00:00 / 00:00
of complete
of complete
2024
2023
2022
2021
with hypoxemia p. 685
alveolar gas equation p. 684
obstructive lung disease p. 692
oxygen deprivation p. 685
pulmonary emboli p. 691
respiratory alkalosis and p. 610
apoptosis caused by p. 204
contractility in p. 289
erythropoietin and p. 607
hemoglobin modifications p. 683
lung diseases p. 697
nocturnal p. 697
oxygen deprivation p. 685
regions susceptible to p. 206
renal p. 689
vasoconstriction/vasodilation and p. 299
So by this point, you’re probably aware that your body needs oxygen to survive, right?
In fact, every cell in your body needs that precious oxygen.
Those cells use the oxygen to produce energy in the form of ATP, or adenosine triphosphate, a super super important molecule, sometimes even called “the molecular unit of currency”.
The cells use it to basically pay the molecules inside the cell to do their specific jobs.
It’s like one big factory with a bunch of workers that all have specific jobs needed to run the factory, and they only take ATP as payment.
Now the mitochondrion of the cell takes in oxygen and makes ATP to pay the workers, through a process called oxidative phosphorylation, the mitochondrion’s like the factory’s payroll department, right?
When the cell doesn’t get enough oxygen, and so payroll can’t produce the ATP that they need to pay the workers to do their jobs, the whole cellular factory can be damaged or even die, and we call that process hypoxia, where hypo means “less than normal” and oxia means “oxygenation”.
When the oxygen comes in, typically it goes straight to payroll, specifically to the inner mitochondrial membrane where oxidative phosphorylation takes place.
Oxygen’s used in one of the last steps, and serves as an electron acceptor, and this allows the process to finish and produce ATP.
So without oxygen, we can’t finish oxidative phosphorylation and produce ATP.
But why does the whole factory fall apart when payroll stops making ATP? Why don’t they just pause for a bit? Take a little break?
Well, when certain workers stop doing their jobs...things get a little out of hand.
One super important worker is the sodium potassium pump on the cell’s membrane, pretty much like the bouncer that makes sure there isn’t too much sodium diffusing into the cell, basically by pumping it back out every time it diffuses in and maintaining a concentration gradient, this process also keeps too many water molecules from passively diffusing into the cell; think of it like this: water molecules want to go every which way and are constantly moving back and forth, inside and outside the cell, but the all these sodium ions on this side tend to physically block more of them from leaving that side, so over time more water molecules get retained, or almost trapped, on the side with more sodium—in short, the more sodium molecules: the more water molecules.
But, our pump doesn’t do all this for free, and it needs ATP.
So without ATP, it stops pumping sodium back out, and sodium diffuses in...and keeps diffusing in and the concentration gradient goes away, now with less sodium particles on the outside blocking the water molecules from going into the cell, water follows sodium in, which causes the cell to swell up.
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