આ MCQ મોડ્યુલ આના પર આધારિત છે: Cytokinins Ethylene Aba
Cytokinins Ethylene Aba
આ મૂલ્યાંકન આના પર આધારિત હશે: Cytokinins Ethylene Aba
મૂલ્યાંકન બનાવવામાં તેમની સામગ્રી સામેલ કરવા ચિત્રો, PDF અથવા Word દસ્તાવેજ અપલોડ કરો.
Cytokinins, Ethylene, Abscisic Acid and the Control of Flowering
Three PGRs remain: one that drives cell division, one that is a gas, and one that stops everything. Taken with the auxins and gibberellins of Part 3, they complete a control system in which no hormone acts alone — and the last section of this part shows how the outside world reaches into that system.
13.4.3.3 Cytokinins
Natural cytokinins are synthesised in regions where rapid cell division occurs — for example root apices, developing shoot buds, young fruits.
Their physiological effects:
- They help to produce new leaves, chloroplasts in leaves, lateral shoot growth and adventitious shoot formation.
- Cytokinins help overcome the apical dominance — the direct opposite of the auxin effect you met in Part 3.
- They promote nutrient mobilisation, which helps in the delay of leaf senescence.
13.4.3.4 Ethylene
Being a gas makes ethylene unlike every other PGR: it needs no transport tissue, and it can pass from one fruit to another through the air between them.
Effects on seedlings and on senescence
- Influences on plants include horizontal growth of seedlings, swelling of the axis and apical hook formation in dicot seedlings.
- Ethylene promotes senescence and abscission of plant organs, especially of leaves and flowers.
Fruit ripening
Ethylene is highly effective in fruit ripening. It enhances the respiration rate during ripening of the fruits.
Dormancy, elongation and roots
- Ethylene breaks seed and bud dormancy, and initiates germination in peanut seeds and sprouting of potato tubers.
- Ethylene promotes rapid internode and petiole elongation in deep water rice plants. It helps leaves and upper parts of the shoot to remain above water.
- Ethylene also promotes root growth and root hair formation, thus helping the plants to increase their absorption surface.
Agricultural applications and ethephon
- Ethylene is used to initiate flowering and for synchronising fruit-set in pineapples. It also induces flowering in mango.
- Since ethylene regulates so many physiological processes, it is one of the most widely used PGRs in agriculture.
The reason ethephon exists at all is practical: you cannot spray a gas onto a field. Ethephon is a liquid that the plant absorbs and then breaks down internally, releasing the gas slowly from inside the tissue where it is needed.
13.4.3.5 Abscisic acid
Abscisic acid (ABA) was discovered for its role in regulating abscission and dormancy. But like other PGRs, it also has other wide ranging effects on plant growth and development.
• It acts as a general plant growth inhibitor and an inhibitor of plant metabolism.
• ABA inhibits seed germination.
• ABA stimulates the closure of stomata and increases the tolerance of plants to various kinds of stresses. Therefore it is also called the stress hormone.
• ABA plays an important role in seed development, maturation and dormancy. By inducing dormancy, ABA helps seeds to withstand desiccation and other factors unfavourable for growth.
• In most situations, ABA acts as an antagonist to GAs.
How the PGRs work together
Furthermore, there are a number of events in the life of a plant where more than one PGR interacts to affect that event — for example dormancy in seeds and buds, abscission, senescence, apical dominance.
| Event | Promoted by | Opposed / reversed by |
|---|---|---|
| Apical dominance | Auxins — the apical bud inhibits lateral buds | Cytokinins — they help overcome apical dominance |
| Seed dormancy | ABA — induces dormancy, helping seeds withstand desiccation | Ethylene — breaks seed and bud dormancy; and GAs, to which ABA is an antagonist |
| Leaf senescence | Ethylene — promotes senescence | Cytokinins (nutrient mobilisation) and gibberellins (delay senescence) |
| Abscission | Ethylene; ABA; and auxins for older mature leaves and fruits | Auxins at early stages — they prevent fruit and leaf drop |
| Seed germination | GAs; ethylene in peanut seeds | ABA — inhibits seed germination |
Light and temperature in the initiation of flowering
The chapter closes by pointing to the role of light and temperature — both extrinsic factors — on the initiation of flowering. Two phenomena are named, and since Exercises 7 and 9 of this chapter ask about them, they are set out here.
- Long day plants (LDP) flower when the light period is longer than a critical duration — e.g. wheat, spinach, radish.
- Short day plants (SDP) flower when the light period is shorter than a critical duration — e.g. rice, cotton, chrysanthemum, tobacco.
- Day-neutral plants show no such dependence — e.g. tomato, cucumber, sunflower.
What to do. Take four unripe green bananas, firm and of the same size. Place banana 1 in a paper bag on its own. Place banana 2 in a paper bag along with a fully ripe apple or an over-ripe banana. Leave banana 3 on an open plate. Seal banana 4 in a bag with a ripe apple plus a small dish of moist potassium permanganate (which absorbs ethylene), if your school has it. Keep all four at room temperature and check each day for four to five days, recording colour, firmness and smell.
Observations. Banana 2 ripens fastest — yellow, soft and sweet-smelling well before the others. Banana 1 ripens next, since the bag traps the gas it releases itself. Banana 3, in the open, is slowest because the gas disperses. Banana 4 lags behind banana 2 despite sharing its bag with a ripe apple, because the ethylene is being absorbed before it can act.
What it demonstrates. Exactly the observation that led to the discovery of the hormone: H. H. Cousins in 1910 confirmed the release of a volatile substance from ripened oranges that hastened the ripening of stored unripened bananas, later identified as ethylene. The ripe fruit is the source, because ethylene is synthesised in large amounts by tissues undergoing senescence and by ripening fruits, and it is highly effective in fruit ripening. Bag 4 is the control that proves the agent is a gas and not warmth, moisture or contact.
Two things to add to your notebook. First, ripening involves a measurable rise in respiration, the respiratory climactic — a ripening fruit briefly respires harder than at any other time in its life. Second, this is why commercial growers pick fruit green, ship it cold, and then ripen it on arrival with ethephon, which in aqueous solution is readily absorbed and transported within the plant and releases ethylene slowly. It is also why one over-ripe fruit spoils a whole basket, and why apples are best stored away from other produce.
🎯 Interactive: Which PGR, and which way?
PGR responsible: Cytokinins
Cytokinins help overcome apical dominance, directly opposing the auxin effect in which the growing apical bud inhibits the lateral buds. They also promote lateral shoot growth and adventitious shoot formation.
🎯 Competency-Based Questions
Q1. Rank the three rooms by how fast the mangoes ripen and explain. L3 Apply
Q2. Predict what ethephon does in the tomato field and in the treated half of the cucumber field. L3 Apply
Q3. Fill in the blanks: Cytokinins were discovered as ______ from autoclaved ______ DNA, but it does not occur ______ in plants. The first natural cytokinin, ______, was isolated from ______ and ______. L1 Remember
Q4. The winter wheat sown in spring grows well but never flowers. Diagnose the problem and name the process. L4 Analyse
Q5. “Each PGR has its own job, so you can always name one hormone as the cause of a given effect.” Evaluate. L5 Evaluate
Three concrete refutations. (i) One effect, several hormones. Delaying leaf senescence is done by cytokinins through nutrient mobilisation and by gibberellins; promoting it is done by ethylene and ABA. (ii) One hormone, opposite effects. Auxins prevent fruit and leaf drop at early stages but promote the abscission of older mature leaves and fruits — the same molecule on both sides of the same process. (iii) Direct opposition. Auxin imposes apical dominance while cytokinin helps overcome it; ABA acts as an antagonist to GAs in most situations.
The better formulation is that a plant's response is set by the balance and ratio of several PGRs acting on a particular tissue at a particular stage, not by any one hormone's identity. The practical proof is in the laboratory: it is the auxin-to-cytokinin ratio in a tissue culture medium, not either hormone alone, that decides whether a callus makes roots or shoots.
🧠 Assertion–Reason Questions
For each pair choose: (A) Both A and R are true and R is the correct explanation of A. (B) Both A and R are true but R is not the correct explanation of A. (C) A is true but R is false. (D) A is false but R is true.
Assertion (A): Abscisic acid is called the stress hormone.
Reason (R): It stimulates the closure of stomata and increases the tolerance of plants to various kinds of stresses.
Assertion (A): Kinetin is the naturally occurring cytokinin of plants.
Reason (R): Kinetin was discovered as a modified form of adenine from autoclaved herring sperm DNA.
Assertion (A): Ethylene promotes rapid internode elongation in deep water rice plants.
Reason (R): Ethylene is largely an inhibitor of growth activities.