Course review

A3.1 Diversity of organisms

Review each learning objective in this topic, then open its concept explanation or question set.

11 Learning objectives0 Mastered0% Topic mastery0 Attempts

Learning objective

A3.1.1—Variation as defining feature of life

New

• Variation occurs between individuals within every species • Continuous variation often results from polygenes and environmental effects • Darwin's observations of variation supported natural selection

0%
Mastery
0
Attempts
0
Mistakes

Start with the concept explanation, then practise to create mastery evidence.

Learning objective

A3.1.2—Species as groups with shared traits

New

• Species can be grouped by shared morphology and structural traits • Morphological species concept is useful in fieldwork, fossils, and many plants • Sexual dimorphism and within-species variation can make morphology difficult

0%
Mastery
0
Attempts
0
Mistakes

Start with the concept explanation, then practise to create mastery evidence.

Learning objective

A3.1.3—Binomial system

New

• Binomial nomenclature gives each species a universal two-part Latin name • Genus is capitalized; species is lowercase; both are italicized or underlined • Species in the same genus share similar traits

0%
Mastery
0
Attempts
0
Mistakes

Start with the concept explanation, then practise to create mastery evidence.

Learning objective

A3.1.4—Biological species concept

New

• Biological species concept defines species by interbreeding and fertile offspring • It emphasizes gene flow between members of the same species • Limits include extinct organisms, asexual species, and cases with gene flow between distinct forms

0%
Mastery
0
Attempts
0
Mistakes

Start with the concept explanation, then practise to create mastery evidence.

Learning objective

A3.1.5—Difficulties in distinguishing species

New

• Speciation is gradual as isolated populations diverge • Populations may still be theoretically able to interbreed but cannot meet • Species boundaries can therefore be partly arbitrary

0%
Mastery
0
Attempts
0
Mistakes

Start with the concept explanation, then practise to create mastery evidence.

Learning objective

A3.1.6—Diversity in chromosome numbers

New

• Chromosome number is usually constant within a species but varies between species • Diploid chromosome numbers are even because chromosomes occur in homologous pairs • Examples include fruit fly 8, rice 24, human 46, chimpanzee 48, and dog 78

0%
Mastery
0
Attempts
0
Mistakes

Start with the concept explanation, then practise to create mastery evidence.

Learning objective

A3.1.7—Karyotyping and karyograms

New

• Karyotypes show chromosome number and structure in a cell • Karyograms arrange chromosomes by length, banding pattern, and centromere position • Human chromosome 2 supports fusion from two ancestral ape chromosomes

0%
Mastery
0
Attempts
0
Mistakes

Start with the concept explanation, then practise to create mastery evidence.

Learning objective

A3.1.8—Unity and diversity of genomes within species

New

• A genome is all genetic information in an organism • Members of a species share most of their genome but differ at variants • SNPs are common single-base differences used as biological markers

0%
Mastery
0
Attempts
0
Mistakes

Start with the concept explanation, then practise to create mastery evidence.

Learning objective

A3.1.9—Diversity of eukaryote genomes

New

• Eukaryote genomes vary in size and base sequence • Between-species variation is much larger than within-species variation • Not all DNA codes for proteins

0%
Mastery
0
Attempts
0
Mistakes

Start with the concept explanation, then practise to create mastery evidence.

Learning objective

A3.1.10—Comparison of genome sizes

New

• Genome size is the DNA amount in one chromosome set • Larger genome size does not necessarily mean greater organism complexity • Polyploidy can greatly increase genome size, especially in plants

0%
Mastery
0
Attempts
0
Mistakes

Start with the concept explanation, then practise to create mastery evidence.

Learning objective

A3.1.11—Whole genome sequencing

New

• Whole genome sequencing began at scale with the Human Genome Project • Current uses include evolutionary relationships, gene discovery, and pathogen research • Future uses include personalized medicine, diagnosis, disease prevention, and vaccine targets

0%
Mastery
0
Attempts
0
Mistakes

Start with the concept explanation, then practise to create mastery evidence.