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Biochemistry Study Notes: Functional Groups, Amino Acids, Proteins, Enzymes, and Metabolism

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Functional Groups in Biochemistry

Overview of Functional Groups

Functional groups are specific groups of atoms within molecules that are responsible for the characteristic chemical reactions of those molecules. In biochemistry, understanding functional groups is essential for predicting the behavior of biomolecules such as amino acids, proteins, nucleic acids, and carbohydrates.

  • Carboxyl Group (–COOH): Found in amino acids and fatty acids; acts as an acid by donating a proton (H+).

  • Amino Group (–NH2): Found in amino acids; acts as a base by accepting a proton.

  • Amide Group (–CONH2): Found in proteins as peptide bonds.

  • Halide Group (–X): Halogen atom attached to carbon (X = F, Cl, Br, I).

  • Imine Group (–C=NH or –C=NR): Contains a carbon-nitrogen double bond.

  • Phenyl Group (–C6H5): Aromatic ring structure, found in amino acids like phenylalanine.

Carboxyl group structureAmino group structureAmide group structureHalide group structureImine group structurePhenyl group structure

Types of Organic Reactions in Biochemistry

Major Reaction Types

Organic reactions are fundamental to biochemical processes. The main types include:

  • Addition Reactions: Two molecules combine to form one, common with alkenes and alkynes.

  • Elimination Reactions: One molecule splits into two, forming a double or triple bond.

  • Substitution Reactions: One atom or group is replaced by another, common in alkyl halides and aromatic rings.

  • Rearrangement/Isomerization Reactions: Atoms or groups reorganize within a molecule, resulting in isomers.

  • Oxidation-Reduction Reactions: Involve changes in oxidation state, such as alcohol to aldehyde (oxidation) or aldehyde to alcohol (reduction).

  • Condensation and Hydrolysis: Condensation joins two molecules by removing water; hydrolysis splits molecules by adding water.

Addition reaction examplesSubstitution reaction exampleElimination reaction exampleOxidation and reduction reactions

Amino Acids: Structure, Classification, and Properties

General Structure of Amino Acids

Amino acids are the building blocks of proteins. Each amino acid contains a central (alpha) carbon atom bonded to an amino group, a carboxyl group, a hydrogen atom, and a variable side chain (R group).

Amino acid structure

Classification of Amino Acids

  • Non-Polar (Hydrophobic): Glycine, Alanine, Valine, Leucine, Isoleucine, Methionine, Phenylalanine, Tryptophan, Proline

  • Polar Uncharged (Hydrophilic): Serine, Threonine, Tyrosine, Asparagine, Glutamine, Cysteine

  • Polar Charged:

    • Acidic (Negatively Charged): Glutamic Acid, Aspartic Acid

    • Basic (Positively Charged): Lysine, Arginine, Histidine

Glycine and Proline structuresMethionine, Phenylalanine, Tyrosine, Tryptophan structuresSerine, Threonine, Asparagine, Glutamine structuresCysteine structureAspartic acid and Glutamic acid structures

Essential vs. Non-Essential Amino Acids

  • Essential: Must be obtained from the diet (e.g., Phenylalanine, Valine, Threonine, Tryptophan, Isoleucine, Methionine, Histidine, Arginine, Leucine, Lysine)

  • Non-Essential: Can be synthesized by the body (e.g., Alanine, Asparagine, Aspartate, Glutamine, Serine)

Acid-Base Properties and Zwitterions

Amino acids are amphoteric, meaning they can act as both acids and bases. At physiological pH (~7), amino acids exist as zwitterions, with a negatively charged carboxylate group and a positively charged amino group.

Peptide Bonds and Protein Structure

Formation of Peptide Bonds

Peptide bonds are covalent bonds that link amino acids together in proteins. They form between the carboxyl group of one amino acid and the amino group of another via a condensation (dehydration synthesis) reaction, releasing water.

Peptide bond formationAmino acid structure with peptide bondPolypeptide chain with peptide bondsPeptide bond formation (ball-and-stick)

Levels of Protein Structure

  • Primary Structure: Linear sequence of amino acids.

  • Secondary Structure: Local folding into alpha-helices and beta-sheets, stabilized by hydrogen bonds.

  • Tertiary Structure: Overall 3D shape of a single polypeptide, stabilized by hydrophobic interactions, ionic bonds, hydrogen bonds, and disulfide bridges.

  • Quaternary Structure: Arrangement of multiple polypeptide subunits in a functional protein complex.

Enzymes: Structure, Function, and Kinetics

Enzyme Structure and Function

Enzymes are biological catalysts that speed up biochemical reactions by lowering activation energy. They have a specific three-dimensional structure, with an active site where substrates bind and reactions occur.

Enzyme active site structure

Michaelis-Menten Kinetics

The rate of enzyme-catalyzed reactions depends on substrate concentration, enzyme concentration, temperature, and pH. The Michaelis-Menten equation describes the relationship between reaction velocity (V0), maximum velocity (Vmax), substrate concentration ([S]), and the Michaelis constant (Km):

Michaelis-Menten equation

Carbohydrates: Structure and Classification

Monosaccharides and Stereochemistry

Carbohydrates are polyhydroxy aldehydes or ketones. Monosaccharides are the simplest carbohydrates and can be classified by the number of carbons (triose, tetrose, pentose, hexose) and by the position of the carbonyl group (aldose or ketose).

  • D- and L- Configuration: Determined by the position of the OH group on the chiral carbon farthest from the carbonyl group in a Fischer projection.

D and L configuration of carbohydrates

Nucleic Acids: Structure and Function

Nucleotide Structure

Nucleic acids (DNA and RNA) are polymers of nucleotides, each consisting of a nitrogenous base, a pentose sugar, and a phosphate group. DNA contains deoxyribose and the bases A, T, G, C; RNA contains ribose and the bases A, U, G, C.

Bioenergetics and Metabolism

ATP and Energy Coupling

ATP is the primary energy currency of the cell. Its hydrolysis releases free energy that drives endergonic reactions. Metabolic pathways such as glycolysis, the citric acid cycle, and oxidative phosphorylation are central to cellular energy production.

Experimental Techniques in Biochemistry

Protein and Amino Acid Tests

  • Biuret Test: Detects peptide bonds (proteins/peptides) by forming a violet complex with Cu2+ in alkaline solution.

  • Ninhydrin Test: Detects amino acids by producing a purple color (Ruhemann’s purple).

  • Xanthoproteic Test: Detects aromatic amino acids (tyrosine, tryptophan, phenylalanine) by nitration, producing a yellow/orange color.

  • Millon-Nasse Test: Detects tyrosine by forming a red complex with mercuric ions.

  • Unoxidized Sulfur Test: Detects cysteine and methionine by forming a black precipitate with lead acetate.

  • Hopkins-Cole Test: Detects tryptophan by forming a violet ring with glyoxylic acid and sulfuric acid.

Protein Denaturation

  • Strong Acids/Bases: Cause protein precipitation by disrupting ionic and hydrogen bonds.

  • Alkaloidal Reagents: Precipitate proteins by forming insoluble complexes.

  • Heavy Metal Salts: Precipitate proteins by binding to –COO− and –SH groups.

  • Organic Solvents: Cause protein aggregation by dehydration.

  • Salting Out: Precipitates proteins by removing water and increasing protein-protein interactions.

  • Heat Coagulation: Causes irreversible protein unfolding and aggregation.

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