Fatal Attraction is an IELTS Reading passage about carnivorous plants, covering how they trap insects, why eating flesh helps them, and what now threatens them. It sits as Reading Passage 2 and comes with Questions 14 to 26, split across three question types: note completion, matching features, and matching information. The passage names five different plants and describes a mechanical process step by step, so most lost marks come from mixing up which plant does what.
Evolutionist Charles Darwin first marvelled at flesh-eating plants in the mid-19th century. Today, biologists, using 21st-century tools to study cells and DNA, are beginning to understand how these plants hunt, eat and digest – and how such bizarre adaptations arose in the first place.
A. The leaves of the Venus flytrap plant are covered in hairs. When an insect brushes against them, this triggers a tiny electric charge, which travels down tunnels in the leaf and opens up pores in the leaf's cell membranes. Water surges from the cells on the inside of the leaf to those on the outside, causing the leaf to rapidly flip in shape from convex to concave, like a soft contact lens. As the leaves flip, they snap together, trapping the insect in their sharp-toothed jaws.
B. The bladderwort has an equally sophisticated way of setting its underwater trap. It pumps water out of tiny bag-like bladders, making a vacuum inside. When small creatures swim past, they bend the hairs on the bladder, causing a flap to open. The low pressure sucks water in, carrying the animal along with it. In one five-hundredth of a second, the door swings shut again. The Drosera sundew, meanwhile, has a thick, sweet liquid oozing from its leaves, which first attracts insects, then holds them fast before the leaves snap shut. Pitcher plants use yet another strategy, growing long tube-shaped leaves to imprison their prey. Raffles' pitcher plant, from the jungles of Borneo, produces nectar that both lures insects and forms a slick surface on which they can't get a grip. Insects that land on the rim of the pitcher slide on the liquid and tumble in.
C. Many carnivorous plants secrete enzymes to penetrate the hard exoskeleton of insects so they can absorb nutrients from inside their prey. But the purple pitcher plant, which lives in bogs and infertile sandy soils in North America, enlists other organisms to process its food. It is home to an intricate food web of mosquito larvae, midges and bacteria, many of which can survive only in this unique habitat. These animals shred the prey that fall into the pitcher, and the smaller organisms feed on the debris. Finally, the plant absorbs the nutrients released.
D. While such plants clearly thrive on being carnivorous, the benefits of eating flesh are not the ones you might expect. Carnivorous animals such as ourselves use the carbon in protein and the fat in meat to build muscles and store energy. Carnivorous plants instead draw nitrogen, phosphorus, and other critical nutrients from their prey in order to build light-harvesting enzymes. Eating animals, in other words, lets carnivorous plants do what all plants do: carry out photosynthesis, that is, grow by harnessing energy directly from the sun.
E. Carnivorous plants are, in fact, very inefficient at converting sunlight into tissue. This is because of all the energy they expend to make the equipment to catch animals - the enzymes, the pumps, and so on. A pitcher or a flytrap cannot carry out much photosynthesis because, unlike plants with ordinary leaves, they do not have flat solar panels that can grab lots of sunlight. There are, however, some special conditions in which the benefits of being carnivorous do outweigh the costs. The poor soil of bogs, for example, offers little nitrogen and phosphorus, so carnivorous plants enjoy an advantage over plants that obtain these nutrients by more conventional means. Bogs are also flooded with sunshine, so even an inefficient carnivorous plant can photosynthesise enough light to survive.
F. Evolution has repeatedly made this trade-off. By comparing the DNA of carnivorous plants with other species, scientists have found that they evolved independently on at least six separate occasions. Some carnivorous plants that look nearly identical turn out to be only distantly related. The two kinds of pitcher plants – the tropical genus Nepenthes and the North American Sarracenia – have, surprisingly, evolved from different ancestors, although both grow deep pitcher-shaped leaves and employ the same strategy for capturing prey.
G. In several cases, scientists can see how complex carnivorous plants evolved from simpler ones. Venus flytraps, for example, share an ancestor with Portuguese sundews, which only catch prey passively, via ‘flypaper' glands on their stems. They share a more recent ancestor with Drosera sundews, which can also curl their leaves over their prey. Venus flytraps appear to have evolved an even more elaborate version of this kind of trap, complete with jaw-like leaves.
H. Unfortunately, the adaptations that enable carnivorous plants to thrive in marginal habitats also make them exquisitely sensitive. Agricultural run-off and pollution from power plants are adding extra nitrogen to many bogs in North America. Carnivorous plants are so finely tuned to low levels of nitrogen that this extra fertilizer is overloading their systems, and they eventually burn themselves out and die.
I. Humans also threaten carnivorous plants in other ways. The black market trade in exotic carnivorous plants is so vigorous now that botanists are keeping the location of some rare species a secret. But even if the poaching of carnivorous plants can be halted, they will continue to suffer from other assaults. In the pine savannah of North Carolina, the increasing suppression of fires is allowing other plants to grow too quickly and outcompete the flytraps in their native environment. Good news, perhaps, for flies. But a loss for all who, like Darwin, delight in the sheer inventiveness of evolution.
Complete the notes below. Choose NO MORE THAN TWO WORDS from the passage for each answer.
How a Venus flytrap traps an insect
Look at the following statements and the list of plants.
Match each statement with the correct plant, A, B, C, D or E.
Reading Passage 2 has nine paragraphs, A–I.
Which paragraph contains the following information?
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Answer: hairs
Explanation: The trap begins when an insect brushes against the hairs covering the leaf. Brushes against and touches mean the same thing, which is the paraphrase you need to spot. Two words are allowed, so "the hairs" is also safe.
Answer: electric charge
Explanation: Contact with the hairs sets off a tiny electric charge that travels through the leaf. Small in the note matches tiny in the text, and passes through matches travels down. Notice these five questions follow the process in order, which makes locating each one straightforward once you find the start.
Answer: pores
Explanation: The charge opens pores in the cell membranes. The word open appears in both the note and the text, so this is one of the few gaps where the wording barely changes.
Answer: water
Explanation: Water surges from the inner cells to the outer ones. Read the direction carefully, since the water leaves the inside and fills the outside, and a careless reading reverses it.
Answer: concave
Explanation: The leaf flips from convex to concave. Both words sit in the same sentence, which makes this the trap of the set. Concave is the final shape that closes the trap, so convex is the wrong half of the pair.
Answer: E, purple pitcher plant
Explanation: Most carnivorous plants release their own enzymes. The purple pitcher plant is singled out as the exception, hosting larvae, midges and bacteria that break down the prey before the plant absorbs what is released.
Answer: D, Raffles' pitcher plant
Explanation: Its nectar does two jobs, attracting insects and creating a surface they cannot grip, so they slide off the rim and fall in. Slippery matches slick, and the falling is what separates this from question 22.
Answer: B, bladderwort
Explanation: The bladderwort pumps water out of its bladders to make a vacuum, and the low pressure pulls prey inside when the flap opens. Empty space is a plain-English version of vacuum.
Answer: C, Drosera sundew
Explanation: Its thick, sweet liquid first attracts insects and then holds them in place. Both this plant and Raffles' pitcher plant produce a liquid, so the difference is what the liquid does. Sticky holds insects on the surface, slippery makes them fall inside.
Answer: E
Explanation: Paragraph E explains that a pitcher or a flytrap cannot photosynthesize well because it lacks the flat surface that ordinary leaves use to collect sunlight. The question asks for a disadvantage of the shape, which rules out the paragraphs that describe how the shapes work.
Answer: I
Explanation: Botanists keeping the location of rare species secret is the protective action. Paragraph I also describes threats, so read for what people are doing about the problem rather than for the problem itself.
Answer: F
Explanation: Two pitcher plants that look alike and trap prey the same way turn out to have evolved from different ancestors. The word surprisingly in the text is the signal, and origins points you to the evolution paragraph rather than the one about how traps work.
Answer: H
Explanation: Farm run-off and power station pollution are adding nitrogen to bogs, and plants tuned to low nitrogen burn out and die. Paragraph I also covers human threats, but those are poaching and fire suppression rather than environmental chemistry, which is what this question describes.