Q.Structures of glycine and alanine are given below. Show the peptide linkage in glycylalanine.
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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). …
Concept: Protein Structure Levels – Peptide bonds form between amino acids via a condensation reaction between the carboxyl group of one and the amino group of another.
Reasoning:
- Glycine has the structure H2N−CH2−COOH. Alanine is H2N−CH(CH3)−COOH.
- In glycylalanine, glycine provides the carboxyl group (−COOH) and alanine provides the amino group (−NH2).
- A water molecule is eliminated between −OH of glycine's carboxyl and one H of alanine's amino group, forming the peptide bond −CO−NH−. …
A peptide bond forms between the carboxyl group (−COOH) of glycine and the amino group (−NH2) of alanine, releasing a water molecule. The resulting dipeptide is glycylalanine, with the structure H2N−CH2−CO−NH−CH(CH3)−COOH.
Why This Approach Works: The Logic of Peptide Bond Formation
Proteins are built from amino acids linked by peptide bonds. Each amino acid has a common backbone: a central carbon (α-carbon) bonded to an amino group (−NH2), a carboxyl group (−COOH), a hydrogen atom, and a unique side chain (R-group). For glycine, R = H; for alanine, R = CH3.
The key insight: a peptide bond is a dehydration synthesis (condensation) reaction. The carboxyl group of one amino acid reacts with the amino group of another, eliminating a molecule of water (H2O). The resulting bond (−CO−NH−) is the peptide linkage.
In naming a dipeptide like glycylalanine, the first amino acid (glycine) contributes its amino end (N-terminus), and the second (alanine) contributes its carboxyl end (C-terminus). The order matters — glycylalanine is not the same as alanylglycine.
A common mistake is to reverse the order of amino acids. In glycylalanine, glycine is the N-terminal residue (left side) and alanine is the C-terminal residue (right side). Always write the N-terminus first.
Step-by-Step Construction
1. Write the structures of the two amino acids.
Glycine: H2N−CH2−COOH
Alanine: H2N−CH(CH3)−COOH
2. Identify the reacting groups.
For the peptide bond to form between glycine (first) and alanine (second):
- The carboxyl group (−COOH) of glycine will react.
- The amino group (−NH2) of alanine will react.
3. Perform the condensation reaction.
The −OH from glycine's carboxyl group and one hydrogen (−H) from alanine's amino group combine to form water (H2O). The remaining parts join:
- Glycine loses −OH → becomes −CO− (carbonyl part). …
Concept: Peptide Bond Formation (Condensation Reaction)
A peptide bond is an amide linkage formed between the α-carboxyl group (−COOH) of one amino acid and the α-amino group (−NH2) of another amino acid, with the elimination of a water molecule.
Method: Stepwise Condensation (Dehydration Synthesis)
Steps
-
Identify the reacting groups
- Glycine has a free −NH2 (amino group) and a free −COOH (carboxyl group).
- Alanine has a free −NH2 and a free −COOH.
-
Determine the direction of the bond
- In glycylalanine, the name tells us: glycyl (from glycine) comes first, then alanine.
- So, the −COOH of glycine reacts with the −NH2 of alanine.
-
Remove a water molecule
- From glycine’s −COOH, remove −OH.
- From alanine’s −NH2, remove −H.
- These combine to form H2O.
-
Form the amide (peptide) linkage …
Great — let’s break this down. The concept here is peptide bond formation between amino acids, specifically for glycylalanine (Gly-Ala).
🧠 The Core Concept First
A peptide bond is a –CO–NH– linkage formed between the carboxyl group (–COOH) of one amino acid and the amino group (–NH₂) of another, with the elimination of a water molecule.
For glycylalanine:
- Glycine (H₂N–CH₂–COOH) provides the –COOH.
- Alanine (H₂N–CH(CH₃)–COOH) provides the –NH₂.
- The bond forms as: –CO–NH– (amide linkage).
✗ Common Mistakes & How to Avoid Each
1. Wrong order of amino acids
- Mistake: Writing alanine first (i.e., alanylglycine) instead of glycylalanine.
- Why it happens: Confusing the naming convention — the name “glycylalanine” means glycine comes first (N-terminal), alanine second (C-terminal).
- ✓ How to avoid: Remember: The first part of the name (glycyl-) is the N-terminal amino acid. Always write it on the left with its –NH₂ free (or as part of the chain).
2. Incorrect placement of the peptide bond
- Mistake: Joining the –COOH of glycine to the –COOH of alanine, or –NH₂ to –NH₂.
- Why it happens: Not remembering that a peptide bond is always –COOH of one + –NH₂ of the other.
- ✓ How to avoid: Draw the two structures side-by-side. Circle the –OH of glycine’s –COOH and one –H of alanine’s –NH₂. Remove H₂O and join the remaining –CO– to –NH–.
3. Forgetting to remove water (H₂O)
- Mistake: Writing the full –COOH and –NH₂ groups still present in the final structure.
- Why it happens: Treating the bond as a simple addition rather than a condensation reaction.
- ✓ How to avoid: Always write the reaction:
Gly–COOH+H₂N–Ala→Gly–CO–NH–Ala+H₂O
Then draw the product without the –OH and –H that were removed.
4. Wrong representation of the peptide bond
- Mistake: Writing –CO–NH– as –C–O–N–H– or –C–N– (missing the double bond to oxygen).
- Why it happens: Careless drawing or not knowing the amide structure.
- ✓ How to avoid: The peptide bond is –C(=O)–NH–. Always show the C=O double bond and the N–H single bond. Correct:
–CO–NH–or–C(=O)–NH–
5. Not showing the R-group of alanine …
Showing the 12 most recent of 30 on this concept.
- CBSE 2026Set ANNUAL1 markMCQQ.An example of fibrous protein is(a) Keratin(b) Myosin(c) Both (A) and (B)(d) None of these
›Reveal solutionSolution
Fibrous proteins have elongated, thread-like molecules that lie parallel in bundles held by hydrogen and disulfide bonds; keratin and myosin are both classic examples.
Fibrous proteins are structural proteins with molecules arranged as long fibres or sheets:
- Keratin: found in hair, nails, wool, horn - a structural/protective fibrous protein. …
- CBSE 2026Set ANNUAL1 markMCQQ.alpha-helix structure is found in(a) DNA(b) RNA(c) Lipid(d) Protein
›Reveal solutionSolution
The alpha-helix is one of the two common secondary structures of proteins, stabilised by intramolecular hydrogen bonds between backbone N-H and C=O groups.
In the alpha-helix, the polypeptide chain coils into a right-handed spiral, held in shape by hydrogen bonds formed between the C=O of one amino acid residue and the N-H of another residue further along the same chain (typically four residues away). This is a form of secondary protein structure (alongside the beta-pleated sheet).
…
- CBSE 2026Set ANNUAL1 markQ.Fill in the blank: Only ______ are obtained on hydrolysis of Protein.
›Reveal solutionSolution
Hydrolysis of protein gives only alpha-amino acids.
Proteins are polymers of alpha-amino acids joined by peptide (amide) linkages. On complete hydrolysis (acid, base or enzyme catalysed), every peptide bond is cleaved and the protein is broken down completely in …
- CBSE 2026Set ANNUAL1 markQ.What is the difference in the linkages between α-helix and β-pleated structures of proteins?
›Reveal solutionSolution
α-helix = hydrogen bonds within the same chain (intramolecular); β-pleated sheet = hydrogen bonds between adjacent chains (intermolecular).
The secondary structure of a protein describes how the polypeptide backbone coils or folds, and it is stabilised by hydrogen bonds between the >C=O and >N−H groups of the peptide bonds.
- α-Helix: the polypeptide chain twists into a right-handed spiral. Each >C=O group forms a hydrogen bond with the >N−H group of the fourth amino-acid residue within the same chain. These hydrogen bonds are therefore intramolecular. …
- CBSE 2025Set ANNUAL1 markQ.Write two examples of fibrous proteins.
›Reveal solutionSolution
Fibrous proteins are elongated, thread-like protein molecules held together by hydrogen and disulphide bonds, forming fibres; keratin and collagen are classic examples.
Fibrous proteins have molecules arranged as parallel polypeptide chains held together by hydrogen and disulphide bonds, forming long fibre-like or thread-like structures. They are typically insoluble in water and provide structural/mechanical support.
Examples:
- Keratin - found in hair, wool, nails, horns, feathers. …
- CBSE 2025Set ANNUAL1 markQ.Proteins are polymers of what?
›Reveal solutionSolution
Proteins are polypeptides - long chains built from alpha-amino acid monomer units joined by peptide bonds.
Proteins are biopolymers made of many alpha-amino acid units linked together through peptide bonds (an amide linkage, -CO-NH-, formed between the -COOH group of one amino acid and the -NH2 group of the next, with loss of water). The specific sequence of …
- CBSE 2024Set D1 markMCQQ.The helical structure of protein is stabilized by which of the following?(a) Ionic bond(b) Covalent bond(c) van der Waals forces(d) Hydrogen bond
›Reveal solutionSolution
Protein helix is held together by hydrogen bonds (secondary structure).
The secondary structure of proteins (the alpha-helix and beta-pleated sheet) is stabilized by HYDROGEN BONDING between the carbonyl oxygen (>C=O) of one peptide bond and the amide hydrogen (>N-H) of another. In the alpha-helix these H-bonds run roughly par …
- CBSE 2024Set B1 markQ.Write True or False: Keratin is a globular proteins.
›Reveal solutionSolution
Proteins are classified as fibrous or globular based on shape; keratin (found in hair, nails, wool) is fibrous, not globular.
Fibrous proteins have long thread-like/elongated molecules that lie side by side to form fibres, held together by hydrogen and disulphide bonds — examples include keratin (hair, nails, wool) and myosin (muscles). Globular proteins, by contrast, have their polypeptide chains coiled around themselves into a roughly sph …
- CBSE 2024Set B1 markQ.Match the pairs correctly. Column A item: 'Protein'. Column B options:(a) C6H5SO2Cl(b) Keratin(c) C6H5NH2(d) Rickets(e) C6H5N2Cl(f) Cobalt. Which option from Column B matches 'Protein'?
›Reveal solutionSolution
Keratin, found in hair/nails/wool, is a structural protein, so it is the example that pairs with 'Protein' in this list.
Of the options given, C6H5SO2Cl, C6H5NH2 and C6H5N2Cl are simple aromatic organic compounds (a sulphonyl chloride, aniline, and a diazonium salt respectively), Rickets is a disease, and …
- CBSE 2024Set ANNUAL1 markMCQQ.Globular protein is -(a) Insulin(b) Keratin(c) Myosin(d) Collagen
›Reveal solutionSolution
Proteins are classified by shape into fibrous (elongated, thread-like, structural) and globular (coiled, compact, functional); insulin belongs to the globular class.
Fibrous proteins have polypeptide chains that run parallel in long fibres/sheets held by hydrogen and disulphide bonds - examples include keratin (hair, nails), myosin (muscle), and collagen (connective tissue/tendons); they are typically insoluble in water and play structural roles. …
- CBSE 2024Set ANNUAL1 markMCQQ.Curdling of milk is an example of(a) breaking of peptide linkage(b) hydrolysis of lactose(c) breaking of protein into amino acids(d) denaturation of proteins
›Reveal solutionSolution
Curdling is the visible coagulation of milk protein (casein) caused by loss of its native folded structure - i.e. denaturation - under acidic conditions or enzyme action, not by breaking its covalent peptide backbone.
Milk contains the protein casein in a stable, folded, soluble form. When milk turns sour (lactic acid produced by bacteria) or rennet enzyme is added, the change in pH/enzymatic action disrupts the weak (non-covalent) interactions - hydrogen bonds, ionic interactions - that hold casein's native 3-D (secondary/tertiary) structure. The protein unfolds and its solubility is lost, causing it to precipitate/clump - this is curdling.
…
- CBSE 2024Set ANNUAL1 markQ.Differentiate between fibrous protein and globular protein with respect to its solubility.
›Reveal solutionSolution
Fibrous proteins are water-insoluble because of their elongated, H-bonded strand structure; globular proteins are water-soluble because of their compact, coiled shape.
Fibrous proteins (e.g. keratin, collagen, myosin, fibroin) consist of polypeptide chains that run parallel to each other and are held together side-by-side by extensive hydrogen bonds and, in some cases, disulphide bonds, forming long thread-like or fibre-like bundles. This tightly cross-linked, elongated structure exposes few polar groups to water and packs the molecules too densely for water molecules to solvate, so fibrous proteins are generally insoluble in water and are tough/structural (used in hair, tendons, muscle).
…
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