Ischemia

Last updated: June 19, 2025

Ischemia

Exam 1 Playlist Spring 2025 Pathophysiology: Haber & Vela

Exam 1 Playlist Spring 2025 Pathophysiology: Haber & Vela

Toxic stress: Information for patients and families (The Primary School)
Metaplasia and dysplasia
Hyperplasia and hypertrophy
Atrophy, aplasia, and hypoplasia
Necrosis and apoptosis
Oncogenes and tumor suppressor genes
DNA damage and repair
Hypoxia
Arterial blood gas (ABG) - Metabolic acidosis: Nursing
Cellular structure and function
Electrolyte balance - Overview: Nursing
Ischemia
Cytokines
Streptococcus pyogenes (Group A Strep)
Free radicals and cellular injury
Glucose-6-phosphate dehydrogenase (G6PD) deficiency
Inflammation
Atherosclerosis and arteriosclerosis: Pathology review
Hypertriglyceridemia
Case study - Wound infection: Nursing
Modes of infectious disease transmission
Aneurysms
Wound healing
Cystic fibrosis: Nursing
Down syndrome (Trisomy 21)
Marfan syndrome
Turner syndrome
Klinefelter syndrome
Food allergies and EpiPens: Information for patients and families (The Primary School)
Neurofibromatosis
Tay-Sachs disease (NORD)
Stress
Sympathetic nervous system
Parasympathetic nervous system
Physiology of pain: Nursing
Venous thromboembolism (VTE): Nursing process (ADPIE)
Peripheral venous disease (PVD): Nursing process (ADPIE)
Case study - Immobility: Nursing
Acute respiratory distress syndrome (ARDS): Nursing
Hypersensitivity reactions - Type I: Nursing
Hypersensitivity reactions - Type III: Nursing
Hypersensitivity reactions - Type IV: Nursing
Hypersensitivity reactions - Type II: Nursing
Methicillin-resistant Staphylococcus aureus (MRSA): Nursing process (ADPIE)
Staphylococcus aureus
Herpes simplex virus (HSV): Nursing
Influenza: Nursing
Human immunodeficiency virus (HIV) and acquired immunodeficiency syndrome (AIDS): Nursing
Shock - Hypovolemic: Nursing
Case study - Hypovolemic shock: Nursing
Hyperkalemia
Potassium homeostasis
Pressure injury: Nursing process (ADPIE)
Case study - Pressure injury: Nursing
Cell-mediated immunity of CD4 cells
Disorders of sex chromosomes: Pathology review
Blood components
Complete blood count (CBC) - Platelets: Nursing
Blood brain barrier
Complete blood count (CBC) - Red blood cells (RBC): Nursing
Case study - Sickle cell anemia: Nursing
Sickle cell disease: Nursing process (ADPIE)
Sodium homeostasis
Phosphate, calcium and magnesium homeostasis
Hydration
Movement of water between body compartments
Renin-angiotensin-aldosterone system
Antidiuretic hormone
Body fluid compartments
Why you should learn by Osmosis

Transcript

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Hypoxia, or lack of oxygen in cells and tissue, can happen in a number of ways, and ischemia’s one of them.

Ischo- means “restraint” or “suppression”, and -emia refers to the blood, so ischemia must mean some kind of suppression or reduction of blood flow to an organ or tissue.

And blood carries oxygen right? So when there’s a reduction in blood flow to cells, that also means there’s a reduction of oxygen to those cells, and this is due to lowered blood flow in the blood vessels.

This lowered flow could be from something blocking the blood from the inside, or it could be something compressing the blood vessel from the outside.

An example of something blocking the blood vessel from the inside is a thrombus, also known as a blood clot, these are solid clumps of platelets and fibrin that obstruct blood flow.

Ischemia resulting from something outside the blood vessel is traumatic injury, which can cause inflammation and swelling that physically applies external pressure to the blood vessel, compresses it, and restricts blood flow.

Alright, so let’s say this is your artery, and it’s like the one-way highway leading all these red-blood-cells into the city, which is like a major organ in the middle here, so maybe this is organ-apolis.

These red blood cells are super pumped for their day where they can drive around the capillaries, like the smaller city streets, and supply the city with fresh oxygen and pick up waste.

And this organ-apolis is made up of thousands of cells, like homes, that use up the oxygen and create waste that needs to be picked up, the deoxygenated blood cells drain out through different small streets which are the veins and go back towards the heart.

So one way this organ-city could become ischemic, is if there’s some obstruction to arterial flow into the tissue. Now only a few red-blood-cells can get in at a time.

You might imagine that organ-apolis sees a lot less blood and a lot less oxygen, and becomes ischemic!

A super important and well-known example of this arterial ischemia is atherosclerosis, where plaque builds up in the arteries going to your heart tissue, which blocks arterial flow, reduces the amount of blood and oxygen that make it to your heart tissue, and causes ischemic heart disease.

Since you can have a blockage of the red blood cells coming in, you can also have a blockage of red blood cells going out, leading to a decrease in blood drainage on the venous side.

So in this case, you’ve got a major obstruction in the venous highway leaving the city, so say these are like the veins draining blood out of organ-apolis.

All these workers are getting into organ-apolis, but they can’t leave because there’s a blockage heading out, and traffic gets majorly backed up, causing flow to slow down throughout the whole city!

This again leads to less oxygen to the tissues and ischemia.

Thinking about an organ, it might get so congested that pressure can rise causing fluid to get forced out of the blood vessels and into the tissues generating edema.

This whole example is very similar to Budd-chiari syndrome, where the hepatic veins that drain blood out of the liver are blocked by a thrombosis, or a clot, and now blood can’t flow through the liver and the liver tissue becomes ischemic and can lead to liver edema and hepatomegaly, or enlargement of the liver.