Anatomy & Physiology – Body Fluid and its Constituents
Read the complete lesson in an organized slide-by-slide format. This topic contains 58 learning sections from the source presentation.
LESSON CONTENTS — 58 SECTIONS
Body Fluid and its Constituents
Objectives
- Identify major body fluid compartment
- Explain mechanism that maintain homeostasis of body fluid
- Explain formation of tissue fluid
- Describe body fluid electrolyte levels
Daily Intake of Water
Two major sources
Ingested in form of
Liquid & water in food
About = 2200 ml/day
Synthesized in the body
Oxidation of carbohydrates
About = 300 ml/day
Total intake = 2500 ml/day
Daily Intake of Water
Water intake very variable
From person to person
In the same individual
Depends on
Climate, habits, level of physical activity
Daily Loss of Body Water
Insensible fluid loss
Evaporation
In respiratory tract = 400 ml/day
Through the skin = 400 ml/day
Total insensible loss = 800 ml/day
Insensible loss via skin
Independent of sweating
Minimized by cornified layer of the skin
Burns: rate of evaporation increases
Daily Loss of Body Water
Fluid loss in sweat
Highly variable depend on
Environmental temp
Level of physical activity
Normally = 100 ml/day
Exercise, hot weather
About 1 to 2 liters/hr
Daily Loss of Body Water
Water loss in faeces
Small amount = 100 ml/day
But amount lost increases tremendously in severe diarrhoea
Water loss by kidneys
Variable
As low as 0.5l/day in dehydration
As high as 20 l/day in a person with excessive fluid intake
Normally about =1500 ml/day
Daily Water Balance
Major Body Fluid Compartment
In the human body there are several major fluid compartments each of which is subject to homeostatic regulation.
Fluid content of the human body ranges from 40% to 60% of bodyweight.
Fluid Compartments
Intracellular fluid compartment ICF
Extracellular fluid compartment ECF
Intestitial fluid
Plasma
Transcellular
Cont…
Intracellular Fluid (ICF) water inside the cell comprises 2/3 of the body’s water.
Its main function is to facilitate intracellular chemical reactions that maintain life
Is the largest compartment.
ICF is about 40% of the body weight.
The ICF is primarily a solution of potassium and organic anions, proteins etc.
The cell membranes and cellular metabolism control the constituents of this ICF.
Cont…
Extracellular Fluid (ECF) is the remaining 1/3 of the body’s water, any fluid not contained inside a cell therefore comprises the extracellular compartment.
ECF is about 20% of the body weight, it consists mainly of plasma and lymph fluid (circulating compartment) and interstitial fluid (the spaces between the cells).
Body fluid
Plasma is the non cellular part of blood
Communicates with interstitial fluid through capillary pores
Hence ECF constantly mixing
Plasma and interstitial fluid have same composition except for proteins
Blood Volume
Blood contains both ECF and ICF
ICF is the fluid within the RBC
Average blood volume
Is 8% of body wt
= 5.6 (70*0.08) liters
On the average
60% of blood vol = plasma ( 3 liters)
40% of blood vol = RBC (2 liters)
Values vary considerably in different people depending on
Sex, wt, and other factors
Cont…
The ECF is further subdivided into three sub-compartments.
Interstitial Fluid (ISF) surrounds the cells, but does not circulate.
It comprises about 3/4 of the ECF.
Plasma circulates as the extracellular component of blood.
It makes up about 1/4 of the ECF.
Cont…
Transcellular fluid is a set of fluids that are outside of the normal compartments.
These 1-2 litres of fluid make up the Cerebrospinal Fluids (CSF), Digestive Juices, Mucus, specialized joint fluids aqueous; humour and vitreous humour the fluids in the eyeball.
The ECF provide a relatively constant environment for cells and transport substances to and from the cells.
Slide 18
Mechanism that Maintain Homeostasis of Body Fluid
Under normal conditions homeostasis of the total volume of the water in the body is maintained or restored primarily by adjusting output urine volume and secondarily by fluid intake
Regulation of fluid intake; When dehydration begins to develop, salivary secretion decreases, producing the sensation of thirst; individual increased fluid intake to offset increased output tends to restore fluid balance
Cont…
Cont…
Regulation of urine volume; two factors determine urine volume
Glomerular filtration rate, except under abnormal conditions remain fairly constant
Rate of tubular reabsorption of water fluctuates considerably; normally adjusts urine volume to fluid intake influenced by hormonal mechanisms
Cont…
Some of the factors that alter fluid loss under abnormal conditions are increased rate of respiration and volume of sweat secreted, certain abnormal conditions such as vomiting, diarrhoea, or intestinal drainage can produce fluid and electrolyte imbalance
The volume of extracellular fluid can increase or decrease, even if the osmolality of the extracellular fluid is maintained within a narrow range of values
Major mechanisms that regulate extracellular fluid volume
Neural mechanism,
Reninangiotensin-aldosterone mechanism,
Atrial natriuretic hormone (ANH) mechanism
Antidiuretic hormone (ADH) mechanism.
Neural mechanism
Neural mechanism changes the frequency of action potentials carried by sympathetic neurons to the afferent arterioles of the kidney in response to change in blood pressure
Cont…
When baroreceptors detect an increase in arterial and venous pressure, the frequency of action potential carried by sympathetic neuron to the afferent arteriole decreases.
Consequently the afferent arteriole dilates
This increases glomerular capillary pressure, resulting in an increase in the glomerular filtration rate, an increase in filtrate volume and an increase in urine volume
Cont…
When the baroreceptors detect a decrease in arterial and venous pressure the action potential carried by sympathetic neuron causes constriction of afferent arteriole and the opposite occurs
Renin-angiotensin-aldosterone mechanism
The Renin angiotensin-aldosterone mechanism responds to small changes in the blood volume
Increased blood pressure results from increased blood volume
Juxtaglomerular cells detect increase in blood pressure in the afferent arteriole and decrease the rate of renin secretion
Cont…
The decrease in renin secretion results in a decreased conversion of angiotensinogen to angiotensin II
Reduced angiotensin II causes a decrease in the rate of aldosterone secretion from the adrenal cortex
Decreased aldosterone level reduces the rate of sodium (Na+) reabsorption from the distal renal tubules and collecting ducts
Consequently more Na+ remains in the filtrate and fewer are reabsorbed
Cont…
The effect is to increase the osmolality of the filtrate, which reduces the ability of the kidney to reabsorb water
The water remains with the excess Na in the filtrate
Thus the volume of urine produced increases and extracellular fluid volume decreases
The opposite occur in case of decreased in blood volume
Cont…
Cont…
Atrial natriuretic hormone (ANH) mechanism
The ANH mechanism is most important in responding to increases in extracellular fluid volume
An increase in pressure in the atria of the heart, which usually results from an increase in blood volume, stimulates the secretion of ANH, which decreases Na+ reabsorption in the distal and collecting ducts
Cont…
This increase the rate of Na+ and water loss in the urine
Thus increased ANH secretion decreases extracellular fluid volume
ANH does not appear to respond strongly to decreases in blood volume however a decrease in pressure in the atria of the heart inhibit the secretion of ANH
Cont…
Antidiuretic hormone (ADH) mechanism
The ADH mechanism plays an important role in regulating extracellular fluid volume in response to large changes in the blood pressure
An increase in blood pressure results in a decrease in ADH secretion
Cont…
As a result, the reabsorption of water from the lumen of the distal tubule and collecting ducts decreases, resulting in a large volume of dilute urine
This response helps to decrease extracellular fluid volume and blood pressure
A decrease in blood pressure results in an increase in ADH secretion and the opposite occurs.
Cont…
Cont…
Water enters the body via the digestive tract water is also added to the total fluid volume from each cell as it catabolises food and the resulting water enters the bloodstream
Water leaves the body via four exits
As urine through the kidney
As water in expired air through the lungs
As sweat through the skin
As faeces from the intestine
Cont…
Formation of Tissue Fluid
Cont…
The control mechanism for water exchange between plasma and interstitial fluid consists of four pressures
Blood hydrostatic and colloid osmotic pressures on one side of the capillary membrane
Interstitial fluid hydrostatic and colloid osmotic pressure on the other side; two of the pressures for a vector in one direction and the other two in the opposite direction
Cont…
Blood hydrostatic pressure (BHP) forces fluid out of capillaries into interstitial fluid (IF)
Blood colloid Osmotic pressure (BOP) draws fluid from IF into capillaries
Interstitial fluid hydrostatic pressure (IFHP) forces fluid out of IF into capillaries
Interstitial fluid colloid osmotic pressure (IFOP) draws fluid from capillaries to IF
Cont…
The rate and direction of fluid exchange between capillaries and interstitial fluid are determined by the hydrostatic and colloid osmotic pressures of the two fluids
Some principles about transfer of water between blood and interstitial fluid
No net transfer of water occurs as long as (BHP + IFOP) = (IFHP + BOP)
A net transfer of fluid occurs when (BHP + IFOP0 ≠ (IFHP + BOP)
Cont…
Fluid shift out of blood into interstitial fluid whenever (BHP + IFOP) > (IFHP + BOP)
Fluid shift out of interstitial fluid into blood whenever (BHP + IFOP) < (IFHP + BOP)
Cont…
The balance of hydrostatic and osmotic forces causing movement out and into the capillaries is known as Starling forces
Hydrostatic pressure is generated by the pumping force of the heart
It pushes water out of the capillaries
The water potential is created due to the inability of large solutes to pass through the capillary walls
This build up of solutes induces osmosis
Cont…
The water passes from a high concentration (of water) outside of the vessels to a low concentration inside of the vessels, in an attempt to reach equilibrium
The osmotic pressure drives water back into the vessels
Because the blood in the capillaries is constantly flowing, equilibrium is never reached
The balance between the two forces is different at different points in the capillaries
Cont…
At the arterial end of the vessel, the hydrostatic pressure is greater than the osmotic pressure, so the net movement favors water and other solutes being passed into the tissue fluid
At the venous end, the osmotic pressure is greater, so the net movement favors substances being passed back into the capillary
This difference is created by the direction of the flow of blood and the imbalance in solutes created by the net movement of water favoring the tissue fluid
Cont…
To prevent a build-up of tissue fluid surrounding the cells in the tissue, the lymphatic system plays a part in the transport of tissue fluid
Tissue fluid can pass into the surrounding lymph vessels, and eventually ends up rejoining the blood
Sometimes the removal of tissue fluid does not function correctly, and there is a build-up
This causes swelling, and can often be seen around the feet and ankles. The position of swelling is due to the effects of gravity.
Body Fluid Electrolytes Levels
An electrolyte balance exists when the quantities of electrolytes (molecules that release ions in water) the body gains equal those lost.
The electrolytes of greatest importance to cellular functions are sodium, potassium, calcium, magnesium, chloride, sulphate, phosphate, bicarbonate and hydrogen ions.
Cont…
Sodium ions are predominant extracellular cations.
Because of their abundance in the extracellular fluid, they exert substantial osmotic pressure.
The kidneys are the major route by which Na+ is excreted.
Cont…
The predominant anion in extracellular fluid is chloride ions.
The extracellular concentration of Potassium ions K+ must be maintained within narrow range.
The concentration gradient of K across the plasma membrane has a major influence on the resting membrane potential, and cells that are electrically excitable are highly sensitive to slight changes in that concentration gradient.
Cont…
Therefore Potassium is important in maintaining the nerve impulse conduction and cardiac muscles fibre contractions.
Abnormal potassium (K+) levels may cause these cells to function abnormally.
Kidneys are the primary site for potassium regulation.
The extracellular concentration of calcium ions like that of K+ is regulated within a narrow range they are important for electrical properties of excitable tissue.
Cont…
Parathyroid hormone increases extracellular Ca+ level and reduces extracellular phosphate levels.
Most of the phosphate ions are found inside the cells forming covalent bond with organic molecules.
Most of the magnesium in the body is stored in the bones or in the intracellular fluid as it is used as cofactor for intracellular enzymes.
Cont…
Sulphur is an important element in protein synthesis; mostly are found inside the cell.
These electrolytes primarily obtained from foods, but they may also be found in drinking water and other beverages.
Some electrolytes are by-products of metabolic reactions.
The body loses some electrolytes by perspiring or through kidney during urine production.
Cont…
The kidney alters renal electrolyte losses to maintain the proper composition of body fluids.
Plasma and interstitial fluid are almost identical in chemical make-up, with intracellular fluid showing striking differences.
The table below shows the approximate values of electrolytes in different body fluid compartments.
Fluid Electrolytes
SUMMARY
Fluid content of the human body ranges from 40% to 60% of bodyweight.
Intracellular Fluid (ICF) water inside the cell comprises 2/3 of the body’s water.
Extracellular Fluid (ECF) is the remaining 1/3 of the body’s water.
Cont…
Mechanisms that regulate extracellular fluid volume are neural mechanism, Reninangiotensin-aldosterone mechanism, atrial natriuretic hormone (ANH) mechanism and Antidiuretic hormone (ADH) mechanism.
Electrolytes are primarily obtained from foods, but they may also be found in drinking water and other beverages.
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