Q.State the role of centrioles other than spindle formation.
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Cilia, Flagella, and Centrioles – A First Look
Imagine a tiny boat. To move, it needs oars. In the microscopic world of a cell, cilia and flagella are those oars — hair-like projections that beat rhythmically to move the cell itself (like a sperm swimming) or to sweep fluid past a stationary cell (like the cilia lining your windpipe pushing out mucus). A centriole, on the other hand, is not an oar at all. It is the hidden anchor that builds the oar and later helps the cell divide.
All three are built from the same protein bricks: microtubules. Think of microtubules as hollow straws made of the protein tubulin. The difference lies in how these straws are arranged.
The 9+2 Axoneme: The Oar Itself
If you cut a cilium or flagellum in cross-section and look under an electron microscope, you see a beautiful, precise ring. Nine pairs of microtubules (called doublets) circle the edge, and two lonely single microtubules sit in the very centre. This is the 9+2 arrangement, and the whole structure is called the axoneme.
Why 9+2? The nine outer doublets do the heavy lifting — they slide against each other using a motor protein called dynein, which bends the cilium. The two central microtubules act like a guide rail, coordinating the sliding so the bend is smooth and wave-like. Without the central pair, the motion becomes chaotic.
Cilia are short and numerous (like a lawn), beating in a coordinated whip. Flagella are long and few (usually one or two), beating in a snake-like wave. But inside, both are identical 9+2 axonemes.
The 9+0 Centriole: The Builder and the Anchor
Now look at the base of that cilium. Right where it emerges from the cell surface sits a short, barrel-shaped structure: the basal body. This is a centriole. Cut it open and you see nine triplets of microtubules arranged in a cartwheel pattern — 9+0 (no central pair). The centriole acts as a template, organising the microtubules of the axoneme as it grows outward.
But the centriole has a second, completely different job. When a cell prepares to divide, the centriole duplicates and migrates to opposite ends of the cell, forming the poles of the spindle apparatus. The spindle fibres (also microtubules) reach out from these poles to grab chromosomes and pull them apart. So the same 9+0 barrel that built the oar now builds the rope that separates the genetic material.
| Structure | Microtubule pattern | Function |
|-----------|-------------------|----------| …
Centrioles do more than build the mitotic spindle — the same cylindrical structure also gives rise to the basal body that anchors and organises a cell's cilia or flagella.
- Centrioles are a pair of cylindrical structures lying near the nucleus, and besides duplicating to help build the spindle apparatus for cell division, each centriole can also function as (or give rise to) the basal body of a cilium or flagellum.
- The basal body sits at the base of the cilium/flagellum and organises the microtubules that form its shaft (the axoneme), letting the structure beat and produce movement. …
Beyond organising the mitotic spindle, a centriole can also act as the basal body that anchors and organises the microtubules of a cilium or flagellum.
Centrioles are best known from this chapter for their role in cell division: they duplicate during the S phase of interphase, and the duplicated centrosome moves to opposite poles at prophase, radiating microtubules (asters) that, together with the spindle fibres, make up the mitotic apparatus used to move chromosomes.
However, centrioles are not exclusively division-related structures. Each centriole is a small, cylindrical organelle built from a ring of microtubules, and this same structure can also organise a cell's motile surface projections:
- A centriole can give rise to, or function directly as, the basal body located at the base of a cilium or flagellum.
- The basal body templates and anchors the axoneme — the microtubule-based internal skeleton that runs the length of the cilium or flagellum and allows it to beat. …
Step 1 — Note what the question excludes. The question specifically asks for a role OTHER than spindle formation, so simply repeating the spindle/aster role is not a valid answer.
Step 2 — Recall what else a centriole is known to organise. A centriole is structurally a cylinder of microtubules — the same kind of structure that forms the basal body at the root of a cilium or flagellum. …
- AP EAPCET 2026Set ap-2026-05-20-FN1 markMCQQ.Each of the peripheral fibrils in centriole are made up of (A) Tubulin (B) Flagellin (C) Axonema (D) Histone
›Reveal solutionSolution
Centriole peripheral fibrils are microtubule triplets, and microtubules are polymers of the protein tubulin.
Concept and Intuition
A centriole is a cylindrical structure made of nine evenly spaced peripheral fibrils, each fibril actually being a triplet of microtubules. Since all microtubules throughout the cell (in the cytoskeleton, spindle fibres, cilia, flagella, and centrioles) are polymerised from the same fundamental protein subunit, tubulin, the peripheral fibrils of a centriole are made of tubulin.
Step-by-Step Solution
- Centrioles have nine peripheral fibrils arranged in a ring, each fibril a triplet of microtubules.
- Microtubules are hollow tubes built from repeating subunits of the protein tubulin (as alpha- and beta-tubulin dimers).
- Flagellin is a structural protein specific to bacterial flagella, not eukaryotic centrioles.
- Axoneme describes the "9+2" microtubule arrangement seen in cilia/flagella cross-sections — it's an architecture, not the fibril's constituent protein. …
- AP EAPCET 2024Set ap-2024-05-17-FN1 markMCQQ.Study the following and pick up the correct statements: I. The peripheral doublets of a flagellum are interconnected by linkers called nexins. II. The basal granule of flagellum is connected to plasma membrane and nucleus by rootlets. III. Flagellum in Monas are stichonematic type. IV. Pantacronematic flagellum is found in Polytoma. (A) I, III (B) II, IV (C) II, III (D) I, II
›Reveal solutionSolution
Nexin links between peripheral doublets, and rootlets anchoring the basal granule to the plasma membrane/nucleus, are the two well-supported statements about flagellar ultrastructure here.
Concept and Intuition
A eukaryotic flagellum/cilium has an internal axoneme with the classic "9+2" arrangement: nine peripheral microtubule doublets surrounding a central pair. These peripheral doublets are cross-linked to each other by nexin links (which allow controlled, coordinated bending rather than the doublets sliding apart freely), while dynein arms provide the motor force and radial spokes connect the doublets to the central pair. At the base, the flagellum is anchored by a basal body (basal granule/kinetosome), which in many protists is further stabilised by striated rootlet fibres that extend from the basal body toward the plasma membrane and, in several flagellates, toward the nucleus — providing mechanical anchorage for the whole flagellar apparatus.
Step-by-Step Solution
- Statement I: peripheral doublets linked by nexin — this is a core, universally taught fact about axoneme ultrastructure. True.
- Statement II: basal granule connected to plasma membrane and nucleus by rootlets — matches known rootlet/rhizoplast structures documented in flagellate protists, providing structural anchorage. True. …
- AP EAPCET 2023Set ap-2023-05-22-AN1 markMCQQ.In microtubules, the peripheral doublets are interconnected by linkers called (A) Nexins (B) Tubulins (C) Dyneins (D) Actin
›Reveal solutionSolution
The nine peripheral doublets of the ciliary/flagellar axoneme are held together by nexin links, distinct from the dynein arms (which generate motor force) and radial spokes (which connect doublets to the central pair).
Concept and Intuition
The classic "9+2" axoneme structure of eukaryotic cilia and flagella consists of nine peripheral microtubule doublets surrounding a central pair of single microtubules. Several distinct protein components maintain and drive this structure: dynein arms (motor proteins generating the sliding force for movement), radial spokes (connecting each peripheral doublet to the central sheath), and nexin links (elastic connectors joining adjacent peripheral doublets to each other, preventing them from sliding too far apart and helping convert sliding into bending).
Step-by-Step Solution
- Identify what interconnects the peripheral doublets to each other (not to the central pair) — this specific linker is the nexin.
- Eliminate "Tubulins" — tubulin is the protein subunit making up the microtubules themselves, not a cross-linker between doublets. …
- AP EAPCET 2022Set ap-2022-07-11-AN1 markMCQQ.Site of ATP ase activity in the cilia and flagella (A) Microtubules (B) Dynein arms (C) Inner sheath (D) Outer sheath
›Reveal solutionSolution
Dynein arms on the peripheral microtubule doublets of the axoneme are the ATPase motor proteins that power ciliary/flagellar beating.
Concept and Intuition
The axoneme of a cilium/flagellum has the classic 9+2 arrangement: nine peripheral doublet microtubules surrounding a central pair. Each peripheral doublet carries two rows of arm-like projections made of the protein dynein. Dynein is a mechanochemical ATPase — it binds and hydrolyses ATP, and uses the released energy to "walk" along the adjacent doublet, generating a sliding motion between doublets that is converted (via radial spokes/nexin links) into the characteristic bending/beating motion.
Step-by-Step Solution
- Identify the structural components of the axoneme: microtubules (structural, not enzymatic), dynein arms (motor ATPase), inner sheath and outer sheath/membrane (structural covering).
- Recall that motility (chemical-to-mechanical energy conversion) requires an ATP-hydrolysing motor protein. …
- AP EAPCET 2022Set ap-2022-07-11-FN1 markMCQQ.Undulipodia are (A) Flagella and cilia of protozoans (B) Cilia and pseudopodia of protozoans (C) Flagella and pseudopodia of protozoans (D) Pseudopodia and myonemes
›Reveal solutionSolution
This tests terminology distinguishing eukaryotic vs prokaryotic locomotory organelles; the answer is Flagella and cilia of protozoans.
Concept and Intuition
The term 'undulipodia' was coined to emphasize that eukaryotic flagella and eukaryotic cilia are essentially the same organelle (same 9+2 microtubule arrangement, powered by dynein arms) differing mainly in length and beating pattern, and to distinguish them clearly from the very different, simpler, rotary bacterial flagellum (which has no microtubules and a completely different motor mechanism). So 'undulipodia' collectively refers to eukaryotic flagella and cilia, as in protozoans.
Step-by-Step Solution
- Pseudopodia (mentioned in B, C, D) are temporary cytoplasmic projections used for amoeboid movement and phagocytosis — structurally completely different (no axoneme, just actin-based cytoskeleton), so they cannot be part of 'undulipodia'.
- Myonemes (D) are contractile fibrils found in some ciliates (e.g., Stentor, Vorticella) used for rapid body contraction — again a different structure from flagella/cilia. …
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