Q.Many of the flowering plants producing hermaphrodite flowers have developed many devices to discourage self-pollination and to encourage cross-pollination. Given below is a picture of one such outbreeding device in a flowering plant. Study the picture and answer the questions that follow : [Figure: Flowers present on different plants of same species — one flower with 'Stigma receptive' and 'Anthers not shedding pollen'; another flower with 'Stigma not receptive' and 'Anthers shedding pollen']
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Start your 14-day free trial to unlock the full solution →The diagram shows dichogamy (temporal separation of anther and stigma maturity in the same flower), which prevents self-pollination, promotes genetic variation through cross-pollination, and eliminates geitonogamy because all flowers on a plant mature synchronously.
Understanding the Outbreeding Device
The picture illustrates a clever temporal mechanism called dichogamy, where the male and female reproductive parts of a flower mature at different times. In one flower, the stigma is receptive but the anthers haven't released pollen yet; in another flower on a different plant of the same species, the anthers are shedding pollen but the stigma isn't receptive. This staggered maturity is nature's way of ensuring that a flower cannot fertilize itself even though it possesses both male and female organs.
This particular pattern—where the stigma matures before the anthers—is termed protogyny. (If anthers matured first, it would be protandry.) The key point is that at any given moment, a flower is functionally either male or female, never both simultaneously. This forces the plant to rely on pollinators carrying pollen from a flower in its male phase to a flower in its female phase, and because the diagram shows these phases on different plants, cross-pollination between individuals is virtually guaranteed.
Dichogamy is one of several outbreeding devices flowering plants have evolved. Others include self-incompatibility (genetic barriers), dioecy (separate male and female plants), and heterostyly (different style lengths). Each serves the same purpose: avoid inbreeding.
(a) Advantages of This Type of Pollination
Cross-pollination driven by dichogamy brings substantial evolutionary benefits to the plant population.
Genetic variation is the primary advantage. When pollen from one individual fertilizes the ovule of another, the offspring inherit alleles from two different parents. This shuffling of genetic material creates diversity within the population—some seedlings may be better at resisting a new pathogen, others may tolerate drought better, and still others may attract pollinators more effectively. Over generations, this variation is the raw material for natural selection, allowing the species to adapt to changing environments.
Hybrid vigor (heterosis) often results when unrelated individuals cross. The offspring tend to be more robust, grow faster, and produce more seeds than inbred plants. Inbreeding, by contrast, can expose harmful recessive alleles and lead to inbreeding depression—weaker plants with reduced fertility and survival.
Evolutionary flexibility is another long-term benefit. A genetically diverse population can respond to environmental pressures—climate shifts, new pests, habitat changes—because some individuals will likely possess traits that confer an advantage. A population of genetically identical clones, on the other hand, risks extinction if conditions change unfavorably.
Cross-pollination does not benefit the individual flower directly; the advantage is to the species over evolutionary time. The individual plant invests energy in mechanisms like dichogamy because the resulting genetic diversity in its offspring increases their chances of survival and reproduction.
(b) Can This Flowering Plant Show Geitonogamy?
No, this flowering plant cannot show geitonogamy under the conditions depicted. …
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