Canonical Question
Body Fluids
Master answer
H2O
Body H2O content (or TBW state) is determined by the body’s H2O balance (daily H2O
intake vs loss) → normally, it is balanced (as per table below):
| Daily H2O Intake | |
|---|---|
| Drinking | 1200 ml |
| Food | 1000 ml |
| Metabolism (Eg. ETC) | 350 ml |
| Total Intake | 2550 ml/day (in 70kg adult) |
| 25-35 ml/kg/day | |
| Daily H2O loss | |
|---|---|
| Urine | 1500 ml (includes obligatory loss ~ 430ml) |
| Insensible losses (skin, lungs) | 900 ml |
| Faecal | 100 ml |
| Sweat | 50 ml |
| Total loss | 2550 ml/day |
- Note: Abnormal TBW states arise when an imbalance in body H2O exists:
- ↓ TBW (“H2O deficit” → due to H2O loss > intake) → results in ↑ plasma osmolality due to a relative ↑ plasma [Na+] → associated with ↓ ECFV (and PV)
- ↑ TBW (“H2O excess” → due to H2O intake > loss) → results in ↓ plasma osmolality due to a relative ↓ plasma [Na+] → associated with ↑ ECFV (and PV)
Control of TBW
TBW state is controlled via –ve feedback system as follows:
Sensors
- Osmoreceptors (anterior hypothalamus)
- Responds to ↑ plasma osmolality. Very sensitive (detects 1% change) → threshold for stimulation is 280 mosm/kg (near lower normal limit) → steep linear rise in response > 290 mosm/kg
- Low-pressure baroreceptors (right atrium and great vessels)
- Responds to ↓ plasma volume indirectly by ↓ CVS PHYDROSTATIC (↓ MAP) → ↓ sensitive cf. osmoreceptors (detects 5-10% ∆ in PV)
- High-pressure baroreceptors (carotid sinus and aortic arch)
- Responds to ↓ plasma volume indirectly by ↓ CVS PHYDROSTATIC (↓ MAP) → Even ↓ sensitive cf. osmoreceptors (detects > 10% ∆ in PV → large H2O deficits) → BUT its response overrides that of the osmoreceptors!
Effectors
Hypothalamus integrates afferent signals from these sensors and modulates an
appropriate effector response that includes:
- Thirst response → triggered by:
- ↑ plasma osmolality
- ↓ plasma volume (or ↓ MAP)
- AT-II (acting on circumventricular organs (SFO/OVLT)
- ADH
- 9 a.a peptide hormone synthesised in hypothalamus (SON/PVN) → transported to posterior pituitary where it is secreted by:
- ↑ plasma osmolarity (main trigger)
- ↓ plasma volume (or ↓ MAP) → note that LARGE ∆ in PV (> 10%) can override response by osmoreceptors (Ie. ADH is secreted irrespective of plasma osmolality)
- Other stimuli: AII, pain, nausea/vomiting, exercise
- 9 a.a peptide hormone synthesised in hypothalamus (SON/PVN) → transported to posterior pituitary where it is secreted by:
- Effects:
- Via V1 receptor (GPCR via Gq → activates PLC to ↑ IP3 → ↑ IC [Ca2+] → SM contraction) → causes ↓ GFR to ↓ glomerular filtration (and loss of) H2O → via:
- Renal afferent arteriolar constriction
- Renal mesangial cell contraction
- Via V2 receptor (GPCR via Gs → activates AC to ↑ cAMP → activates PKA) → this causes:
- Upregulates insertion of luminal AQP2 (stored in vesicles) in all parts of CD → ↑ H2O permeability → ↑ H2O reabsorption into hypertonic medullary interstitium
- Upregulates “urea transporters” in inner MCD → ↑ permeability to urea → ↑ urea absorption to maintain ↑ medullary osmolality (strengthens CCM) → promotes ↑ H2O reabsorption
- ↑ Na+ reabsorption and K+ secretion by principal cells of CCD
- Via V1 receptor (GPCR via Gq → activates PLC to ↑ IP3 → ↑ IC [Ca2+] → SM contraction) → causes ↓ GFR to ↓ glomerular filtration (and loss of) H2O → via:
Bianca 2016
Exam appearances
| Exam | Exact wording | Relationship | Success |
|---|---|---|---|
| 2021B Q01 | Describe the regulation of body water. | historical_member | — |
| 2022A Q08 | Describe the regulation of body water. | historical_member | — |