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The Evolution of Polymicrobial Assessment: From Culture to Automation

Multiple microbes on one dish

The study of biofilm communities presents unique challenges in experimental design and analysis. While mixed bacterial populations offer fascinating insights into microbial interactions and community dynamics, accurately characterizing and investigating these complex systems has previously required sophisticated and tedious technical approaches. Here, we will discuss advances in technology that have helped to simplify and streamline polymicrobial investigations.

Expanding Research Assays

Throughout the last decade, a trend for growing and assaying biofilms under shear flow has gained traction among microbiologists. The rationale for investigating biofilms under flow is multi-dimensional. A recent Cell Microsystems survey asked why microbiologists are using shear flow found that the top responses were:   

  1. Improved physiological relevance
  2. Enhanced biofilm attachment and detachment
  3. Better nutrient and gas exchange

Of the scientists surveyed, 40% indicated that they use a BioFlux Shear Flow System. This system provides unique advantages over other methods to induce shear stress, such as slide-based parallel plate flow chambers and benchtop rockers.

BioFlux uses microfluidic channels embedded onto the bottom of standard-sized 6, 24, or 48-well plates to create isolated and independent flow chambers where user-defined wall shear stress is initiated and maintained by digitally controlled air pressure. This not only simplifies the setup and experimental processes but also ensures that experiments are contained and do not contaminate the shear flow system.

Although shear flow has been thoroughly demonstrated to improve the biological relevance of biofilm investigations1, an often overlooked aspect of biofilm physiology is the significant role that multicellular aggregates play in biofilm formation2. When investigating Pseudomonas aeruginosa, it has been demonstrated that multicellular aggregates lead to faster biofilm formation and enhanced resistance to antimicrobials and immune responses3. In addition, multispecies microbial aggregates have been shown to dominate single cells in human saliva4. Together, these data show that aggregates are important areas of investigation because they are more likely to represent physiological biofilm formation and growth.

Traditional Culture-Based Methods

6 petri dishes with biofilms

Despite the importance of polymicrobial interactions, most biofilm investigations rely on assays of single-cell, single-species microbes due to the impracticality and technical requirements of current methods. Current culture-based microbial discrimination techniques include:

  • Selective and differential media for species isolation
  • Biochemical profiling for metabolic characterization
  • Morphological analysis for phenotypic differentiation

These approaches present notable experimental limitations, such as:

  • Poor reproducibility across laboratories
  • Time-intensive protocols that limit experimental throughput
  • Potential bias in species recovery rates
  • Variable standardization affecting data quality

Advancing Experimental Rigor in Microbial Counting

Accurate and consistent counting of heterogeneous microbial species enables enhanced experimental control and more reproducible assays. Although cell counters are heavily relied upon in many areas of life science research, their limited size range and poor aggregate discrimination abilities greatly reduce their utility in many microbiology labs, particularly those working with multiple microbial species. To eliminate these problems, the CASY Cell Counter and Analyzer uses a label-free, low-voltage electrical field to count and size discriminate cells over a broad counting range (0.7-120 µm). Furthermore, volume-based aggregate quantification greatly increases the accuracy above the image discrimination methods that most cell counters use.

The implementation of CASY technology represents a key methodological advancement in polymicrobial research. Experimental advantages include:

Quantitative Precision

Automated analysis of up to 5 microbial species from a single sample eliminates subjective interpretation, providing standardized data suitable for statistical analysis. This enhancement in experimental reproducibility facilitates more robust hypothesis testing.

Increased Throughput

Because CASY does not use dyes, there is no need to culture or stain microbes, therefore, the rapid processing enables larger experiments and increased biological replicates, strengthening statistical power in research studies.

Standardized Analysis

The platform’s automated protocols ensure consistent methodology across experiments and between research groups.

The CASY platform’s unique capabilities in precise multi-species quantification and automated analysis represent a significant advance for polymicrobial research. Furthermore, the unmatched aggregate discrimination abilities of CASY make it ideal for biofilm investigations.

Future Research Directions

Together, BioFlux and CASY open new avenues into biofilm investigations. Some important research areas that can be enhanced by accurate microbial species and aggregate discrimination along with assaying under shear flow include:

  • Spatial-temporal dynamics in mixed populations
  • Competition and cooperation mechanisms
  • Environmental influence on community structure
  • Evolution of polymicrobial interactions

These methodological advances will drive a deeper understanding of microbial community biology and ecological interactions. Taken together, these investigations may open new avenues into how mixed microbial biofilms not only impact health and disease but also how these organisms and reactions can be harnessed for biofuels and bioremediation.

References

  1. Tsagkari, E., Connelly, S., Liu, Z. et al. The role of shear dynamics in biofilm formation. npj Biofilms Microbiomes 8, 33 (2022). https://doi.org/10.1038/s41522-022-00300-4
  2. Doloman, A., Sousa, D.Z. Mechanisms of microbial co-aggregation in mixed anaerobic cultures. Appl Microbiol Biotechnol 108, 407 (2024). https://doi.org/10.1007/s00253-024-13246-8
  3. Kragh, K. N., Hutchison, J. B., Melaugh, G., Rodesney, C., Roberts, A. E., Irie, Y., Jensen, P. Ø., Diggle, S. P., Allen, R. J., Gordon, V., & Bjarnsholt, T. Role of Multicellular Aggregates in Biofilm Formation. mBio, 7, 2 (2016). https://doi.org/10.1128/mBio.00237-16
  4. Simon-Soro, A., Ren, Z., Krom, B. P., Hoogenkamp, M. A., Cabello-Yeves, P. J., Daniel, S. G., Bittinger, K., Tomas, I., Koo, H., & Mira, A. Polymicrobial Aggregates in Human Saliva Build the Oral Biofilm. mBio, 13, 1 (2022). https://doi.org/10.1128/mbio.00131-22
Anson Blanks

Dr. Anson Blanks completed his BS in exercise physiology at East Carolina University and his MS in clinical exercise science at Appalachian State University. After working as a clinical exercise physiologist in cardiopulmonary rehabilitation, Dr. Blanks decided to pursue a career in scientific research. He attended Virginia Commonwealth University, where he completed his Ph.D. in Rehabilitation and Movement Science. After spending several years as a research and development scientist in biotechnology industry, Dr. Blanks is now a scientific marketing manager for Cell Microsystems in Durham, NC.

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Unlocking the Secrets of Antibiotic Resistance: How Shear Flow Systems Are Revolutionizing the Fight Against Superbugs
Unlocking the Secrets of Antibiotic Resistance: How Shear Flow Systems Are Revolutionizing the Fight Against Superbugs

In the ongoing battle against antibiotic-resistant bacteria, or “superbugs,” scientists are constantly seeking innovative tools to understand the mechanisms of resistance and develop effective treatments. One such groundbreaking technology is shear flow systems, which have emerged as game-changers in microbiological research. By simulating the dynamic conditions of bacteria’s natural environments, such as the human body or food processing, shear flow systems provide unique insights into bacterial behavior and resistance mechanisms that traditional static methods simply cannot achieve. In this blog post, we’ll explore the benefits of using shear flow systems to combat antibiotic resistance and develop next-generation therapies.

Why Shear Flow Systems Are Essential for Studying Antibiotic Resistance

Antibiotic resistance is a complex phenomenon influenced by a variety of factors, including genetic mutations, horizontal gene transfer, and the formation of biofilms. Traditional laboratory methods often fail to capture the dynamic nature of these processes, leading to incomplete or misleading results. Shear flow systems address this limitation by providing a more realistic environment for bacterial growth and interaction. Here’s how:

1. Mimicking Real-World Conditions

In the human body, bacteria are rarely in a static state. They are constantly exposed to fluid flow, such as blood circulation or urine flow, which influences their behavior and resistance mechanisms. Shear flow systems can replicate these conditions, allowing researchers to study how bacteria respond to antibiotics under realistic physiological conditions. This is critical for understanding how resistance develops and persists in vivo. This benefit was recently highlighted in a webinar presented by Dr. Katharina Richter, a microbiology researcher from the University of Adelaide in Australia. Using a high-throughput BioFlux Shear Flow System, Dr. Richter and her team were able to test 3 different methods of superbug treatments under physiological conditions.

2. Studying Biofilm Formation and Resistance

Biofilms—structured communities of bacteria encased in a protective matrix—are a major contributor to antibiotic resistance. Biofilms are notoriously difficult to treat because they shield bacteria from antibiotics and the immune system. Shear flow systems enable researchers to study biofilm formation in real time, observing how bacteria adhere to surfaces, form microcolonies, and develop resistance under flow conditions. For example, using a BioFlux, Dr. Richter was able to leverage high-resolution imaging to obtain unprecedented insight into the biofilm killing and prevention efficacy of a copper and diethyldithiocarbamate (DDC) combination nanoparticles¹. The group is currently investigating the use of a Cu-DDC infused gel that can be injected into wounds that are at high risk for chronic infection, such as hernia.

From Milliliters to Microliters: How a Shear Flow System Can Reduce Sample Requirements for Experiments
From Milliliters to Microliters: How a Shear Flow System Can Reduce Sample Requirements for Experiments

Imagine working with a rare patient-derived cell samples. In a traditional setup, you might need 1 milliliter of sample (equivalent to about 20 drops) to run an experiment. With a microfluidic system, you could potentially get the same results with just 10 microliters (about one-half of a single drop). This efficiency opens up entirely new research possibilities, especially in fields where sample availability is a limiting factor.

Whether due to rarity, cost, or difficulty in obtaining samples, the ability to conduct meaningful experiments with limited sample volumes has long been a goal in biological and chemical research. In this quest for more efficient and precise laboratory techniques, microfluidic shear flow systems have emerged as game-changing tools. These systems are not only reducing the amount of sample required for experiments but are also proving their versatility across a wide range of sample types.

Sample volume

Traditional experimental setups, including static and non-microfluidic shear flow, often demand significant amounts of material, which can be both costly and impractical. This is especially true when working with precious or limited samples such as rare biological specimens, expensive chemicals, or newly synthesized compounds. Enter microfluidic shear flow systems – an elegant solution that’s revolutionizing how investigators approach assays. These miniaturized platforms are proving invaluable across multiple disciplines by dramatically reducing sample requirements from milliliters down to microliters, while maintaining experimental integrity. This up to 1000-fold reduction in sample volume is particularly crucial when working with substances, such as patient-derived cells or novel pharmaceuticals. By significantly reducing the volume of reagents and samples needed, these systems cut costs and make experiments more sustainable.

Sample versatility

Equally as impressive as their sample and reagent reduction ability, is the versatility of microfluidic shear flow systems to adapt to different types of samples.

  • Human Samples: Researchers can study cellular behavior under controlled shear stress, mimicking physiological conditions such as blood or saliva flow.
  • Nanomaterials: The precise fluid dynamics in these systems allow for the uniform dispersion and manipulation of nanoparticles, enabling high-resolution studies in materials science.
  • Microbes: Continuous fluid flow more closely represents the natural environments of many microbes, such as plumbing, food processing, and chronic wounds.

The ability to work with multiple sample types in the same system allows researchers to explore different experimental conditions without the need for multiple specialized setups. By precisely controlling channel geometries and flow rates, researchers can subject different sample types to well-defined shear conditions, enabling detailed studies of cellular mechanics, protein interactions, and material properties.

Microfluidic…
Single Cells: Lab Tune Sung to the Rhythm of "Jingle Bells"
Single Cells: Lab Tune Sung to the Rhythm of "Jingle Bells"

By Jessica Hartman, Ph.D.

Toiling in the lab

With a deadline on its way

To the scope I go

On a Saturday

I don’t see a clone

I’ve looked for one that’s right

What misery these data bring,

I’ll have to look all night,

Oh! Single cells, single cells, dilutions aren’t the way

Oh, I wish I had an AIR to pick a clone, to-da-ay!

Single cells, single cells, I need a better way

Use a Raft to grow a clone or be sad this holiday!

Use a Raft to grow a clone or be sad this holiday!

Now it’s getting late

My spirits are so low

My PI will hate

If my cells don’t grow

My eyesight’s getting dim

A clone I cannot see

My chances are so slim

I need CellRaft Cytometry

Oh! Single cells, single cells, sorters aren’t the way

Oh, I wish I had an AIR to pick a clone, to-da-ay!

Single cells, single cells, I need a better way

Use a Raft to grow a clone or be sad this holiday!

Use a Raft to grow a clone or be sad this holiday!

Oh! Single cells, single cells, dispensers aren’t the way

Oh, I wish I had an AIR to pick a clone, to-da-ay!

Single cells, single cells, I need a better way

Use a Raft to grow a clone or be sad this holiday!

Use a Raft to grow a clone or be sad this holiday!

 

 

 

 “Single Cell” vocalist: Virginia Laurie

Jessica Hartman, Ph.D.Senior Director of Product Applications | jessica.hartman@cellmicrosystems.comDr. Jessica Hartman has a B.S in Biology from the University…