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Why Mass Spectrometry for Your Clinical Lab?

Aaron Hudson, VP/GM, Clinical Diagnostics, SCIEX Aaron Hudson is Vice President and General Manager, Clinical Diagnostics at SCIEX. Aaron has been with SCIEX for over 17 years, beginning as a Sales Representative, and holding various roles including Director Global...

Bad Leftovers: Antibiotic Residues in Food

We know that antibiotics used to treat livestock can end up in the food we eat. Routine food testing labs are essential for detecting compounds, like these, that can be dangerous to our health. Antibiotic residues include both parent molecules and metabolites left...

Why traditional MS/MS falls short for ADCs and how electron-activated dissociation (EAD) changes the equation

Why traditional MS/MS falls short for ADCs and how electron-activated dissociation (EAD) changes the equation

Antibody-drug conjugates (ADCs) are among the most promising—and analytically demanding—modalities in biopharma today. By combining large, heterogeneous antibodies with chemically labile payloads and linkers, ADCs introduce a level of structural complexity that challenges conventional analytical workflows. It also poses the challenge that the very features you need to measure are often the easiest to lose during analysis.

Sterile but toxic: Cereulide detection in food matrices

Sterile but toxic: Cereulide detection in food matrices

In a recent webinar, Ming Gao, Ph.D., Senior Research Chemist at Mérieux NutriSciences, explored the growing challenge of cereulide contamination in food products and the analytical strategies needed to detect this heat-stable toxin at trace levels. The session examined how LC-MS/MS can help laboratories overcome the limitations of traditional microbiological screening and meet emerging regulatory requirements.

How SCIEX Now empowers mass spec users to work with more control, clarity and confidence

How SCIEX Now empowers mass spec users to work with more control, clarity and confidence

In this interview, Andy Wilcox, Senior Market Development Manager, Aftermarket and Software, speaks with Susanna Baqué, Senior Director of Global Customer Experience, about how SCIEX Now gives customers one connected digital workspace to manage instruments, reduce time spent searching for information, resolve issues faster and keep their laboratory running more efficiently and with greater confidence.

PFAS explained: What they are, why they matter, and what’s changing

PFAS explained: What they are, why they matter, and what’s changing

PFAS are increasingly at the center of regulatory change, scientific research, and industry discussion worldwide. As analytical capabilities improve and expectations around environmental responsibility continue to evolve, understanding the role PFAS play, and how they are being addressed, has never been more important. This blog provides an overview of what PFAS are, why they matter, and how responses from regulators and industry are changing.

Why electron-activated dissociation (EAD) improves sequence variant analysis in biopharma LC/MS workflows

In biopharmaceutical development, sequence variants (SV) are considered an inherent risk of producing complex proteins in living systems. Sequence variants are unintended changes to the amino acid sequence of a biotherapeutic and can be caused by errors in transcription or translation in the host cell, or cell culture and process conditions. Detailed analysis of SVs is important in process and product development to ensure the drug’s safety and efficacy. Even low‑level sequence variants can have significant implications for product quality, safety, and efficacy, making their accurate detection and characterization a critical requirement across development, process optimization, and regulatory submission.  

Getting PFAS right: Why sample preparation matters

Getting PFAS right: Why sample preparation matters

Ultra‑low reporting limits, expanding target lists, and the constant risk of background contamination mean that even small missteps before injection can compromise data integrity. PFAS can be introduced at nearly every stage of prep, from sampling containers and PPE to SPE cartridges, filters, solvents, and lab consumables, making contamination control as critical as analyte recovery.

Perfluoroalkyl Acids in Drinking Water – EPA Method 537

Perfluoroalkyl Acids in Drinking Water – EPA Method 537

The United States Environmental Protection Agency (EPA), under the 1996 Safe Drinking Water Act (SDWA), requires a new list of no more than 30 unregulated contaminants to be monitored by public drinking water systems. Known as the Unregulated Contaminant Monitoring Rule (UCMR), a new list is published every five years. The last rule, UCMR3, was published May 2, 2012, and is the focus of the following application note, “Analysis of Perfluoroalkyl (PFFA) Acids Specified under the UCMR3 Using the QTRAP® 6500 LC-MS/MS system,” which can be found in the Food and Environmental Compendium.

SCIEX helps set food standards in China

SCIEX helps set food standards in China

One of the biggest concerns of Chinese citizens is food safety1. Even though China ranks second in global economies2, crowding, industrial pollution, labor and certain agriculture practices have contributed to this. In October 2015, however, we began to see a turnaround as the Chinese government revised its 2009 Food Safety Law in an attempt to strengthen its food supply oversight and quality.

Discover the new and accurate SCIEX way to enhance your routine food allergen testing

Discover the new and accurate SCIEX way to enhance your routine food allergen testing

Food allergy is an immune-mediated, adverse reaction to an antigenic protein. Even limited exposure to an antigen can provoke a significant reaction in sensitive individuals, causing rashes, itching and swelling in the mouth, nausea, vomiting, and asthma. Additionally, food allergies are the leading cause of anaphylaxis, an acute, potentially deadly allergic reaction. The prevalence and severity of food allergies are rising, with approximately 150 million people suffering from food allergies worldwide.1, 2 Presently, there is no cure for food allergies, and sufferers must rely on the correct labeling of foods to avoid consuming allergens. Hence, the development of sensitive and accurate analytical methods to screen for the presence of allergens in food products is necessary for the prevention of potentially life-threatening health problems for allergy sufferers.

Rapid Characterization of Biologics using CESI-MS

Rapid Characterization of Biologics using CESI-MS

Today, 30 monoclonal antibodies (mAbs), have been approved for the treatment of certain cancers, autoimmune and infectious diseases. Even more are in development, and perhaps you and your team of scientists are working on one now.  Keeping pace with fast development timelines while performing comprehensive characterization of biologic candidates can be challenging. However, more and more, scientists are tackling these challenges with new techniques to speed and simplify their characterization workflows. Read more in the application note, “Rapid Characterization of Biologics using a CESI 8000 – SCIEX TripleTOF® System,” found in the Biologics Analytical Characterization Compendium, which highlights how CESI separation coupled with high-resolution mass spectrometry can provide a comprehensive characterization of biotherapeutics.

Guardians of Antibiotics

Guardians of Antibiotics

This second is a blog series on the global war: Rise of Superbugs! Part 1 took a critical look at the antibiotic threat we face in today’s battlefield. The waning effectiveness of antibiotics as we head into what may seem like a post-antibiotic era has impelled new reformation to at the very least control antibiotic usage to ensure food safety.

Protein Quantitation Workflows using the TripleTOF 6600: A Case Study for Rituximab

Protein Quantitation Workflows using the TripleTOF 6600: A Case Study for Rituximab

Although the triple-stage quadrupole (QQQ) mass spectrometer remains the pillar for quantitative LC-MS/MS bioanalytical assays, due in part to the platforms’ high duty cycle when operated in multiple-reaction monitoring (MRM) mode, the applicability of high-resolution mass spectrometry (HRMS) has become of increasing importance for protein quantitation given the complexity of proteolytically digested samples in the surrogate peptide approach.  While the QQQ demonstrates high sensitivity and specificity, the relatively low-resolution measurement of m/z may fail to differentiate analyte response from nominally isobaric background interference.  In contrast, HRMS with accurate mass assignment of product ion allows interference to be resolved through judicious selection of a post-acquisition mass extraction window whose tolerance is largely dictated by the effective resolution and stability of mass calibration.

Rise of the Super Bugs

Rise of the Super Bugs

The term “antibiotic-free” is becoming more and more popular in food advertising these days. Take Subway for example; in March the company elevated their antibiotic-free policy and introduced a new antibiotic-free rotisserie-style chicken sub, and they plan to, “Nix antibiotics in all its meat by 2025.”

Using Mass Spec to Detect Trace Explosives

Using Mass Spec to Detect Trace Explosives

The importance of protecting a country’s border is a very topical issue. The war on drugs and terror is a 24/7 task 366 days a year (2016 is a leap year). The government agencies in charge must be vigilant and maintain instrumentation to prevent terrorism, drug trafficking, and other illegal activities. Mass Spectrometry is rapidly becoming the instrument of choice for border agencies throughout the world when it comes to explosive trace detection and forensic drug compounds.

Routine Food Testing Using Mass Spectrometry

Routine Food Testing Using Mass Spectrometry

These days, it is not uncommon to hear about the overzealous application of pesticides to crops or the injection of antibiotics into animals. From grocery stores to restaurants, our food is at risk. How then, can consumers be assured that chemical contaminants like these , not to mention the risk of mycotoxin compounds are not making their way to your dinner table?

Industrialize Your Quantitative Proteomics Using a More Simplified Sample Prep

Industrialize Your Quantitative Proteomics Using a More Simplified Sample Prep

in part 1 and part 2 of this blog series we discussed how you can increase your efficiency for high throughput quantitative proteomics by industrializing your sample analysis and data processing. Microflow SWATH® Acquisition on your TripleTOF® system coupled with OneOmics™ data analysis tools allow you to run samples faster, collect data faster, and process your data files faster. It all adds up to getting more meaningful biological information in a shorter amount of time.

Quantify and Identify Pesticides in Complex Food Samples Using the QTRAP 6500 LC-MS/MS System

Quantify and Identify Pesticides in Complex Food Samples Using the QTRAP 6500 LC-MS/MS System

Recent regulations on food analysis require screening for pesticides using confirmatory techniques, such as GC-MS and LC-MS/MS. More than 1000 pesticides are used worldwide and, along with their metabolites and degradation products, are present in food. There is a demand for powerful and rapid analytical methods that can identify pesticides with high confidence in a broad range of food matrices and quantify at low concentrations with good accuracy and reproducibility. Challenges for pesticide residue laboratories at the moment are the request to test for more compounds, in a wider range of samples, all without sacrificing data quality.

Industrialize Your Quantitative Proteomics Using a More Simplified Sample Prep

Industrialize Your Quantitative Proteomics with the OneOmics Project

For many labs, the days are long gone when it was acceptable to run only a few samples a week for your quantitative proteomics projects. The pressure for faster turn-around times, to support larger cohort studies, to sustain multiple research directions, and to transition from a purely unbiased discovery mode to verifying something truly unique and interesting, all demand a faster pace. Many labs are now being asked to analyze a hundred samples a week or more. In part 1 of this blog series, we saw how moving to a microflow SWATH workflow can dramatically increase your throughput with little compromise on overall results. In this part, we’ll address what to do with all of this data because it’s just no good if all we’ve done is move the bottleneck downstream.

Characterize and Monitor Host Cell Proteins (HCPs) Using SWATH Acquisition Technology

Characterize and Monitor Host Cell Proteins (HCPs) Using SWATH Acquisition Technology

During drug development, the removal of impurities and purification of a final drug product is absolutely essential in order to ensure the safety and efficacy of a therapeutic drug. Of particular concern for biologics are impurities that can stem from host cell proteins. Because biologics are developed through cell culture and fermentation within a host cell, proteins from this host cell can be co-purified with the final biologic. These host cell proteins or HCPs can cause the final product to have undesired side-effects such as eliciting an immune response in patients taking the drug, or affecting the drug’s stability or efficacy. As a result, regulating agencies require drug companies to monitor levels of HCPs during the development and purification of a biologic and to remove HCPs to an acceptable level in the final biotherapeutic product.

Simplifying Biologics Bioanalysis Sample Prep

Simplifying Biologics Bioanalysis Sample Prep

These days, everyone seems to be furiously scratching tickets to become instant winners, but I’ll bet you didn’t expect to find sample prep tips that way. For large molecule bioanalysis, preparing your samples can be one of the biggest challenges. It’s a whole different world from traditional small molecule bioanalysis. SCIEX has developed techniques and automation that make biologics sample prep simpler and faster, with reproducible results.

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