આ MCQ મોડ્યુલ આના પર આધારિત છે: Nitrogenous Wastes Excretory System
Nitrogenous Wastes Excretory System
આ મૂલ્યાંકન આના પર આધારિત હશે: Nitrogenous Wastes Excretory System
મૂલ્યાંકન બનાવવામાં તેમની સામગ્રી સામેલ કરવા ચિત્રો, PDF અથવા Word દસ્તાવેજ અપલોડ કરો.
Nitrogenous Wastes and the Human Excretory System
Animals accumulate ammonia, urea, uric acid, carbon dioxide, water and ions like Na⁺, K⁺, Cl⁻, phosphate, sulphate, etc., either by metabolic activities or by other means like excess ingestion. These substances have to be removed totally or partially. This chapter is about the mechanisms of that removal, with special emphasis on the common nitrogenous wastes.
The three nitrogenous wastes
Read that sentence carefully, because the whole section follows from it. Toxicity and water cost run together: the more toxic the waste, the more water is needed to dilute it to a safe concentration. An animal's choice of waste is therefore a trade-off between the energy cost of converting ammonia into something safer and the water cost of excreting it.
Ammonotelism
The process of excreting ammonia is Ammonotelism. Many bony fishes, aquatic amphibians and aquatic insects are ammonotelic in nature. Ammonia, as it is readily soluble, is generally excreted by diffusion across body surfaces or through gill surfaces (in fish) as ammonium ions. Kidneys do not play any significant role in its removal.
Ureotelism
Terrestrial adaptation necessitated the production of lesser toxic nitrogenous wastes like urea and uric acid for conservation of water. Mammals, many terrestrial amphibians and marine fishes mainly excrete urea and are called ureotelic animals. Ammonia produced by metabolism is converted into urea in the liver of these animals and released into the blood, which is filtered and excreted out by the kidneys. Some amount of urea may be retained in the kidney matrix of some of these animals to maintain a desired osmolarity.
Uricotelism
Reptiles, birds, land snails and insects excrete nitrogenous wastes as uric acid in the form of pellet or paste with a minimum loss of water and are called uricotelic animals.
| Feature | Ammonotelism | Ureotelism | Uricotelism |
|---|---|---|---|
| Waste excreted | Ammonia | Urea | Uric acid |
| Toxicity | Most toxic | Intermediate | Least toxic |
| Water needed | Large amount | Moderate | Minimum loss of water |
| Where it is made | Directly from metabolism | From ammonia, in the liver | From ammonia, by further conversion |
| Route of exit | Diffusion across body surfaces or gill surfaces, as ammonium ions. Kidneys play no significant role | Filtered and excreted by the kidneys | As a pellet or paste |
| Animals | Many bony fishes, aquatic amphibians, aquatic insects | Mammals, many terrestrial amphibians, marine fishes | Reptiles, birds, land snails, insects |
Excretory structures across the animal kingdom
A survey of the animal kingdom presents a variety of excretory structures. In most of the invertebrates, these structures are simple tubular forms, whereas vertebrates have complex tubular organs called kidneys.
| Structure | Found in | Function |
|---|---|---|
| Protonephridia or flame cells | Platyhelminthes (flatworms, e.g. Planaria), rotifers, some annelids and the cephalochordate — Amphioxus | Primarily concerned with ionic and fluid volume regulation, i.e., osmoregulation |
| Nephridia | Earthworms and other annelids | Help to remove nitrogenous wastes and maintain a fluid and ionic balance |
| Malpighian tubules | Most of the insects including cockroaches | Help in the removal of nitrogenous wastes and osmoregulation |
| Antennal glands or green glands | Crustaceans like prawns | Perform the excretory function |
| Kidneys | Vertebrates | Complex tubular organs; excretion and osmoregulation |
16.1 Human Excretory System
The kidneys — position and dimensions
- Kidneys are reddish brown, bean shaped structures situated between the levels of last thoracic and third lumbar vertebra, close to the dorsal inner wall of the abdominal cavity.
- Each kidney of an adult human measures 10–12 cm in length, 5–7 cm in width, 2–3 cm in thickness, with an average weight of 120–170 g.
Internal structure of the kidney
- Towards the centre of the inner concave surface of the kidney is a notch called hilum, through which ureter, blood vessels and nerves enter.
- Inner to the hilum is a broad funnel shaped space called the renal pelvis, with projections called calyces.
- The outer layer of kidney is a tough capsule.
- Inside the kidney there are two zones, an outer cortex and an inner medulla.
- The medulla is divided into a few conical masses (medullary pyramids) projecting into the calyces.
- The cortex extends in between the medullary pyramids as renal columns called Columns of Bertini.
The nephron — the functional unit
The full structure of the nephron is taken up in Part 2; for now note only the scale of the thing. A single kidney the size of a fist contains a million independent filtering units, and between the two kidneys they process about a fifth of the body's entire cardiac output every minute.
What to do. Obtain a fresh goat or sheep kidney. First examine it whole: note its reddish brown, bean shape, and find the notch on the inner concave surface — the hilum — with the ureter and blood vessels entering there. Feel the tough capsule covering it and try to peel a little away. Measure its length, width and thickness.
Then cut the kidney lengthwise into two halves with a sharp blade and lay them flat. Identify the outer cortex and inner medulla, count the medullary pyramids, find the calyces into which they project, trace the renal pelvis funnelling towards the ureter, and look for the strips of cortical tissue running between the pyramids.
What you should see. The medulla is the darker and conspicuously striated zone, because it is packed with parallel loops of Henle, collecting ducts and vasa recta all running in the same direction. The cortex is paler and granular in appearance, because it is filled with the rounded malpighian corpuscles and the coiled PCTs and DCTs rather than straight tubes. This appearance is a direct read-out of the anatomy: the Malpighian corpuscle, PCT and DCT are situated in the cortical region, whereas the loop of Henle dips into the medulla.
The strips between the pyramids are the renal columns, called the Columns of Bertini — the cortex extending inward between the conical masses of the medulla.
The pyramids and calyces. You should count a few conical medullary pyramids, each with its blunt tip projecting into a calyx. The calyces merge into the broad funnel of the renal pelvis, which narrows into the ureter at the hilum. Trace that path with a probe and you have traced the route of every drop of urine leaving the kidney.
The measurements should come close to 10–12 cm long, 5–7 cm wide and 2–3 cm thick for a human kidney; a goat's will be somewhat smaller but the proportions are similar.
One thing you will not see. The nephrons themselves. Each kidney has nearly one million of them, but a single nephron is far too fine to make out with the naked eye — the striations of the medulla are the closest you get to seeing them. That is worth noting, because it explains why the functional unit of the kidney was understood only after the microscope.
🎯 Interactive: Which waste, which structure?
Waste form / structure: Ammonotelic — gill surfaces
Many bony fishes are ammonotelic. Ammonia, being readily soluble, is generally excreted by diffusion through the gill surfaces as ammonium ions, and the kidneys do not play any significant role in its removal.
🎯 Competency-Based Questions
Q1. Predict the chief nitrogenous waste of the fish and the lizard, and justify each. L3 Apply
The desert lizard is uricotelic. Reptiles, birds, land snails and insects excrete nitrogenous wastes as uric acid in the form of pellet or paste with a minimum loss of water. For an animal whose water supply is scarce, the least toxic waste, needing the least water, is worth the extra cost of making it.
Q2. What change would you expect in the tadpole's excretion as it becomes an adult frog, and why? L4 Analyse
Q3. Fill in the blanks: Each kidney measures ______ cm in length and weighs ______ g. The notch on its inner surface is the ______, inner to which lies the ______ with projections called ______. The cortex extending between the medullary pyramids forms the ______. L1 Remember
Q4. The camel excretes urea, not uric acid, although it lives in a desert. Does this contradict the water-conservation argument? L4 Analyse
What a desert mammal does instead is conserve water at the kidney rather than change its waste product. It produces a highly concentrated urine, using the long loops of Henle and the counter current mechanism taken up in Part 3, and the chapter notes that in ureotelic animals some amount of urea may be retained in the kidney matrix to maintain a desired osmolarity — the very mechanism that makes concentration possible. So the camel achieves the same end by a different route: not a cheaper waste, but a better kidney. The wider lesson is that adaptation works within the limits of what an animal's lineage already possesses.
Q5. “Excretion simply means getting rid of poisons, so an excretory organ is essentially a waste disposal unit.” Evaluate. L5 Evaluate
What is right. Removal of toxic substances is certainly part of it: animals accumulate ammonia, urea, uric acid, carbon dioxide, water and ions like Na⁺, K⁺, Cl⁻, phosphate, sulphate, etc., and these substances have to be removed. Ammonia in particular is the most toxic form.
What the definition misses. (i) Excretion is also osmoregulation. Look at the survey of structures: protonephridia are primarily concerned with ionic and fluid volume regulation, i.e., osmoregulation; nephridia help to remove nitrogenous wastes and maintain a fluid and ionic balance; Malpighian tubules help in the removal of nitrogenous wastes and osmoregulation. Every one of them is described as doing two jobs. (ii) Substances are removed “totally or partially” — the chapter's own phrase. Water and Na⁺ are not poisons; they are removed only in whatever excess exists at that moment, which is regulation, not disposal. (iii) Useful material is deliberately retained. In ureotelic animals some amount of urea may be retained in the kidney matrix to maintain a desired osmolarity — a waste product kept on purpose because it is useful. A pure disposal unit would never do that. (iv) The choice of waste is a water-economy decision, not a toxicity decision alone: terrestrial adaptation necessitated the production of lesser toxic nitrogenous wastes for conservation of water.
The better formulation: an excretory organ is a regulator of the composition of body fluids, which removes wastes as one part of that task. That is why the kidney's design is a compromise, and why Part 4 of this chapter is about hormonal control rather than about plumbing.
🧠 Assertion–Reason Questions
For each pair choose: (A) Both A and R are true and R is the correct explanation of A. (B) Both A and R are true but R is not the correct explanation of A. (C) A is true but R is false. (D) A is false but R is true.
Assertion (A): Terrestrial animals are generally ureotelic or uricotelic rather than ammonotelic.
Reason (R): Ammonia is the most toxic form and requires a large amount of water for its elimination, so terrestrial adaptation necessitated less toxic wastes for conservation of water.
Assertion (A): The kidneys of an ammonotelic fish are the main route for removing its nitrogenous waste.
Reason (R): Ammonia is readily soluble and is generally excreted by diffusion across body surfaces or gill surfaces as ammonium ions.
Assertion (A): Uricotelic animals lose very little water in excretion.
Reason (R): Uric acid, being the least toxic, can be removed in the form of a pellet or paste with a minimum loss of water.