Improper handling and storage of cereal grains and oilseeds result in the production of toxins known as aflatoxins which are not generally destroyed by normal cooking process. Aflatoxins are produced by

Updated 11 Apr 2026

Contents17
UPSC Prelims GS2013Geography
  1. Abacteria
  2. Bprotozoa
  3. Cmoulds
  4. Dviruses
Show answer

Answer: (C) moulds

Aflatoxins are naturally occurring mycotoxins (toxic substances produced by fungi) that are produced by many species of Aspergillus — particularly Aspergillus flavus and Aspergillus parasiticus.

These are MOULDS (fungi).

The term 'mould' refers to a variety of fungi that grow as semi-microscopic organisms and whose mycelium (thread-like structure) forms a loose meshwork rather than a dense tissue.

Moulds thrive in warm, humid conditions — which is exactly what happens when cereal grains and oilseeds are improperly stored.

Aflatoxins are particularly dangerous because they are carcinogenic (cancer-causing) and are NOT destroyed by normal cooking temperatures.

They are NOT produced by bacteria (a), protozoa (b), or viruses (d).

This topic was in the news due to the EU considering a ban on Indian groundnut imports due to aflatoxin contamination.

Why this was asked

Aflatoxins are carcinogenic toxins that survive normal cooking temperatures, making food storage quality a major public health issue.

EU countries frequently reject Indian agricultural exports like groundnuts and spices due to aflatoxin contamination, creating trade disputes.

The question tests whether students can distinguish between different microorganism types - fungi (moulds) versus bacteria, viruses, and protozoa.

Aflatoxins & Mycotoxins

Science And Technology aflatoxins toxins cereal grains oilseeds cooking process

Aflatoxins: Production, Properties & Food Safety Concerns

Must know

Aflatoxins are mycotoxins produced by Aspergillus moulds, particularly A. flavus and A. parasiticus

Found in improperly stored cereals, oilseeds, nuts — especially groundnuts

Carcinogenic and heat-stable — not destroyed by normal cooking temperatures

Good to know

Major concern for food exports — EU has banned Indian groundnuts due to contamination

What Are Aflatoxins

Aflatoxins are naturally occurring mycotoxins — toxic compounds produced by fungi. The name comes from *Aspergillus flavus* + toxin. These are among the most potent carcinogens found in nature and pose serious health risks through contaminated food.

Key Properties

Property

Details

Significance

Producer

Aspergillus moulds (A. flavus, A. parasiticus)

Fungi, not bacteria/viruses

Heat Stability

Not destroyed by normal cooking (100°C)

Cannot be eliminated by cooking

Toxicity

Carcinogenic — causes liver cancer

Extremely dangerous even in small amounts

Detection

Fluorescence under UV light

Glows blue-green under black light

Solubility

Fat-soluble — concentrates in oils

Persists in processed oil products

Commonly Affected Foods

Food Category

High-Risk Items

Storage Conditions Leading to Contamination

Oilseeds

Groundnuts, cottonseed

High moisture + warm temperature

Cereals

Maize, wheat, rice

Poor ventilation during storage

Tree Nuts

Almonds, pistachios

Humid conditions post-harvest

Spices

Chilli, coriander, turmeric

Monsoon moisture exposure

India Context

India faces major export challenges due to aflatoxin contamination. The EU has repeatedly banned Indian groundnut exports due to high aflatoxin levels. FSSAI has set maximum limits of 15 ppb for aflatoxins in food products. Poor post-harvest storage infrastructure makes this a recurring problem for Indian agriculture.

Exam traps

Source confusion: Aflatoxins are produced by moulds (fungi), not bacteria, viruses, or protozoa

Heat stability trap: Unlike most toxins, aflatoxins are NOT destroyed by cooking — they're heat-stable

Name confusion: Aspergillus flavus* produces aflatoxins, but all Aspergillus species don't — mainly *A. flavus and A. parasiticus

Storage misconception: Aflatoxins form during improper storage, not during cultivation or processing

Aspergillus Moulds

Science And Technology moulds

Aspergillus: Key Mould Species & Their Significance

Must know

Aspergillus is a genus of moulds (filamentous fungi) with over 200 species

A. flavus and A. parasiticus produce aflatoxins — major food safety concern

Good to know

Some species are beneficial — A. oryzae used in fermentation, A. niger in citric acid production

What Are Moulds

Moulds are filamentous fungi that grow as thread-like structures called hyphae. Unlike yeasts (single-celled fungi), moulds form visible fuzzy growths. Aspergillus moulds are among the most common environmental fungi, found in soil, air, and decaying organic matter.

Important Aspergillus Species

Species

Key Product/Effect

Significance

Common Location

A. flavus

Aflatoxin B1 (most toxic)

Major food contaminant

Stored grains, nuts

A. parasiticus

Aflatoxins B1, B2, G1, G2

Food contamination

Groundnuts, tree nuts

A. oryzae

Enzymes (amylase, protease)

Food fermentation — sake, miso

Controlled fermentation

A. niger

Citric acid

Industrial production

Commercial cultures

A. fumigatus

Allergens

Respiratory infections

Compost, soil

Growth Conditions

Optimal temperature: 25-35°C — typical tropical storage conditions

Moisture requirement: Above 15% moisture content in grains

pH tolerance: Wide range (2-8) — can survive in acidic and alkaline conditions

Oxygen need: Aerobic — requires oxygen, unlike some bacteria

Substrate preference: High carbohydrate and oil content foods

Exam traps

Fungus vs Mould: All moulds are fungi, but not all fungi are moulds — yeasts are single-celled fungi

Beneficial vs Harmful: A. oryzae is used in food production, while A. flavus contaminates food

Environmental ubiquity: Aspergillus spores are everywhere in the environment — contamination happens during storage, not cultivation

Microorganism Classification

Science And Technology bacteria protozoa moulds viruses

Major Microorganism Groups: Structure & Characteristics

Must know

Four major groups: Bacteria (prokaryotes), Fungi (eukaryotes), Protozoa (eukaryotes), Viruses (non-cellular)

Cell structure is the key distinguishing feature — prokaryotic vs eukaryotic vs non-cellular

Moulds are fungi — filamentous, eukaryotic, with cell walls containing chitin

Microorganism Comparison

Type

Cell Structure

Size Range

Key Features

Examples

Bacteria

Prokaryotic (no nucleus)

0.5-5 μm

Cell wall with peptidoglycan

E. coli, Streptococcus

Fungi

Eukaryotic (has nucleus)

2-100 μm

Cell wall with chitin, includes moulds & yeasts

Aspergillus, Candida

Protozoa

Eukaryotic (has nucleus)

10-100 μm

No cell wall, motile, animal-like

Amoeba, Plasmodium

Viruses

Non-cellular

20-300 nm

Obligate parasites, DNA/RNA + protein coat

HIV, COVID-19

Fungi Classification

# Kingdom Fungi
## Yeasts
- Single-celled
- Budding reproduction
- Fermentation
- Candida, Saccharomyces
## Moulds
- Filamentous hyphae
- Spore reproduction
- Visible colonies
- Aspergillus, Penicillium
## Mushrooms
- Macroscopic
- Fruiting bodies
- Saprophytic
- Edible & toxic species

Toxin Production Patterns

Bacteria: Produce endotoxins (cell wall components) and exotoxins (secreted proteins)

Fungi: Produce mycotoxins (secondary metabolites) — including aflatoxins

Protozoa: Generally don't produce toxins — cause disease through tissue damage

Viruses: Don't produce toxins — cause disease through cell destruction and immune response

Exam traps

Mould confusion: Moulds are fungi, not bacteria — they have eukaryotic cells with nuclei

Size trap: Viruses are smallest (nanometers), bacteria are larger (micrometers), fungi largest among microscopic organisms

Cell wall confusion: Bacteria have peptidoglycan, fungi have chitin, protozoa have no cell wall

Toxin source: Mycotoxins come from fungi (like aflatoxins), not from bacteria or viruses

Food Storage & Safety

Indian Economy improper handling storage cereal grains oilseeds

Food Storage Practices & Contamination Prevention

Must know

Poor storage conditions — high moisture, warmth, poor ventilation — promote mould growth

Post-harvest losses in India are 15-20% due to inadequate storage infrastructure

Good to know

FSSAI regulations set maximum aflatoxin limits at 15 ppb for food products

Storage Conditions vs Contamination Risk

Factor

Safe Level

Risk Level

Impact

Moisture Content

Below 14% for grains

Above 15%

Mould growth accelerates

Temperature

Below 20°C

Above 25°C

Fungal reproduction increases

Humidity

Below 65% RH

Above 70% RH

Surface moisture enables spores

Ventilation

Proper air circulation

Stagnant air

Heat and moisture buildup

Container Type

Airtight, moisture-proof

Permeable bags

External contamination

India's Storage Challenges

Inadequate infrastructure: Only 15% of produce has access to cold storage facilities

Monsoon impact: High humidity during storage coincides with post-harvest season

Traditional methods: Jute bags and open storage allow moisture penetration

Export losses: ₹3,000+ crore annual losses due to aflatoxin rejection in international markets

Prevention Methods

Method

Mechanism

Effectiveness

Cost

Proper Drying

Reduce moisture to <14%

High — prevents initial growth

Low

Hermetic Storage

Airtight containers/silos

Very High — eliminates oxygen

Medium

Chemical Treatment

Antifungal compounds

Moderate — residue concerns

Medium

Cold Storage

Temperature <20°C

High — slows all biological activity

High

Regular Monitoring

Moisture/temperature checks

High — early detection

Low

Exam traps

Prevention timing: Contamination occurs during storage, not during cultivation — focus on post-harvest practices

Temperature confusion: Cooking doesn't destroy aflatoxins — prevention must happen during storage

Moisture critical: Even 1-2% excess moisture can trigger exponential mould growth

Economic impact: Storage losses affect farmer income and export competitiveness — not just food safety