Q.Plant A in a nutrient medium shows whiptail disease plant B in a nutrient medium shows a little leaf disease. Identify mineral deficiency of plant A and B?
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Deficiency Symptoms: When Plants Run Low on Nutrients
Think of a plant like a factory. Each essential element — nitrogen, magnesium, iron, zinc, and so on — is a raw material or a tool. As long as the supply is adequate, the factory runs smoothly. But when a particular raw material runs low, the assembly line starts to break down in a specific, visible way. That breakdown is what we call a deficiency symptom.
The intuition is simple: a plant cannot show you a bar graph of its internal nutrient levels. Instead, it shows you through its leaves, stems, and growth patterns. A yellowing leaf, a burnt-looking leaf tip, or stunted growth — these are the plant's way of saying "I am short on element X."
The Precise Statement
A deficiency symptom is a characteristic morphological change — a visible, structural alteration in the plant's body — that appears when the concentration of an essential element falls below a certain threshold. That threshold is called the critical concentration or critical level.
Below this critical level, the plant can no longer carry out the metabolic functions that depend on that element. The first visible signs are typically seen in the leaves (chlorosis, necrosis) or in the overall growth pattern (stunting, reduced leaf size).
The symptom is specific to the element. A deficiency of nitrogen produces a different set of visible changes than a deficiency of iron or calcium. This specificity is what allows a farmer or a botanist to diagnose the problem just by looking at the plant.
Two Key Categories of Symptoms
Not all symptoms look the same. They fall into two broad classes based on how mobile the element is within the plant.
1. Chlorosis — the loss of green colour (chlorophyll). The leaf turns pale yellow or white. This happens when the element is needed for chlorophyll synthesis or for maintaining chloroplasts. Magnesium, iron, and nitrogen deficiencies all cause chlorosis, but in different patterns.
2. Necrosis — the death of tissue. The leaf develops brown, dry, dead patches. This is a more severe symptom, indicating that the deficiency has progressed beyond a simple slowdown. Calcium deficiency, for example, causes necrosis of young leaves and growing tips.
A single deficiency can show both chlorosis and necrosis at different stages. First the leaf yellows (chlorosis), then the yellowed areas die and turn brown (necrosis).
Mobility Matters: Old Leaves vs. Young Leaves
This is the most practical part of the concept. Elements differ in how easily the plant can move them from older leaves to newer ones.
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Mobile elements (nitrogen, phosphorus, potassium, magnesium): When the supply runs low, the plant cannibalises its older leaves, breaking down their proteins and chlorophyll, and ships the nutrients to the young, growing leaves. So the deficiency symptoms appear first on the older leaves. The young leaves stay green while the old ones turn yellow or show necrosis.
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Immobile elements (calcium, boron, iron, sulphur): These elements, once deposited in a leaf, cannot be easily moved out. So when the supply is low, the young leaves and growing tips show symptoms first. The old leaves remain normal because they already have their full supply.
To diagnose a deficiency in the field, look at which leaves are affected. Old leaves yellowing? Think nitrogen or magnesium. Young leaves yellowing? Think iron or sulphur. Growing tip dying? Think calcium or boron.
Examples of Common Deficiency Symptoms
| Element | Characteristic Symptom | Where it appears |
|---|---|---|
| Nitrogen | Uniform chlorosis (pale green to yellow) of older leaves; stunted growth | Old leaves first |
| Magnesium | Interveinal chlorosis (yellow between veins, veins stay green) on older leaves | Old leaves first |
| Iron | Interveinal chlorosis on young leaves; veins remain green | Young leaves first |
Whiptail disease is caused by molybdenum deficiency and little leaf disease by zinc deficiency. …
Step 1. Whiptail disease of cauliflower (and cabbage) is a symptom listed under molybdenum's deficiency effects, alongside chlorosis, necrosis, delayed flowering and retarded growth, since molybdenum is a component of the nitrogenase and nitrate reductase enzymes.
Step 2. Plant A, showing whiptail disease, is therefore deficient in molybdenum (Mo). …
Match each named deficiency disease directly to the micronutrient it i …
- Swapping which disease belongs to which mineral (whiptail is molybdenum, not zinc; little leaf is zinc, not molybdenum). …
- CBSE 2026Set ANNUAL1 markMCQQ.Match the following:(1) Die back disease of citrus(2) Whip tail disease(3) Brown heart disease of Beetroot(4) Little leaf --(i) Mo(ii) Zn(iii) Cu(iv) B(a) (1)-(i), (2)-(iii), (3)-(ii), (4)-(iv)(b) (1)-(iii), (2)-(ii), (3)-(iv), (4)-(i)(c) (1)-(iii), (2)-(iv), (3)-(ii), (4)-(i)(d) (1)-(iii), (2)-(i), (3)-(iv), (4)-(ii)
›Reveal solutionSolution
Die-back of citrus = copper deficiency; whiptail = molybdenum deficiency; brown heart of beetroot = boron deficiency; little leaf = zinc deficiency — giving the match (1)-(iii), (2)-(i), (3)-(iv), (4)-(ii).
Many classic plant deficiency symptoms are named diseases tied to a single essential mineral element:
- Die-back of citrus: shoot tips die progressively backward; caused by a deficiency of copper (Cu), which is needed for several oxidase enzymes and lignification of vascular tissue.
- Whiptail disease: leaves become narrow, twisted, and whip-like (classically seen in cauliflower/crucifers); caused by a deficiency of molybdenum (Mo), a cofactor for nitrate reductase — without it, nitrogen metabolism and leaf lamina development fail.
- Brown heart of beetroot (also called heart-rot/brown-heart of turnip/beet): internal tissues turn brown and die; caused by a deficiency of boron (B), essential for cell wall synthesis and sugar translocation. …
- CBSE 2020Set ANNUAL1 markQ.Marsh spot disease of pea is caused by deficiency of which element in soil?
›Reveal solutionSolution
Marsh spot is a manganese-deficiency disorder of pea seeds.
Manganese is a micronutrient required as a cofactor for several enzymes (including those of the chloroplast electron transport and nitrogen metabolism). When soil is deficient in available manganese, pea (Pisum sativum) seeds develop a characteristic internal necrotic brown spot in the centre of the cotyledons — this disorder is called 'marsh spot', because it is commonly seen i …
- CBSE 2019Set ANNUAL1 markQ.Deficiency of which element in the soil causes Dieback disease of Lemon (Citrus)?
›Reveal solutionSolution
Copper deficiency is responsible for dieback disease in citrus plants like lemon.
Copper is a micronutrient required by plants in trace amounts, mainly as a cofactor for several oxidative enzymes (e.g. those involved in lignin synthesis and photosynthetic electron transport). When copper is deficient in the soil, citrus trees such as lemon show a characteristic disorder called dieback (also known as exanthema or gummosis) - the terminal shoots p …
- CBSE 2018Set ANNUAL1 markMCQQ.'Die back' of shoots in citrus is caused by the deficiency of:(a) Iron(b) Copper(c) Boron(d) Zinc
›Reveal solutionSolution
Copper deficiency causes die-back of shoots (and exanthema/gummosis) in citrus, because copper is a cofactor for enzymes essential to lignin synthesis and normal tissue development.
Copper is a micronutrient required in trace amounts as a component/cofactor of several oxidase enzymes involved in respiration, photosynthesis, and lignin biosynthesis in cell walls. When copper is deficient, newly formed tissues at the shoot tips fail to develop and lignify properly, so the terminal shoots progressively die back from the tip - a symptom well documented in citrus, known as "die-back" and often accompanied by gum exudation (exanthema).
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