આ MCQ મોડ્યુલ આના પર આધારિત છે: Basis of Classification
Basis of Classification
આ મૂલ્યાંકન આના પર આધારિત હશે: Basis of Classification
મૂલ્યાંકન બનાવવામાં તેમની સામગ્રી સામેલ કરવા ચિત્રો, PDF અથવા Word દસ્તાવેજ અપલોડ કરો.
Basis of Classification
4.1 Introduction — Why Classify Animals?
You have already learnt that there is a wide variety of organisms present in our biosphere. Animals alone account for nearly a million identified species — from microscopic Hydra (a few millimetres) to the gigantic blue whale (over 30 metres). When new species keep being discovered every year, the urgent need for an organised classification system becomes clear.
Classification not only helps in identifying organisms but also gives an idea of evolutionary relationships among different groups. Even though all animals share certain features (eukaryotic, multicellular, heterotrophic), there exist striking differences in their structure and form. Therefore, biologists use a few fundamental features as the basis of classification — these features are common to many phyla.
4.2 Basis of Classification
The basic fundamental features of classification used for the animal kingdom include:
- Levels of organisation
- Symmetry
- Diploblastic / Triploblastic organisation
- Coelom
- Segmentation
- Notochord
4.2.1 Levels of Organisation
Although all animals are multicellular, all of them do not exhibit the same pattern of organisation of cells. There are four levels seen across the animal kingdom:
- In sponges (Porifera), the cells are arranged as loose cell aggregates, i.e., they exhibit the cellular level of organisation. There is some division of labour among cells.
- In Coelenterates (Cnidaria) and Ctenophores, the arrangement of cells is more complex. Here the cells performing the same function are arranged into tissues. Hence, this is called tissue level of organisation.
- A still higher level of organisation, i.e., organ level is exhibited by members of Platyhelminthes and other higher phyla where tissues are grouped together to form organs, each specialised for a particular function.
- In animals like Annelids, Arthropods, Molluscs, Echinoderms and Chordates, organs have associated to form functional systems, each system concerned with a specific physiological function. This pattern is called organ system level of organisation. Organ systems in different groups of animals exhibit various patterns of complexities. For example, the digestive system in Platyhelminthes has only a single opening (incomplete), whereas in higher animals it has both mouth and anus (complete). Similarly, the circulatory system may be of two types — open type (heart pumps blood into open spaces called sinuses, e.g., arthropods, molluscs) or closed type (blood is circulated through closed blood vessels, e.g., annelids, chordates).
4.2.2 Symmetry
Animals can be categorised on the basis of their symmetry:
- Asymmetrical: Any plane that passes through the centre does not divide them into equal halves. E.g., sponges.
- Radial symmetry: When any plane passing through the central axis of the body divides the organism into two identical halves. Found in coelenterates, ctenophores and echinoderms (adult).
- Bilateral symmetry: Only a single plane (the vertical/sagittal plane) divides the body into two identical right and left halves. Found in animals like annelids, arthropods, etc.
4.2.3 Diploblastic and Triploblastic Organisation
Animals in which the cells are arranged in two embryonic layers — an external ectoderm and an internal endoderm — are called diploblastic animals, e.g., coelenterates. An undifferentiated layer, mesoglea, is present in between the ectoderm and the endoderm.
Those animals in which the developing embryo has a third germinal layer, mesoderm, in between the ectoderm and endoderm, are called triploblastic animals (platyhelminthes to chordates).
4.2.4 Coelom
Presence or absence of a cavity between the body wall and the gut wall is very important in classification. The body cavity, which is lined by mesoderm, is called coelom. Animals possessing coelom are called coelomates, e.g., annelids, molluscs, arthropods, echinoderms, hemichordates and chordates.
In some animals, the body cavity is not lined by mesoderm; instead, the mesoderm is present as scattered pouches in between the ectoderm and endoderm. Such a body cavity is called pseudocoelom and the animals possessing them are called pseudocoelomates, e.g., aschelminthes.
The animals in which the body cavity is absent are called acoelomates, e.g., platyhelminthes.
4.2.5 Segmentation
In some animals, the body is externally and internally divided into segments with a serial repetition of at least some organs. For example, in earthworm, the body shows this pattern called metameric segmentation and the phenomenon is known as metamerism.
4.2.6 Notochord
Notochord is a mesodermally derived rod-like structure formed on the dorsal side during embryonic development in some animals. Animals with notochord are called chordates and those animals which do not form this structure are called non-chordates, e.g., porifera to echinoderms.
🎯 Interactive: Animal Classification Identifier
Pick the features and identify the broad group:
Possible group: —
Examples: —
Setup: A new aquatic worm-like organism is observed. Investigators record:
- Its body is divided into 90 ring-like segments.
- A cross-section shows ectoderm, mesoderm, endoderm — and a fluid-filled cavity completely lined by mesoderm.
- The body has a clear left-right mirror plane.
- No rod-like structure is found on the dorsal side at any stage.
Step-by-step deduction:
- Bilateral + triploblastic + true coelom + metameric segmentation + no notochord.
- The combination "true coelom + segments + no notochord" is the signature of Phylum Annelida.
- Likely candidate: an earthworm-like or Nereis-like annelid.
If a notochord had been present, it would have been a chordate; if no coelom, a flatworm; if pseudocoelom, an aschelminth.
Worked Examples
Worked Example 1: Match the Body Plan
Match each feature column with the correct phylum example: (i) Asymmetric (ii) Radial & diploblastic (iii) Bilateral, triploblastic, acoelomate (iv) Bilateral, triploblastic, pseudocoelomate (v) Bilateral, triploblastic, coelomate & segmented.
(ii) Radial & diploblastic → Coelenterata (Hydra, Jellyfish)
(iii) Bilateral, triploblastic, acoelomate → Platyhelminthes (Tapeworm)
(iv) Bilateral, triploblastic, pseudocoelomate → Aschelminthes (Ascaris)
(v) Bilateral, triploblastic, coelomate & segmented → Annelida (Earthworm)
Worked Example 2: Why Mesoderm Matters
Why are diploblastic animals always smaller and structurally simpler than triploblastic animals?
- No muscle tissue → only weak contractile cells (epitheliomuscular cells of Hydra)
- No blood vessels → gases & nutrients move only by diffusion → animal must stay thin/small.
- No coelom → organs cannot move independently of body wall.
Worked Example 3: Symmetry & Lifestyle
Why are sessile or slow-moving animals (sponges, hydras) usually radially or asymmetrically organised, while actively-moving animals are bilaterally symmetric?
🎯 Competency-Based Questions
Q1. Which level of organisation is shown by sponges? L1 Remember
Q2. The presence of a body cavity lined entirely by mesoderm is called: L1 Remember
Q3. Compare an open vs. closed circulatory system using one example each. L3 Apply
| Feature | Open | Closed |
|---|---|---|
| Blood flow | Through open spaces (sinuses/haemocoel) | Through blood vessels only |
| Pressure | Low | High |
| Efficiency | Slow exchange | Rapid, regulated exchange |
| Example | Cockroach (Arthropoda), Pila (Mollusca) | Earthworm (Annelida), Vertebrates |
Q4. Analyse: Why is the digestive system of Platyhelminthes called incomplete, while that of higher animals is called complete? L4 Analyse
Q5. Create: Imagine an alien organism that is bilaterally symmetric, triploblastic, has true coelom, has metameric segmentation, BUT also has a flexible rod on its dorsal side throughout life. Which existing phylum is this most like and why? L6 Create
🧠 Assertion–Reason Questions
Choose: (A) Both true, R explains A. (B) Both true, R doesn't explain A. (C) A true, R false. (D) A false, R true.
A: Adult echinoderms show radial symmetry.
R: Their larvae also have radial symmetry from the start of development.
A: Pseudocoelomates are considered intermediate between acoelomates and true coelomates.
R: They have a body cavity, but it is not completely lined by mesoderm.
A: Notochord is the defining feature of Chordates.
R: Notochord is present at some stage of life in all chordates and is mesodermally derived.