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Biomolecules - Study Notes

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Chapter Summary

This chapter provides a comprehensive overview of the chemical structures, classifications, properties, and biological importance of essential life molecules, including carbohydrates, proteins, lipids, nucleic acids, vitamins, and hormones. Carbohydrates serve as primary energy sources and structural components. Proteins, composed of amino acids, act as biological catalysts (enzymes) and structural elements. Lipids serve as concentrated energy reserves and structural cell membrane components. Nucleic acids (DNA and RNA) function as carriers of genetic information, while vitamins and hormones regulate various vital physiological and metabolic processes in living systems.

Learning Objectives

Key Concepts and Definitions

Carbohydrates

Carbohydrates are polyhydroxy aldehydes or ketones with the general formula Cn(H2O)n, synthesized by green plants via photosynthesis.

Anomers

Anomers are diastereomers of cyclic forms of sugars that differ in configuration only at the hemiacetal or hemiketal carbon (C1 for aldoses, C2 for ketoses).

Zwitterion

A dipolar ion formed by the internal transfer of a proton from the acidic carboxyl group to the basic amino group in an amino acid, possessing a net neutral charge.

Isoelectric Point

The specific pH at which an amino acid carries no net electrical charge and does not migrate in an electric field.

Peptide Bond

A covalent amide linkage (-CO-NH-) formed between the carboxyl group of one amino acid and the amino group of another, with the loss of a water molecule.

Denaturation

The loss of a protein's secondary, tertiary, or quaternary structure (and consequently its biological activity) due to physical or chemical stress, while leaving its primary sequence intact.

Nucleosides and Nucleotides

A nucleoside is composed of a pentose sugar and a nitrogenous base. A nucleotide is a phosphoric acid ester of a nucleoside, linked by phosphodiester bonds to form nucleic acids.

Worked Methods

Determining the Number of Optical Isomers

The total number of optical isomers of an optically active carbohydrate is determined using the formula 2^n, where n represents the total number of asymmetric (chiral) carbon atoms in the molecule.

Determining the Isoelectric Charge of Amino Acids

To determine the net charge of an amino acid at different pH values, compare the solution pH to the isoelectric point (pI). At pH greater than pI, the carboxyl groups deprotonate, giving the amino acid a net negative charge (-1). At pH less than pI, the amino groups protonate, giving the amino acid a net positive charge (+1). At pH equal to pI, the molecule exists as a neutral zwitterion.

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