go to jove.com

HIGH SCHOOL

Biology

Concept Videos

Microbiology

Microbial Growth

Bacterial Cell Division by Binary Fission
01:26
Bacterial Cell Division by Binary Fission

Binary fission is the main way prokaryotes, such as bacteria, reproduce asexually. It produces two daughter cells that are genetically identical. When conditions are favorable, this process helps bacterial populations grow quickly.

The process starts when the bacterial chromosome is copied. The circular DNA unwinds at a specific origin of replication called oriC. DNA polymerases then build matching strands in both directions until replication reaches the terminus. This creates two identical...

Video Duration: 1 minute and 26 seconds
Bacterial Doubling Time
01:22
Bacterial Doubling Time

Bacterial generation time is the time needed for a bacterial population to double during exponential growth. It is a useful measure of microbial growth under optimal conditions. The rate can vary a lot from one species to another, and it can be affected by temperature, pH, and nutrient availability.

Some bacteria grow quickly, while others grow much more slowly. Escherichia coli can have a generation time of about 20 minutes. Mycobacterium tuberculosis has a much longer doubling time, often 12...

Video Duration: 1 minute and 22 seconds
Stages of Bacterial Population Growth
01:28
Stages of Bacterial Population Growth

Bacterial population growth in a closed system follows a set pattern called the bacterial growth curve. It describes how a bacterial population changes when temperature and nutrient levels are controlled. The curve has four phases: lag, log, stationary, and death.

The lag phase is the first stage. During this time, bacteria adjust to their new environment. They make enzymes and other needed molecules for cell division, but the number of cells changes very little. This step prepares the...

Video Duration: 1 minute and 28 seconds
Counting Microbes with Direct Methods
01:23
Counting Microbes with Direct Methods

Counting microbes with direct methods gives a fast way to measure how many cells are in a culture. In microbiology, these methods provide quantitative data for research and diagnostics. The main approaches are microscopic counts, plate counts, and serial dilution.

Microscopic counting uses a Petroff-Hausser chamber, which is a special microscope slide with a grid and a known depth. A liquid culture is viewed under the microscope, and the cells in the grid are counted to estimate cell density...

Video Duration: 1 minute and 23 seconds
Measuring Microbial Growth Without Counting
01:27
Measuring Microbial Growth Without Counting

Measuring microbial growth with indirect methods helps scientists estimate population size without counting every cell. These methods track signs of growth such as turbidity, metabolic activity, and biomass. They are useful because they are efficient and can give reproducible results.

Turbidity is one common approach. During exponential growth, microbial cells scatter light in proportion to their biomass. A spectrophotometer measures this as optical density, or OD, also called absorbance.

Video Duration: 1 minute and 27 seconds
Selecting Microbial Growth Media
01:27
Selecting Microbial Growth Media

Microbial growth media give microorganisms the nutrients and conditions they need to grow in the lab. These media let scientists study microbial physiology, behavior, and interactions. Choosing the right medium is important for research, diagnosis, food safety, and environmental studies.

Growth media can be solid, liquid, or semisolid. Solid media, often made with agar, support visible colony growth so microbes can be isolated and counted. Liquid media support even growth throughout the tube...

Video Duration: 1 minute and 27 seconds
Isolating and Preserving Pure Cultures
01:29
Isolating and Preserving Pure Cultures

Pure cultures are single microorganism species grown apart from mixed samples. They help scientists study microbes with the same genetic and physical traits under controlled conditions. This makes pure cultures important in microbiology research and in many real-world uses.

To obtain a pure culture, a single microbial type must first be separated from a mixed population. Common methods include serial dilution, streak plating, pour plating, and spread plating. The chosen sample is then placed...

Video Duration: 1 minute and 29 seconds
Microbial Colony Isolation Methods
01:24
Microbial Colony Isolation Methods

Microbial colony isolation methods are used to grow, separate, and count microorganisms in the laboratory. These techniques depend on placing microbes into a suitable growth medium under aseptic conditions, which help prevent contamination. The inoculum, or sample added to the medium, may be transferred directly or prepared as a diluted bacterial suspension.

The streak-plate method is a common way to obtain pure microbial colonies. In this method, a sample is spread across the agar surface in...

Video Duration: 1 minute and 24 seconds
Microbial pH Preferences and Growth Adaptation
01:29
Microbial pH Preferences and Growth Adaptation

Microbial growth depends on pH, the measure of how acidic or alkaline an environment is. Different microorganisms grow best in different pH ranges. Their ability to keep a stable internal pH helps protect enzymes and other macromolecules. External pH changes can challenge that balance.

Neutrophiles grow best near neutral pH, usually between 5.5 and 8.0. Escherichia coli is a common example. These microbes often live in neutral or slightly acidic places. They can use potassium-proton exchange...

Video Duration: 1 minute and 29 seconds
Microbial Growth at Different Temperatures
01:27
Microbial Growth at Different Temperatures

Temperature shapes microbial growth by changing enzyme activity, membrane fluidity, and other cell processes. Each microorganism has a minimum, optimum, and maximum temperature range. Below the minimum, membranes lose fluidity and transport stops. Above the maximum, proteins denature and membranes break down. At the optimum temperature, enzyme reactions run fastest and growth is highest.

Microorganisms are grouped by the temperatures they prefer. Psychrophiles grow in cold environments from...

Video Duration: 1 minute and 27 seconds
Microbes and Water Availability in Salty Environments
01:28
Microbes and Water Availability in Salty Environments

Microbes and water availability in salty environments are closely linked to osmolarity, which is the measure of solute concentration in a solution. Osmolarity helps determine how much water is available for living things. Water moves across semipermeable membranes by osmosis. It flows from a more dilute area to a more concentrated one.

When the outside environment has a high solute level, microbial cells lose water. This can cause dehydration and slow or stop growth. The amount of water...

Video Duration: 1 minute and 28 seconds
Microbial Oxygen Needs and Tolerance
01:29
Microbial Oxygen Needs and Tolerance

Microbial oxygen needs and tolerance shape how bacteria grow and survive. Oxygen can support energy production in some microorganisms, but it can also become harmful in certain environments. These differences help explain why microbes live in very specific places.

Microorganisms are grouped by how they use oxygen. Obligate aerobes, such as Mycobacterium tuberculosis, need oxygen because it serves as the terminal electron acceptor in aerobic respiration. Obligate anaerobes, such as Clostridium...

Video Duration: 1 minute and 29 seconds
Biofilm Growth and Surface Attachment
01:29
Biofilm Growth and Surface Attachment

Biofilms are communities of microorganisms that attach to a surface and build a self-made sticky matrix around themselves. This matrix is made of extracellular polysaccharides, which are sugar-based substances secreted by the cells. Biofilms may contain one species or several species, and their organized layers help the microbes survive better together.

Biofilm formation happens in four main stages: attachment, colonization, development, and dispersal. In the first stage, free-swimming...

Video Duration: 1 minute and 29 seconds