Q.Protein found in a biological system with a unique three dimensional structure and biological activity is called a native protein. When a protein in its native form, is subjected to a physical change like change in temperature or a chemical change like change in pH, denaturation of protein takes place. Explain the cause.
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🔒 Start your 14-day free trial to unlock the full solution →Concept understanding — Protein Structure Levels
Protein Structure Levels: From a String to a Working Machine
Imagine you have a long string of beads. Each bead is a different colour, and the order of colours is fixed. If you just lay that string on a table, it's a floppy, useless line. But if you could somehow make that string fold itself into a tiny, precise 3D shape — say, a key that fits a specific lock — you'd have something that actually does a job. That's exactly what a protein is.
A protein starts as a long chain of smaller units called amino acids. There are 20 different kinds, each with a unique side chain (the "colour" of the bead). The exact sequence of these amino acids is determined by your DNA. But a protein isn't just a chain — it's a chain that folds into a specific shape, and that shape determines what the protein does. If the shape is wrong, the protein can't work.
The folding happens in stages, and we call these stages the four levels of protein structure.
Level 1: Primary Structure — The Sequence
This is the simplest level: just the linear order of amino acids in the chain, linked by peptide bonds. Think of it as the sentence written in the language of proteins.
Primary structure = the sequence of amino acids from the N-terminus (start) to the C-terminus (end).
Why does this matter? Because the sequence determines everything else. Change one amino acid in a critical spot, and the entire protein can misfold. Example: sickle cell anaemia is caused by a single amino acid swap in haemoglobin — valine replaces glutamic acid at position 6. One bead out of hundreds changes colour, and the whole protein folds wrong.
Level 2: Secondary Structure — Local Folding Patterns
The chain doesn't stay straight. Hydrogen bonds form between the backbone atoms (not the side chains) of nearby amino acids. These bonds cause the chain to twist or fold into regular, repeating patterns.
Two common patterns:
- Alpha helix (α-helix): The chain coils like a spring or a spiral staircase. Hydrogen bonds form between every 4th amino acid, holding the coil tight.
- Beta sheet (β-sheet): The chain folds back and forth like a pleated fan. Hydrogen bonds form between adjacent segments, creating a flat, sheet-like structure.
Secondary structure is stabilised entirely by hydrogen bonds between the carbonyl oxygen of one amino acid and the amide hydrogen of another — both part of the peptide backbone. Side chains stick out and don't participate.
These patterns are local — they happen in short stretches of the chain. A single protein can have multiple α-helices and β-sheets separated by loops.
Level 3: Tertiary Structure — The Global 3D Shape
Now the whole chain folds into its final, compact, three-dimensional shape. This is where the protein becomes functional. The tertiary structure is stabilised by interactions between the side chains of amino acids that may be far apart in the sequence but come close in space.
What holds it together?
- Hydrophobic interactions: Nonpolar side chains cluster together in the protein's interior, away from water.
- Hydrogen bonds: Between polar side chains.
- Ionic bonds: Between positively and negatively charged side chains.
- Disulfide bridges: Covalent bonds between the sulfur atoms of two cysteine amino acids — these are strong and lock parts of the chain together.
- Van der Waals forces: Weak attractions between closely packed atoms.
A common mistake: thinking tertiary structure is just "more secondary structure." It's not. Secondary structure is local folding; tertiary structure is the global arrangement of the entire chain, including how helices and sheets pack together.
Level 4: Quaternary Structure — Multiple Chains Working Together
Some proteins are made of more than one polypeptide chain. Each chain is a separate subunit, and the quaternary structure describes how these subunits assemble into a functional complex. …
Why this formula?
Protein Structure Levels: Understanding the "Why" Behind the Hierarchy
Protein structure is not defined by a single formula, but by a logical hierarchy of organization. Each level builds on the previous one, and the "formulas" here are really principles of molecular interaction that explain why proteins fold the way they do.
Let's break down each level and the reasoning behind its key features.
1. Primary Structure: The Sequence "Formula"
What it is: The linear sequence of amino acids linked by peptide bonds.
Key "formula":
Protein=NH2-[Amino Acid]1-[AA]2-...-[AA]n-COOH
Why this holds:
- Peptide bond formation is a condensation reaction:
-COOH+NH2-→-CO-NH-+H2O
- This bond is rigid and planar due to resonance (partial double-bond character). This restricts rotation, which directly influences higher-order folding.
- The sequence is determined by DNA (genetic code). Every change in sequence can alter the entire structure — this is why a single mutation (e.g., sickle cell anemia: Glu → Val at position 6) can cause disease.
Exam insight: The primary structure is the only level that is covalently determined. All higher levels are non-covalent interactions.
2. Secondary Structure: Local Folding Patterns
Key patterns: α-helix and β-pleated sheet.
Why these form — the hydrogen bond "formula":
The α-helix
- Hydrogen bonds form between the carbonyl oxygen (C=O) of residue n and the amide hydrogen (N-H) of residue n+4.
- Why n+4? This spacing allows the backbone to coil into a right-handed helix with exactly 3.6 amino acids per turn.
- Reasoning: The peptide bond's planar nature forces the backbone into a specific geometry. The n+4 pattern maximizes H-bonding while minimizing steric clashes.
The β-sheet
- Hydrogen bonds form between adjacent strands (either parallel or antiparallel).
- Why not n+4? The backbone is extended (pleated), so H-bonds occur between different segments, not within the same chain.
Key formula (Ramachandran plot):
Only certain backbone dihedral angles (ϕ,ψ) are allowed:
- α-helix: ϕ≈−57∘, ψ≈−47∘
- β-sheet: ϕ≈−130∘, ψ≈+130∘
Why these angles? Steric hindrance — atoms cannot overlap. The Ramachandran plot shows the only regions where no two atoms clash.
3. Tertiary Structure: The 3D Fold
Key "formula": The hydrophobic effect drives folding.
Why this holds:
- Water molecules form a cage-like structure around nonpolar (hydrophobic) side chains. This is entropically unfavorable (water loses freedom).
- To minimize this, hydrophobic side chains cluster together in the protein's core, away from water.
- Result: The protein collapses into a compact globule, with polar/charged residues on the surface.
Supporting interactions (the "glue"):
| Interaction | Why it matters |
|---|---|
| Hydrogen bonds | Between side chains (e.g., Ser–Glu) |
| Ionic bonds | Between charged groups (e.g., Lys–Asp) |
| Van der Waals forces | Close packing of atoms |
| Disulfide bridges | Covalent S–S bonds (only in oxidizing environments) |
Why not just one formula? Tertiary structure is unique to each protein — it's the sum of all these interactions, not a single equation.
4. Quaternary Structure: Multiple Subunits
Key "formula":
Functional protein=∑i=1nSubuniti
Why this holds:
- Some proteins need multiple polypeptide chains to function (e.g., hemoglobin: α2β2). …
The key idea is that denaturation disrupts the non-covalent interactions (and sometimes disulfide bonds) that maintain a protein's specific three-dimensional structure.
- A native protein's unique 3D shape is stabilised by weak forces: hydrogen bonds, ionic bonds, hydrophobic interactions, and van der Waals forces.
- Physical changes (e.g., heat) increase molecular motion, breaking hydrogen bonds and hydrophobic interactions. Chemical changes (e.g., pH shift) alter the charge on amino acid side chains, disrupting ionic bonds and hydrogen bonds. …
Denaturation disrupts the non-covalent interactions (hydrogen bonds, ionic bonds, hydrophobic interactions) and disulfide bridges that stabilise a protein’s unique 3D structure, causing loss of biological activity while the primary structure remains intact.
Why a protein has a “native” shape — and why it matters
A protein’s biological function depends entirely on its precise three-dimensional shape. This shape is not random; it is the native conformation — the most stable, lowest-energy arrangement the polypeptide chain can adopt under normal physiological conditions. Think of it like a key: only when it is cut exactly right does it fit the lock. The “cutting” is done by a hierarchy of structural levels:
- Primary structure — the linear sequence of amino acids.
- Secondary structure — local folding into α-helices and β-pleated sheets, stabilised by hydrogen bonds between backbone amide and carbonyl groups.
- Tertiary structure — the overall 3D folding of a single polypeptide, held together by side-chain interactions: hydrogen bonds, ionic bonds, hydrophobic packing, van der Waals forces, and sometimes covalent disulfide (−S−SX−) bridges.
- Quaternary structure — assembly of multiple polypeptide subunits (not always present).
The native state is a delicate balance. All those non-covalent interactions are individually weak, but collectively they lock the protein into a specific, functional shape. Change the environment — temperature or pH — and you tip that balance.
What denaturation actually does
Denaturation is the unfolding of the protein from its native conformation into a disordered, often random-coil state. The key point: the primary structure (covalent peptide bonds) remains unchanged. Only the higher-order structure is lost.
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Temperature increase — Heat adds kinetic energy. Molecules vibrate faster. At some point, the thermal motion overcomes the hydrogen bonds and hydrophobic interactions that hold the secondary and tertiary structure together. The protein “melts” into a tangled, non-functional chain. For most proteins, this happens sharply at a characteristic temperature (like egg white turning opaque when boiled — the albumin denatures).
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pH change — Every amino acid side chain has an optimal pH range where it carries the right charge for ionic bonds and hydrogen bonds to form. Move the pH away from the protein’s isoelectric point, and:
- Carboxyl groups (−COOH) lose a proton to become −COO− (or gain one if pH is very low).
- Amino groups (−NHX2) gain a proton to become −NHX3X+ (or lose one if pH is very high). …
Concept: Protein Denaturation – Loss of Native Structure
Method: Lock-and-Key Disruption Model (also called the Unfolding Model)
Why This Happens (The Cause)
A native protein's unique 3D shape is held together by weak interactions — hydrogen bonds, ionic bonds, hydrophobic interactions, and van der Waals forces. These are not covalent bonds; they are delicate and easily broken.
Step-by-Step Explanation
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Native state
The protein is folded into a precise 3D shape. This shape is essential for its biological activity (e.g., enzyme binding, antibody recognition).
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Physical or chemical stress is applied
- Temperature increase → adds kinetic energy → vibrations break hydrogen bonds and hydrophobic interactions.
- pH change → alters charges on amino acid side chains → disrupts ionic bonds and hydrogen bonds.
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Weak interactions break
The stabilizing forces collapse. The protein unfolds from its compact, ordered structure into a random, disorganized coil.
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Loss of biological activity
The active site (or binding region) is destroyed. The protein can no longer perform its function — it is denatured. …
🧠 The Core Concept
A native protein has a unique three-dimensional structure (secondary, tertiary, or quaternary) that is essential for its biological activity.
Denaturation = loss of this native structure → loss of biological activity.
✗ Common Mistake #1: Confusing cause with effect
What students write:
"Denaturation happens because the protein loses its biological activity."
Why it's wrong:
This reverses cause and effect. Loss of activity is a result of denaturation, not the cause.
✓ How to avoid:
Always remember the sequence:
Physical/chemical change → disruption of bonds → loss of 3D structure → loss of biological activity
The cause is the disruption of hydrogen bonds, disulfide bridges, ionic bonds, and hydrophobic interactions that maintain the native conformation.
✗ Common Mistake #2: Saying "all bonds break" during denaturation
What students write:
"All bonds in the protein break, including peptide bonds."
Why it's wrong:
Denaturation does not break peptide bonds — those are covalent bonds that hold the primary structure together. Only secondary, tertiary, and quaternary structures are disrupted.
✓ How to avoid:
Make a clear distinction:
| Structure level | Bonds affected in denaturation? |
|---|---|
| Primary (peptide bonds) | ✗ No |
| Secondary (H-bonds) | ✓ Yes |
| Tertiary (H-bonds, ionic, disulfide, hydrophobic) | ✓ Yes |
| Quaternary (same as tertiary, between subunits) | ✓ Yes |
Key line to remember:
"Denaturation disrupts non-covalent interactions and sometimes disulfide bridges, but never peptide bonds."
✗ Common Mistake #3: Thinking denaturation is always irreversible
What students write:
"Denaturation is always permanent."
Why it's wrong:
Some proteins can renature (regain native structure) if the denaturing agent is removed gently — e.g., ribonuclease (Anfinsen's experiment).
✓ How to avoid:
Use the correct terminology:
- Reversible denaturation → possible if only weak bonds are disrupted (e.g., mild heat, pH change)
- Irreversible denaturation → when disulfide bonds break or aggregation occurs (e.g., boiling an egg)
Exam tip: If the question asks "Explain the cause," focus on bond disruption, not reversibility — but don't claim it's always irreversible.
✗ Common Mistake #4: Vague or incomplete explanation of "cause"
What students write:
"Change in temperature or pH causes denaturation."
Why it's wrong:
This is just restating the question. You must explain how these changes cause denaturation.
✓ How to avoid:
Give a mechanism:
- Temperature increase → provides kinetic energy → breaks hydrogen bonds and hydrophobic interactions → unfolds the protein
- pH change → alters ionization of amino acid side chains → disrupts ionic bonds and hydrogen bonds → loss of 3D structure
Example answer structure: …
Showing the 12 most recent of 16 on this concept.
- TG EAPCET 2026Set eng-2026-05-11-FN1 markMCQQ.The number of amino acids present in insulin is (A) 21 (B) 30 (C) 51 (D) 41
›Reveal solutionSolution
Insulin is composed of two polypeptide chains (A and B) with 21 and 30 amino acids respectively, giving a total of 51 amino acids. The correct answer is (C).
Concept and Intuition
Insulin is a peptide hormone that regulates blood glucose. Its structure is famously simple: it consists of two separate chains — an A chain and a B chain — linked by disulfide bridges. The number of amino acids in each chain is a well-established fact in biochemistry. The trick is to remember that the total is the sum of both chains, not just one of them. Many students mistakenly recall only the A‑chain number (21) or the B‑chain number (30) and pick those as the answer, but the question asks for the total number of amino acids present in insulin — meaning the whole molecule.
Step‑by‑Step Reasoning
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Identify the two chains of insulin.
Insulin is synthesized as a single polypeptide (proinsulin) that is later cleaved into two chains: the A chain and the B chain. The C‑peptide (connecting piece) is removed during maturation and is not part of the final active insulin molecule.
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Recall the length of each chain.
- The A chain contains 21 amino acids.
- The B chain contains 30 amino acids. These numbers are standard for human insulin and most mammalian insulins.
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Add the two chain lengths.
Total amino acids = A‑chain length + B‑chain length
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- TG EAPCET 2026Set ap-2026-05-04-AN1 markMCQQ.Non membrane bound cell organelles present in animal cells I. Ribosomes II. Vacuole III. Centriole IV. Lysosome (A) I and II only (B) II and III only (C) III and IV only (D) I and III only
›Reveal solutionSolution
Ribosomes and centrioles are the only non-membrane-bound organelles among the given options in animal cells. The correct option is (D).
The distinction between membrane-bound and non-membrane-bound organelles is fundamental to understanding cell structure and function. Cell organelles are specialized subunits within a cell that perform specific functions. Their presence or absence of a surrounding membrane dictates how they interact with the cytoplasm and other organelles, and often reflects their evolutionary origin and functional complexity.
Membrane-bound organelles, such as mitochondria, endoplasmic reticulum, Golgi apparatus, lysosomes, and peroxisomes, are enclosed by one or more lipid bilayers. This compartmentalization allows them to maintain a distinct internal environment, crucial for specific biochemical reactions and protection from the rest of the cytoplasm. Non-membrane-bound organelles, on the other hand, are structures made of proteins or nucleic acids and proteins that exist directly in the cytoplasm without a surrounding membrane.
Let's analyze each organelle listed:
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Ribosomes (I):
Ribosomes are complex molecular machines responsible for protein synthesis (translation). They are composed of ribosomal RNA (rRNA) and ribosomal proteins. Structurally, a ribosome consists of two subunits (a large and a small subunit) that come together during protein synthesis. Crucially, ribosomes do not possess any membrane surrounding them. They are found freely in the cytoplasm or attached to the endoplasmic reticulum. Therefore, ribosomes are non-membrane-bound organelles.
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Vacuole (II):
Vacuoles are membrane-bound sacs that play various roles, including storage, waste removal, and maintaining turgor pressure. In animal cells, vacuoles are typically small, temporary, and involved in functions like storage or transport. They are always enclosed by a single membrane. Therefore, vacuoles are membrane-bound organelles.
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Centriole (III): …
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- TG EAPCET 2026Set ap-2026-05-05-FN1 markMCQQ.Study the following and choose the correct statements I. Sarcoplasmic reticulum is the store house of calcium ions II. Thin filament of a myofibril is formed by actin, troponin and myosin molecules III. Thick filaments of myofibril are held together by M-line IV. The portion of myofibril between two successive M-lines is called sarcomere (A) I, III (B) II, IV (C) I, II (D) III, IV
›Reveal solutionSolution
The sarcoplasmic reticulum stores calcium ions, and the M-line holds thick filaments together. Therefore, statements I and III are correct. The final answer is (A).
The ability of muscles to contract relies on the precise arrangement and interaction of specialized protein filaments within muscle cells. Understanding the structure of these filaments and the organelles involved is key to comprehending muscle function. We will examine each statement to determine its accuracy regarding the components and organization of a myofibril.
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Evaluating Statement I: Sarcoplasmic reticulum is the store house of calcium ions.
The sarcoplasmic reticulum (SR) is a specialized type of endoplasmic reticulum found in muscle cells. Its primary function is to store and regulate the concentration of calcium ions (Ca2+) within the muscle fiber. When a muscle receives a nerve impulse, the SR releases Ca2+ into the sarcoplasm, initiating muscle contraction. Conversely, it actively pumps Ca2+ back in to allow muscle relaxation.
ImportantCalcium ions are essential for muscle contraction, binding to troponin and initiating the cross-bridge cycle between actin and myosin.
Therefore, statement I is correct.
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Evaluating Statement II: Thin filament of a myofibril is formed by actin, troponin and myosin molecules.
Thin filaments are one of the two main types of myofilaments in a myofibril. They are primarily composed of three proteins:
- Actin: Forms the backbone of the thin filament, consisting of globular G-actin monomers that polymerize into filamentous F-actin.
- Tropomyosin: A filamentous protein that wraps around the actin filament, covering the myosin-binding sites in a relaxed muscle.
- Troponin: A complex of three globular proteins that binds to actin, tropomyosin, and calcium ions. When calcium binds to troponin, it causes a conformational change that moves tropomyosin, exposing the myosin-binding sites on actin. Myosin is the primary component of the thick filaments, not the thin filaments. Therefore, statement II is incorrect.
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Evaluating Statement III: Thick filaments of myofibril are held together by M-line. …
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- TG EAPCET 2025Set eng-2025-05-02-FN1 markMCQQ.Which of the following hormones is an example of polypeptide? (A) Epinephrine (B) Insulin (C) Estrogen (D) Androgen
›Reveal solutionSolution
Polypeptide hormones are made of amino acid chains; insulin is a classic example, while epinephrine is an amino acid derivative and estrogens/androgens are steroids. The correct option is (B).
Concept & Intuition
Hormones are classified by their chemical structure, which determines how they are synthesized, stored, and act on target cells. Polypeptide hormones are chains of amino acids (typically >10 residues), synthesized on ribosomes and stored in vesicles. In contrast, steroid hormones (like estrogen and androgen) are derived from cholesterol, and epinephrine is a modified single amino acid (tyrosine). Insulin, a well-known hormone regulating blood glucose, is a polypeptide composed of 51 amino acids in two chains.
Step-by-step reasoning
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Identify the chemical nature of each option
- (A) Epinephrine: Derived from tyrosine; it is a catecholamine (amino acid derivative), not a polypeptide.
- (B) Insulin: A protein hormone made of two polypeptide chains (A and B) linked by disulfide bonds; it is a classic polypeptide hormone.
- (C) Estrogen: A steroid hormone synthesized from cholesterol; it is lipid-soluble and not a polypeptide.
- (D) Androgen: Also a steroid hormone (e.g., testosterone); same reasoning as estrogen.
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Apply the definition of a polypeptide hormone …
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- TG EAPCET 2025Set eng-2025-05-04-AN1 markMCQQ.Amino acid ‘X’ contains phenolic hydroxy group and amino acid ‘Y’ contains amide group. ‘X’ and ‘Y’ respectively are (A) Ser, Arg (B) Cys, Lys (C) Thr, Asn (D) Tyr, Gln
›Reveal solutionSolution
The key is to match the functional groups: a phenolic hydroxy group (benzene ring with –OH) identifies tyrosine (Tyr), and an amide group (–CONH₂) identifies glutamine (Gln). The correct pair is Tyr and Gln, option (D).
The question asks you to identify two amino acids based on specific side-chain functional groups. This is a classic test of memorizing the 20 standard amino acids by their chemical properties. Let’s break it down.
Concept & Intuition
Amino acids are distinguished by their R-groups. A phenolic hydroxy group means a hydroxyl (–OH) attached directly to a benzene ring — that’s the side chain of tyrosine (Tyr). An amide group is –CONH₂, which appears in the side chains of asparagine (Asn) and glutamine (Gln). The question pairs them, so we need the correct combination.
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Identify the amino acid with a phenolic hydroxy group.
- Phenol is C₆H₅–OH. Only one standard amino acid has this: tyrosine (Tyr, Y). Its side chain is a para-hydroxyphenyl group.
- Serine (Ser) has a simple –OH (alcohol), not phenolic. Threonine (Thr) also has an alcohol –OH. Cysteine (Cys) has a thiol (–SH). So options (A), (B), and (C) are wrong for X.
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Identify the amino acid with an amide group.
- An amide group is –C(=O)NH₂. Two amino acids have this: asparagine (Asn, N) and glutamine (Gln, Q).
- Arginine (Arg) has a guanidino group, lysine (Lys) has an amino group, and asparagine (Asn) is an amide — but the question pairs Y with X. Since X is Tyr, we check the options:
- (A) Ser, Arg → no amide.
- (B) Cys, Lys → no amide.
- (C) Thr, Asn → Asn has an amide, but Thr is not Tyr. …
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- TG EAPCET 2025Set eng-2025-05-04-FN1 markMCQQ.Amino acid ‘X’ contains phenolic hydroxy group and amino acid ‘Y’ contains amide group. ‘X’ and ‘Y’ respectively are (A) Tyr, Gln (B) Thr, Asn (C) Ser, Arg (D) Cys, Lys
›Reveal solutionSolution
The key is to match each functional group to the correct amino acid: a phenolic hydroxy group is found only in tyrosine (Tyr), and an amide group is found in glutamine (Gln) and asparagine (Asn). The only option pairing Tyr with an amide-containing amino acid is (A) Tyr, Gln.
The question tests your knowledge of amino acid side-chain functional groups — a core topic in biochemistry for medical and biology entrance exams. You need to recall which amino acids carry which chemical groups, not just their names.
Let’s break it down.
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Phenolic hydroxy group means a hydroxyl (−OH) attached directly to a benzene ring. Among the 20 standard amino acids, only tyrosine (Tyr, Y) has a phenolic side chain (a para-hydroxyphenyl group).
- Serine (Ser) has a simple alcoholic −OH, not phenolic.
- Threonine (Thr) also has an alcoholic −OH.
- Cysteine (Cys) has a thiol (−SH), not a hydroxy group. So ‘X’ must be tyrosine.
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Amide group means a −CONH2 functional group. Two amino acids have amide side chains: asparagine (Asn, N) and glutamine (Gln, Q).
- Arginine (Arg) has a guanidino group, not an amide.
- Lysine (Lys) has a primary amino group. So ‘Y’ must be either asparagine or glutamine.
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Now check the options:
- (A) Tyr, Gln — matches: Tyr has phenolic −OH, Gln has amide. …
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- TG EAPCET 2025Set ap-2025-04-29-AN1 markMCQQ.Which of the following statements are correct about viroids? (A) They have free DNA with protein coat (B) They have free DNA without protein coat (C) They have free RNA with protein coat (D) They have free RNA without protein coat
›Reveal solutionSolution
Viroids are the smallest known infectious pathogens, consisting solely of a short, circular single-stranded RNA molecule with no protein coat — the correct statement is (D).
The key to this question lies in understanding what makes viroids distinct from viruses. Both are acellular infectious agents, but their structure is fundamentally different. A virus always has a protein coat (capsid) that surrounds its genetic material, which can be either DNA or RNA. A viroid, discovered by T.O. Diener in 1971, is even simpler — it is just a naked, circular RNA molecule with no protein covering whatsoever.
This stripped-down structure was a shocking discovery at the time. It proved that an infectious agent could cause disease using only RNA, without any proteins of its own. The RNA of a viroid is not translated into any protein; instead, it replicates using the host plant's own enzymes, typically RNA polymerase II, which is tricked into copying the viroid RNA.
Let's examine each option carefully.
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Option (A): "They have free DNA with protein coat"
This describes a typical virus, not a viroid. Viroids never contain DNA, and they never have a protein coat. This is incorrect.
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Option (B): "They have free DNA without protein coat"
While the "without protein coat" part is correct for viroids, the genetic material is RNA, not DNA. This is incorrect.
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Option (C): "They have free RNA with protein coat"
The genetic material is RNA, which is correct, but viroids lack a protein coat. This describes a virus with an RNA genome (like the tobacco mosaic virus), not a viroid. This is incorrect.
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Option (D): "They have free RNA without protein coat" …
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- TG EAPCET 2024Set ap-2024-05-08-FN1 markMCQQ.UUU, CCC, AAA, GGG are the codons codes for the following amino acids respectively (A) Phe, Val, Gly, Lys (B) Phe, Pro, Lys, Gly (C) Phe, Gly, Pro, Asp (D) Gly, Asp, Lys, Pro
›Reveal solutionSolution
This question tests your knowledge of the genetic code, specifically which amino acids are coded by the codons UUU, CCC, AAA, and GGG. The correct mapping is Phenylalanine, Proline, Lysine, and Glycine, respectively.
The genetic code is a set of rules by which information encoded in genetic material (DNA or RNA sequences) is translated into proteins (amino acid sequences) by living cells. Each sequence of three nucleotides, called a codon, specifies a particular amino acid or a stop signal. Understanding this code is fundamental to molecular biology.
Here's how we determine the amino acids for the given codons:
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Understanding Codons: A codon is a triplet of nucleotides. In RNA, the nucleotides are Adenine (A), Uracil (U), Guanine (G), and Cytosine (C). Each unique combination of three nucleotides codes for a specific amino acid.
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Decoding UUU: The codon UUU consists of three Uracil bases. According to the standard genetic code, UUU codes for Phenylalanine (Phe).
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Decoding CCC: The codon CCC consists of three Cytosine bases. According to the standard genetic code, CCC codes for Proline (Pro).
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Decoding AAA: The codon AAA consists of three Adenine bases. According to the standard genetic code, AAA codes for Lysine (Lys).
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Decoding GGG: The codon GGG consists of three Guanine bases. According to the standard genetic code, GGG codes for Glycine (Gly).
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Matching with Options: …
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- TG EAPCET 2024Set ap-2024-05-08-FN1 markMCQQ.Study the following and pick up the correct combinations(A) I, II (B) II, III (C) III, IV (D) II, IV
S.No Gland Hormone Disorder I Pancreas Insulin Diabetes insipidus II Thyroid gland Thyroxine Tetanus III Adrenal glands Cortisol Cushing's syndrome IV Pituitary gland Somatotropin Dwarfism ›Reveal solutionSolution
Match each endocrine gland with its hormone and associated disorder by recalling the correct physiological relationships. The correct pairings are adrenal–cortisol–Cushing's syndrome and pituitary–somatotropin–dwarfism: (C).
The endocrine system coordinates long-term physiological processes through hormones secreted by specific glands. Each gland produces characteristic hormones, and dysfunction leads to predictable disorders. This question tests whether you can correctly link gland → hormone → disorder triads.
Let's examine each statement:
I. Pancreas – Insulin – Diabetes insipidus
The pancreas does secrete insulin from its β-cells, and insulin deficiency or resistance causes diabetes mellitus (characterized by hyperglycemia). However, diabetes insipidus is an entirely different condition caused by deficiency of antidiuretic hormone (ADH/vasopressin) from the posterior pituitary, leading to excessive dilute urine production. The disorder is mismatched.
Watch outDiabetes mellitus and diabetes insipidus are unrelated diseases that share only the symptom of polyuria. Mellitus involves blood glucose; insipidus involves water balance.
II. Thyroid gland – Thyroxine – Tetanus
The thyroid gland secretes thyroxine (T₄) and triiodothyronine (T₃), which regulate metabolism. Thyroid disorders include hypothyroidism (goiter, cretinism, myxedema) and hyperthyroidism (Graves' disease). Tetanus, however, is an infectious disease caused by Clostridium tetani toxin affecting the nervous system, producing muscle spasms. It has nothing to do with thyroid dysfunction.
The condition sometimes confused here is tetany (not tetanus), which involves muscle spasms due to hypocalcemia, often from parathyroid hormone deficiency. Even that correction wouldn't save this pairing, since the gland would be wrong.
III. Adrenal glands – Cortisol – Cushing's syndrome …
- TG EAPCET 2024Set ap-2024-05-07-FN1 markMCQQ.Statement I : In foetal heart in human beings, the inter atrial septum has a pore called foramen Manro Statement II : A fibrous strand, known as ligamentum arteriosum is present at the point of contact of systemic and pulmonary arches in human heart (A) Both statements I and II are true (B) Both statements I and II are false (C) Statement I is true. But II is false (D) Statement I is false. But II is true
›Reveal solutionSolution
The question tests knowledge of foetal heart anatomy and postnatal remnants. Statement I is false (the pore is the foramen ovale, not foramen Monro); Statement II is true (ligamentum arteriosum is the remnant of the ductus arteriosus). Hence only Statement II is correct.
The key here is to recall the specific structures of the foetal heart and what they become after birth. The foetal circulation has several shunts that bypass the non‑functioning lungs and liver; after birth, these shunts close and leave fibrous remnants. Confusing the names of these structures is a common pitfall.
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Statement I: “In foetal heart in human beings, the inter atrial septum has a pore called foramen Monro.”
- The interatrial septum in the foetus does have an opening, but it is called the foramen ovale, not “foramen Monro.”
- The foramen ovale allows oxygenated blood from the right atrium to pass directly into the left atrium, bypassing the lungs.
- “Foramen Monro” (or interventricular foramen) is actually the opening between the lateral ventricles and the third ventricle in the brain — it has nothing to do with the heart.
- Therefore, Statement I is false.
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Statement II: “A fibrous strand, known as ligamentum arteriosum is present at the point of contact of systemic and pulmonary arches in human heart.” …
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- TG EAPCET 2023Set ap-2023-05-10-FN1 markMCQQ.Thin filament of myofibril is made up of. (A) Actin and Myosin (B) Actin, Tropomyosin and Troponin (C) Actin, Tubulin and Troponin (D) Myosin and Tropomyosin
›Reveal solutionSolution
The thin filament of a myofibril is primarily composed of three proteins: actin, tropomyosin, and troponin, which work together to enable muscle contraction. The correct option is (B).
The ability of muscles to contract and relax is fundamental to movement, and this process relies on the intricate arrangement and interaction of proteins within muscle cells. Specifically, muscle cells contain structures called myofibrils, which are made up of repeating units called sarcomeres. Within each sarcomere, there are two main types of protein filaments: thick filaments and thin filaments. Understanding the composition of these filaments is key to grasping how muscle contraction occurs.
The question asks about the composition of the thin filament. The thin filament is a complex structure primarily built around the protein actin, but it also includes regulatory proteins that control when and how actin interacts with the thick filament (myosin) to produce force.
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Identifying the Core Structural Protein: The backbone of the thin filament is formed by actin. Actin exists as a globular monomer called G-actin. Multiple G-actin molecules polymerize to form a filamentous structure called F-actin. Two strands of F-actin then twist around each other in a helical fashion to form the main structural component of the thin filament. Each G-actin molecule has a binding site for myosin.
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Identifying the Regulatory Proteins: In addition to actin, the thin filament contains two crucial regulatory proteins: tropomyosin and troponin. These proteins play a vital role in controlling muscle contraction by regulating the interaction between actin and myosin.
- Tropomyosin: This is a long, fibrous protein that wraps around the F-actin helix. In a relaxed muscle, tropomyosin physically covers the myosin-binding sites on the actin molecules, preventing myosin heads from attaching to actin.
- Troponin: This is a complex of three globular protein subunits, each with a specific function:
- Troponin C (TnC): Binds calcium ions (Ca2+).
- Troponin I (TnI): Inhibits the binding of myosin to actin.
- Troponin T (TnT): Binds to tropomyosin, anchoring the troponin complex to the thin filament. …
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- TG EAPCET 2023Set ap-2023-05-11-FN1 markMCQQ.Which of the following statements about HCl of gastric juice is incorrect. (A) HCl kills the microorganisms ingested along with food. (B) HCl is secreted by peptic cells of gastric glands (C) HCl provides the acidic pH which is optimum for the action of pepsin (D) The proenzymes pepsinogen and prorennin on exposure to HCl are converted to active enzymes.
›Reveal solutionSolution
The question asks which statement about HCl in gastric juice is incorrect. HCl is secreted by parietal cells, not peptic cells, so option (B) is false. The correct option is (B).
The key concept here is the cellular source of gastric HCl. Gastric juice contains hydrochloric acid, enzymes, and mucus, each secreted by different specialized cells in the stomach lining. A common mistake is to confuse the cells that secrete HCl with those that secrete digestive enzymes or their precursors.
Let’s examine each statement step by step:
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Statement (A): "HCl kills the microorganisms ingested along with food."
This is correct. The highly acidic environment (pH ~1.5–3.5) of the stomach denatures proteins and destroys most bacteria and other pathogens, acting as a first line of defense against infection.
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Statement (B): "HCl is secreted by peptic cells of gastric glands."
This is incorrect. HCl is secreted by parietal cells (also called oxyntic cells), which are located in the gastric glands of the stomach lining. Peptic cells (also called chief cells) secrete pepsinogen and prorennin (prorennin in infants), not HCl. This is the classic pitfall — mixing up the roles of parietal and chief cells.
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Statement (C): "HCl provides the acidic pH which is optimum for the action of pepsin."
This is correct. Pepsin, the main proteolytic enzyme in the stomach, works optimally at a pH of about 1.5–2.0. HCl creates this acidic environment, allowing pepsin to digest proteins.
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Statement (D): "The proenzymes pepsinogen and prorennin on exposure to HCl are converted to active enzymes." …
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