Q.Which one of the following sets of animals belong to a single taxonomic group?
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🔒 Start your 14-day free trial to unlock the full solution →Concept understanding — Basis Of Animal Classification
Why Classify Animals at All?
Imagine walking into a library where every book is just piled in a heap. You'd never find anything. Biology faces the same problem: there are over a million known animal species. Classification is the system that organises this chaos into a meaningful order.
But here's the key insight — we don't classify animals arbitrarily. We don't group bats with birds because both fly, or whales with fish because both live in water. That would be like putting a novel and a dictionary together just because both have pages.
Instead, classification is based on fundamental body design features — the deep structural patterns that reveal how animals are built and how they evolved. These features tell us about an animal's ancestry, not just its lifestyle.
The Six Fundamental Features
When biologists look at any animal, they ask six questions about its body plan. The answers place it in its proper group.
1. Level of Organisation
How are the cells arranged? This is the most basic question.
- Cellular level: Cells are independent, with little to no分工. Sponges are the classic example — they're just a loose collection of cell types.
- Tissue level: Cells start working together as tissues (groups of similar cells doing a common job). Jellyfish and hydra reach this level.
- Organ level: Tissues combine into organs. Flatworms (like tapeworms) have organs but no organ systems.
- Organ system level: Organs work together in systems. This is what you see in earthworms, insects, and all vertebrates — including us.
Higher levels of organisation don't mean "better" animals. Sponges have survived for 600 million years with just cellular organisation. They're perfectly adapted to their niche.
2. Symmetry
Draw an imaginary line through the animal. What happens?
- Asymmetrical: No line divides the body into similar halves. Sponges are the only asymmetrical animals.
- Radial symmetry: Any plane passing through the central axis gives identical halves. Think of a starfish or a jellyfish — like a wheel, it has a top and bottom but no front or back.
- Bilateral symmetry: Only one plane (down the middle) divides the animal into mirror-image left and right halves. Humans, insects, fish — most animals you know.
Bilateral symmetry is linked to cephalisation — the concentration of sense organs and a brain at the front end. If you have a head, you're almost certainly bilaterally symmetrical.
3. Germ Layers
During early development, an embryo forms layers of cells that will become different body parts.
- Diploblastic: Two germ layers — ectoderm (outside) and endoderm (inside). Found in cnidarians (jellyfish, corals) and ctenophores.
- Triploblastic: Three germ layers — ectoderm, endoderm, and mesoderm (middle layer). All other animals, from flatworms to humans.
The mesoderm is a game-changer. It gives rise to muscles, the skeleton, the circulatory system, and the reproductive organs. Triploblastic animals can grow larger and move more powerfully because they have real muscle tissue.
4. Coelom (Body Cavity)
This is the space between the body wall and the digestive tract. It's not just empty space — it's a fluid-filled cavity that cushions organs and allows them to move independently.
- Acoelomate: No body cavity at all. The space between body wall and gut is packed solid with mesoderm cells. Flatworms are the example — they're like a solid tube.
- Pseudocoelomate: A body cavity exists, but it's not fully lined by mesoderm. Roundworms (nematodes) have this — the cavity is a "false" coelom.
- Coelomate (or Eucoelomate): A true body cavity completely lined by mesoderm. Earthworms, insects, starfish, and all vertebrates have this.
The coelom is lined by a thin membrane called peritoneum. In humans, this is the membrane that becomes inflamed in peritonitis. The coelom allows your heart to beat and your intestines to churn without rubbing against your body wall.
5. Segmentation
Is the body divided into repeating units?
- Segmented: The body is built from a series of similar segments. Earthworms are the textbook example — each segment has its own muscles, nerves, and excretory organs. Arthropods (insects, crabs) are also segmented, though their segments are often fused into specialised body regions (head, thorax, abdomen).
- Non-segmented: No repeating units. Most animals, including humans, are not truly segmented — our vertebrae are a remnant of segmentation, but our body as a whole is not built from repeating units.
Segmentation allows for specialisation. In an earthworm, each segment is similar. In an insect, segments have fused into specialised regions. In vertebrates, segmentation is seen in the backbone and ribcage.
6. Notochord
This is the defining feature of our own phylum — Chordata.
A notochord is a flexible, rod-like structure that runs along the back of the animal. It provides support and is the precursor to the backbone.
- Present at some stage: All chordates (fish, amphibians, reptiles, birds, mammals) have a notochord at some point in their life. In vertebrates, it's replaced by the vertebral column during development.
- Absent: Non-chordates (all other animals) never have a notochord. …
The correct option is (C) Monkey, Chimpanzee, Man.
- All three are placental mammals that are closely related to one another, unlike the other sets.
- Cuttlefish, jellyfish, silverfish, dogfish and starfish (A) only share the common-name suffix "fish" but actually belong to entirely different phyla — mollusc, coelenterate, arthropod, fish and echinoderm respectively.
- Bat, pigeon and butterfly (B) share only the ability to fly, though they are a mammal, a bird and an insect. …
Common names can mislead — animals called "fish" or "worm" often belong to completely different phyla, whereas monkey, chimpanzee and man are all placental mammals that are genuinely closely related.
This question tests whether a shared common name implies a shared taxonomic identity, and in most of the options it does not.
- In option (A), cuttlefish is a mollusc, jellyfish a coelenterate, silverfish an arthropod (insect), dogfish a cartilaginous fish (Chondrichthyes), and starfish an echinoderm — five different phyla united only by the word "fish" in their common names.
- In option (B), bat is a mammal, pigeon a bird, and butterfly an insect — three different classes/phyla whose only shared trait is the ability to fly, achieved independently in each lineage.
- In option (D), silkworm is an arthropod (insect), tapeworm a flatworm (Platyhelminthes), and earthworm an annelid — again three different phyla sharing only the suffix "worm." …
Method: Biological-relatedness checklist, not the common name
Rather than trusting the shared word in each animal's common name, test every set against a short checklist of genuine relatedness markers — same phylum, similar body plan, and a real evolutionary connection — and see which set passes all three.
Checklist: (1) Do all members belong to the same phylum? (2) Do they share the same basic body plan (symmetry, organisation, skeleton type)? (3) Is their resemblance due to common ancestry, or to convergent evolution / coincidental naming?
- (a) Cuttlefish, jellyfish, silverfish, dogfish, starfish — checking phylum membership one by one: mollusc, coelenterate, arthropod, true fish, echinoderm. Fails checklist item (1) immediately — five different phyla sharing nothing but the suffix "fish" in English.
- (b) Bat, pigeon, butterfly — mammal, bird, insect. Fails item (1) again; their only shared trait, flight, is independently evolved in each lineage (convergent evolution), failing item (3) as well.
- (d) Silkworm, tapeworm, earthworm — insect (Arthropoda), flatworm (Platyhelminthes), annelid (Annelida). Fails item (1); united only by the English suffix "worm." …
- AP EAPCET 2022Set ap-2022-07-11-FN1 markMCQQ.Which scientist is regarded as the pioneer in the field of systematics of invertebrates ? (A) Libbie Henrietta Hyman (B) Heackle (C) Leeuwenhoek (D) Robert E. Grant
›Reveal solutionSolution
This is a history-of-science recall question; the answer is Libbie Henrietta Hyman.
Concept and Intuition
Zoology credits specific historical figures with founding sub-disciplines. Libbie Henrietta Hyman authored the monumental multi-volume reference work 'The Invertebrates: Their Structure and Function', systematically describing and classifying invertebrate phyla — this body of work is what earns her the title 'pioneer of invertebrate systematics' in most zoology textbooks.
Step-by-Step Solution
- Ernst Haeckel (B, spelled 'Heackle' in the option) is known for the recapitulation theory ('ontogeny recapitulates phylogeny'), the term 'ecology', and elaborate biological illustrations — not specifically invertebrate systematics.
- Antonie van Leeuwenhoek (C) is famous as the father of microscopy/microbiology, first to observe bacteria and protozoa — not a systematist of invertebrates. …
- AP EAPCET 2021Set ap-2021-09-03-AN1 markMCQQ.Which of the following is correctly matched?(i) Coelomates → Aschelminthes(ii) Triploblastic → Sponges(iii) Radial symmetry → Coelenterates(iv) Metamerism → Molluscs (A)(i) only (B)(ii) only (C)(iii) only (D)(iv) only
›Reveal solutionSolution
This tests recall of body-plan features across invertebrate phyla. Only "Radial symmetry → Coelenterates" (iii) is correctly matched — option (C).
Concept and Intuition
Each invertebrate phylum has hallmark body-plan features used to classify and distinguish it:
- Coelomate status: Aschelminthes (roundworms) are pseudocoelomates (a body cavity not fully lined by mesoderm), not true coelomates.
- Tissue organisation: Sponges (Porifera) are at the cellular level of organisation (Parazoa) — they lack true tissues, so they cannot be classified as triploblastic (which requires three true germ layers organised into tissues); true triploblastic organisation begins from Platyhelminthes onwards.
- Symmetry: Coelenterates (Cnidaria) — like jellyfish and Hydra — exhibit radial symmetry, where body parts are arranged around a central axis.
- Metamerism: True segmentation (repetition of similar body segments) is the hallmark of Annelida (e.g., earthworm), not Mollusca (which is unsegmented, except for some primitive forms like Monoplacophora that show pseudo-metamerism).
Step-by-Step Solution
- Evaluate (i): "Coelomates → Aschelminthes" — false, Aschelminthes are pseudocoelomates.
- Evaluate (ii): "Triploblastic → Sponges" — false, sponges are at the cellular grade of organisation (Parazoa), not truly triploblastic. …
- AP EAPCET 2021Set ap-2021-09-03-FN1 markMCQQ.In Deuterostomia embryonic blastopore produces ________ (A) Anus (B) Mouth (C) Gonopore (D) Coccyx
›Reveal solutionSolution
This tests the defining embryological feature separating protostomes from deuterostomes. The answer is (A).
Concept and Intuition
During gastrulation, the blastopore is the opening of the archenteron (primitive gut) to the outside. In protostomes ("mouth first") this blastopore becomes the mouth. In deuterostomes ("mouth second" — literally deutero = second, stoma = mouth) the blastopore instead becomes the anus, and the mouth forms independently at the opposite end of the embryo. This single embryological distinction (along with cleavage pattern and coelom formation) is why Echinodermata and Chordata are grouped together as deuterostomes, separate from all other (protostome) phyla.
Step-by-Step Solution
- Recall that "Deuterostomia" translates to "second mouth".
- If the mouth is second, the first opening (the blastopore) cannot be the mouth — it must become the other end of the gut, the anus. …
- AP EAPCET 2021Set ap-2021-09-07-FN1 markMCQQ.Coelomate animal where Blastopore develops into anus is _____ (A) Deuterostomate (B) Blastosomate (C) Protostomate (D) Blastomere
›Reveal solutionSolution
This tests the deuterostome vs protostome distinction based on blastopore fate; the answer is (A) Deuterostomate.
Concept and Intuition
During gastrulation, the embryo forms a gut with an opening called the blastopore. Two very different developmental strategies exist among coelomate (triploblastic, coelom-possessing) animals depending on what this opening becomes:
- In Protostomes ("mouth first") — Annelida, Arthropoda, Mollusca — the blastopore develops into the mouth.
- In Deuterostomes ("mouth second") — Echinodermata, Hemichordata, Chordata — the blastopore develops into the anus, and the mouth is formed later as a new opening at the other end of the archenteron.
This single embryological difference is one of the most fundamental branch points in animal classification, correlating with other differences like cleavage pattern (spiral/determinate vs radial/indeterminate) and coelom formation (schizocoelous vs enterocoelous).
Step-by-Step Solution
- The question describes a coelomate animal in which the blastopore becomes the anus.
- By definition, this developmental pattern is called Deuterostome development. …
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