Biology

    AQA
    A-Level

    Specification: 7402

    The AQA A-Level Biology specification covers 53 topics with 1142 learning objectives (7402). Use the topic browser below to explore subtopics, exam tips, common mistakes, and key terminology for each area of the course.

    Starting AQA A-Level Biology this term? The whole specification is below, unit by unit.

    This subject will help you develop key knowledge and skills required for exam success.

    53

    Topics

    1142

    Objectives

    963

    Exam Tips

    1592

    Pitfalls

    Ready to practise?

    AI-powered quizzes tailored to your specification

    Study Guides

    6 revision guides for AQA A-Level Biology

    Browse study guides

    Official Specification

    Download the AQA A-Level Biology specification PDF

    Download Specification

    Key Features

    • Master key concepts
    • Develop exam technique
    • Apply knowledge effectively

    About AQA A-Level Biology

    AQA A-Level Biology offers a comprehensive and rigorous journey through the science of life, from the chemistry of biological molecules to the complex interactions within ecosystems. The specification is structured around eight core topics that build logically: starting with Biological molecules and Cells, moving through how organisms exchange substances with their environment and the role of genetic information, then exploring variation, relationships between organisms, and the intricacies of energy transfers. This progression ensures that you develop deep, integrated understanding of both the unity and diversity of living systems.

    A standout feature of AQA Biology is its clear narrative that connects small-scale processes to whole-organism and ecological dynamics. You'll investigate fundamental concepts like enzyme action, DNA replication, and cell division, then see how these underpin larger themes such as homeostasis, nervous coordination, and gene expression. Throughout, the specification sharpens your practical skills via 12 required practicals that are woven into the theory, preparing you not just for the written exams but also for future scientific study and a mindset of evidence-based enquiry.

    The course also places a strong emphasis on synoptic and analytical skills, particularly in Paper 3, where you are challenged to synthesise knowledge across all topics and interpret experimental data. Whether you are aiming for a career in medicine, biotechnology, ecology, or another bioscience field, AQA A-Level Biology equips you with a thorough grounding in both the key principles and the scientific method, all supported by a wealth of high-quality resources developed by an experienced exam board.

    Assessment Structure

    The AQA A-Level Biology qualification is assessed entirely through three written examinations at the end of the two-year course, with no coursework component contributing to the final grade. Paper 1 covers Topics 1–4 (Biological molecules, Cells, Organisms exchange substances, Genetic information), is 2 hours long, worth 91 marks, and accounts for 35% of the A-level. Paper 2 covers Topics 5–8 (Energy transfers, Organisms respond to changes, Genetics and populations, Control of gene expression), also 2 hours, 91 marks, and 35%. Paper 3 is synoptic, drawing on any content from Topics 1–8, includes a 25-mark essay, lasts 2 hours, is worth 78 marks, and makes up the remaining 30%. Additionally, students must complete a Practical Endorsement (pass/fail) by carrying out twelve required practicals and keeping a lab book; this is reported separately on the certificate and is essential for many university science applications.

    Why Choose AQA?

    • AQA's specification is renowned for its logical and coherent structure, making it easier to grasp how concepts interconnect. The journey from molecule to ecosystem is clearly signposted, and the regular cycling of themes helps consolidate learning.
    • The board provides exceptionally strong support for practical work, with detailed teacher guidance, student-friendly handbooks, and accessible equipment lists for the 12 required practicals. This makes skill development manageable and directly relevant to the exams, where practical-based questions can account for at least 15% of the marks.
    • As the most widely taken Biology A-Level in England, AQA boasts a vast library of online resources, past papers, mark schemes, and examiner reports. This abundance means you can practise effectively and learn from real examiner feedback, giving you a clear advantage in understanding what top answers look like and where common mistakes occur.

    Frequently Asked Questions

    Assessment Objectives

    AO1
    30%-35%

    Demonstrate knowledge and understanding of scientific ideas, processes, techniques and procedures

    AO2
    40%-45%

    Apply knowledge and understanding of scientific ideas, processes, techniques and procedures in a theoretical context, in a practical context, when handling qualitative data and when handling quantitative data

    AO3
    25%-30%

    Analyse, interpret and evaluate scientific information, ideas and evidence, including in relation to issues, to make judgements and reach conclusions and to develop and refine practical design and procedures

    Exam Structure

    AQA A-Level (7402)

    Paper 1: Topics 1–4

    2h

    Duration

    91

    Marks

    35%

    Weighting

    Paper 2: Topics 5–8

    2h

    Duration

    91

    Marks

    35%

    Weighting

    Paper 3: Synoptic topics 1–8

    2h

    Duration

    78

    Marks

    30%

    Weighting

    Common Exam Mistakes

    Pitfalls to avoid in your exams

    • Assuming all carbon-containing compounds are organic; correct by remembering that simple carbon compounds like carbon dioxide (CO2) and carbonates are inorganic because they lack carbon-hydrogen bonds.
    • Misinterpreting a 'similar biochemical basis' to mean organisms have identical molecules; correct by understanding that while the classes of molecules (e.g., proteins) and monomers (e.g., amino acids) are shared, the specific sequences (e.g., amino acid sequences) differ between species.
    • Stating species are related solely because of similar physical appearances when asked for biochemical evidence; correct by specifically referencing shared molecules like DNA, RNA, or proteins.
    • Defining a monomer as just a small molecule, with no reference to the larger molecule it builds; a full definition needs both halves
    • Calling a disaccharide such as maltose a monomer because it is smaller than starch; it is a dimer, not a monomer
    • Naming glycerol or a fatty acid as a monomer of a triglyceride, when lipids are not polymers
    • Saying the monomers of DNA are bases rather than nucleotides; the monomer is the nucleotide, which contains a base, sugar and phosphate
    • Answering with the elements present, carbon, hydrogen and oxygen, when asked to identify a repeating unit

    Top Examiner Tips

    Expert advice for exam success

    • When evaluating evolutionary relationships, always specify the exact biochemical evidence being compared, such as the 'DNA base sequence' or 'amino acid sequence', rather than just writing 'DNA'.
    • The concept of a shared biochemical basis is an excellent linking theme for synoptic essays, connecting biological molecules to classification, evolution, and the genetic code.
    • Read the monomer off the diagram you are given - a question about an unfamiliar polymer like chitin is testing whether you can spot the repeating unit, not whether you have memorised it.
    • Pair every monomer with its polymer and bond when you revise: glucose-polysaccharide-glycosidic, amino acid-polypeptide-peptide, nucleotide-polynucleotide-phosphodiester.
    • In a definition question write both halves of the idea in one sentence: the small repeating unit and the larger molecule it builds.
    • When a question says 'use Figure 1', every point you make must be visible in the figure - the flipped monomer and the straight chain are there to be seen.
    • Check the branching before you mention 1,6 bonds; if the drawn chain is straight, a 1,6 bond is a marked error.
    • Structure means monomer, bond, chain shape and chain interactions - not the elements the molecule contains.

    Specification Topics

    53 topics

    DNA replication

    Semi-conservative replication ensures genetic continuity between generations of cells. During the S phase of interphase, before nuclear division, the DNA double helix unwinds. Each original strand acts as a template. Free nucleotides bind via complementary base pairing, and DNA polymerase joins them to form a new strand. Consequently, each new DNA molecule consists of one original parental strand and one newly synthesised strand. Because base pairing dictates the sequence, the genetic code is copied exactly. This provides genetic continuity: daughter cells produced by mitosis inherit an identical copy of the parent cell's genome, preserving essential genetic information across cell generations, barring rare mutations. Note that replication itself produces two identical DNA molecules (sister chromatids), not two daughter cells; mitosis then separates them into daughter cells.

    The semi-conservative replication of DNA ensures genetic continuity between generations of cells., The process of semi-conservative replication of DNA in terms of: unwinding of the double helix breakage of hydrogen bonds between complementary bases in the polynucleotide strands the role of DNA helicase in unwinding DNA and breaking its hydrogen bonds attraction of new DNA nucleotides to exposed bases on template strands and base pairing the role of DNA polymerase in the condensation reaction that joins adjacent nucleotides., Students should be able to evaluate the work of scientists in validating the Watson–Crick model of DNA replication.

    9 objectives9 tips14 pitfalls3 subtopics

    Structure of eukaryotic cells

    Eukaryotic cells contain membrane-bound organelles. The cell-surface membrane is a phospholipid bilayer controlling exchange. The nucleus has a double-membrane envelope with pores, containing linear DNA bound to histones, and nucleoli. Mitochondria have a folded inner membrane (cristae) and matrix, releasing ATP. Chloroplasts, found in plants and algae, contain thylakoids stacked into grana and stroma for photosynthesis. The Golgi apparatus modifies, packages and transports proteins and lipids, forming vesicles and lysosomes (containing hydrolytic enzymes). Ribosomes synthesise proteins. Rough ER has ribosomes and transports proteins; smooth ER synthesises lipids. Plant, algal and fungal cell walls provide support. Plant cell vacuoles maintain turgor.

    The structure of eukaryotic cells, restricted to the structure and function of: cell-surface membrane nucleus (containing chromosomes, consisting of protein- bound, linear DNA, and one or more nucleoli) mitochondria chloroplasts (in plants and algae) Golgi apparatus and Golgi vesicles lysosomes (a membrane-bound organelle that releases hydrolytic enzymes) ribosomes rough endoplasmic reticulum and smooth endoplasmic reticulum cell wall (in plants, algae and fungi) cell vacuole (in plants)., In complex multicellular organisms, eukaryotic cells become specialised for specific functions., Specialised cells are organised into tissues, tissues into organs and organs into systems. +1 more

    13 objectives11 tips19 pitfalls4 subtopics

    Digestion and absorption

    Digestion is chemical hydrolysis: a water molecule is used to break a bond, the reverse of the condensation reaction that built the molecule. Starch, triglycerides and proteins are too large, and largely too insoluble, to cross the phospholipid bilayer of the epithelial cells lining the gut, so each is broken into smaller products first. Hydrolysis of glycosidic bonds in carbohydrates gives monosaccharides; hydrolysis of ester bonds in triglycerides gives a monoglyceride and fatty acids; hydrolysis of peptide bonds in proteins gives amino acids. Each bond type has its own class of enzyme, and each enzyme is specific because its active site is complementary to only one substrate. Digestion occurs in the lumen of the gut, and the small soluble products are then absorbed across the cell-surface membrane of the epithelial cells lining the ileum, passing into the blood or the lacteal.

    During digestion, large biological molecules are hydrolysed to smaller molecules that can be absorbed across cell membranes., Digestion in mammals of: carbohydrates by amylases and membrane-bound disaccharidases lipids by lipase, including the action of bile salts proteins by endopeptidases, exopeptidases and membrane- bound dipeptidases., Mechanisms for the absorption of the products of digestion by cells lining the ileum of mammals, to include: co-transport mechanisms for the absorption of amino acids and of monosaccharides the role of micelles in the absorption of lipids.

    9 objectives9 tips13 pitfalls3 subtopics

    Investigating diversity

    Genetic diversity is compared using four methods. Originally, scientists measured the frequency of observable characteristics. However, most traits are polygenic and modified by the environment, making phenotypes an indirect guide to genotypes. Modern methods compare molecules directly. Comparing DNA base sequences is the most direct; fewer differences indicate closer relatedness. Comparing mRNA base sequences works similarly, as mRNA is complementary to the DNA template strand. Finally, comparing the amino acid sequences of proteins encoded by DNA and mRNA also reveals diversity. Because the genetic code is degenerate, amino acid sequences may underestimate DNA differences, but they still provide clear evidence of evolutionary relationships.

    Genetic diversity within, or between species, can be made by comparing: the frequency of measurable or observable characteristics the base sequence of DNA the base sequence of mRNA the amino acid sequence of the proteins encoded by DNA and mRNA., Students should be able to: interpret data relating to similarities and differences in the base sequences of DNA and in the amino acid sequences of proteins to suggest relationships between different organisms within a species and between species appreciate that gene technology has caused a change in the methods of investigating genetic diversity; inferring DNA differences from measurable or observable characteristics has been replaced by direct investigation of DNA sequences. Knowledge of gene technologies will not be tested., Quantitative investigations of variation within a species involve: collecting data from random samples calculating a mean value of the collected data and the standard deviation of that mean interpreting mean values and their standard deviations.

    9 objectives7 tips14 pitfalls3 subtopics

    Photosynthesis (A-level only)

    The light-dependent reaction takes place on the thylakoid membranes of the chloroplast. Chlorophyll absorbs light, and the energy raises an electron to a higher energy level so that it leaves the molecule, which is photoionisation. The electrons pass along a chain of electron carriers embedded in the membrane, losing energy at each transfer, and that energy actively moves protons from the stroma into the thylakoid space. A proton gradient builds across the membrane, and protons pass back into the stroma through ATP synthase; their movement drives the synthesis of ATP from ADP and inorganic phosphate, which is chemiosmosis, called photophosphorylation here. At the end of the chain, electrons and protons combine with NADP to form reduced NADP. The electrons lost from chlorophyll are replaced by photolysis of water, which splits into protons, electrons and oxygen.

    The light-dependent reaction in such detail as to show that: chlorophyll absorbs light, leading to photoionisation of chlorophyll some of the energy from electrons released during photoionisation is conserved in the production of ATP and reduced NADP the production of ATP involves electron transfer associated with the transfer of electrons down the electron transfer chain and passage of protons across chloroplast membranes and is catalysed by ATP synthase embedded in these membranes (chemiosomotic theory) photolysis of water produces protons, electrons and oxygen., The light-independent reaction uses reduced NADP from the light- dependent reaction to form a simple sugar., The hydrolysis of ATP, also from the light-dependent reaction, provides the additional energy for this reaction. +4 more

    23 objectives20 tips36 pitfalls7 subtopics

    Ready to master Biology?

    Start practising with AI-powered quizzes tailored to your AQA A-Level specification.

    Try a real question — 30 seconds

    7 days of full Premium · No card required · Free plan forever after

    Biology AQA A-Level Topics & Revision | MasteryMind