Organisms and Populations Class 12 Notes - CBSE Biology Chapter 13

Chapter summary

Organisms and Populations covers the levels of ecological organisation and major abiotic factors, the ways organisms respond to and cope with their environment, population attributes such as density and age pyramids, the exponential and logistic models of population growth, life-history traits, and the different kinds of interactions between species. It is a high-yield NEET chapter where questions test the growth equations, carrying capacity, the categories of population interactions, and adaptations like regulators and conformers.

Chapter notes
🃏 Flash Cards: Organisms and Populations

Class 12 Biology · Chapter 13 – swipe through all 10 cards to understand the whole chapter.

🌍Start here1/10

Ecology & Its Levels

Ecology studies how organisms interact with one another and with their physical environment, at four nested levels.

Organism → Population → Community → Biomes

Direction is smallest → largest; a scrambled order is a common trap.

  • Order goes organism → population → community → biome
  • Studied from a single individual up to whole climatic regions
  • Interactions are both with living and non-living surroundings
🌡️Core idea2/10

Abiotic Factors

Four non-living factors shape where life can survive, with temperature being the most ecologically relevant.

eury- = WIDE tolerance · steno- = NARROW tolerance

Eurythermal/stenothermal (temperature); euryhaline/stenohaline (salinity).

  • Major factors: temperature, water, light, soil
  • Temperature affects enzyme kinetics → controls metabolism & distribution
  • For aquatic life, salinity is the key water variable
🛡️Key process3/10

Responses to Stress

To keep a constant internal milieu (homeostasis), organisms use one of four strategies.

Regulate · Conform · Migrate · Suspend

~99% of animals and nearly all plants are conformers (cheapest strategy).

  • Regulate = hold internal state constant (all birds & mammals); costly
  • Suspend = dormancy: spores, hibernation (winter), aestivation (summer), diapause
  • Migrate = leave temporarily (Siberian cranes → Keoladeo)
🦊Key facts4/10

Adaptations

Any heritable trait that improves survival and reproduction in a given habitat.

Allen’s rule: colder climate → SHORTER ears/limbs (less heat loss)

Kangaroo rat makes water by fat oxidation + concentrated urine, no drinking.

  • Desert plants: thick cuticle, sunken stomata, CAM photosynthesis
  • Opuntia has spines (not leaves) + flattened photosynthetic stem
  • High-altitude humans make more RBCs to offset low oxygen
👥Core concept5/10

Population Attributes

A population is one species in an area; it has group-level properties no individual has.

Density (N) = count ÷ area · plus natality, mortality, sex ratio

Density may be % cover or biomass (e.g. Lantana), not always a head count.

  • Natality = birth rate added; mortality = death rate removed
  • Tigers counted indirectly via pug marks & faecal pellets
  • A single birth/death is an event, not a population attribute
📊Read the shape6/10

Age Pyramids

Stacking a population by age groups gives a shape that predicts its future trend.

Broad base → expanding · Bell → stable · Narrow base → declining

Read the BASE first: young at the base mean future growth.

  • Triangular/expanding = large pre-reproductive cohort
  • Bell-shaped/stable = births balance older groups
  • Urn-shaped/declining = few young replacing the old
📈Key formula7/10

Exponential Growth

With unlimited resources, population grows in proportion to its current size, giving a J-shaped curve.

dN/dt = rN → Nₜ = N0 eʳᵗ

r = b − d (intrinsic rate); e^0.693 ≈ 2, so 0.693/r = doubling time.

  • J-shaped curve, shoots up without limit (unrealistic long-term)
  • Nₜ = N0 eʳᵗ gives size after time t
  • If births = deaths then r = 0 and size stays steady
📉Key formula8/10

Logistic Growth

Real habitats have finite resources, so growth slows toward a carrying capacity K, giving an S-shaped curve.

dN/dt = rN · (K − N)/K

Verhulst–Pearl model; sigmoid: lag → acceleration → deceleration → plateau at K.

  • When N = K → growth = 0 (population is largest)
  • Growth RATE is maximum at N = K/2
  • More realistic than exponential; carrying capacity exists only here
🐟Strategy9/10

Life History & r

Natural selection tunes how, when and how often to reproduce to maximise reproductive fitness (high r).

Semelparous (breed once, then die) vs Iteroparous (breed many times)

Bamboo & Pacific salmon = semelparous; most birds/mammals = iteroparous.

  • Unpredictable habitats favour many small offspring
  • Stable habitats favour fewer, larger offspring
  • r values: Norway rat ≈ 0.015, flour beetle ≈ 0.12, human(US 1981) ≈ 0.0205
🤝Advanced10/10

Population Interactions

Name any two-species interaction by its effect (+/−/0) on each partner.

++ Mutualism · −− Competition · +− Predation/Parasitism · +0 Commensalism · −0 Amensalism

Predation usually kills prey; parasitism keeps the host alive & is host-specific.

  • Mutualism: lichen, mycorrhiza, fig–wasp, Ophrys pseudocopulation
  • Gause’s exclusion: same limited resource → cannot coexist; resource partitioning dodges it
  • Cuscuta = parasite; barnacle-on-whale & orchid-on-tree = commensalism
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📝 Practice Organisms and Populations — 10 NEET PYQs
Real previous-year questions · with answers & solutions
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Q1NEET 2021
In the exponential growth equation Nₜ = N₀ eʳᵗ, the term e represents the base of:
Correct answer: C. In Nₜ = N₀ eʳᵗ, e (about 2.718) is the base of natural logarithms. Here r is the intrinsic rate of natural increase and t is time; the equation is the integrated form of exponential growth.
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Q2NEET 2021
Inspite of interspecific competition in nature, which mechanism may have evolved to allow the competing species to survive together?
Correct answer: A. Resource partitioning lets competing species coexist by using the same limiting resource differently (different times, microhabitats or foraging patterns, e.g. MacArthur’s warblers), avoiding competitive exclusion.
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Q3NEET 2020
According to Alexander von Humboldt, within a region species richness:
Correct answer: B. Von Humboldt observed that species richness increases with the area sampled but only up to a limit (the species-area relationship), graphing as a rectangular hyperbola described by log S = log C + Z log A.
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Q4NEET 2020
Which of the following is NOT an attribute of a population?
Correct answer: C. Natality, mortality and sex ratio are population attributes (group-level properties). Species interaction occurs between different species and is a community-level property, not an attribute of a single population.
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Q5NEET 2020
The impact of immigration on population density is:
Correct answer: D. Immigration adds individuals coming into an area, so it increases population density (a positive effect). In Nt+1 = Nt + (B + I) – (D + E), immigration I is an additive term.
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Q6NEET 2019
Match Column I (microbes) with Column II (habitats): 1. Halophiles – i. Hot springs; 2. Thermoacidophiles – ii. Aquatic; 3. Methanogens – iii. Guts of ruminants; 4. Cyanobacteria – iv. Salty area. Select the correct option.
Correct answer: A. Halophiles live in salty areas (iv); thermoacidophiles in hot, acidic springs (i); methanogens in the guts of ruminants (iii); cyanobacteria are aquatic (ii). Hence 1-iv, 2-i, 3-iii, 4-ii.
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Q7NEET 2018
In ecology, the term ‘niche’ is best defined as:
Correct answer: D. A niche is the functional role (the sum of an organism’s use of biotic and abiotic resources) an organism plays in its ecosystem, as distinct from its habitat (the physical space, option B). Two species may share a habitat but not a niche.
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Q8NEET 2016
It is much easier for a small animal than a large animal to run uphill, because:
Correct answer: A. Basal metabolic rate per unit body mass is inversely related to body size, so small animals have a higher mass-specific metabolic rate and can generate energy faster, making the climb easier.
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Q9NEET 2016
Which of the following is correct for r-selected species?
Correct answer: A. r-selected species maximise the intrinsic growth rate r by producing a large number of small offspring with little parental care, suited to unstable, unpredictable habitats. K-selected species make few large offspring.
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Q10NEET 2011
CAM (Crassulacean Acid Metabolism) helps desert plants in:
Correct answer: D. CAM plants keep their stomata closed during the hot day and open them at night to take in CO2, drastically reducing transpirational water loss. Thus CAM primarily helps conserve water in arid habitats.
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Frequently Asked Questions

What is a population in ecology?

A population is a group of individuals of the same species living in a defined geographical area, sharing or competing for resources and capable of interbreeding. Populations show attributes that individuals do not, such as density, natality, mortality, sex ratio and age distribution.

What is the difference between exponential and logistic growth?

Exponential growth occurs when resources are unlimited and follows dN/dt = rN, giving a J-shaped curve. Logistic growth occurs when resources are finite, so the habitat has a carrying capacity K, and follows dN/dt = rN((K minus N)/K), giving an S-shaped or sigmoid curve that levels off at K.

What is carrying capacity?

Carrying capacity, denoted K, is the maximum population size of a species that a particular habitat can support with its available resources. In logistic growth the population grows quickly at first and then slows as it nears K, finally stabilising around this value.

What is the difference between a regulator and a conformer?

A regulator keeps its internal conditions, such as body temperature and osmotic concentration, constant regardless of the external environment, which is energetically costly. A conformer allows its internal conditions to change with the environment. About 99 percent of animals and plants are conformers, while birds and mammals are regulators.

What is Gause’s competitive exclusion principle?

Gause’s competitive exclusion principle states that two species competing for the same limited resource cannot coexist indefinitely, and the competitively inferior species is eventually eliminated. Species may avoid this through resource partitioning, as shown by MacArthur’s warblers feeding in different parts of the same tree.

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