Pathophysiology Quiz: Atherosclerosis And Plaque Rupture
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Atherosclerosis And Plaque RuptureQuestion 1 of 20

A patient with a genetic deficiency in Lecithin-Cholesterol Acyltransferase (LCAT) presents with premature atherosclerosis. This enzyme is crucial for the maturation of HDL particles. This patient's accelerated atherosclerosis is most likely due to an impairment in:

The delivery of cholesterol from the liver to peripheral tissues.
The uptake of oxidized LDL by macrophages via scavenger receptors.
The migration of smooth muscle cells from the tunica media to the tunica intima.
The process of reverse cholesterol transport from the arterial wall to the liver.
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Pathophysiology Quiz

Pathophysiology Quiz: Atherosclerosis And Plaque Rupture

Practice Atherosclerosis And Plaque Rupture in Pathophysiology with focused quiz questions that help you check what you know, review explanations, and build confidence with test-style prompts.

What this quiz covers

This quiz focuses on Atherosclerosis And Plaque Rupture, giving you a quick way to practice the rules, question types, and explanations that matter most for Pathophysiology.

How to use this quiz

Try each quiz question before looking at the correct answer. Use the explanations to review missed ideas, then come back to similar questions until the pattern feels familiar.

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Question 1

A patient with a genetic deficiency in Lecithin-Cholesterol Acyltransferase (LCAT) presents with premature atherosclerosis. This enzyme is crucial for the maturation of HDL particles. This patient's accelerated atherosclerosis is most likely due to an impairment in:

  1. The delivery of cholesterol from the liver to peripheral tissues.
  2. The uptake of oxidized LDL by macrophages via scavenger receptors.
  3. The migration of smooth muscle cells from the tunica media to the tunica intima.
  4. The process of reverse cholesterol transport from the arterial wall to the liver. (correct answer)
Explanation: When you encounter questions about LCAT deficiency and atherosclerosis, focus on HDL's role in cholesterol homeostasis. LCAT (Lecithin-Cholesterol Acyltransferase) is essential for HDL maturation, which directly impacts the body's ability to remove excess cholesterol from arterial walls. LCAT converts free cholesterol to cholesteryl esters within HDL particles, allowing them to mature from small, lipid-poor HDL3 to large, cholesterol-rich HDL2. This maturation is crucial for reverse cholesterol transport—the process where HDL removes cholesterol from peripheral tissues (including arterial walls) and transports it back to the liver for disposal or recycling. Without functional LCAT, HDL particles remain immature and cannot effectively perform this protective function, leading to cholesterol accumulation in arterial walls and premature atherosclerosis. This makes D correct. A is incorrect because cholesterol delivery from liver to tissues involves VLDL and LDL particles, not the HDL pathway affected by LCAT deficiency. B describes a pro-atherogenic process where macrophages become foam cells, but LCAT deficiency doesn't directly impair this uptake mechanism—it affects cholesterol removal. C refers to smooth muscle cell migration, which is a consequence of atherosclerotic progression rather than the primary mechanism disrupted by LCAT deficiency. Remember: LCAT deficiency questions typically test your understanding of HDL's protective role. When you see genetic deficiencies affecting HDL metabolism, immediately think about impaired reverse cholesterol transport as the mechanism linking the defect to increased cardiovascular risk.

Question 2

Smooth muscle cells (SMCs) play a complex and dual role in the development of atherosclerosis. Which statement most accurately describes the primary contribution of SMCs to the formation of a stable fibrous cap?

  1. They undergo apoptosis under the influence of inflammatory cytokines, contributing to necrotic core expansion.
  2. They migrate from the media to the intima, proliferate, and synthesize extracellular matrix proteins like collagen. (correct answer)
  3. They engulf large quantities of oxidized lipids to become foam cells, perpetuating the inflammatory cycle.
  4. They release pro-inflammatory cytokines that recruit additional leukocytes to the developing lesion.
Explanation: In response to growth factors (like PDGF) released by macrophages and endothelial cells, smooth muscle cells migrate from the tunica media into the intima. Once there, they proliferate and synthesize and deposit extracellular matrix proteins, most importantly collagen. This process forms the fibrous cap that covers the lipid core. A thick, well-formed cap is the hallmark of a stable plaque. A describes a process that leads to instability. C is primarily a function of macrophages. D occurs, but the defining role of SMCs in stability is matrix production.

Question 3

Smooth muscle cells (SMCs) play a complex and dual role in the development of atherosclerosis. Which statement most accurately describes the primary contribution of SMCs to the formation of a stable fibrous cap?

  1. They undergo apoptosis under the influence of inflammatory cytokines, contributing to necrotic core expansion.
  2. They migrate from the media to the intima, proliferate, and synthesize extracellular matrix proteins like collagen. (correct answer)
  3. They engulf large quantities of oxidized lipids to become foam cells, perpetuating the inflammatory cycle.
  4. They release pro-inflammatory cytokines that recruit additional leukocytes to the developing lesion.
Explanation: In response to growth factors (like PDGF) released by macrophages and endothelial cells, smooth muscle cells migrate from the tunica media into the intima. Once there, they proliferate and synthesize and deposit extracellular matrix proteins, most importantly collagen. This process forms the fibrous cap that covers the lipid core. A thick, well-formed cap is the hallmark of a stable plaque. A describes a process that leads to instability. C is primarily a function of macrophages. D occurs, but the defining role of SMCs in stability is matrix production.

Question 4

A researcher is investigating factors that promote the conversion of a stable atherosclerotic plaque to a vulnerable, rupture-prone phenotype. An increase in the local concentration of which cytokine would most strongly promote this transition?

  1. Interleukin-10 (IL-10)
  2. Transforming growth factor-beta (TGF-β)
  3. Tumor necrosis factor-alpha (TNF-α) (correct answer)
  4. Platelet-derived growth factor (PDGF)
Explanation: TNF-α is a potent pro-inflammatory cytokine that plays a key role in making plaques unstable. It promotes instability by multiple mechanisms: it stimulates macrophages to produce matrix-degrading enzymes (MMPs), it induces apoptosis in vascular smooth muscle cells (thinning the cap), and it upregulates adhesion molecules, recruiting more inflammatory cells. In contrast, IL-10 (A) and TGF-β (B) are generally anti-inflammatory and fibrotic, respectively, and would promote plaque stability. PDGF (D) stimulates SMC proliferation, which would thicken the fibrous cap and also promote stability.

Question 5

The clinical manifestation of a ruptured atherosclerotic plaque is critically dependent on its location. A rupture event in the left anterior descending (LAD) coronary artery is most likely to cause an acute myocardial infarction, whereas a rupture of a similar plaque in the carotid artery bifurcation is most likely to cause:

  1. Unstable angina pectoris.
  2. A hemorrhagic stroke.
  3. A pulmonary embolism.
  4. An ischemic stroke. (correct answer)
Explanation: When you encounter questions about atherosclerotic plaque rupture, focus on the downstream consequences based on anatomical location and blood flow patterns. The key principle is understanding what happens when embolic material travels from the rupture site. When an atherosclerotic plaque ruptures in the carotid artery bifurcation, it creates thrombotic debris that flows directly into the cerebral circulation. This embolic material travels up through the internal carotid artery and lodges in smaller cerebral vessels, causing acute vessel occlusion and subsequent brain tissue ischemia. This mechanism produces an ischemic stroke, making D correct. Option A (unstable angina) is incorrect because this condition results from coronary artery involvement, not carotid disease. Unstable angina occurs when coronary plaques cause severe but not complete vessel occlusion, leading to cardiac ischemia without full myocardial infarction. Option B (hemorrhagic stroke) represents a different pathophysiology entirely. Hemorrhagic strokes result from vessel rupture and bleeding into brain tissue, typically from hypertensive vessel damage or aneurysm rupture, not from atherosclerotic plaque rupture and embolism. Option C (pulmonary embolism) is anatomically impossible in this scenario. Pulmonary emboli originate from the venous system (usually deep veins) and travel through the right heart to lodge in pulmonary arteries. Carotid artery emboli cannot reach the pulmonary circulation due to anatomical barriers. Remember: atherosclerotic plaque rupture consequences follow the path of blood flow. Carotid rupture → cerebral embolism → ischemic stroke. Always trace the embolic pathway to predict clinical outcomes.

Question 6

Vascular calcification is a common feature of advanced atherosclerotic plaques. What is the most accurate pathophysiological interpretation of the presence of extensive microcalcifications within the fibrous cap of a coronary plaque?

  1. It represents an active, regulated process that may increase local mechanical stress and the risk of rupture. (correct answer)
  2. It is a terminal, stabilizing process that universally reduces the risk of plaque rupture by hardening the lesion.
  3. It is a purely passive process resulting from the precipitation of calcium phosphate due to local pH changes.
  4. It primarily serves to wall off the necrotic core from the circulation, effectively reducing the plaque's thrombogenicity.
Explanation: When analyzing vascular calcification in atherosclerotic plaques, you need to distinguish between the location, size, and biological activity of calcium deposits, as these factors dramatically affect plaque stability and rupture risk. Microcalcifications within the fibrous cap represent an active, regulated process involving osteoblast-like cells and inflammatory mediators. These microscopic calcium deposits create points of mechanical stress concentration within the cap tissue. Unlike large, mature calcifications that can stabilize plaques, microcalcifications act as stress risers—similar to small cracks in metal—that amplify local mechanical forces during each cardiac cycle. This makes the fibrous cap more susceptible to rupture, particularly at the interfaces between calcified and non-calcified tissue where stress gradients are highest. Option B incorrectly assumes all calcification is stabilizing. While extensive, mature calcification can sometimes strengthen plaques, microcalcifications in the fibrous cap actually destabilize it. Option C mischaracterizes this as passive precipitation—vascular calcification is an actively regulated process involving specific cellular pathways, not simply calcium falling out of solution due to pH changes. Option D incorrectly suggests the primary function is containment of the necrotic core, when microcalcifications in the fibrous cap actually increase rupture risk rather than providing protective barriers. Remember that in atherosclerosis pathophysiology, the size, location, and maturity of calcifications matter enormously. Microcalcifications = increased rupture risk, while mature, extensive calcifications may provide stability. Focus on the biological activity and mechanical consequences rather than assuming all calcium deposits have the same effect.

Question 7

A 62-year-old male with type 2 diabetes and a 40-pack-year smoking history is diagnosed with advanced atherosclerosis. The combination of hyperglycemia and smoking most potently accelerates atherogenesis primarily by:

  1. Decreasing circulating levels of high-density lipoprotein (HDL) and increasing LDL receptor expression in the liver.
  2. Promoting endothelial dysfunction through the formation of advanced glycation end-products (AGEs) and reactive oxygen species (ROS). (correct answer)
  3. Directly stimulating the proliferation of vascular smooth muscle cells, leading to rapid but unstable fibrous cap formation.
  4. Inhibiting the activity of matrix metalloproteinases (MMPs), leading to overly thick and calcified plaques.
Explanation: Both hyperglycemia (leading to AGEs) and toxins from cigarette smoke (generating ROS) are potent inducers of endothelial cell injury and dysfunction. This is the critical initiating step of atherosclerosis. Endothelial dysfunction leads to increased permeability to LDL, upregulation of adhesion molecules for leukocytes, and a pro-thrombotic state. A is incorrect because LDL receptor expression would be decreased. C is a downstream effect secondary to inflammation. D is incorrect as these conditions promote inflammation and thus increase MMP activity, favoring plaque instability.

Question 8

A patient experiences an acute myocardial infarction due to coronary artery plaque rupture. Which set of features most accurately characterizes the ruptured plaque immediately prior to the event, when compared to a stable, asymptomatic plaque?

  1. A thick fibrous cap, a small necrotic core, and low macrophage infiltration.
  2. A thin fibrous cap, a large necrotic lipid core, and high macrophage infiltration. (correct answer)
  3. Extensive calcification, a small lipid pool, and significant smooth muscle cell proliferation.
  4. A high concentration of smooth muscle cells, minimal T-lymphocyte presence, and a well-organized collagen matrix.
Explanation: A plaque that is vulnerable to rupture is characterized by a thin, weakened fibrous cap, a large, soft, necrotic lipid core, and a high degree of inflammation, marked by significant infiltration of activated macrophages and T-lymphocytes. These inflammatory cells release enzymes that degrade the cap, making it prone to rupture. In contrast, choices A, C, and D describe features of a stable plaque, which has a thick, well-maintained fibrous cap, a smaller lipid core, and less inflammation.

Question 9

The rupture of an atherosclerotic plaque's fibrous cap is the precipitating event for most acute coronary syndromes. The degradation of the extracellular matrix within the cap is primarily mediated by which of the following?

  1. Increased synthesis of collagen and elastin by activated smooth muscle cells.
  2. Release of matrix metalloproteinases (MMPs) from activated macrophages and foam cells. (correct answer)
  3. The direct cytotoxic effect of oxidized low-density lipoprotein (oxLDL) on fibroblasts.
  4. Activation of the complement cascade leading to membrane attack complex formation on smooth muscle cells.
Explanation: The structural integrity of the fibrous cap depends on a balance between extracellular matrix synthesis (by smooth muscle cells) and degradation. In vulnerable plaques, activated inflammatory cells, particularly macrophages, release matrix metalloproteinases (MMPs), such as collagenases and gelatinases. These enzymes directly break down collagen and other matrix components, weakening the cap and predisposing it to rupture. A strengthens the cap. C and D are aspects of the inflammatory milieu but are not the primary enzymatic mediators of cap degradation.

Question 10

In the pathogenesis of atherosclerosis, the transformation of macrophages into foam cells within the tunica intima is a critical step. Which of the following best describes the most immediate and direct consequence of this transformation?

  1. Secretion of large amounts of collagen and elastin, leading to the formation of a stable fibrous cap.
  2. Upregulation of tissue factor expression, potently initiating the extrinsic coagulation cascade.
  3. Presentation of oxidized LDL antigens to naive T-lymphocytes, initiating a robust adaptive immune response.
  4. Chronic intracellular lipid accumulation, which promotes a pro-inflammatory state and cytokine release. (correct answer)
Explanation: Foam cells are macrophages that have become engorged with lipid droplets after taking up modified LDL via scavenger receptors. This lipid accumulation is not benign; it induces a state of cellular stress and activation, causing the foam cells to release a variety of pro-inflammatory cytokines (like TNF-α and IL-1β) and chemokines, which perpetuates the inflammatory cycle and recruits more leukocytes. A is the function of smooth muscle cells. B and C are functions of activated macrophages/foam cells, but the primary and most direct consequence of their formation is the establishment of a chronic, localized inflammatory state driven by lipid overload.

Question 11

While plaque rupture is a major cause of acute coronary thrombosis, plaque erosion is an alternative mechanism. How does the underlying pathology of plaque erosion typically differ from that of plaque rupture?

  1. Erosion involves a deep fracture of the fibrous cap exposing the lipid core, while rupture is a superficial denudation of endothelial cells.
  2. Erosion is characterized by an abundance of activated macrophages and T-cells, while rupture occurs in plaques with few inflammatory cells.
  3. Erosion typically occurs on a plaque rich in proteoglycans and SMCs with minimal to no cap rupture, while rupture involves a breach of a thin, macrophage-rich cap. (correct answer)
  4. Erosion is primarily a consequence of high shear stress leading to endothelial detachment, whereas rupture is associated with low shear stress.
Explanation: Plaque rupture and erosion are distinct pathologies. Rupture is the classic event involving a thin-cap fibroatheroma (TCFA) where the cap breaks, exposing the highly thrombogenic necrotic core. It is rich in inflammatory cells. Plaque erosion, in contrast, typically occurs on plaques that are rich in smooth muscle cells and proteoglycans but have an intact (or minimally breached) fibrous cap and a smaller or absent necrotic core. The thrombus forms on the surface due to denudation of the overlying endothelial cells, exposing the subendothelial matrix. A has the definitions reversed. B is incorrect; rupture is the more inflammatory lesion.

Question 12

In the pathogenesis of atherosclerosis, the transformation of macrophages into foam cells within the tunica intima is a critical step. Which of the following best describes the most immediate and direct consequence of this transformation?

  1. Secretion of large amounts of collagen and elastin, leading to the formation of a stable fibrous cap.
  2. Upregulation of tissue factor expression, potently initiating the extrinsic coagulation cascade.
  3. Presentation of oxidized LDL antigens to naive T-lymphocytes, initiating a robust adaptive immune response.
  4. Chronic intracellular lipid accumulation, which promotes a pro-inflammatory state and cytokine release. (correct answer)
Explanation: Foam cells are macrophages that have become engorged with lipid droplets after taking up modified LDL via scavenger receptors. This lipid accumulation is not benign; it induces a state of cellular stress and activation, causing the foam cells to release a variety of pro-inflammatory cytokines (like TNF-α and IL-1β) and chemokines, which perpetuates the inflammatory cycle and recruits more leukocytes. A is the function of smooth muscle cells. B and C are functions of activated macrophages/foam cells, but the primary and most direct consequence of their formation is the establishment of a chronic, localized inflammatory state driven by lipid overload.

Question 13

A 55-year-old male with a long history of untreated hypertension and hyperlipidemia presents with stable angina. Histological analysis of a coronary artery biopsy would most likely reveal that the initial event precipitating fatty streak formation was:

  1. Proliferation of smooth muscle cells from the media into the tunica intima.
  2. Platelet aggregation and formation of a microthrombus on the endothelium.
  3. Increased endothelial permeability allowing low-density lipoprotein (LDL) ingress and modification. (correct answer)
  4. Recruitment of T-lymphocytes that recognize and attack native, unmodified LDL as an antigen.
Explanation: The initial step in atherogenesis is endothelial dysfunction, often caused by risk factors like hypertension and hyperlipidemia. This dysfunction increases the permeability of the endothelium, allowing LDL particles to enter the tunica intima, where they become trapped and modified (e.g., oxidized), triggering the subsequent inflammatory cascade. A is a later step in plaque progression. B is a consequence of plaque rupture, not initiation. D is incorrect because the adaptive immune system primarily recognizes modified LDL, not native LDL, and this occurs after LDL has already entered the intima.

Question 14

A patient experiences an acute myocardial infarction due to coronary artery plaque rupture. Which set of features most accurately characterizes the ruptured plaque immediately prior to the event, when compared to a stable, asymptomatic plaque?

  1. A thick fibrous cap, a small necrotic core, and low macrophage infiltration.
  2. A thin fibrous cap, a large necrotic lipid core, and high macrophage infiltration. (correct answer)
  3. Extensive calcification, a small lipid pool, and significant smooth muscle cell proliferation.
  4. A high concentration of smooth muscle cells, minimal T-lymphocyte presence, and a well-organized collagen matrix.
Explanation: A plaque that is vulnerable to rupture is characterized by a thin, weakened fibrous cap, a large, soft, necrotic lipid core, and a high degree of inflammation, marked by significant infiltration of activated macrophages and T-lymphocytes. These inflammatory cells release enzymes that degrade the cap, making it prone to rupture. In contrast, choices A, C, and D describe features of a stable plaque, which has a thick, well-maintained fibrous cap, a smaller lipid core, and less inflammation.

Question 15

The rupture of an atherosclerotic plaque's fibrous cap is the precipitating event for most acute coronary syndromes. The degradation of the extracellular matrix within the cap is primarily mediated by which of the following?

  1. Increased synthesis of collagen and elastin by activated smooth muscle cells.
  2. Release of matrix metalloproteinases (MMPs) from activated macrophages and foam cells. (correct answer)
  3. The direct cytotoxic effect of oxidized low-density lipoprotein (oxLDL) on fibroblasts.
  4. Activation of the complement cascade leading to membrane attack complex formation on smooth muscle cells.
Explanation: The structural integrity of the fibrous cap depends on a balance between extracellular matrix synthesis (by smooth muscle cells) and degradation. In vulnerable plaques, activated inflammatory cells, particularly macrophages, release matrix metalloproteinases (MMPs), such as collagenases and gelatinases. These enzymes directly break down collagen and other matrix components, weakening the cap and predisposing it to rupture. A strengthens the cap. C and D are aspects of the inflammatory milieu but are not the primary enzymatic mediators of cap degradation.

Question 16

A 62-year-old male with type 2 diabetes and a 40-pack-year smoking history is diagnosed with advanced atherosclerosis. The combination of hyperglycemia and smoking most potently accelerates atherogenesis primarily by:

  1. Decreasing circulating levels of high-density lipoprotein (HDL) and increasing LDL receptor expression in the liver.
  2. Promoting endothelial dysfunction through the formation of advanced glycation end-products (AGEs) and reactive oxygen species (ROS). (correct answer)
  3. Directly stimulating the proliferation of vascular smooth muscle cells, leading to rapid but unstable fibrous cap formation.
  4. Inhibiting the activity of matrix metalloproteinases (MMPs), leading to overly thick and calcified plaques.
Explanation: Both hyperglycemia (leading to AGEs) and toxins from cigarette smoke (generating ROS) are potent inducers of endothelial cell injury and dysfunction. This is the critical initiating step of atherosclerosis. Endothelial dysfunction leads to increased permeability to LDL, upregulation of adhesion molecules for leukocytes, and a pro-thrombotic state. A is incorrect because LDL receptor expression would be decreased. C is a downstream effect secondary to inflammation. D is incorrect as these conditions promote inflammation and thus increase MMP activity, favoring plaque instability.

Question 17

Vascular calcification is a common feature of advanced atherosclerotic plaques. What is the most accurate pathophysiological interpretation of the presence of extensive microcalcifications within the fibrous cap of a coronary plaque?

  1. It represents an active, regulated process that may increase local mechanical stress and the risk of rupture. (correct answer)
  2. It is a terminal, stabilizing process that universally reduces the risk of plaque rupture by hardening the lesion.
  3. It is a purely passive process resulting from the precipitation of calcium phosphate due to local pH changes.
  4. It primarily serves to wall off the necrotic core from the circulation, effectively reducing the plaque's thrombogenicity.
Explanation: When analyzing vascular calcification in atherosclerotic plaques, you need to distinguish between the location, size, and biological activity of calcium deposits, as these factors dramatically affect plaque stability and rupture risk. Microcalcifications within the fibrous cap represent an active, regulated process involving osteoblast-like cells and inflammatory mediators. These microscopic calcium deposits create points of mechanical stress concentration within the cap tissue. Unlike large, mature calcifications that can stabilize plaques, microcalcifications act as stress risers—similar to small cracks in metal—that amplify local mechanical forces during each cardiac cycle. This makes the fibrous cap more susceptible to rupture, particularly at the interfaces between calcified and non-calcified tissue where stress gradients are highest. Option B incorrectly assumes all calcification is stabilizing. While extensive, mature calcification can sometimes strengthen plaques, microcalcifications in the fibrous cap actually destabilize it. Option C mischaracterizes this as passive precipitation—vascular calcification is an actively regulated process involving specific cellular pathways, not simply calcium falling out of solution due to pH changes. Option D incorrectly suggests the primary function is containment of the necrotic core, when microcalcifications in the fibrous cap actually increase rupture risk rather than providing protective barriers. Remember that in atherosclerosis pathophysiology, the size, location, and maturity of calcifications matter enormously. Microcalcifications = increased rupture risk, while mature, extensive calcifications may provide stability. Focus on the biological activity and mechanical consequences rather than assuming all calcium deposits have the same effect.

Question 18

Atherosclerotic plaques preferentially develop at arterial bifurcations and the outer walls of curvatures. This specific localization is best explained by which hemodynamic factor?

  1. Low and oscillatory (disturbed) shear stress which promotes a pro-inflammatory endothelial phenotype. (correct answer)
  2. High, laminar shear stress which upregulates endothelial nitric oxide synthase (eNOS) production.
  3. Chronically elevated transmural pressure which directly injures medial smooth muscle cells.
  4. High-velocity turbulent blood flow which causes direct mechanical erosion of the endothelial glycocalyx.
Explanation: When you encounter questions about atherosclerosis location, focus on how blood flow patterns affect endothelial cell behavior. The endothelium responds very differently to various types of mechanical stress from flowing blood. At arterial bifurcations and outer curves, blood flow becomes disturbed, creating areas of low and oscillatory shear stress. This mechanical environment triggers endothelial cells to adopt a pro-inflammatory, pro-thrombotic phenotype. They increase expression of adhesion molecules (like VCAM-1), reduce nitric oxide production, and become more permeable to lipoproteins. This creates the perfect storm for atherosclerotic plaque initiation and progression, which is exactly what option A describes. Option B is backwards - high laminar shear stress actually protects against atherosclerosis by upregulating eNOS and promoting an anti-inflammatory endothelial phenotype. This occurs in straight arterial segments with smooth flow. Option C incorrectly focuses on transmural pressure affecting smooth muscle cells, but atherosclerosis begins with endothelial dysfunction, not direct medial injury from pressure. Option D suggests mechanical erosion from turbulent flow, but the pathophysiology is biochemical (inflammatory signaling) rather than physical damage to the glycocalyx. Remember this key principle: disturbed flow patterns correlate with atherosclerotic hotspots. When you see questions about plaque location, immediately think about shear stress patterns and their effects on endothelial gene expression. Low, oscillatory shear stress equals inflammation and atherosclerosis risk.

Question 19

Apoptosis of multiple cell types contributes to the instability of an atherosclerotic plaque. The apoptosis of which cell type is most directly responsible for the thinning of the fibrous cap?

  1. Endothelial cells overlying the plaque.
  2. Macrophages within the lipid core.
  3. T-lymphocytes scattered throughout the lesion.
  4. Vascular smooth muscle cells within the cap. (correct answer)
Explanation: The fibrous cap is a layer of connective tissue synthesized and maintained primarily by vascular smooth muscle cells (SMCs). The apoptosis (programmed cell death) of these SMCs leads to a decrease in the synthesis of new collagen and a net degradation of the existing extracellular matrix. This results in the progressive thinning and weakening of the cap, making it susceptible to rupture. Apoptosis of macrophages (B) contributes to the growth of the necrotic core, and endothelial cell loss (A) can lead to superficial erosion, but SMC apoptosis is the key event in thinning the cap itself.

Question 20

While plaque rupture is a major cause of acute coronary thrombosis, plaque erosion is an alternative mechanism. How does the underlying pathology of plaque erosion typically differ from that of plaque rupture?

  1. Erosion involves a deep fracture of the fibrous cap exposing the lipid core, while rupture is a superficial denudation of endothelial cells.
  2. Erosion is characterized by an abundance of activated macrophages and T-cells, while rupture occurs in plaques with few inflammatory cells.
  3. Erosion typically occurs on a plaque rich in proteoglycans and SMCs with minimal to no cap rupture, while rupture involves a breach of a thin, macrophage-rich cap. (correct answer)
  4. Erosion is primarily a consequence of high shear stress leading to endothelial detachment, whereas rupture is associated with low shear stress.
Explanation: Plaque rupture and erosion are distinct pathologies. Rupture is the classic event involving a thin-cap fibroatheroma (TCFA) where the cap breaks, exposing the highly thrombogenic necrotic core. It is rich in inflammatory cells. Plaque erosion, in contrast, typically occurs on plaques that are rich in smooth muscle cells and proteoglycans but have an intact (or minimally breached) fibrous cap and a smaller or absent necrotic core. The thrombus forms on the surface due to denudation of the overlying endothelial cells, exposing the subendothelial matrix. A has the definitions reversed. B is incorrect; rupture is the more inflammatory lesion.