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Showing posts with label UNIT4 CARDIO AND EXCRETORY SYSTEM. Show all posts
Showing posts with label UNIT4 CARDIO AND EXCRETORY SYSTEM. Show all posts

Friday, May 6, 2011

EXCRETORY SYSTEM












The Human Excretory System


The urinary system is made-up of the kidneys, ureters, bladder, and urethra. The nephron, an evolutionary modification of the nephridium, is the kidney's functional unit. Waste is filtered from the blood and collected as urine in each kidney. Urine leaves the kidneys by ureters, and collects in the bladder. The bladder can distend to store urine that eventually leaves through the urethra

Human excretory system and the details of the kidney. Images from Purves et al., Life: The Science of Biology, 4th Edition, by Sinauer Associates (www.sinauer.com) and WH Freeman (www.whfreeman.com), used with permission.

The Nephron


The nephron consists of a cup-shaped capsule containing capillaries and the glomerulus, and a long renal tube. Blood flows into the kidney through the renal artery, which branches into capillaries associated with the glomerulus. Arterial pressure causes water and solutes from the blood to filter into the capsule. Fluid flows through the proximal tubule, which include the loop of Henle, and then into the distal tubule. The distal tubule empties into a collecting duct. Fluids and solutes are returned to the capillaries that surround the nephron tubule.

Filtration of the blood in the fine structure of the kidneys. Image from Purves et al., Life: The Science of Biology, 4th Edition, by Sinauer Associates (www.sinauer.com) and WH Freeman (www.whfreeman.com), used with permission.

The nephron has three functions:

Glomerular filtration of water and solutes from the blood.
Tubular reabsorption of water and conserved molecules back into the blood.
Tubular secretion of ions and other waste products from surrounding capillaries into the distal tubule.
Nephrons filter 125 ml of body fluid per minute; filtering the entire body fluid component 16 times each day. In a 24 hour period nephrons produce 180 liters of filtrate, of which 178.5 liters are reabsorbed. The remaining 1.5 liters forms urine.

Urine Production


Filtration in the glomerulus and nephron capsule.
Reabsorption in the proximal tubule.
Tubular secretion in the Loop of Henle.
Components of The Nephron
Glomerulus: mechanically filters blood
Bowman's Capsule: mechanically filters blood
Proximal Convoluted Tubule: Reabsorbs 75% of the water, salts, glucose, and amino acids
Loop of Henle: Countercurrent exchange, which maintains the concentration gradient
Distal Convoluted Tubule: Tubular secretion of H ions, potassium, and certain drugs.
Kidney Stones
In some cases, excess wastes crystallize as kidney stones. They grow and can become a painful irritant that may require surgery or ultrasound treatments. Some stones are small enough to be forced into the urethra, others are the size of huge, massive boulders (or so I am told).

Kidney Function


Kidneys perform a number of homeostatic functions:

Maintain volume of extracellular fluid
Maintain ionic balance in extracellular fluid
Maintain pH and osmotic concentration of the extracellular fluid.
Excrete toxic metabolic by-products such as urea, ammonia, and uric acid.
Hormone Control of Water and Salt | Back to Top
Water reabsorption is controlled by the antidiuretic hormone (ADH) in negative feedback. ADH is released from the pituitary gland in the brain. Dropping levels of fluid in the blood signal the hypothalamus to cause the pituitary to release ADH into the blood. ADH acts to increase water absorption in the kidneys. This puts more water back in the blood, increasing the concentration of the urine. When too much fluid is present in the blood, sensors in the heart signal the hypothalamus to cause a reduction of the amounts of ADH in the blood. This increases the amount of water absorbed by the kidneys, producing large quantities of a more dilute urine.

Aldosterone, a hormone secreted by the kidneys, regulates the transfer of sodium from the nephron to the blood. When sodium levels in the blood fall, aldosterone is released into the blood, causing more sodium to pass from the nephron to the blood. This causes water to flow into the blood by osmosis. Renin is released into the blood to control aldosterone.

Disruption of Kidney Function


Infection, environmental toxins such as mercury, and genetic disease can have devastating results by causing disruption of kidney function. Many kidney problems can be treated by dialysis, where a machine acts as a kidney. Kidney transplants are an alternative to dialysis.




Cells produce water and carbon dioxide as by-products of metabolic breakdown of sugars, fats, and proteins. Chemical groups such as nitrogen, sulfur, and phosphorous must be stripped, from the large molecules to which they were formerly attached, as part of preparing them for energy conversion. The continuous production of metabolic wastes establishes a steep concentration gradient across the plasma membrane, causing wastes to diffuse out of cells and into the extracellular fluid.

Single-celled organisms have most of their wastes diffuse out into the outside environment. Multicellular organisms, and animals in particular, must have a specialized organ system to concentrate and remove wastes from the interstitial fluid into the blood capillaries and eventually deposit that material at a collection point for removal entirely from the body

Excretory systems regulate the chemical composition of body fluids by removing metabolic wastes and retaining the proper amounts of water, salts, and nutrients. Components of this system in vertebrates include the kidneys, liver, lungs, and skin.

Not all animals use the same routes or excrete their wastes the same way humans do. Excretion applies to metabolic waste products that cross a plasma membrane. Elimination is the removal of feces.

Water and Salt Balance | Back to Top
The excretory system is responsible for regulating water balance in various body fluids. Osmoregulation refers to the state aquatic animals are in: they are surrounded by freshwater and must constantly deal with the influx of water. Animals, such as crabs, have an internal salt concentration very similar to that of the surrounding ocean. Such animals are known as osmoconformers, as there is little water transport between the inside of the animal and the isotonic outside environment.

Marine vertebrates, however, have internal concentrations of salt that are about one-third of the surrounding seawater. They are said to be osmoregulators. Osmoregulators face two problems: prevention of water loss from the body and prevention of salts diffusing into the body. Fish deal with this by passing water out of their tissues through their gills by osmosis and salt through their gills by active transport. Cartilaginous fish have a greater salt concentration than seawater, causing water to move into the shark by osmosis; this water is used for excretion. Freshwater fish must prevent water gain and salt loss. They do not drink water, and have their skin covered by a thin mucus. Water enters and leaves through the gills and the fish excretory system produces large amounts of dilute urine.

Terrestrial animals use a variety of methods to reduce water loss: living in moist environments, developing impermeable body coverings, production of more concentrated urine. Water loss can be considerable: a person in a 100 degree F temperature loses 1 liter of water per hour.

Excretory System Functions | Back to Top
Collect water and filter body fluids.
Remove and concentrate waste products from body fluids and return other substances to body fluids as necessary for homeostasis.
Eliminate excretory products from the body.
Invertebrate Excretory Organs | Back to Top
Many invertebrates such as flatworms use a nephridium as their excretory organ. At the end of each blind tubule of the nephridium is a ciliated flame cell. As fluid passes down the tubule, solutes are reabsorbed and returned to the body fluids

CARDIO VASCULAR SYSTEM





CARDIO VASCULAR SYSTEM


1) What are the two parts of the cardiovascular system?

Blood
Blood vessels and the heart
(2) What are the functions of the cardiovascular system?

The heart pumps blood all through the body.
The blood helps fight infections, regulates temperature, and regulated ph levels.
(3) What are the types of blood vessels?
Arteries, capillaries, and veins.
(4) What is the structure and function of these vessels?

Arteries: Consists of three levels. 1) Endothelium: thin cells that make up the inner level 2) Middle layer is smooth muscle 3) The outer layer is connective tissue. These walls allow the artery to be protect under pressure and allows them to expand. Arteries carry blood from the heart.
Capillaries: Arterioles branch out and become capillaries. Capillaries are made of endothelium.
Veins: Veins have the same layers as arteries but has less of the middle layer. Veins are thinner than arteries, because of this they can expand further. Veins carry blood to the heart.
(5) Why is the heart a double pump?

The heart is a double pump because it is pumping blood to the lungs and blood to the body at the same time but they never intersect.
(6) What causes the "lub" and the "dup" of the heart sounds?

Lub: "Cusps of Av valve" slam shut due to pressure
Dup: When the ventricles relax and the blood begins to glow again.
(7) What keeps the heart beat regular?

The SA node sends a signal ever .85 seconds which causes the atria to contract. The signal is then sent to the AV.
(8) What does the pulse rate of a person indicate?

The pulse rate tells how many beats the heart has beat in a minute.
(9) What accounts for blood flow in the arteries?

The blood flow in the arteries is called blood pressure .
(10) What accounts for blood flow in the veins?

Skeletal pump: caused by skeletal muscle contraction
Respiratory Pump: caused by breathing
valves in the veins

The human body consists of many organs that are useful to carry out the functions of the body properly. All organs in the body are very much essential for normal functioning of the human body. In the similar manner, cardiovascular system is the most essential part of the body. It comprises of three main parts: blood, the heart, and the blood vessels, arteries and capillary veins.

The main function of cardiovascular system is to transport oxygen to all other organs of the body. Thus, this process provides sufficient amount of nutrition to several parts of the body. It is the most interesting and essential component of the body. Many researchers and scientist have toiled their life to get all the detailed information about this system. Every part of the system has different facts and functions. Thus, we may discuss here some interesting facts about blood, heart and blood vessels.

Blood:

Blood is the nutrition of the body that provides us energy for survival. Blood is actually a carrier of nutrition and oxygen to all other organs and cells of the body. Some interesting facts will help you to understand the proper functioning of blood.

Blood is made up of blood cells which are in the form of liquid, known as blood plasma. Seven % of the blood comprises in the total weight of the body. An adult human body contains an average of five liters of blood. There are two types of blood in the body: Red blood cells (RBC) and white blood cells (WBC). Blood even comprises of leukocytes and platelets. Hemoglobin is the main component of RBC, which is protein with iron that is very much essential for body to transport oxygen. Blood is made up of connective tissues and is generated within bones.

Heart:

The heart is the most important component of the body. It supplies blood and oxygen to all other parts of the body. The heart of male weighs approximately 300-350 grams whereas, female heart weight almost 250-300 grams. Its size is equivalent to the size of your hand fist. The heart is wrapped by double layer sac- Pericardium. Our heart is made up of three main parts: Innermost layer (Endocardium), Middle layer (Myocardium) and the Uppermost layer( Visceral layer) Heart comprises of four chambers: two arteries and two ventricles.

Blood vessels:

Blood vessels transport blood to the heart and other organs of the body.

The blood vessels in divided into three types: veins, capillaries and arteries. Each blood vessel carries out an important function of the body. The veins transport blood cells to the heart while, arteries pull away the blood from the heart. The Capillaries exchange chemicals with water. Aorta is the largest artery in the blood vessels that transports the blood from the heart. It is divided into: carotid artery, celiac trunk, renal artery, iliac artery, subclavian artery, and mesenteric arteries.


The heart is the pump responsible for maintaining adequate circulation of oxygenated blood around the vascular network of the body. It is a four-chamber pump, with the right side receiving deoxygenated blood from the body at low presure and pumping it to the lungs (the pulmonary circulation) and the left side receiving oxygenated blood from the lungs and pumping it at high pressure around the body (the systemic circulation).

The myocardium (cardiac muscle) is a specialised form of muscle, consisting of individual cells joined by electrical connections. The contraction of each cell is produced by a rise in intracellular calcium concentration leading to spontaneous depolarisation, and as each cell is electrically connected to its neighbour, contraction of one cell leads to a wave of depolarisation and contraction across the myocardium.

This depolarisation and contraction of the heart is controlled by a specialised group of cells localised in the sino-atrial node in the right atrium- the pacemaker cells. These cells generate a rhythmical depolarisation, which then spreads out over the atria to the atrio-ventricular node.
The atria then contract, pushing blood into the ventricles.
The electrical conduction passes via the Atrio-ventricular node to the bundle of His, which divides into right and left branches and then spreads out from the base of the ventricles across the myocardium.
This leads to a 'bottom-up' contraction of the ventricles, forcing blood up and out into the pulmonary artery (right) and aorta (left).
The atria then re-fill as the myocardium relaxes.

The 'squeeze' is called systole and normally lasts for about 250ms. The relaxation period, when the atria and ventricles re-fill, is called diastole; the time given for diastole depends on the heart rate