Microbial Resistance

Microbial resistance is the ability of microorganisms to withstand drugs or other conditions that would normally inhibit their growth or survival, making it a major concern in biology and public health. Resistance can arise through genetic mutations or the acquisition of resistance genes, which may alter drug targets, reduce membrane permeability, inactivate antimicrobial compounds, or activate efflux pumps. These traits can spread through microbial populations by reproduction and horizontal gene transfer, including plasmid exchange. Studying microbial resistance helps researchers understand treatment failure, track emerging resistant strains, guide antimicrobial use, and develop new therapies and infection-control strategies.

Microbial Resistance - Related Videos

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JoVE Journal - Biology
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Biology of Microbial Communities - Interview

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Cited by 3 •

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Pyrosequencing for Microbial Identification and Characterization

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Cited by 21 •

2013

Pyrosequencing is a versatile technique that facilitates microbial genome sequencing that can be used to identify bacterial species, discriminate bacterial strains, and detect genetic mutations that confer resistance to anti-microbial agents. In this video, the procedure for microbial amplicon generation, amplicon pyrosequencing, and DNA sequence analysis will be demonstrated.

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JoVE Lab Manual - Biology

Microbial and Fungal Diversity - Concepts

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2019

Bacteria and fungi are two highly diverse groups of organisms that can have significant beneficial or detrimental impacts on human health. For this reason, it is important to understand and distinguish between individual species of these groups. As you will recall, biological taxonomists group organisms based on their phylogenetic relatedness. The three domains of life, Bacteria, Archaea, and Eukaryota segregate life into three distinct groupings. While all bacteria fall within the domain...

Bacterial Growth on a Microfluidic Chip to Study Antibiotic Drug Resistance

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2025

Source: Liu, P. C., et al. Design and Use of a Low Cost, Automated Morbidostat for Adaptive Evolution of Bacteria Under Antibiotic Drug Selection. J. Vis. Exp. (2016)This video demonstrates the use of a microfluidic chip to visualize and compare the growth and morphology of wild-type and trimethoprim-resistant E. coli strains under trimethoprim antibiotic stress.

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