• Asexual reproduction uses mitosis without gametes or fertilization, producing clones
• Sexual reproduction uses meiosis and fertilization to generate genetic variation
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Start with the concept explanation, then practise to create mastery evidence.
2
Learning objective
D3.1.2—Role of meiosis and gamete fusion
New
• Meiosis produces haploid gametes and prevents chromosome doubling each generation
• Random fertilization fuses gametes to form unique diploid zygotes
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Start with the concept explanation, then practise to create mastery evidence.
3
Learning objective
D3.1.3—Male vs. female sexes
New
• Male gametes are small, numerous, and usually motile
• Female gametes are larger, fewer, and contain resources for early development
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Start with the concept explanation, then practise to create mastery evidence.
4
Learning objective
D3.1.4—Human reproductive system anatomy
New
• Male structures include testes, epididymis, sperm duct, glands, urethra, and penis
• Female structures include ovaries, oviducts, uterus, endometrium, cervix, vagina, and vulva
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Mistakes
Start with the concept explanation, then practise to create mastery evidence.
5
Learning objective
D3.1.5—Ovarian and uterine cycles
New
• FSH, LH, oestradiol, and progesterone coordinate ovarian and uterine cycles
• Follicle growth, ovulation, corpus luteum, endometrium build-up, and menstruation are linked
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Mistakes
Start with the concept explanation, then practise to create mastery evidence.
6
Learning objective
D3.1.6—Fertilization in humans
New
• Fertilization occurs in the oviduct after sperm reaches the egg
• Sperm and egg nuclei fuse so paternal and maternal chromosomes form the zygote genome
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Mistakes
Start with the concept explanation, then practise to create mastery evidence.
7
Learning objective
D3.1.7—In vitro fertilization (IVF)
New
• IVF uses hormones to stimulate superovulation and control egg maturation
• Eggs are collected, fertilized outside the body, and embryos transferred to the uterus
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Mastery
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Attempts
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Mistakes
Start with the concept explanation, then practise to create mastery evidence.
8
Learning objective
D3.1.8—Sexual reproduction in flowering plants
New
• Flowering plants produce male gametes in pollen and female gametes in ovules
• Pollination, pollen-tube growth, and fertilization produce embryos inside seeds
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Mastery
0
Attempts
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Mistakes
Start with the concept explanation, then practise to create mastery evidence.
9
Learning objective
D3.1.9—Insect-pollinated flower features
New
• Insect-pollinated flowers often have petals, scent, nectar, sticky pollen, and sticky stigma
• Floral structures position pollinators to transfer pollen from anther to stigma
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Mastery
0
Attempts
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Mistakes
Start with the concept explanation, then practise to create mastery evidence.
10
Learning objective
D3.1.10—Promoting cross-pollination
New
• Cross-pollination increases variation by transferring pollen between different plants
• Mechanisms include dioecy, self-incompatibility, and different maturation times
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Mastery
0
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Mistakes
Start with the concept explanation, then practise to create mastery evidence.
11
Learning objective
D3.1.11—Self-incompatibility mechanisms
New
• Self-incompatibility prevents pollen from fertilizing ovules of the same plant
• Recognition systems block self-pollen growth and reduce inbreeding
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Mastery
0
Attempts
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Mistakes
Start with the concept explanation, then practise to create mastery evidence.
12
Learning objective
D3.1.12—Seed dispersal and germination
New
• Seed dispersal reduces competition with parent plants and spreads offspring
• Germination uses water uptake, enzyme activation, and food reserve mobilization
0%
Mastery
0
Attempts
0
Mistakes
Start with the concept explanation, then practise to create mastery evidence.