This MCQ module is based on: Bt Crops Pest Resistant Plants
Bt Crops Pest Resistant Plants
This assessment will be based on: Bt Crops Pest Resistant Plants
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Bt Crops and Pest Resistant Plants
The most widely grown genetically modified crops in the world are not high-yield varieties. They are plants that defend themselves. This part looks at two completely different ways of achieving that — one that makes the plant poisonous to its pest, and one that switches off a gene inside the pest itself.
Pest-resistant plants and the idea of a bio-pesticide
One of the applications of biotechnology in agriculture is the production of pest resistant plants, which could decrease the amount of pesticide used. Bt toxin is produced by a bacterium called Bacillus thuringiensis — Bt for short.
The Bt toxin gene has been cloned from the bacteria and expressed in plants, to provide resistance to insects without the need for insecticides; in effect this creates a bio-pesticide. Examples are Bt cotton, Bt corn, rice, tomato, potato and soyabean.
Bt cotton
Some strains of Bacillus thuringiensis produce proteins that kill certain insects, such as:
- lepidopterans — tobacco budworm, armyworm;
- coleopterans — beetles;
- dipterans — flies, mosquitoes.
B. thuringiensis forms protein crystals during a particular phase of its growth, and these crystals contain a toxic insecticidal protein.
Why the toxin does not kill the bacterium
This is the obvious question, and the answer is elegant. The Bt toxin protein exists as inactive protoxins. Once an insect ingests the inactive toxin, it is converted into the active form of toxin due to the alkaline pH of the gut, which solubilises the crystals.
The activated toxin then binds to the surface of midgut epithelial cells and creates pores that cause cell swelling and lysis, and eventually cause the death of the insect.
Read the mechanism as a safety feature. The poison is manufactured pre-disarmed, and only the victim's own gut arms it. That single fact explains three things at once: why the bacterium survives making it, why the toxin can be eaten safely by animals with an acidic stomach, and why it is specific — activation requires an alkaline gut, and binding requires the right receptor on the midgut cells.
The cry genes
Specific Bt toxin genes were isolated from Bacillus thuringiensis and incorporated into several crop plants such as cotton. The choice of genes depends upon the crop and the targeted pest, as most Bt toxins are insect-group specific.
The toxin is coded by a gene cryIAc, named cry. There are a number of them:
| Gene | Controls |
|---|---|
| cryIAc | Cotton bollworms |
| cryIIAb | Cotton bollworms |
| cryIAb | Corn borer |
A Bt cotton plant carries the cryIAc gene and is attacked by both cotton bollworm and a sap-sucking aphid. Three things are observed: the bollworms die, the aphids are unaffected, and the cattle grazing on crop residue are unharmed.
Why the bollworms die. They ingest the inactive protoxin. In their alkaline gut the crystals are solubilised and the protoxin is converted into active toxin, which binds the surface of the midgut epithelial cells and creates pores that cause cell swelling and lysis, and eventually death. cryIAc is the correct gene for this pest.
Why the aphids are unaffected — two reasons. First, most Bt toxins are insect-group specific, and cryIAc is chosen against bollworms, which are lepidopterans; a different insect group requires a different cry gene. Second, and more fundamentally, an aphid is a sap-sucker: it feeds on phloem sap rather than chewing the tissue in which the protoxin accumulates. Bt plants protect against chewing pests.
Why the cattle are unharmed. A mammalian stomach is strongly acidic, not alkaline. The protoxin is never solubilised or activated, so it is simply digested as an ordinary protein. Mammalian gut cells also lack the specific receptors on which the activated toxin depends for binding.
The general lesson. The specificity of Bt is not an accident of dosage; it is built into the two-step requirement of activation and binding.
A completely different strategy: RNA interference
Several nematodes parasitise a wide variety of plants and animals, including human beings. The nematode Meloidegyne incognitia infects the roots of tobacco plants and causes a great reduction in yield.
A novel strategy was adopted to prevent this infestation, based on the process of RNA interference, or RNAi.
RNA interference takes place in all eukaryotic organisms as a method of cellular defence. It involves the silencing of a specific mRNA due to a complementary double-stranded RNA molecule that binds to it and prevents translation of the mRNA.
The natural source of this complementary RNA could be an infection by viruses having RNA genomes, or mobile genetic elements — transposons — that replicate via an RNA intermediate.
How the transgenic tobacco was made
Using Agrobacterium vectors, nematode-specific genes were introduced into the host plant. The introduction of DNA was arranged in such a way that it produced both sense and anti-sense RNA in the host cells.
These two RNAs, being complementary to each other, formed a double-stranded RNA that initiated RNAi, and thus silenced the specific mRNA of the nematode. The consequence was that the parasite could not survive in a transgenic host expressing specific interfering RNA. The transgenic plant therefore got itself protected from the parasite.
| Feature | Bt toxin (Bt cotton) | RNA interference (nematode-resistant tobacco) |
|---|---|---|
| What the plant makes | An insecticidal protein, as an inactive protoxin | Sense and anti-sense RNA, forming double-stranded RNA |
| Gene source | Bacillus thuringiensis — a bacterium | The parasite itself — nematode-specific genes |
| How the pest is affected | Toxin binds midgut epithelial cells, creating pores that cause swelling, lysis and death | A specific mRNA of the nematode is silenced, so the parasite cannot survive |
| Requires ingestion? | Yes — and an alkaline gut to activate the protoxin | Yes — the interfering RNA acts inside the parasite |
| Specificity | Insect-group specific; the cry gene is chosen for the crop and the target pest | Sequence specific — only an mRNA complementary to the dsRNA is silenced |
| Delivery into the plant | cry gene cloned and expressed in the crop | Introduced using Agrobacterium vectors |
Notice what makes RNAi remarkable. The plant is not made poisonous at all. It is made to carry a message — a piece of double-stranded RNA matching a gene the parasite cannot do without. And the mechanism was not invented: RNAi already takes place in all eukaryotic organisms as a defence against RNA viruses and transposons. Biotechnology simply pointed an existing defence at a chosen target.
🎯 Interactive: Trace the Bt Pathway
Five stages from the bacterium to a dead insect. Choose a stage to see what happens, and what it explains.
🎯 Competency-Based Questions
The correct answer is (c) — the toxin is inactive.
Justification. The Bt toxin protein exists as inactive protoxins inside the bacterium. It is converted into the active form of toxin only once an insect ingests it, because the alkaline pH of the insect gut solubilises the crystals. Inside the bacterium there is no alkaline gut, so no activation, and therefore no harm.
Why each of the others is wrong. (a) The bacterium is not resistant — resistance would imply the active toxin is present but has no effect, which is not the case. (b) 'Immature' is the wrong word: the protein is complete, not half-built; it is a protoxin awaiting chemical activation, in the same way that a pro-enzyme is a complete molecule awaiting processing. (d) No special sac is involved; the toxin is present as protein crystals formed during a particular phase of growth, not sequestered in an organelle.
The wider significance. This same inactivity is why Bt crop material is safe to mammals, whose stomachs are acidic rather than alkaline.
What they are. Cry proteins are the toxic insecticidal proteins coded by the genes named cry. Bacillus thuringiensis forms protein crystals during a particular phase of its growth, and these crystals contain the insecticidal protein. Most Bt toxins are insect-group specific, so different cry proteins kill different groups: the proteins encoded by cryIAc and cryIIAb control the cotton bollworms, while that of cryIAb controls corn borer.
The organism. The bacterium Bacillus thuringiensis, Bt for short. Some of its strains produce proteins that kill certain insects such as lepidopterans (tobacco budworm, armyworm), coleopterans (beetles) and dipterans (flies, mosquitoes).
How man has exploited it. Specific Bt toxin genes were isolated from Bacillus thuringiensis and incorporated into several crop plants. The Bt toxin gene has been cloned from the bacteria and expressed in plants to provide resistance to insects without the need for insecticides — in effect creating a bio-pesticide. Examples are Bt cotton, Bt corn, rice, tomato, potato and soyabean. The choice of gene depends upon the crop and the targeted pest.
Why the plant, rather than a spray. The toxin is then produced only inside the plant tissue and only where the pest feeds, instead of being distributed over the field, the soil and the water draining from it — and it costs the farmer nothing per application, which matters most where agrochemicals are too expensive.
The strategy. Meloidegyne incognitia is a nematode that infects the roots of tobacco plants and causes a great reduction in yield. Using Agrobacterium vectors, nematode-specific genes were introduced into the host plant. The introduction of DNA was such that it produced both sense and anti-sense RNA in the host cells. Being complementary to each other, these two RNAs formed a double-stranded RNA that initiated RNA interference and silenced the specific mRNA of the nematode. The parasite could not survive in a transgenic host expressing specific interfering RNA, so the transgenic plant protected itself.
Why single-stranded RNA would not do. RNAi is triggered specifically by double-stranded RNA. The process involves silencing of a specific mRNA due to a complementary dsRNA molecule that binds to it and prevents translation. A single sense transcript is indistinguishable from ordinary cellular mRNA and initiates nothing; it would simply be translated or degraded. This is why the construct was deliberately designed to make both strands.
Why the cell recognises dsRNA as a danger signal. Because in nature it is one. RNAi takes place in all eukaryotic organisms as a method of cellular defence, and the natural sources of such complementary RNA are infection by viruses having RNA genomes, and transposons that replicate via an RNA intermediate. Double-stranded RNA in a eukaryotic cell normally means an invader.
How resistance arises. A Bt field exerts intense, continuous selection. Every bollworm that feeds there is exposed, and any rare individual whose midgut receptors bind the activated toxin poorly, or whose gut chemistry activates the protoxin less efficiently, survives and reproduces while the rest die. Over several generations, the frequency of such individuals rises. This is natural selection operating exactly as it does in the evolution of antibiotic resistance — the toxin does not create the resistant variant, it merely removes every competitor.
Why the neighbouring ordinary field matters. It is a refuge. Insects growing up there are never exposed to the toxin, so the susceptible form of the gene is preserved in the population at full frequency. When resistant survivors from your field mate with susceptible insects from the refuge, the offspring are usually not fully resistant, and resistance is diluted instead of accumulating. This is why planting a proportion of non-Bt crop alongside Bt crop is a deliberate resistance-management practice, not a lapse.
What else can be done. Because most Bt toxins are insect-group specific and there are a number of cry genes, a second toxin can be introduced into the same plant — as with cryIAc and cryIIAb, both of which control cotton bollworms. An insect would then need two independent rare changes at once, which is far less likely than one.
The conceptual point. A pest-resistance gene is not a permanent solution but a selection pressure. Any single-toxin strategy invites the evolution of resistance, and must be managed as such.
What the plant produces. In the Bt strategy the plant produces a foreign protein — an insecticidal Bt toxin, stored as inactive protoxin. In the RNAi strategy the plant produces RNA: both sense and anti-sense RNA, which pair to form double-stranded RNA. The plant itself is not made poisonous at all.
Specificity. Bt specificity operates at two levels — activation needs an alkaline gut, and the activated toxin must bind receptors on midgut epithelial cells — and most Bt toxins are insect-group specific, so the cry gene is chosen for the crop and the targeted pest. But the unit of specificity is the insect group: lepidopterans, coleopterans or dipterans, which may include harmless species. RNAi specificity is at the level of nucleotide sequence: only an mRNA complementary to the introduced dsRNA is silenced.
Which is less likely to affect non-target species. RNAi, in principle, because sequence complementarity can be made specific to a single species — the genes introduced into the tobacco were nematode-specific — whereas a cry protein affects a whole insect group. A sequence unique to the target parasite simply has no match in any other organism's transcriptome.
A fair qualification on both. Both require the pest to ingest the plant, so neither touches sap-suckers or organisms that do not feed on the crop. And the chapter's own caution applies to both: genetic modification of organisms can have unpredictable results when such organisms are introduced into the ecosystem, which is why the GEAC exists.
🧠 Assertion–Reason Questions
For each pair, decide whether both statements are true and whether the reason correctly explains the assertion.
Both A and R are true, and R is the correct explanation of A.
The alkaline pH of the insect gut solubilises the crystals and converts the protoxin into the active form. The bacterium provides no such environment, so the protein remains harmless where it is made.
Both A and R are true, and R is the correct explanation of A.
This is why the choice of genes depends upon the crop and the targeted pest. The proteins encoded by cryIAc and cryIIAb control cotton bollworms, while that of cryIAb controls corn borer.
A is false but R is true.
The mechanism described in R is correct, but RNAi was not invented. It takes place in all eukaryotic organisms as a method of cellular defence, against viruses having RNA genomes and against transposons that replicate via an RNA intermediate. What genetic engineering did was to point this pre-existing defence at a chosen target, by making the plant produce both sense and anti-sense RNA against a nematode gene.