• Amino acids have an alpha carbon bonded to an amine, carboxyl, hydrogen, and R-group
• The R-group varies between amino acids and determines chemical properties
• Proteins contain C, H, O, N, and usually S
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2
Learning objective
B1.2.2—Condensation reactions
New
• Condensation joins the carboxyl group of one amino acid to the amine group of another
• A peptide bond forms and water is released
• Chains have an N-terminus and C-terminus and are assembled at ribosomes
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3
Learning objective
B1.2.3—Dietary amino acids
New
• Essential amino acids cannot be synthesized and must be obtained from dietary protein
• Non-essential amino acids can be made by transamination, mainly in the liver
• Deficiency of essential amino acids limits protein synthesis and can cause malnutrition
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4
Learning objective
B1.2.4—Infinite variety of peptide chains
New
• Twenty coded amino acids can form vast numbers of sequences
• Protein diversity depends on amino acid type, number, and order
• Genes encode polypeptide sequences; the proteome is the full protein set expressed
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5
Learning objective
B1.2.5—Effect of pH and temperature
New
• Protein shape determines function, especially enzyme active sites
• High temperature or unsuitable pH disrupts weak bonds and denatures proteins
• Denaturation may be reversible in small proteins but often becomes irreversible
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6
Learning objective
B1.2.6 (HL)—Chemical diversity in R-groups
New
• R-groups may be acidic, basic, polar hydrophilic, or non-polar hydrophobic
• R-group chemistry determines solubility, interactions, folding, and function
• Hydrophobic R-groups are often buried away from water in soluble proteins
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7
Learning objective
B1.2.7 (HL)—Primary structure impact
New
• Primary structure is the ordered amino acid sequence joined by peptide bonds
• The sequence is controlled by DNA via mRNA
• A single amino acid change can alter conformation and protein properties
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8
Learning objective
B1.2.8 (HL)—Secondary structure
New
• Secondary structure forms when local regions coil or pleat
• Alpha helices and beta-sheets are stabilized by regular hydrogen bonding
• These structures can combine into domains such as coiled coils or beta sandwiches
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9
Learning objective
B1.2.9 (HL)—Tertiary structure
New
• Tertiary structure is the unique 3D folding of one polypeptide
• R-group interactions stabilize the shape
• Hydrogen bonds, ionic bonds, disulfide covalent bonds, and hydrophobic interactions are key
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10
Learning objective
B1.2.10 (HL)—Effect of polar/non-polar amino acids
New
• Soluble globular proteins often fold with hydrophobic residues in the core
• Polar and charged residues are commonly exposed to water
• Integral membrane proteins have hydrophobic regions facing lipid tails and hydrophilic exposed regions
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11
Learning objective
B1.2.11 (HL)—Quaternary structure
New
• Quaternary structure joins two or more polypeptide chains into one functional protein
• Haemoglobin is conjugated: four globin chains plus haem groups with iron
• Insulin and collagen are non-conjugated examples stabilized by disulfide bonds or triple helices
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12
Learning objective
B1.2.12 (HL)—Globular vs. fibrous proteins
New
• Globular proteins are compact, often soluble, and suited to transport, signalling, or catalysis
• Insulin is a small globular hormone stabilized by disulfide bridges
• Fibrous proteins such as collagen are long, insoluble, and provide tensile strength
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