duration
- •6.4.3 Antimicrobials
- •6.4.3.1 Antibiotic Patient Selection
- •6.4.4.1 Nonpharmacologic Interventions
- •6.4.4.2 Opioids
- •6.4.4.3 Benzodiazepines
- •6.4.4.4 Dexmedetomidine
- •6.4.4.5 Ketamine
- •6.4.5 Adjunctive Therapies
- •6.4.5.1 Magnesium
- •6.4.5.3 Vitamin D
- •6.4.5.4 Venous Thromboembolism Prophylaxis
- •6.4.5.5 Smoking Cessation
- •6.4.5.6 Bowel Regimen
- •6.4.5.7 Mucolytics
- •6.4.5.8 Nutrition
- •6.4.5.9 Post-Discharge Adjuncts
- •6.5 ICU-Level Interventions
- •6.5.1 Noninvasive Positive-Pressure Ventilation
- •6.5.2 High-Flow Nasal Canula
- •6.5.3 Invasive Mechanical Ventilation
- •6.6 Conclusion
- •References
- •7.1 Introduction
- •7.1.1 What Is Asthma?
- •7.2 Diagnosis
- •7.2.1 Physical Examination
- •7.2.2 Laboratory Data
- •7.2.3 Radiographic Findings
- •7.3.1 Standard-of-Care Therapy
- •7.3.3 Potential Adjunctive Therapies
- •7.3.3.1 Inhaled Corticosteroids (ICSs)
- •7.3.3.4 Intravenous (IV) Aminophylline
- •7.3.3.5 Intravenous (IV) Beta2-Agonists
- •7.3.3.6 Leukotriene Antagonists (LTRAs)
- •7.3.3.7 Intramuscular (IM) or IV Epinephrine
- •7.3.3.8 Inhaled Anesthetics
- •7.3.3.9 Inhaled Helium-Oxygen (Heliox)
- •7.3.3.10 Intravenous Ketamine
- •7.3.4.1 Subcutaneous (SC) Biologics
- •7.4.1 Noninvasive Ventilation (NIV)
- •7.4.2 Invasive Mechanical Ventilation (IMV)
- •7.6.1 Outpatient Follow-Up
- •7.7 Summary
- •References
- •8.1 Introduction
- •8.1.3.2 Anatomic Location
- •8.1.3.3 Chronicity
- •8.1.4 Clinical Presentation
- •8.1.4.1 Symptoms
- •8.1.4.2 Physician Examination
- •8.1.4.3 Cardiopulmonary Compromise
- •8.2.1.1 Clinical Pretest/Scores
- •8.2.1.2 D-Dimer-Level Interpretations
- •8.2.2 Computed Tomography Pulmonary Angiography (CTPA)
- •8.2.3 Mortality Risk Assessment
- •8.2.3.1 PE Severity Index Score
- •8.2.3.2 Prognostic Indicators
- •8.3.2 High-Risk PE
- •8.4 Systemic Thrombolytic Therapy
- •8.4.1.1 High-Risk PE
- •8.4.1.2 Intermediate-Risk PE
- •8.4.1.3 Cardiac Arrest
- •8.5.2 Percutaneous Mechanical Interventions
- •8.5.2.2 Catheter-Directed Thrombolysis
- •8.5.3 Surgical Embolectomy
- •8.5.4 Mechanical Circulatory Support
- •8.6.1 PE Response Team (PERT)
- •8.6.3.1 Renal Dysfunction
- •8.6.3.4 Cancer
- •8.6.3.5 Treatment Failure
- •8.7 Conclusion
- •References
- •9.1.2 ECMO Outcomes
- •9.2 ECMO During Cardiopulmonary Resuscitation (eCPR)
- •9.2.1 Extracorporeal Carbon Dioxide Removal
- •9.3 ECMO Management
- •9.3.3 Fluid Management
- •9.4.1 Coagulation Changes
- •9.4.2 Transfusion Thresholds
- •9.4.3.1 Heparin
- •9.4.3.2 Direct Thrombin Inhibitors
- •9.4.4 Monitoring Anticoagulation
- •9.6.2.1 Opioids
- •9.6.2.2 Ketamine
- •9.6.2.3 Propofol
- •9.6.2.4 Benzodiazepines
- •9.6.2.5 Dexmedetomidine
- •9.7.1 Aminoglycosides
- •9.7.2 Beta-Lactams
- •9.7.4 Antifungals
- •9.9 Other Complications
- •9.9.1 Bleeding
- •9.9.2 Thrombosis
- •9.9.3 Neurologic
- •9.10 Conclusion
- •References
- •10.1 Type 1–5 Myocardial Infarctions
- •10.2 Acute Coronary Syndrome (Type 1 MI)
- •10.3 Clinical Presentation/Evaluation
- •10.4 Non-pharmacologic Therapy
- •10.5 Pharmacologic Therapy
- •10.5.1 Fibrinolytics
- •10.5.2 Anticoagulants
- •10.5.2.1 Heparins
- •10.5.2.2 Direct Thrombin Inhibitors
- •10.5.3 Antiplatelets
- •10.5.3.1 Aspirin
- •10.5.3.2 P2Y12 Inhibitors
- •Clopidogrel
- •Prasugrel
- •Ticagrelor
- •10.5.3.3 Glycoprotein IIb/IIIa Receptor Inhibitors
- •10.5.3.4 Cangrelor
- •10.7 Long-Term Management
- •10.7.1 High Bleed Risk (HBR)
- •10.7.2 Statins
- •10.7.3 Beta-Blockers
- •10.7.5 Mineralocorticoid Receptor Antagonists
- •References
- •11.1 Introduction
- •11.2.2 What is Ejection Fraction?
- •11.4 Understanding Blood Pressure
- •11.5 Preload vs. Afterload
- •11.6 Acute Decompensated Heart Failure
- •11.6.2 Etiology
- •11.8 Treating Volume Overload
- •11.8.1 Loop Diuretics
- •11.9 Intravenous Vasodilators
- •11.10 Cardiogenic Shock
- •11.10.1 Inotrope Clinical Pearl
- •11.12 Digoxin
- •11.12.3 Loading Dose
- •11.12.4 Maintenance Dosing
- •11.12.5 Monitoring
- •11.12.7 Distribution
- •11.12.8 Drug-Drug Interactions
- •11.12.9 Digoxin Toxicity
- •11.13 ADHF Clinical Pearls
- •11.13.3 Avoid Phenylephrine
- •11.13.4 Use Mean Arterial Pressure (MAP)
- •11.14 Guideline-Directed Medical Therapy
- •11.15 Venous Thromboembolism (VTE) Prophylaxis
- •11.16 Conclusion
- •References
- •12.1 Introduction
- •12.3 Diagnostic Findings
- •12.4.1 Oxygen Therapy
- •12.4.2 Pharmacological Management
- •12.4.3 Mechanical Circulatory Support (MCS)
- •12.5 Pulmonary Hypertension
- •12.6 The Pharmacist’s Role
- •12.7 Conclusion
- •References
- •13.1 Introduction
- •13.2 Atrial Arrhythmias
- •13.2.2 Atrioventricular Blocks
- •13.2.3 Atrial Fibrillation
- •13.2.3.2 Anticoagulation
- •13.2.3.3 Rate vs. Rhythm Control
- •13.2.4 Atrial Flutter
- •13.2.5 Supraventricular Tachycardia (SVT)
- •13.3 Ventricular Arrhythmias
- •13.3.1 Premature Ventricular Complexes
- •13.3.2 Ventricular Tachycardia
- •13.3.2.1 Torsades de Pointes
- •13.3.3 Ventricular Fibrillation
- •13.3.4 Ventricular Arrhythmia Treatment Strategies
- •13.3.4.1 ICD Implantation
- •13.3.4.2 Pharmacologic Treatments
- •13.3.4.3 Catheter Ablation
- •13.4 Conclusion
- •References
- •14.1 Introduction
- •14.3.2 Laboratory Assessment
- •14.3.3 Imaging
- •14.3.4 Invasive Hemodynamic Monitoring
- •14.4.1 Distributive
- •14.4.2 Cardiogenic
- •14.4.3 Hypovolemic
- •14.4.4 Obstructive
- •14.5 Management
- •14.6 Conclusion
- •References
- •15.1 Background
- •15.2 Diagnosis
- •15.3 Management
- •References
- •16.1 Introduction
- •16.3 Hemodynamics
- •16.5 Pharmacological Management
- •16.5.1 Hyperosmolar Therapy
- •16.5.3 Barbiturate Coma
- •16.6 Nonpharmacological Treatments
- •16.6.2 Temperature Management
- •16.6.3 Prophylactic Hypothermia
- •16.7 Adjunct Therapies
- •16.7.2 Venous Thromboembolism (VTE) Prophylaxis
- •16.7.3 Antibiotic Prophylaxis
- •16.7.4 Stress Ulcer Prophylaxis (SUP)
- •16.7.5 Tranexamic Acid
- •16.7.6 Glucose Targets
- •16.7.7 Steroids
- •16.8 Complications
- •16.8.1 Paroxysmal Sympathetic Hyperactivity
- •16.8.3 Central Fever
- •16.8.4.1 Diabetes Insipidus
- •16.8.4.3 Cerebral Salt Wasting Syndrome
- •16.9 Conclusion
- •References
- •17.1 Introductory Case
- •17.2 Introduction
- •17.4 Pathophysiology
- •17.5 Acute Therapies
- •17.5.1 Thrombolytic Therapy
- •17.5.2 Thrombectomy
- •17.5.3 Blood Pressure Management
- •17.5.4 Acute Anticoagulation
- •17.5.5 Antiplatelet Therapy
- •17.6 Early Complications
- •17.6.1 Hemorrhagic Conversion
- •17.6.2 Angioedema
- •17.6.3 Malignant Cerebral Edema
- •17.7 Secondary Prevention
- •References
- •18.1 Introduction
- •18.4 Therapeutic Drug Monitoring
- •18.5 Adverse Drug Effects
- •18.7 Anti-seizure Medications
- •18.7.1 Available Parenteral Preparations
- •18.7.1.1 Benzodiazepines: GABAA Receptor Activation
- •18.7.1.2 Other GABAergic Therapies
- •Barbiturates: GABAergic
- •Phenobarbital
- •Pentobarbital Infusion
- •Propofol Infusion: GABAergic
- •18.7.1.3 Second-Line Non-anesthetic ASMs
- •Levetiracetam: Synaptic Vesicle Protein 2A Binding

272
Fig. 10.1 ECG of acute/evolving ST-elevation anterolateral MI (STEMI) [9]
N. Barker et al.
Fig. 10.2 ECG of acute inferior STEMI [9]
increased mortality [12–15]. The European Society of Cardiology (ESC) guidelines
do not specically comment on this but do state a concern for decrease in antiplatelet absorption and no evidence of increased risk of adverse effects with concomitant
use of morphine and antiplatelet agents [4]. This association with supplemental
oxygen (O) has been shown to be benecial in patients with arterial oxygen saturation less than 90% or signs/symptoms of signicant hypoxia. Nitroglycerin (N) is
converted into nitric oxide, which activates guanylate cyclase increasing cyclic guanosine monophosphate (c-GMP). This leads to dilation of coronary arteries, improving collateral ow to ischemic regions, and may decrease cardiac demand via a
decrease in preload. Nitroglycerin is contraindicated in patients who received oral
phosphodiesterase inhibitors within the past 24-48 h depending on agent. In

10 Acute Coronary Syndrome (ACS)
Fig. 10.3 ECG of anterior ST-elevation/Q-wave myocardial infarction, possibly recent or
evolving [9]
273
addition, ACC/AHA guidelines provide contraindication criteria for hypotension
(SBP <90mmHg or ≤30mm Hg from baseline), marked bradycardia/tachycardia,
and right ventricular infarction [12]. Sublingual nitroglycerin may be used for up to
three doses. After three doses, an intravenous infusion is recommended and titrated
to chest pain. Prolonged nitroglycerin administration may result in decreasing
effects due to tachyphylaxis, which can occur within 24h of use. Aspirin (A), discussed later in this chapter with other antiplatelet agents, should be chewed at a dose
of 324mg (chewable) or 325 mg (non-enteric coated). The use of beta-blockers
should be initiated within the rst 24h unless there is evidence of acute decompensated heart failure, heart block, or risk/evidence of shock.
Short-term goals of treatment in ACS consist of reperfusion to the narrowed or
blocked artery and minimization of infarct size. Other treatment goals include prevention of death and other complications, relief of ischemic symptoms, and prevention of current ischemia. The AHA/ACC recommend that patients be quickly
elevated and strategized based on their risks [12]. Current risk calculators for NSTEA
CS include the TIMI risk score and the GRACE risk model [4]. Both are used to
evaluate the risk of recurrent MI and mortality. During evaluation, factors such as
time from onset of symptoms, risk of bleeding, and availability of interventional
cardiology facilities should also be considered when determining reperfusion therapy. Early invasive strategies are indicated in case of recurrent angina/ischemia at
rest with low-level activities despite intensive medical therapy, new ST-segment
depression, presence of cardiac troponin, signs/symptoms of heart failure (including reduced left ventricular function), new/worsening mitral regurgitation, high-risk
ndings from noninvasive testing, sustained ventricular tachycardia, signs of hemodynamic instability, PCI within 6months or prior to CABG, and high-risk stratication scoring (4+ TIMI, >140 GRACE) [4, 16].

274
N. Barker et al.
10.4 Non-pharmacologic Therapy
Percutaneous coronary intervention (PCI) is generally the preferred method of
reperfusion therapy. PCI is a broad term that includes but is not limited to balloon
angioplasty and placement of coronary stents. In the case of a STEMI, PCI is preferred to brinolytics if the patient presents to a facility with 24-h PCI and surgical
backup availability where door-to-balloon time of 90min or less can be achieved,
the patient presents in cardiogenic shock, if symptom onset is >3h, or the patient
has a contraindication to brinolytics or is at high risk of bleeding [12].
Coronary artery bypass graft surgery (CABG) is a more invasive strategy, slower
to regain revascularization, and not commonly used as the primary treatment modality for STEMI. However, CABG may be the primary strategy of choice for a number of different reasons. It consists of removing a viable blood vessel from another
part of the body and connecting it to bypass the artery blockage. Urgent CABG may
be indicated if unsuccessful PCI/brinolysis, recurrent/persistent ischemia, mechanical complications of MI, life-threatening ventricular arrhythmias, multivessel disease as an alternative to other delayed strategies, or coronary anatomy more suitable
for CABG [4, 17].
10.5 Pharmacologic Therapy
10.5.1 Fibrinolytics
Fibrinolytic therapy is indicated for reperfusion therapy if patient with a STEMI cannot receive a PCI within 120min of rst medical contact [12]. While brinolytics
have the best efcacy if received within the rst 4h of the onset of symptoms, it
should ideally be given within 12h of the onset of symptoms [18]. Fibrinolytics
break down clots by binding to brin within the clot and by activating plasminogen
into plasmin. Use of brinolytics comes with an increased risk of bleeding, and
therefore, each patient who may be a candidate for brinolytic therapy must be
reviewed for the risks and benets of its use. Some contraindications to brinolytics
are active bleeding; history of intracranial hemorrhage; recent history of major bleeding, trauma, or surgery; severe uncontrolled hypertension; known intracranial aneurysm; and pregnancy. With any of the brinolytic therapy used for STEMI, adjunctive
therapy with an anticoagulant and antiplatelets should also be given. A pharmacologic comparison of brinolytics available in the United States can be seen in
Table10.1 [19–21].

10 Acute Coronary Syndrome (ACS)
Table 10.1 Fibrinolytics used in MI [19–21]
Alteplase Tenecteplase Reteplase
STEMI
dose
Onset 30–60min 60min 30–90min
Duration Up to 6h Up to 6h Up to 6h
Half life 26–46min 20–24min 13–16min
Excretion Hepatic Hepatic Renal
≥67kg: 15mg bolus, 50mg over
30min, 35mg over 60min
<67kg: 15mg bolus, 0.75mg/kg
over 30min, 0.5mg/kg over
60min (max dose 100mg)
~0.5mg/kg IV once
rounded to nearest 5mg
• <60kg:
• 60–69kg:
• 70–79kg:
• 80–89kg:
• ≥
30mg
35mg
40mg
45mg
90 kg: 50mg
10units IV push
every 30min ×2
doses
275
10.5.2 Anticoagulants
Regardless of the reperfusion method, adjunctive therapy with an anticoagulant
should be used in all patients who present with acute coronary syndrome (ACS)
unless a contraindication exists. Options for parenteral anticoagulation to inhibit
propagation of the clotting cascade include unfractionated heparin (UFH), lowmolecular- weight heparins (LMWHs), and direct thrombin inhibitors (DTIs). While
fondaparinux can be used in ACS, it is not recommended as the sole anticoagulant
for primary PCI in STEMI and, therefore, not commonly used [4, 12]. Heparin
products use antithrombin as a cofactor to bind factor Xa and thrombin (factor IIa).
LMWHs have a greater binding afnity to factor Xa than IIa. Direct thrombin inhibitors bind directly and irreversibly to both circulating and clot-bound thrombin (factor IIa).
10.5.2.1 Heparins
While heparin products remain the most commonly used anticoagulant for ACS,
they differ greatly in their pharmacokinetic proles. Unfractionated heparin (UFH)
has less predictable and highly variable pharmacokinetics but is still widely used
due to familiarity of dosing and monitoring, as well as a known antidote, protamine,
if a bleeding event were to occur. UFH is given as a bolus of 60units/kg (maximum
dose of 4000units) followed by a continuous infusion titrated to a goal PTT or anti Xa level. More recently, the ESC guidelines recommend an initial bolus dose of
70–100units/kg. UFH is typically continued until the time of PCI or up to 48h for
medical management [4, 12].
On the other hand, LMWHs, such as enoxaparin, have a slightly better safety and
efcacy prole when compared directly to UFH. This is thought to be due to its
highly predictable pharmacokinetics. While it is given subcutaneously, with the
exception of an IV bolus for STEMI patients or if the additional dose is needed during a PCI, it does not require routine monitoring or IV access, but it does require

276
N. Barker et al.
dose adjustments for renal function and for those greater than or equal to 75years
of age experiencing ACS [4].
10.5.2.2 Direct Thrombin Inhibitors
The use of direct thrombin inhibitors is frequently reserved for patients with active
or a history of heparin-induced thrombocytopenia. Cost may also prohibit their use
in clinical practice. The half-lives of both bivalirudin and argatroban are shorter
than heparins, therefore requiring more frequent monitoring. There is also no specic reversal agent for DTIs. Table10.2 shows dosing strategies and pharmacokinetic considerations [22, 23].
10.5.3 Antiplatelets
All patients diagnosed with ACS should be treated with two antiplatelet agents,
commonly referred to as dual-antiplatelet therapy or DAPT, which includes aspirin
(ASA) in combination with a P2Y12 inhibitor. The duration of DAPT is dependent
on various factors such as the type of stent placed, bleeding risk, concomitant oral
anticoagulation therapy, and recurrent ischemic events.
10.5.3.1 Aspirin
Aspirin is an irreversible cyclooxygenase (COX)-1 inhibitor that blocks the formation of thromboxane A2, which is one pathway responsible for platelet aggregation.
All patients should receive a loading dose of 162–325mg as early as possible once
ACS is suspected. After an initial loading dose, subsequent dose of 81mg daily is
appropriate.
Table 10.2 Direct thrombin inhibitors used in MI [22, 23]
Bivalirudin Argatroban
CS: 0.5–2mcg/kg/min titrated
Dosing
Metabolism Renal Hepatic
Half-life 25–34min, longer in renal impairment 39–50min, longer in hepatic
CS: 0.1mg/kg IV bolus followed by 0.25mg/
A
kg/h, titrated to PTT goal
PCI: 0.75mg/kg bolus prior to PCI followed by
1.75mg/kg/h during the procedure and may be
continued for up to 4h after PCI
• Requires renal dose adjustment
A
to PTT goal
PCI: 350mcg/kg bolus
followed by 25mcg/kg/min
infusion, titrated to ACT
• Requires hepatic dose
adjustment
impairment

A
10
cute Coronary Syndrome (ACS)
277
10.5.3.2 P2Y12 Inhibitors
In addition to aspirin, patients should also receive a second oral antiplatelet. The
combination of aspirin and a P2Y12 inhibitor is what makes up the mainstay of ACS
therapy. P2Y12 inhibitors affect the adenosine diphosphate receptors on platelets,
decreasing the amplication of platelet activation. The choice of P2Y12 inhibitors
depends mainly on pharmacokinetic differences, patient characteristics, if PCI is
performed, and provider preference. However, the ESC guidelines recommend the
use of ticagrelor or prasugrel over clopidogrel. Considerations related to long-term
therapy will be discussed later in this chapter. Table10.3 includes dosing information and important considerations related to oral P2Y12 inhibitors.
Table 10.3 Oral P2Y12 inhibitors [24–26]
Clopidogrel Prasugrel Ticagrelor
Mechanism of
action
Dosing Medical management:
Contraindications Acti
Precautions Poor clopidogrel
Adverse events Bruising; bleeding Hypertension;
Onset after
loading dose
CABG Stop 5days prior Stop 7days prior Stop 5days prior
Prodrug
Irreversibly binds to
the P2Y12 component
of ADP receptors on
the platelet
1. LD 300mg; 75mg
daily
PCI:
4. LD 600mg (unless
brinolytic past
24h=300mg); 75mg
daily
ve bleeding Active bleeding,
metabolizer due to
CYP2C19 genetic
variation
2–4h <30min <30min
Prodrug
Irreversibly binds to
the P2Y12 component
of ADP receptors on
the platelet
PCI:
60mg LD; 10mg
daily
history of TIA or
stroke
Caution in patients
who weigh <60kg
(could use 5mg
daily)
Not recommended in
patients >75years
old
headache;
hyperlipidemia;
nausea; back pain;
epistaxis; dyspnea
Active parent compound
and metabolites
Reversibly and
noncompetitively binds to
the P2Y12 component of
ADP receptors on the
platelet
PCI/medical management:
180mg LD followed by
90mg BID
Must be used with
•
ASA ≤ 101 mg
Active bleeding, h/o
intracranial hemorrhage;
hepatic impairment
Hyperuricemia; dyspnea;
bradycardia; creatinine
levels may rise during
therapy; 3A4 inducers/
inhibitors
Dyspnea; ventricular
pauses; HA; dizziness;
creatinine increase;
bleeding; epistaxis

278
N. Barker et al.
Clopidogrel
Clopidogrel is an inactive thienopyridine that requires oxidation with CYP2C19 by
a two-step process to generate an active metabolite, which irreversibly binds to the
P2Y12 receptor on platelets blocking aggregation. A loading dose of 300mg should
be given with concomitant brinolytic therapy or 600mg for PCI. There are genetic
polymorphisms of the PGY2C19 that can be tested for if there is concern that
patients are poor metabolizers.
Prasugrel
Prasugrel is also an inactive thienopyridine prodrug that also requires hepatic activation, although with a faster onset of action than clopidogrel. It irreversibly binds
to P2Y12 receptors with a higher binding afnity compared to clopidogrel. Due to
these pharmacokinetic aspects, there is a higher bleeding risk with prasugrel. Use of
prasugrel is only indicated with coronary stents and not for medication management
of ACS [4, 12]. Its use is contraindicated in patients with a history of transient ischemic attack (TIA) or stroke (both hemorrhagic and ischemic) [24]. Use is also generally not recommended in patients who are 75years old or greater or those who
weigh under 60 kilograms. If used, a dose reduction may be appropriate.
Ticagrelor
Ticagrelor is a cyclopentyl-triazolo-pyrimidine that reversibly binds to the P2Y12
receptor with more rapid onset and offset than clopidogrel. It can be used both for
medical management of ACS and with PCI. Its use is contraindicated in patients
with a history of intracranial hemorrhage or severe hepatic impairment. There is
also a Black Box Warning by the US Food and Drug Administration to use only
with maintenance doses of aspirin ≤100mg daily. Side effects include dyspnea and
ventricular pauses, both of which may be related to the ticagrelor’s inhibition of
adenosine reuptake.
Intra
venous Antiplatelets
Intravenous antiplatelet agents are primarily used in patients who cannot take oral
medications (i.e., altered mental status, severe nausea/vomiting), when there is a
signicant delay in oral therapy, or in specic high-risk scenarios, including high
clot burden seen at the time of PCI.

10
Acute Coronary Syndrome (ACS)
279
10.5.3.3 Glycoprotein IIb/IIIa Receptor Inhibitors
There are three glycoprotein (GP) IIb/IIIa inhibitors available in the United States.
Most of the clinical trials using these agents in ACS for invasive strategies were in
combination with UFH and prior to the routine use of oral P2Y12 inhibitors. All
have a fast onset of action but differ in the half-lives and reversibility, which makes
tiroban and eptibatide preferred options if a GP IIb/IIIa receptor inhibiter is
needed. Both tiroban and eptibatide have shorter half-lives, which will allow
platelet aggregation to return to normal a few hours after the medication is discontinued. However, abciximab’s antiplatelet effect may last days after discontinuation,
although this effect may be reversed with platelet transfusions, which is not the case
for tiroban and eptibatide. A bolus-only option during PCI has been adopted in
clinic practice, but not in practice guidelines. Besides bleeding, GP IIb/IIIa receptor
inhibitors may also cause thrombocytopenia. Table10.4 provides dosing and pharmacokinetics considerations for intravenous GP IIb/IIIa inhibitors.
10.5.3.4 Cangrelor
Cangrelor is an intravenous P2Y12 inhibitor with an almost immediate on/off effect.
It is primarily used during PCI or when oral P2Y12 therapy is delayed or has to be
withheld for various reasons. Dosing consists of a 30mcg/kg bolus followed by a
4mcg/kg/min infusion for a minimum of 2h or the duration of procedure (whichever is longer). When transitioning to an oral P2Y12 inhibitor, important notice
should be taken as to when to initiate [4, 27].
Table 10.4 Intravenous GP IIb/IIIa inhibitors [23]
Abciximab (ReoPro) Eptibatide (Integrilin) Tiroban (Aggrastat)
PCI dosing 0.25mg/kg bolus,
Chemical
structure
Inhibition Steric hindrance Competitive binding Competitive binding
Onset ~30min Within 1h ~30min
Renal elimination No Yes, dose reduced if
Return of platelet
function
Side effect Thrombocytopenia
0.125mg/kg/min
Monoclonal antibody Peptide Nonpeptide
~48–72h (up to
7days)
180mcg/kg bolus,
2mcg/kg/min
CrCl <50mL/min
~2–4h ~2–4h
0.4mcg/kg/min for 30min,
then 0.1mcg/kg/min
Yes, dose reduced if CrCl
<30mL/min

280
N. Barker et al.
10.5.3.5 Management ofAntithrombotics Prior toCABG
Patients admitted for ACS may and often do receive some form of an oral P2Y12
inhibitor loading dose either at the time of hospitalization prior to or following left
heart catheterization. As previously discussed, the platelet inhibitory effects of these
medications can range from 5 to 7days depending on the agent used [24–26]. Due
to the high risk of bleeding associated with CABG, P2Y12 inhibitors are not recommended within 5days in most cases. In patients who did not receive any form of a
stent, it is prudent to withhold the P2Y12 inhibitor and consider continuing an anticoagulant infusion. The P2Y12 inhibitor effect may be evaluated using platelet
reactivity testing to demonstrate appropriate medication clearance/platelet activity.
Many of these patients may have a new cardiac stent placed during PCI that is high
risk for thrombosis requiring some form of antiplatelet agent in conjunction with
aspirin. Holding aspirin has been observed to increase the risk for major adverse
ischemic events by threefold [4, 27]. If the ASA is held due to surgeon preference,
then ASA should be stopped 7days or less prior to the surgery date. In this scenario,
IV antiplatelet agents are the drugs of choice. Initiation of IV antiplatelet agents is
dependent on the choice of P2Y12 inhibitor but typically should be initiated at
approximately 48h from the last dose [28]. IV antiplatelet agents can then be discontinued within 2–6h prior to surgery depending on the agent’s pharmacokinetic
and patient-specic factors. Cangrelor has a shorter half-life than the GP IIb/IIIa
inhibitors, and platelet reactivity testing can be used to demonstrate appropriate
clearance. However, cangrelor lacks the potency of an antiplatelet effect that may be
warranted in high-risk patients.
Following surgery, P2Y12 inhibitor therapy can be restarted within 24 h. In
patients who are undergoing minor surgery including dermatologic or dental procedures, antiplatelet therapy with a single agent can be continued, and patients receiving DAPT should hold the P2Y12 inhibitor (5days for clopidogrel/ticagrelor and
7days for prasugrel).
10.6 Complications ofACS
Complications occurring after a patient experiences acute coronary syndrome with
STEMI, NSTEMI, or UA can include pericarditis, arrhythmias, mechanical complications, or heart failure (HF) with or without cardiogenic shock.
Pericarditis is generally dened as inammation of the pericardium. After myocardial infarction, pericarditis can develop early (within 4 days), related to the
infarct, or late (1–2weeks after infarction), which is known as Dressler syndrome
[4]. The risk for early post-MI pericarditis is due to delayed/incomplete reperfusion
or large infarct size. Early pericarditis is due to necrosis of the cardiac muscle damaged by the MI and inammation of the surrounding pericardium. The criteria used
for diagnosis of early or late pericarditis are the same and include at least two of the
following: cardiac rub, chest pain that is pleuritic in nature, pericardial effusion that

10 Acute Coronary Syndrome (ACS)
281
is new or worsening, and characteristic ECG changes (e.g., diffuse ST-segment
elevations with associated PR interval depressions). There may also be detectable
increased levels of troponin and other inammatory markers [29–31]. Treatment of
early post-infarct pericarditis is aspirin 500 mg every 8–12 h for up to 7 days.
Aspirin is also used for late post-infarct pericarditis at 500–1000mg every 6–8h
until patients start to have resolution of symptoms; then decrease dose every 2weeks
by 250mg–500mg. Colchicine can also be used as an adjunct anti-inammatory
agent for 3months with 0.5mg every 12h [4, 29]. Patients with post-infarct pericarditis have also demonstrated that antiplatelet and anticoagulant therapy can
safely be continued [4, 29–31].
Arrhythmias are common after acute myocardial infarction. They are more common in patients who have delayed or incomplete reperfusion, especially if the left
ventricular ejection fraction (LVEF) is ≤40% [4, 29]. The most common type of
supraventricular arrhythmia is AF.Patients can have a history of AF or experience
new onset during the management of ACS [32, 33]. For patients with new-onset AF
with early detection affecting hemodynamic stability of the patient, electrical cardioversion is the preferred method for re-establishing normal sinus rhythm. For
patients who remain otherwise hemodynamically stable, controlling the heart rate is
preferred with the use of beta-blockers. For patients who have HF and LVEF ≤40%,
the beta-blockers that are preferred include metoprolol succinate, carvedilol, or
bisoprolol. In patients who are unable to receive beta-blockers due to hypotension,
amiodarone, digoxin, or both in combination can be used. Chronic oral anticoagulation with warfarin or direct oral anticoagulants should be added for patients with AF
and underlying risk factors, including history of thromboembolism, hypertension,
diabetes, heart failure, or age 65years or greater [4, 29, 32, 33].
Ventricular arrhythmias can also occur in about 6–8% of patients following acute
coronary syndrome. The occurrence has signicantly declined in the setting of early
revascularization. Early after the occurrence of ACS, patients most frequently experience non-sustained monomorphic ventricular tachycardia (NSVT). Treatment is
typically not required for the management of NSVT. Arrhythmias may also present
initially as ventricular tachycardia that is unstable and polymorphic and has a high
risk for progressing into ventricular brillation. Beta-blocker initiation provides an
early reduction of the risk for ventricular arrhythmias. In the setting of polymorphic
ventricular arrhythmias, amiodarone should be initiated, followed by lidocaine and
lastly procainamide. Long-term pharmacotherapy for prevention of ventricular
arrhythmias can include amiodarone with or without mexiletine. Class IC antiarrhythmics such as ecainide and propafenone are contraindicated in patients with
structural heart disease based on ndings from the CAST trial [34] and should not
be used. Long-term management of post-MI ventricular arrhythmia with an implantable cardioverter debrillator (ICD) has demonstrated improved outcomes and survival benet over pharmacotherapy [4, 29, 32].
Mechanical complications can include ventricular septal rupture, papillary muscle rupture, and free wall rupture. Mechanical complications have a high rate of
mortality, 10–40% specically in elderly patients, but the incidence remains low
[35, 36]. Mechanical complications can occur within 3–7 days of experiencing
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