Tuesday, May 8, 2018

Putting Viral Clearance Capabilities to the Test

nobeastsofierce/Shutterstock.com Drug products based on live cells have an inherent risk for viral contamination that could cause serious harm or death to patients. When applying for regulatory approval, a drug license holder must demonstrate that its proposed manufacturing process can remove or inactivate potential viral contaminants.

Viral clearance studies assess the capability of a downstream process to remove or inactivate potential contaminants and are based on a scale-down model of a biopharmaceutical production process. The studies must be designed to evaluate potential viruses, be representative of the production process, meet regulatory requirements, and provide reportable data. In addition, the testing should be conducted under “worst-case” conditions.

Viral clearance study elements

 “The scale-down process used in the spiking study must be representative of the full-scale process and care must be taken to demonstrate the validity of the scale-down model using appropriate model viruses,” says Kate Smith, principal scientist, global operational development services, MilliporeSigma. “The study should be carefully designed to ensure the capacity to remove or inactivate virus is not over-estimated, applying ‘worst-case’ parameters to individual steps, where known.”

The key elements of a viral clearance validation are choice of process steps, viruses, points of sample withdrawal, and the correctness of scaling, says Gustav Gilljam, client project manager, Vironova Biosafety. “The process steps chosen must represent different mechanisms in virus inactivation/removal to be included. The viruses tested should include both enveloped and non-enveloped viruses, and both RNA and DNA viruses with different physical and chemical properties.” He also notes that the studies should be conducted under worst-case conditions and performed according to good laboratory practice.

Developing a test protocol, including the selection of viruses, is crucial. The model viruses used, and the number of steps investigated for viral clearance capacity, should be related to the risk assessment and product-specific regulatory guidance, says Horst Ruppach, director, viral clearance and virology at Charles River. “Pre-tests like cytotoxicity and interference assays are essential to prove the validity of the assays used for viral quantification,” he explains. “The product- and step-specific adjustment of virus spiking, sample treatment, and assay sensitivity ensure the viral clearance potential can adequately be demonstrated.”

Drug license holders often turn to contract testing laboratories for this specialized testing; planning and communication are key elements. “Studies should be planned enough in advance to allow time to determine the scope and essential parameters of the study, to obtain the necessary materials for the study, and to work with your testing partner to schedule the study,” says Katherine F. Bergmann, manager, viral safety and clearance services, Eurofins Lancaster Laboratories. “The key parameters that determine the scope of the study are the clinical stage and indication of the product and the nature and origin of the source material.”

What to test, and when

Viral clearance studies typically are conducted at two phases of product development. “The early-stage study demonstrates the general viral clearance capacity, while the late-stage study typically demonstrates the robustness of the clearance capacity,” says Ruppach. “The extent of both depends on the product type and the development phase.”

While only one or two viruses and a minimum number of samples are tested in early clinical phase, says Bergmann, four or five viruses are typically tested for products approaching or in commercial manufacturing. “Additional samples are evaluated in order to determine mass balance,” she says. “In addition, expanded ranges of critical operating parameters may be evaluated, and column cleaning and carry-over must be evaluated.”

In testing prior to Phase III, Gilljam notes, “Reduction of virus infectivity is the most important measure, but various methods to detect viral genome copies or physical particles could be a complement. The manufacturing limits of parameters in these steps that might have an impact on the virus reduction should be challenged in the virus validation studies prior to Phase III, to show the robustness of the steps.”

Smith notes the key areas of viral safety testing. Raw materials and cell substrates must be characterized using molecular, in-vitro, and in-vivo testing strategies, she says, and cell banks and end-of-production cells are tested to identify species of origin, confirm expression construct stability, and to demonstrate the absence of potential bacterial and viral contamination. “Additional routine bulk harvest testing and the viral clearance study complete the tripod of viral safety testing,” she says.

Challenges in study design

The multi-step nature of bioprocesses—and the viruses themselves—present challenges to the development of viral clearance studies and limit their effectiveness.

 “All steps in a viral clearance study must be orthogonal; they must clear virus by independent mechanisms,” says Bergmann. “For example, if one step inactivates virus due to low pH, then a second step that uses a low pH buffer may not also be included, since virus that escapes inactivation by one low pH step is likely to be resistant to a second low pH incubation. Achieving a satisfactory clearance level can be limited by the virus titer, by cytotoxicity, or by viral interference,” she explains. “These limitations can be addressed by careful study design to optimize the clearance available from each step.”

The European Medicines Agency lists potential limitations in a guideline (1), notes Smith. “Test sample composition can limit assay sensitivity and reduction factors obtained where large dilutions are required to alleviate cytotoxic effect on indicator cell lines,” she says. “Virus spike quality can influence the operation of key steps; for example, higher purity virus spikes are required for virus reduction filters to minimize virus induced flux decay and achieve the target filter capacity.” International Council for Harmonization (ICH) Q5A (2) also lists limitations of viral clearance studies.

Ruppach and Gilljam note that the use of virus models presents some limitations.  “Relevant viruses may be difficult or impossible to produce in high concentrations. Therefore, model viruses, preferably of the same genus or family, are used as substitutes,” says Gilljam.

“Even though few model viruses represent the biophysical characteristics of a broad range of mammalian viruses of different virus families, they are still models prepared and kept under laboratory conditions. They do not perfectly mimic the characteristics of related wild-type viruses,” says Ruppach. “This is of specific concern for biopharmaceuticals directly isolated from human or animal tissues, like human plasma products. On the other hand, the laboratory model viruses have a great chance of contaminating bioreactors using continuous cell lines.”

Gilljam identified other challenges. “Due to the volume tested in the viral clearance study and that a dilution of the sample is needed to avoid any cytotoxicity to the indicator cells and the interference with the ability of the indicator cells to be infected with the virus, it is not possible to analyze the entire volume for the presence of infectious virus,” he says. “There is always a lower limit of detection, so the virus infectivity may be greatly reduced, but never to zero. Not all viruses are known. We will find what we look for but may miss the unexpected.”

The relevance of the model virus depends on the virus step analyzed, Ruppach notes. “Virus retentive filtration is based on size exclusion, and a model of a specific size will represent all viruses of the same or greater size. But removal with chromatography steps is based on the virus envelope characteristics, which can differ among viruses of the same virus family and even among different strains,” he explains.

Another limiting factor is the relevance of the downscale model. “In some cases, it’s easy to downscale the manufacturing scale but in other cases a 1:1 downscale isn’t possible,” Ruppach says.

Assessing risk

As in other areas of biopharmaceutical development, a risk assessment can define potential risks of viral contamination—and the need for viral clearance—in different phases of a production process.

Risk assessment defines the viruses of risk, the type of and how many model viruses should be analyzed in the viral clearance study, and the overall reduction needed, says Ruppach. “In general, a high and robust viral clearance capacity is a much more efficient measurement to reduce viral risk than any extensive viral testing program; in fact, it can significantly reduce the testing on viruses.”

Assessments should consider the entire production process and any changes.

The source of starting materials and raw materials used in production are of primary concern, says Bergmann, and a risk assessment identifies which viruses are likely to be contaminants and the levels of contamination that could potentially exist. “This analysis is relatively simple for biologicals produced in well-characterized cells in culture but can be much more complex for products derived from uncharacterized cells or from animal materials (e.g., tissue),” she said. “Understanding the risks of viral contamination leads to the choice of viruses selected for a study, as well as the level of virus clearance required, to assure a safe product.”

Assessments should consider the entire production process and any changes. “The impact on the validity of the viral clearance data by changes to the process, such as facility, procedural, process, and raw materials must be assessed,” says Smith. “A detailed risk assessment covering all aspects of the manufacturing process demonstrates an understanding and control of the process and provides a framework to evaluate the impact of each change both on the affected unit operation and those following. An informed decision can then be made to determine the scope of revalidation required.”

Keeping pace with biopharma advances

While the primary guidance documents—EMA/CHMP/BWP/268/95 and ICH 5QA—are 20 years old, they are still adequate for determining the background and principles for viral clearance, says Ruppach. There is space for adaptions based on the experiences made since the guidances were issued, he adds.

Bergmann concurs and notes that while these guidance documents work well for monoclonal antibodies and therapeutic proteins, “use of the guidelines for novel types of products can be challenging” and revisions of regulatory guidance documents need to address these product types.

Advances in production technology also can present complications for the viral clearance studies. “A lack of appropriate scale-down models and strategies to support changes in industry practices such as continuous processing can restrict the design of the viral clearance study,” Smith says. “As new markets open up to the industry, greater visibility of requirements supporting biosimilars, validation of continuous processes, and global submissions would be beneficial.”

References

1. EMA, Notes for Guidance on Virus Validation Studies: The Design, Contribution and Interpretation of Studies Validating the Inactivation and Removal of Viruses, CHMP/BWP/268/95, London, Feb. 14, 1996.
2. ICH, Q5A (R1) Viral Safety Evaluation of Biotechnology Products Derived from Cell Lines of Human or Animal Origin, Step 4 version (ICH, 1999).

Article Details

BioPharm International
Vol. 31, No. 5
May 2018
Pages: 18–21

Citation

When referring to this article, please cite it as R. Peters, “Putting Viral Clearance Capabilities to the Test” BioPharm International 31 (5) 2018.

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ANI acquires six generics, related agreements, and equipment

A Top Ten Global Pharmaceutical Company Implements ValGenesis’ Industry-Leading Paperless

SAN FRANCISCO, May 8, 2018 /PRNewswire/ — ValGenesis, Inc., the market leader in Enterprise Validation Lifecycle Management Solutions (VLMS) today announced that a prominent world provider of products and services for sufferers of chronic kidney disease had selected ValGenesis Validation Lifecycle Management System to manage their corporate validation lifecycle process. Ranked among the top 10 companies, this global pharmaceutical company headquartered in the USA had been seeking a software solution to manage their equipment validation processes electronically. Upon completion of their extensive evaluation process, they determined that ValGenesis VLMS, with its closed-loop change management functionality, will assist them to significantly improve their current validation process in terms of increased efficiency, improved data integrity, reduction in validation lifecycle times, improvement in regulatory compliance as well as providing a holistic view of real-time validation status of GxP assets and processes across the organization.




The flexibility of ValGenesis’ automated workflows, forms designer and process designer platform will make Validation, Risk Assessment and Change Management processes easier while significantly reducing the time it takes to accomplish these tasks. Furthermore, the system enables compliance and standardization across the entire organization whilst enforcing good document practice and ensuring data integrity.

“ValGenesis has proven its value to all types of Life Science companies and we are delighted to add another new client, which is focused on discovering and delivering drugs in therapeutic areas like immunology, oncology, neuroscience, virology, and general medicine,” said Narayan Raj, Vice President of ValGenesis Inc. ValGenesis is committed to and continues to build its leadership position and to offer solutions such as ValGenesis VLMS that are being recognized as the de-facto standard on how a Paperless  Validation Lifecycle system can improve quality assurance and regulatory compliance for global life sciences companies.

About ValGenesis
ValGenesis, Inc. is the inventor of an innovative software platform serving as the foundation for managing compliance-based validation activities in Life Sciences companies. ValGenesis, Inc. provides the first enterprise application to manage the corporate validation lifecycle process. As the only system for managing validation execution and approval 100% electronically, ValGenesis was selected by an industry peer review committee to receive the Parenteral Drug Association (PDA) New Innovative Technology Award. The solution is fully compliant with U.S. FDA 21 CFR Part 11 and Annex 11 requirements. For more information, visit www.valgenesis.com.

Contact:

Shanti Mulyadi

5104450505

194677@email4pr.com

 

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Proteon Therapeutics and Lonza Extend Manufacturing Agreement for Commercial Supply Nasdaq:PRTO

  • Partners extend existing contract for manufacture of vonapanitase to 2029 as ongoing Phase 3 trial nears completion
  • Lonza Pharma & Biotech successfully scaled up a lab process at their Microbial facility in Visp, Switzerland, providing flexible solutions as Proteon moves toward possible commercialization
  • Lonza’s experience in products with Breakthrough Therapy Designation provides expert support for these fast paced, challenging projects

BASEL, Switzerland and WALTHAM, Mass., May 08, 2018 (GLOBE NEWSWIRE) — Proteon Therapeutics, Inc. (Nasdaq:PRTO), a company developing novel, first-in-class therapeutics to address the medical needs of patients with kidney and vascular diseases, today announced a long-term contract extension with Lonza Pharma & Biotech for the commercial supply of investigational vonapanitase’s active pharmaceutical ingredient (API).

“Proteon and Lonza have had a strong relationship for nearly a decade, and this amendment extends that relationship,” said Timothy Noyes, President and Chief Executive Officer of Proteon. “The amendment provides Proteon with access to a top-tier manufacturing site for the long-term commercial supply of investigational vonapanitase after potential FDA approval.”

“Lonza’s microbial expertise and versatile assets will enable us to anticipate and deliver API for Proteon at this critical phase in the lifecycle of their therapy,” said Marc Funk, COO Lonza Pharma & Biotech.

Karen Fallen, VP, Head of Clinical Development and Manufacturing for Lonza, added: “It’s always motivating for our teams to support biotechs like Proteon from Phase I studies through to commercialization and to see the impact for patients.”

Lonza has manufactured API for Proteon at its microbial manufacturing facility in Visp (CH) since 2009. Initially, a small-scale process was transferred into Lonza’s development labs for process optimization and consistency studies. The process was then scaled up to 1,000L scale cGMP manufacture to support Proteon’s early clinical studies and potential commercial requirements.

As Proteon worked to complete enrollment in its ongoing Phase 3 clinical trial, PATENCY-2, Lonza supported Proteon with three process validation batches at 1,000L commercial scale, each of which met the intended release criteria. If PATENCY-2 is successful, Proteon expects to include results from these validation runs in a potential Biologics License Application (BLA) filing in the second half of 2019, which Lonza will support.

About Vonapanitase
Vonapanitase is an investigational drug intended to improve hemodialysis vascular access outcomes. Vonapanitase is currently being studied in a Phase 3 clinical trial in patients with chronic kidney disease (CKD). It has received Breakthrough Therapy, Fast Track and Orphan Drug designations from the FDA, and Orphan Medicinal Product designation from the European Commission, for hemodialysis vascular access indications. Proteon is also currently conducting a Phase 1 clinical trial of vonapanitase in patients with peripheral artery disease (PAD).

About Proteon Therapeutics
Proteon Therapeutics is committed to improving the health of patients with kidney and vascular diseases through the development of novel, first-in-class therapeutics. Proteon’s lead product candidate, vonapanitase, is an investigational drug intended to improve hemodialysis vascular access outcomes. Proteon is evaluating vonapanitase in patients with CKD undergoing surgical creation of a radiocephalic arteriovenous fistula. Proteon is also evaluating vonapanitase in a Phase 1 clinical trial in patients with PAD. For more information, please visit www.proteontx.com.

About Microbial Manufacturing at Lonza Pharma & Biotech
Recent developments in next generation biotherapeutics including antibody mimetics and novel scaffolds have spurred a renewed interest in microbial protein expression and manufacture technologies. Lonza’s proven XS® Microbial Expression Platform combined with more than 30 years of process development and cGMP manufacture expertise make us an ideal partner to successfully support clinical and commercial programs. .More information can be found at: pharma.lonza.com/microbial.

About Lonza
Lonza is one of the world’s leading and most-trusted suppliers to the pharmaceutical, biotech and specialty ingredients markets. As an integrated solutions provider, Lonza is boosting its value creation along and beyond the healthcare continuum with a strong focus on patient healthcare, consumer preventive healthcare and consumer’s healthy environment.

Lonza harnesses science and technology to create products that support safer and healthier living and that enhance the overall quality of life. With the recent Capsugel acquisition, Lonza now offers products and services from the custom development and manufacturing of active pharmaceutical ingredients to innovative dosage forms for the pharma and consumer health and nutrition industries.

Benefiting from its regulatory expertise, Lonza is able to transfer its know-how from pharma to hygiene and fast-moving consumer goods all the way to coatings and composites and the preservation and protection of agricultural goods and other natural resources.

Founded in 1897 in the Swiss Alps, Lonza today is a well-respected global company with more than 100 sites and offices and approximately 14,500 full-time employees worldwide. The company generated sales of CHF 5.1 billion in 2017 with a CORE EBITDA of CHF 1.3 billion. Further information can be found at www.lonza.com.

Cautionary Note Regarding Forward-Looking Statements

This press release contains statements that are, or may be deemed to be, “forward-looking statements” as defined in the Private Securities Litigation Reform Act of 1995, including statements regarding Proteon’s product candidate, vonapanitase, and plans for its commercial manufacture. Any forward-looking statements are based on management’s current expectations of future events and are subject to a number of risks and uncertainties that could cause actual results to differ materially and adversely from those set forth in or implied by such forward-looking statements. These risks and uncertainties include, but are not limited to, risks relating to: whether data from early nonclinical or clinical studies will be indicative of the data that will be obtained from future clinical trials; whether vonapanitase will advance through the clinical trial process on the anticipated timeline and warrant submission for regulatory approval; whether such a submission would receive approval from the U.S. Food and Drug Administration or equivalent foreign regulatory agencies on a timely basis or at all; and whether Proteon can successfully manufacture, commercialize and market its product candidates. These risks and uncertainties are described more fully in Proteon’s Annual Report on Form 10-K for the year ended December 31, 2017, as filed with the Securities and Exchange Commission (“SEC”) on March 14, 2018, and Proteon’s subsequent Quarterly Reports on Form 10-Q and Current Reports on Form 8-K, as filed with the SEC, particularly in the sections titled “Risk Factors” and “Management’s Discussion and Analysis of Financial Condition and Results of Operations.” In light of the significant uncertainties in these forward-looking statements, no person should place undue reliance on these statements or regard these statements as a representation or warranty by the Proteon or any other person that Proteon will achieve its objectives and plans in any specified time frame, or at all. The forward-looking statements contained in this press release represent Proteon’s estimates and assumptions only as of the date of this press release and, except as required by law, Proteon undertakes no obligation to update or revise publicly any forward-looking statements, whether as a result of new information, future events or otherwise after the date of this press release.

Additional Information and Disclaimer
Lonza Group Ltd has its headquarters in Basel, Switzerland, and is listed on the SIX Swiss Exchange. It has a secondary listing on the Singapore Exchange Securities Trading Limited (“SGX-ST”). Lonza Group Ltd is not subject to the SGX-ST’s continuing listing requirements but remains subject to Rules 217 and 751 of the SGX-ST Listing Manual.

Certain matters discussed in this news release may constitute forward-looking statements. These statements are based on current expectations and estimates of Lonza Group Ltd, although Lonza Group Ltd can give no assurance that these expectations and estimates will be achieved. Investors are cautioned that all forward-looking statements involve risks and uncertainty and are qualified in their entirety. The actual results may differ materially in the future from the forward-looking statements included in this news release due to various factors. Furthermore, except as otherwise required by law, Lonza Group Ltd disclaims any intention or obligation to update the statements contained in this news release.

Lonza Contact Details
Constance Ward, Head External Communications
Lonza Group Ltd
Tel +41 61 316 8840
constance.ward@lonza.com 

Sanna Fowler, Assistant Director Public Relations
Lonza Pharma & Biotech
Tel +41 79 539 0615
sanna.fowler@lonza.com

Proteon Contact Details
Investor Contact
George Eldridge, Proteon Therapeutics, Senior Vice President and Chief Financial Officer
781-890-0102
geldridge@proteontherapeutics.com 

Media Contact
Ann Stanesa, Ten Bridge Communications
617-230-0347
proteon@tenbridgecommunications.com

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Determining the Quality of High Purity Cannabidiol Isolates

A UPLC-based method for the accurate quantitation of cannabidiol (CBD) in high purity isolates has recently been published by chemists at Waters with assistance from their partners at ProVerde Labs.  As the demand for CBD-containing products soars around the world, determining the composition and purity of CBD isolates is becoming increasingly important for two key reasons. Firstly, to ensure that the product is safe for consumption and, labeled correctly. And, secondly to ensure that manufacturers of these products know exactly how much CBD they are adding to their formulations. This allows them to meet their customers’ needs and, protect against financial loss associated with inadvertently adding too much CBD to a batch. The paper was published in the Journal of Liquid Chromatography & Related Technologies.

To find out more about this method and other related work scientists at Waters are engaged in, we spoke to corresponding author Catharine Layton, Senior Technical Applications Chemist, Waters. 

JR: In simple terms what’s the total test time, accuracy, and reliability of this method? 

CL: Our goal in the development and publication of this method was to provide a simple, validated, “dilute and shoot” method for the assay determination of high purity CBD isolates. The separation, achieved with isocratic chromatography, provides increased efficiency compared to traditional high-performance liquid chromatography (HPLC) methods by utilizing high-throughput, ultra high performance liquid chromatography (UPLC). Using UPLC and a simple sample preparation protocol, assay quantification of a CBD sample, from crystalline isolate to result, can be successfully accomplished with a 1-minute sample preparation followed by a 2-minute runtime.

The ICH Harmonized Tripartite Guideline, “Validation of Analytical Procedures: Text and Methodology Q1(R2)” document defines acceptable methods for determining the accuracy of an assay method. The document states that accuracy can be inferred after method specificity, linearity and precision have been successfully established. Each of these three qualifying validation characteristics was demonstrated in our method validation. For example, the method was proven to be specific for CBD in the presence of other major cannabinoids. Resolution of CBD and close eluting cannabinoids (i.e. critical pairs) was monitored throughout the validation with periodic injections to ensure run-to-run and system-to-system consistency. The linear range, referring back to the “dilute and shoot” sample preparation, was determined to be between 0.8 mg/mL and 1.2 mg/mL, to allow the use of stock certified reference standard solutions at 1.0 mg/mL without further manipulation. Reproducibility of the sample preparation, repeatability of replicate injections, and CBD recovery between different laboratories were successfully achieved to demonstrate repeatability, intermediate precision and reproducibility per validation specifications.

Although not defined by the ICH, reliability is often expressed as the trustworthiness or confidence that a method will provide the true result rather than a result that is inadvertently biased. Reliability can be statistically assessed through standardized proficiency testing across multiple laboratories, or by comparing results obtained using orthogonal methodology within a single laboratory. A proficiency test solution containing CBD as the major component, which is not currently available, rather than a mixture of several components at relatively high concentration, would be most relevant.  As a result, method reliability was demonstrated within our laboratory by comparing assay results obtained by an orthogonal methodology (i.e. different column matrix, mobile phase pH and separation conditions).  Reliability was demonstrated, although not included in the article because the orthogonal methodology produced an assay result within ±2.0% of the result obtained by the primary method.

JR: Will you be looking to get this method included as a standard test method by bodies like ASTM D37 or similar? 

CL: 
The CBD assay method was developed and validated to fill a need communicated to us by several cannabis testing laboratories. Our goal is to share the parameters so that the method can be employed as needed. Although we do not intend to pursue standardized testing certification, if approached directly by the ASTM Committee D37, or a similar standardization organization, we would gladly assist those organizations in moving this method, or other analytical methods that we have developed, forward.  

JR: As you mention in the paper, HPLC is a very well-established technique for this kind of analysis in the world of pharma. What role can vendors like Waters play in translating knowledge like this from other fields into the cannabis industry? 

CL: 
Waters has collaborated closely with chemical, environmental, food, pharmaceutical, health sciences, and technology industries to provide innovative tools, analytical system solutions, software and services for many years. Because we have worked closely with these diverse organizations, our scientists, engineers, and researchers have accumulated a breadth of technical knowledge. Solutions developed and successfully applied within one industry may provide similar value when employed by a diverse group of markets. For example, the current rules and regulations surrounding the testing of medicinal cannabis products do not require the same level of regulatory oversight necessary for acceptance of a pharmaceutical by the FDA, but it is not a far-reaching idea to think that someday they in fact could. Taking a proactive approach within the cannabis testing industry by observing the experiences, tools, and techniques utilized in other markets can provide an efficient path forward for success.  

JR: Why was Waters partnership with ProVerde so important for this study? And, why are partnerships like this important in the cannabis testing industry in general? 

CL: 
The partnership with licensed testing laboratories like ProVerde (Milford, Ma), has provided us with the ability to observe testing of “real world” manufactured CBD isolates. Collaborations with testing laboratories such as this help us recognize the current needs of the testing landscape. Laboratories that participate in partnerships such as this gain access to some of the best scientific and technical minds at Waters to solve technical problems and issues they may encounter. We continue to welcome these collaborations and continually look forward to making new partnerships within this evolving technical landscape.

JR: Are you working on any other cannabis testing-related studies at Waters? 

CL: 
With our team of experts in the design and manufacture of liquid chromatography and mass spectrometry technologies, we continue to innovate products and solutions that create business advantages in the areas of method development, validation, software and regulatory compliance for thousands of laboratory-dependent organizations. We will continue to share our findings at conferences and trade shows to assist customers in the accomplishment of scientific goals, increases in productivity, and the attainment of high return on scientific investments in research, development, and quality control within this emerging field.

Catharine Layton was speaking to Jack Rudd, Managing Editor of Analytical Cannabis. 



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