આ MCQ મોડ્યુલ આના પર આધારિત છે: Algae
Algae
આ મૂલ્યાંકન આના પર આધારિત હશે: Algae
મૂલ્યાંકન બનાવવામાં તેમની સામગ્રી સામેલ કરવા ચિત્રો, PDF અથવા Word દસ્તાવેજ અપલોડ કરો.
Algae
3.1 Introduction to Plant Kingdom
In the previous chapter, we looked at the broad classification of living organisms under the system proposed by Whittaker (1969) wherein he suggested the Five Kingdom classification viz. Monera, Protista, Fungi, Animalia and Plantae. In this chapter we will deal in detail with further classification within Kingdom Plantae popularly known as the 'plant kingdom'.
We must stress here that our understanding of the plant kingdom has changed over time. Fungi and members of the Monera and Protista having cell walls have now been excluded from Plantae though earlier classifications placed them in the same kingdom. So, the cyanobacteria (BGA, blue green algae) that are 'algae' in earlier days, are no longer included here. Of late, cladistics has caused a revision: the plant kingdom is restricted to Eukaryotic, chlorophyll-bearing organisms, including algae, bryophytes, pteridophytes, gymnosperms and angiosperms.
Classification Criteria for Plants
Even within the Plant Kingdom, several classification systems have been proposed. The earlier systems used gross superficial morphological characters such as habit, colour, number of leaves, shape of leaves, etc. Such systems were called artificial classification systems. Examples include Linnaeus's sexual system based on the number of stamens.
Subsequent systems, called natural classification systems, were based on natural affinities among the organisms. They consider the totality of characters — external as well as internal features.
The latest system, phylogenetic classification, is based on evolutionary relationships, supported by DNA evidence. Numerical Taxonomy uses computers and statistical analysis. Cytotaxonomy uses cytological information (chromosome number, structure, behaviour). Chemotaxonomy uses chemical constituents.
3.2 Algae
Algae are chlorophyll-bearing, simple, thalloid, autotrophic and largely aquatic (both fresh water and marine) organisms. They occur in a variety of other habitats — moist stones, soils, wood. Some of them also occur in association with fungi (lichen) and animals (e.g., on sloth bear).
Form & Structure
The form and size of algae are highly variable. They range from colonial forms like Volvox and the filamentous forms like Ulothrix and Spirogyra. A few of the marine forms such as kelps, form massive plant bodies.
Reproduction in Algae
Algae reproduce by vegetative, asexual, and sexual methods:
- Vegetative reproduction is by fragmentation. Each fragment develops into a thallus.
- Asexual reproduction is by the production of different types of spores, most common being the zoospores. They are flagellated (motile) and on germination give rise to new plants.
- Sexual reproduction takes place through fusion of two gametes. These gametes can be flagellated and similar in size (as in Chlamydomonas) or non-flagellated but similar in size (as in Spirogyra). Such reproduction is called isogamous.
Fusion of two gametes that are dissimilar in size, as in some species of Chlamydomonas, is termed as anisogamous. Fusion between one large, non-motile (static) female gamete and a smaller, motile male gamete is termed oogamous, e.g., Volvox, Fucus.
Economic Importance
- Algae fix at least half of the total CO₂ on earth by photosynthesis. As primary producers of energy-rich compounds which form the basis of food cycles of all aquatic animals, algae are crucial.
- Many species of Porphyra, Laminaria and Sargassum are among the 70-odd species of marine algae used as food.
- Agar, used to grow microbes and in preparation of ice creams and jellies, is obtained from Gelidium and Gracilaria.
- Carrageen, an important commercial product, is obtained from Chondrus crispus (red alga).
- Chlorella and Spirullina are unicellular algae, rich in proteins and used as food supplements even by space travellers.
3.2.1 Three Classes of Algae
The algae are divided into three main classes based on their pigments, stored food, and cell wall:
| Property | Chlorophyceae (Green algae) | Phaeophyceae (Brown algae) | Rhodophyceae (Red algae) |
|---|---|---|---|
| Major pigments | Chlorophyll a & b | Chlorophyll a, c, fucoxanthin | Chlorophyll a, d, phycoerythrin |
| Stored food | Starch | Mannitol, laminarin | Floridean starch |
| Cell wall | Cellulose | Cellulose + algin | Cellulose, pectin, polysulphate esters |
| Flagella number | 2-8, equal, apical | 2, unequal, lateral | Absent |
| Habitat | Mostly freshwater | Mostly marine | Mostly marine |
| Examples | Chlamydomonas, Volvox, Spirogyra, Ulothrix, Chara | Ectocarpus, Sargassum, Laminaria, Fucus, Dictyota | Polysiphonia, Porphyra, Gracilaria, Gelidium |
3.2.1.1 Chlorophyceae (Green Algae)
The members of chlorophyceae are commonly called green algae. The plant body may be unicellular, colonial or filamentous. They are usually grass-green due to the dominance of pigments chlorophyll a and b. The pigments are localised in definite chloroplasts. The chloroplasts may be discoid, plate-like, reticulate, cup-shaped, spiral or ribbon-shaped in different species.
Most of the members have one or more storage bodies called pyrenoids located in the chloroplasts. Pyrenoids contain protein besides starch. Some algae may store food in the form of oil droplets. Green algae usually have a rigid cell wall made of an inner layer of cellulose and an outer layer of pectose.
Reproduction: Vegetative by fragmentation, asexual by zoospores (flagellated), sexual reproduction shows considerable variation in the type and formation of sex cells (isogamous, anisogamous, or oogamous).
Common examples: Chlamydomonas, Volvox, Ulothrix, Spirogyra, and Chara.
3.2.1.2 Phaeophyceae (Brown Algae)
The members of phaeophyceae or brown algae are found primarily in marine habitats. They show great variation in size and form. They range from simple branched, filamentous forms (Ectocarpus) to profusely branched forms as represented by kelps, which may reach a height of 100 metres.
They possess fucoxanthin in their chloroplasts which gives them a brown colour. Food is stored as complex carbohydrates, which may be in the form of laminarin or mannitol. The vegetative cells have a cellulosic wall usually covered on the outside by a gelatinous coating of algin.
The plant body is usually attached to the substratum by a holdfast, and has a stalk (stipe) and leaf-like photosynthetic organ called frond. Vegetative reproduction takes place by fragmentation. Asexual reproduction in most brown algae is by biflagellate zoospores that are pear-shaped and have two unequal laterally attached flagella.
Common examples: Ectocarpus, Dictyota, Laminaria, Sargassum, and Fucus.
3.2.1.3 Rhodophyceae (Red Algae)
The members of rhodophyceae are commonly called red algae because of the predominance of the red pigment r-phycoerythrin in their body. Majority of the red algae are marine with greater concentrations found in the warmer areas. They occur in both well-lighted regions close to the surface of water and also at great depths in oceans where relatively little light penetrates.
The red algae are usually multicellular. Some of them have complex body organisation. The food is stored as floridean starch which is very similar to amylopectin and glycogen in structure.
The red algae usually reproduce vegetatively by fragmentation. They reproduce asexually by non-motile spores and sexually by non-motile gametes. Sexual reproduction is oogamous and accompanied by complex post-fertilisation developments.
Common examples: Polysiphonia, Porphyra, Gracilaria, and Gelidium.
🎯 Interactive: Algae Class Identifier
Pick characteristics and identify the algal class:
Identified class: —
Common examples: —
Setup: You collect specimens from three different ecosystems:
- Slimy green strands floating on the surface of a freshwater pond.
- Reddish-pink strands attached to rocks 50 m below the ocean surface.
- Olive-brown leafy mass washed ashore on a marine beach, with a stalk and holdfast.
1. Pond surface, green, filamentous → Chlorophyceae (likely Spirogyra or Cladophora). Green colour from dominant chlorophyll a + b; freshwater habitat is typical.
2. Deep ocean, reddish-pink → Rhodophyceae. Phycoerythrin pigment absorbs blue light that penetrates deep water — allows photosynthesis at depths where other algae cannot survive.
3. Marine, brown, with holdfast/stipe/frond → Phaeophyceae. Differentiated body plan (kelp-like) and brown colour from fucoxanthin. Likely Laminaria or Sargassum.
Worked Examples
Worked Example 1: Identifying Reproduction Mode
Identify whether each example shows isogamous, anisogamous, or oogamous reproduction: (a) Spirogyra (b) Volvox (c) Some species of Chlamydomonas (smaller motile gamete fuses with larger motile gamete).
(b) Volvox: Large non-motile female gamete (egg) + smaller motile male gamete (sperm) → Oogamous.
(c) Chlamydomonas (size-different motile gametes): Both gametes motile, but different sizes → Anisogamous.
Trend: Isogamy → Anisogamy → Oogamy represents increasing sexual differentiation through evolution.
Worked Example 2: Pigment to Habitat
Why are red algae found at greater depths than green algae in the ocean? Explain in terms of pigments and light absorption.
Green algae rely on chlorophyll a + b, which absorb red and blue light. So green algae thrive in shallow water where red light is available.
Red algae have phycoerythrin in addition to chlorophylls. Phycoerythrin absorbs blue and green light (the wavelengths that penetrate deep water) and transfers energy to chlorophyll for photosynthesis. This adaptation lets red algae photosynthesize at depths up to 200+ metres.
Conclusion: The pigment composition is an evolutionary adaptation to the different light environments at various ocean depths.
🎯 Competency-Based Questions
Q1. Which of the following is NOT a characteristic of algae?L1 Remember
Q2. Match the algal class with its representative pigment: L3 Apply
2 → Fucoxanthin (brown carotenoid)
3 → Phycoerythrin (red biliprotein)
The colour of each algal class depends on its dominant accessory pigment.
Q3. Why is agar from red algae preferred over gelatin in microbiology? L4 Analyse
- Heat stability: Agar melts at ~85°C and re-solidifies at ~38°C, so it stays solid at body temperature (37°C, where bacteria grow). Gelatin melts at ~30°C — would liquefy.
- Resistance to degradation: Most bacteria and fungi cannot digest agar, so the medium stays intact while microbes grow on it. Gelatin is digested by many bacteria.
- Clarity: Solidified agar is transparent — easy to see colonies.
- No nutritive value: Inert; doesn't add unintended nutrients.
Q4. Evaluate: "All algae are microscopic." Critique this statement. L5 Evaluate
- Macrocystis (giant kelp): up to 60 m tall — among the world's largest organisms.
- Sargassum: forms giant floating mats covering thousands of km² in the Sargasso Sea.
- Laminaria: 5–10 m long blades.
Q5. HOT (Create): Design an experiment to test whether the pigment of red algae can drive photosynthesis in green algae if transferred. What controls would you need? L6 Create
- Hypothesis: Phycoerythrin from red algae, when transferred to green algae, will allow them to photosynthesize at greater depths/dimmer light.
- Method: Genetic engineering — clone phycoerythrin gene from Porphyra (red alga) into Chlamydomonas (green alga) using CRISPR or transformation.
- Treatments:
- (A) Wild-type Chlamydomonas (control)
- (B) Engineered Chlamydomonas with phycoerythrin
- (C) Wild-type Porphyra (positive control)
- Test: Grow all three at varying light intensities (deep-water blue light vs surface red light). Measure growth rate, oxygen production, biomass.
- Expected: If phycoerythrin works in green algae, (B) should photosynthesize better at deep-water light than (A), approaching (C)'s performance.
- Controls: Empty vector control, light-intensity gradient, replicate cultures, dark control.
🧠 Assertion–Reason Questions
Choose: (A) Both true, R explains A. (B) Both true, R doesn't explain A. (C) A true, R false. (D) A false, R true.
A: Red algae can grow at greater ocean depths than green algae.
R: Phycoerythrin pigment in red algae can absorb blue and green light that penetrate deep waters.
A: Cyanobacteria (blue-green algae) are still classified within Plantae.
R: They contain chlorophyll like plants.
A: Algae are economically important for mankind.
R: They serve as food, source of agar, fertilizers, and contribute to oxygen production.