π A tissue is a group of similar cells performing the same specialized function, an organ is a coordinated group of tissues performing a defined function, and a system is a group of organs or tissues forming a functional unit.
Chemical β cellular β tissue β organ β system β organism
β Must-know
In adults, approximately 50% to 70% of the body consists of fluid, and the course assumes a value of 60%.
The extracellular fluid volume consists of plasma and interstitial fluid and represents 45% of total body water.
A plasma sodium concentration below 120 mmol/L is hyponatremia, which makes plasma hypotonic and can cause dangerous cerebral cellular swelling.
A plasma potassium concentration above 5 mmol/L is hyperkalemia, which depolarizes cells and can cause fatal arrhythmias.
Further detail
Perturbation β regulatory response β return toward dynamic equilibrium
β Must-know
Body fluid volumes are measured indirectly by allowing a marker to dilute within the compartment of interest.
A suitable marker must: distribute homogeneously in the studied compartment, not enter other compartments, not be metabolized or synthesized, be non-toxic, be measured rapidly, simply, and reproducibly
Blood volume is the sum of plasma volume and blood-cell volume, with average values of 3 L for plasma volume, 40% to 45% for hematocrit, and 5 L for total blood volume.
Further detail
A marker spreads through one compartment like dye in a measured container
β Must-know
π Mass concentration is mass per volume, molar concentration is amount of substance per solution volume, molal concentration is amount of substance per solvent mass, and equivalent concentration counts electrical charge per volume.
Osmolar concentration counts particles per solution volume, whereas osmolal concentration counts particles per solvent mass.
One mole of glucose corresponds to one osmole because it remains one particle, whereas one mole of NaCl corresponds to two osmoles because it produces Na+ and Clβ particles.
π Plasma and interstitial fluid have similar electrolyte composition and osmolarity, but plasma contains much more protein: 72 g/L versus 2 g/L in interstitial fluid.
Further detail
Moles count matter; osmoles count particles
Across a semipermeable membrane that allows water but not solutes to pass, water moves passively from the medium with fewer osmoles toward the medium with more osmoles.
Water crosses cell membranes and capillary walls through the lipid bilayer and mainly through specific membrane channels called aquaporins.
Osmole concentration gradient β passive water movement β concentration equalization
β Must-know
In a hypotonic medium, a red blood cell takes up water, swells, and may burst because the cell is more concentrated than its environment.
In an isotonic medium, water movements into and out of a red blood cell balance and the cell remains normal.
In a hypertonic medium, water leaves a red blood cell toward the external medium, causing the cell to shrink and become wrinkled.
Further detail
Hypotonic: cells swell; isotonic: cells remain stable; hypertonic: cells shrink
β Must-know
After drinking pure water, extracellular volume increases, extracellular osmolarity decreases, water shifts from plasma to interstitial fluid and then into cells, and the final state is global overhydration with increased body water and weight.
Urinary loss of a hypertonic fluid decreases plasma and extracellular volume, lowers extracellular osmolarity, shifts water from plasma to extracellular fluid and then into cells, and produces extracellular dehydration with intracellular overhydration.
Gain of isotonic fluid increases extracellular volume without changing osmolarity or osmole quantity because the fluid remains in the plasma.
Further detail
Pure-water gain can cause nausea, aversion to water, hypertension, and increased diuresis to restore volume and osmolarity.
Urinary loss of a hypertonic fluid decreases total body water, body weight, and osmole quantity and can cause a fall in blood pressure.
Excessive isotonic-fluid gain can cause edema when interstitial fluid volume increases by more than 30%.
Initial extracellular change β water redistribution β final volume and osmolarity
| External medium | Water movement | Cell outcome |
|---|---|---|
| Hypotonic | Water enters the cell | Swelling and possible rupture |
| Isotonic | Balanced movement | Normal volume |
| Hypertonic | Water leaves the cell | Shrinking and wrinkling |
| Situation | Osmolarity | Main distribution |
|---|---|---|
| Pure-water gain | Decreases | Water moves into cells |
| Hypertonic-fluid urinary loss | Extracellular osmolarity decreases | Water moves into cells |
| Isotonic-fluid gain | Unchanged | Fluid remains in plasma |
Test your knowledge on Physiology of Body Fluid Compartments with 23 multiple-choice questions with detailed corrections.
1. Regarding physiology, which of the following statements are correct?
2. The levels of organization in the human body include:
Memorize the key concepts of Physiology of Body Fluid Compartments with 54 interactive flashcards.
What does physiology study in living organisms?
The roles, functions, and interactions of organisms and their parts.
How is the human body organized at different levels?
Into chemical, cellular, tissue, organ, systemic, and whole-organism levels.
What forms each level of human body organization?
The association of units from lower levels.
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