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IELTS Academic Reading — Practice Test | Difficulty Level: Band 8.5–9.0

General Instructions: You should spend about 20 minutes on this passage, which is based on an authentic IELTS Academic Reading format. Read the passage carefully and answer all 13 questions. Once you have answered every question, click "Submit Answers" at the bottom to see your score and the correct answers instantly.

READING PASSAGE — The Silent Architects: Mycorrhizal Networks and the Future of Forests

A For much of the twentieth century, forest ecology treated trees as solitary competitors, each locked in a zero-sum struggle for light, water, and soil nutrients. This paradigm has been decisively overturned in recent decades by an expanding body of research into mycorrhizal fungi — symbiotic organisms whose thread-like hyphae colonise plant roots and extend for kilometres through forest soil, forming what researchers have termed the "Wood Wide Web." Far from being passive recipients of a tree's photosynthetic surplus, these fungal networks actively mediate resource distribution, chemical signalling, and even a rudimentary form of collective defence among what were once assumed to be entirely independent organisms.

B The mechanism is deceptively elegant. In exchange for carbohydrates synthesised by the tree, the fungus supplies water and mineral nutrients — particularly phosphorus and nitrogen — scavenged from soil volumes far beyond the reach of the tree's own root hairs. Crucially, a single fungal mycelium can simultaneously connect the roots of multiple trees, including those of different species, creating a subterranean lattice through which carbon, water, and defence-signalling compounds can be shuttled. Suzanne Simard's landmark isotope-tracing experiments in the temperate forests of British Columbia demonstrated that shaded, carbon-poor seedlings could receive a measurable subsidy of photosynthate from mature, sun-exposed "hub" trees via these fungal conduits, a finding that has since been replicated, albeit with varying magnitudes, across several other forest types.

C This discovery has proved intellectually uncomfortable for some within the ecological community, not because the underlying chemistry is disputed, but because of the interpretive leap frequently made in popular accounts: that such transfers constitute deliberate, altruistic "parenting" behaviour on the part of mature trees. Critics, including several mycorrhizal specialists who have publicly distanced themselves from this framing, caution that carbon movement through a shared network need not imply intent, cooperation, or even net benefit to the donor. It may equally be explained by simple physics — carbon migrating passively down a concentration gradient from source to sink — or by the fungus itself directing the exchange for its own reproductive advantage, extracting a toll from every tree it touches rather than acting as an impartial courier.

D Regardless of how the transfer is ultimately characterised, its ecological consequences are difficult to dismiss. Networked seedlings under experimental shading consistently exhibit higher survival rates than those artificially severed from mycorrhizal connections, and forests with intact fungal networks appear to recover more rapidly from disturbances such as selective logging. This has generated considerable interest among forestry policy-makers, some of whom now advocate retaining a proportion of large, well-connected "mother trees" during harvesting operations specifically to preserve the below-ground infrastructure upon which regenerating seedlings depend. Such recommendations, however, remain contentious; the economic cost of reduced timber yield is immediate and quantifiable, whereas the silvicultural benefit of network preservation is diffuse, delayed, and — critics argue — insufficiently supported by long-term, replicated field trials conducted outside the specific conditions of the original British Columbian studies.

E A further complication concerns the specificity and stability of these networks. Early popular accounts implied a largely cooperative, almost communal system, yet subsequent research has revealed a far more transactional and unstable underlying dynamic. Fungal species vary enormously in the generosity of their exchange rates, some behaving in ways closer to parasitism than mutualism under particular soil-nutrient conditions. Moreover, network topology is not fixed: connections form, strengthen, weaken, and dissolve in response to seasonal changes, disturbance history, and the shifting nutritional demands of the host plants. Describing the phenomenon as a stable, purpose-built "internet" for trees, several researchers now argue, risks importing anthropocentric metaphors that obscure rather than illuminate the underlying, largely amoral, biochemical processes.

F Despite these caveats, the practical implications for conservation and land management are substantial. Soil disturbance from heavy machinery, chemical fertilisation that reduces a tree's dependency on fungal partners, and the wholesale conversion of mixed-species stands into single-species plantations have all been shown to degrade mycorrhizal network density and diversity, sometimes irreversibly on human timescales. Given that an estimated ninety percent of terrestrial plant species rely on mycorrhizal associations to some degree, the erosion of these networks carries implications that extend well beyond forestry into agriculture, grassland restoration, and broader ecosystem resilience in the face of climate stress. What began as a niche question in soil microbiology has, within a generation, become a central consideration in how humanity manages its relationship with terrestrial ecosystems — a reminder that some of the most consequential ecological infrastructure is also the least visible.

Questions 1–5: Do the following statements agree with the information given in the passage? Choose TRUE if the statement agrees with the information, FALSE if the statement contradicts the information, or NOT GIVEN if there is no information on this in the passage.

Questions 1–5 — True / False / Not Given

1. Twentieth-century forest ecology generally viewed trees as cooperating with one another to share resources.
2. Simard's research showed that photosynthetic material could move from a mature tree to a shaded seedling through fungal connections.
3. Simard's experiments were conducted over a period of more than ten years.
4. All mycorrhizal specialists agree that carbon transfer between trees indicates deliberate, cooperative behaviour.
5. Fungal networks can sometimes behave in ways that are closer to parasitic than mutually beneficial.
Questions 6–9: The passage has six paragraphs, A–F. Choose the correct heading for paragraphs C, D, E, and F from the list of headings below. Write the correct letter in the box provided.

List of Headings:
(i) The economic conflict over preserving fungal infrastructure
(ii) Doubts about the intentionality behind resource sharing
(iii) The origins of mycorrhizal research funding
(iv) Wider consequences for land management beyond forests
(v) The instability and transactional nature of fungal connections
(vi) A historical overview of soil chemistry

Questions 6–9 — Matching Headings

6. Paragraph C
7. Paragraph D
8. Paragraph E
9. Paragraph F
Questions 10–13: Complete the sentences below. Choose NO MORE THAN TWO WORDS from the passage for each answer. Type your answer exactly as it appears in the text (spelling matters).

Questions 10–13 — Sentence Completion

10. In exchange for carbon, fungi provide trees with water and minerals, especially
11. Researchers have given the interconnected system of fungal networks the nickname the
12. Some forestry policy-makers now recommend leaving certain large trees, referred to as , standing during logging operations.
13. Approximately of land plant species depend on mycorrhizal associations.

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