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The WHO has since issued an EUL to ten vaccine products (Comirnaty, Vaxzevria, Covishield, COVID-19 Vaccine by Janssen-Cilag Int NV, Spikevax, Inactivated COVID-19 Vaccine [Vero Cell], CoronaVac, Covaxin, Covovax, and Nuvaxovid).
K. Arch-Douglas et al.
16.4.4 Examples ofGlobal Regulatory Challenges During
aPandemic
In order for a manufacturer to market their product in a country, they must ensure they are in compliance with local country laws and regulations. This is a challenge when you consider the dossier mentioning the need to alleviate concerns for a single board of health. However, when you consider the complexities of alleviating those same concerns across 50 or 80 plus countries, that regulatory challenge exacerbates ten-fold.
Every major change that a manufacturer makes (e.g., increasing batch size, extending shelf-life, or increasing the amount of manufacturing sites) to their dos­sier must receive approval or concurrence from every country’s board of health in which the drug is registered.
There are some boards of health that require a single license per drug product manufacturing site; they may also require a new license for a different concentration or formulation of that same drug (such as dosing concentration changes for pediat­ric indications or changing product formulation from a liquid drug product to a lyophilized drug product as a means of increasing product shelf-life). Having to maintain ve or six licenses for a single country adds to the increased regulatory burden on manufacturers. The increased burden could be having to submit different submission packages across the various licenses for the same change. There could also be parallel queries received across licenses, as well as parallel commitments across licenses, all needing to be managed, authored, and submitted within very specic timeframes.
During the COVID-19 pandemic, many countries understood this added burden and made new guidances or even changed laws to alleviate the burden so that they could receive vaccine doses at a rapid rate.
Many global boards of health rely on a reference market to leverage for submis­sion approvals. In many cases that reference market is either the European Union (EU) or the United States. During a pandemic, the manufacturer and the country may prefer global harmonization for their dossiers and may attempt to align global market dossier packages with either the United States or the EU.This would allow the manufacturer to rapidly submit supplements, amendments, or variations, remov­ing the need to customize a submission for specied markets on an individualized basis. The country using the EU conditional marketing authorization as a reference market dossier in turn may require the manufacturer to submit EU queries, specic obligations, and recommendations as commitments to maintain conditional use of
16 Overview ofComplexities ofGlobal CMC Regulatory Affairs
471
the drug in their country. In the case of the COVID-19 pandemic, this was more prevalent as the FDA and EMA were openly collaborating together with other coun­tries to help facilitate COVID-19 vaccine development; this included specic obli­gations and recommendations to manufacturers with other countries.
The COVID-19 pandemic was and continues to be the most globally collabora­tive therapeutic, diagnostic, and vaccine development effort in human history. It is because of this global collaboration from various governments, regulatory entities, private businesses, philanthropists, and global health organizations that we were able to see companies like Pzer and Moderna develop and successfully launch a viable vaccine candidate with very high efcacy in under a year—something that until December of 2020 had never been done in the modern biopharmaceutical age.

References

1. https://www- sciencedirect- com.eu1.proxy.openathens.net/science/article/pii/S22113835
22000521
2. DiMasi JA, Grabowski HG, Hansen RW (2016) Innovation in the pharmaceutical indus­try: new estimates of R&D costs. J Health Econ 47:20–33. https://doi.org/10.1016/j.
jhealeco.2016.01.012. Epub 2016 Feb 12. https://pubmed.ncbi.nlm.nih.gov/26928437/
3. https://admin.ich.org/sites/default/les/2021- 02/CTD_triangle_color_Proofread.pdf
4. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4013036/pdf/pone.0096513.pdf
5. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3291398/pdf/05- 0979.pdf
6. Bourla A (2022) Moonshot—inside Pzer’s nine-month race to make the impossible possible. HarperCollins Publishers
7. https://pubmed.ncbi.nlm.nih.gov/32191675/
8. https://www.fda.gov/emergency- preparedness- and- response/mcm- legal- regulatory-
and- policy-framework/emergency- use- authorization
9. Secretary of Health and Human Services Alex M.Azar. Determination that a public health emergency exists (January 31, 2020, renewed April 21, 2020). Available at https://www.phe.
gov/emergency/news/healthactions/phe/Pages/default.aspx
10. https://www.fda.gov/news- events/fda- voices/fda- and- ema- collaborate- facilitate- sars- cov- 2-
vaccine- development
11. https://www.fda.gov/media/139638/download
12. https://www.fda.gov/media/142749/download
13. https://www.ema.europa.eu/en/human- regulatory/marketing- authorisation/
conditional- marketing- authorisation
14. https://www.who.int/teams/regulation- prequalification/eul#:~:text=The%20WHO%20
Emergency%20Use%20Listing,by%20a%20public%20health%20emergency
Chapter 17
CMC Considerations forContinuous Bioprocess Design, Development, andManufacturing
Yanhuai(Richard)Ding andMargaret(Peggy)Marino
Abstract This chapter describes monoclonal antibody (mAb) continuous biopro-
cess (CBP) from design, implementation to manufacturing based on the scientic understanding of mAb physicochemical properties, proven bioprocessing princi­ples, available technologies, chemistry, manufacturing, and control (CMC) consid­erations, current industrial practices, regulatory guidelines, challenges, potential solutions, and future perspectives. The discussion addresses the conventional, inten­sied, integral, and/or fully automated end-to-end mAb CBP manufacturing process from cell line development (CLD); cell culture process development (e.g., upstream process); protein purication process development (e.g., downstream process); ana­lytical method development, qualication, and validation for process performance; and product quality monitoring and control perspectives. The increasing interest in the application of CBP in biopharmaceutical manufacturing is associated with increased mAb market demand, demonstrated process consistency and product quality, and potential cost of goods (COGs) reduction. Some unprecedented chal­lenges of CBP application are discussed. Some innovative technologies are assessed with practical solutions proposed. A case study is presented and discussed regarding a owthrough mode of cation exchange chromatography for potential CBP imple­mentation. The goal of this chapter is to propose a design and establish a fully automated CBP platform for an end-to-end mAb production from cell culture to drug substance (DS) formulation. Finally, the CBP technology is proposed for other bioprocess and manufacturing such as adeno-associated virus (AAV) vector for gene therapy.
Y. Ding (*) CMC Drug Substance/Drug Product, EvolveImmune Therapeutics, Branford, CT, USA e-mail: yanhuai.ding@evolveimmune.com
M. Marino Downstream Process Development & Manufacturing, AnaptysBio, San Diego, CA, USA
K. Gadamasetti, S. A. Kolodziej (eds.), Bioprocessing, Bioengineering and Process Chemistry in the Biopharmaceutical Industry,
https://doi.org/10.1007/978-3-031-62007-2_17
473© The Author(s), under exclusive license to Springer Nature Switzerland AG 2024
474
Y. Ding and M. Marino
Keywords Continuous bioprocess · Chemistry · manufacturing · and control · Critical quality attribute · Drug substance · Monoclonal antibody · Adeno­associated virus

17.1 Introduction

Continuous manufacturing (CM) has been used for petrochemical, chemical, phar­maceutical, and food processing for decades [1, 2]. CM can provide consistent product quality; cleaner, more exible, and higher process efciency; automation, low in-process hold times, and sample conditioning; smaller footprint for equip­ment and facility; and lower operating cost of goods (COGs) [3, 4]. The CM con­cept has been applied for continuous bioprocess (CBP) as well for small molecule production such as amino acids, vitamins, peptides, and antibiotics [5]. Currently, the continuous processes for small molecule manufacturing have been applied for Orkambi and Symdeko for cystic brosis treatment (Vertex 2015) and Prezista for HIV treatment (Janssen 2016) [6].
However, CBP application to large molecule biologics (e.g., monoclonal anti­body [mAb]) manufacturing has been slow to adopt in the industry due to several challenges. The challenges include: (A) mAb biologic complexity; (B) cell line and mAb stability; (C) manufacturing raw material properties and variability; (D) lack of CBP-designated systems for effective and robust process performance monitor­ing and control; (E) immature CBP-designated analytical systems and methods for real-time product quality monitoring and control; (F) lack of CBP-specialized process- related hardware and software; and (G) lack of sufcient nancial resources, and scientists and engineers with CBP expertise and experience.
Conventional mAb drug substance (DS) manufacturing starts from Master Cell Bank (MCB) or Working Cell Bank (WCB) vial thaw followed by seeding train expansion, cell culture production, bulk cell harvest, clarication, purication, and nal DS formulation. The cell culture process is conducted in batch, fed-batch, hybrid fed-batch, or perfusion mode [79]. The mAb purication framework is mainly carried out in a unit-by-unit operational manner [10]. In-process sample and nal DS testing is primarily conducted by ofine assays, which are labor intensive, time consuming, and do not provide real-time supportive data. The conventional process has intrinsic drawbacks associated with lower productivity and efciency, less automation and robust control, higher waste generation, higher COGs from operational to capital expenditure, and larger equipment and facility footprint. In contrast, CBP implementation is an effective strategy to overcome these drawbacks per current industrial needs.
17 CMC Considerations for Continuous Bioprocess Design, Development…
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17.2 Regulatory Guidance, Expectations,
andSupport forCBP
FDA has been collaborating with both industry and academia to assess new technol­ogy applications for CM [11], analytical method improvement, and microbial con­trol (Fig.17.1). To accelerate CM application in biopharmaceuticals, FDA supports the quality by design (QbD) and process analytical technology (PAT) approaches [12, 13].
QbD is a systematic, risk-based, holistic, proactive, and continuous improvement approach for pharmaceutical development from discovery, development to manu­facture of drugs [14, 15]. The key considerations from QbD are: (1) product knowl­edge including quality target product prole (QTPP), dose form, formulation, and stability; (2) process design including unit operation, in-process control (IPC), and critical process parameter (CPP) assessment; and (3) product quality control strat­egy including critical quality attributes (CQAs) and real-time testing with pre­determined acceptance criteria and specication.
PAT framework supports innovative pharmaceutical development, manufactur­ing, and quality assurance [16]. It includes designing, analyzing, and controlling manufacturing through timely measurements of CQAs and critical performance attributes (CPAs) from raw material, in-process material to process control (Fig.17.2) in a timely manner (e.g., in-, on-, or at-line monitoring and control). The PAT implementation can provide the scientic basis for establishing regulatory specications. It also enhances continuous process improvement and product qual­ity control [16]. Regulatory authorities support an enhanced and innovative





  

  

  
Fig. 17.1 New strategies and approaches supported by FDA for product manufacturing and qual­ity improvement
476
Y. Ding and M. Marino



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
PAT
FrameQork
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

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
Fig. 17.2 PAT-A framework for innovative pharmaceutical development, manufacturing, and quality assurance from FDA






bioprocessing with more exible, compatible, and disposable technology for sim­pler process procedure and better product quality control [13].
Standard Guide for Application of Continuous Quality Verication (ASTM) E2537 provides guidance for process validation and continuous process verica­tion, which is aligned with ICH Q8 and Q9. ASTM E2537 provides a guidance for continuous process monitoring, measuring, and analyzing; risk evaluation and miti­gation; process variable reduction; capability adjustment; and enhancement for product lifecycle quality monitoring, control, and improvement. This guidance is a valuable source document for CBP implementation.
17 CMC Considerations for Continuous Bioprocess Design, Development…
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17.3 Current Industrial Practice formAb Production
mAb therapeutics not only improve human quality of life but also generate billions in revenue each year for the biopharmaceuticals industry [17]. Over 80 therapeutic mAbs have been approved by global regulatory authorities [17, 18]. To bring a mAb candidate from discovery to commercialization, it is necessary for a biopharmaceu­tical company to spend a signicant amount of money (e.g., hundreds of millions of US dollars), time (e.g., 10years), and resources to complete essential activities from chemistry, manufacturing, and control (CMC), clinical trials to regulatory l­ings and approval.
Figure 17.3 illustrates a roadmap of mAb drug development from research to commercialization. Current mAb production is primarily carried out in a batch­mode including both upstream process (USP) and downstream process (DSP). The batch-mode has its intrinsic limitations as described previously; however, scientists and engineers from academia and biopharmaceutical industry are investigating alternative approaches from an intensied process [19], an integral process [4, 7], a hybrid process [20] to a fully automated bioprocess [21].

   

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
Research & Process Development (PD)
.  .   

.  .  .    

.    

.  . 
.





Process Characterizaon (PC)
. 
 
.  . 

. 






Process Validaon (PV)
Commercializaon and Post-commercial
.   

.  .     
   
.   

. 

Improvement (PCI)
Fig. 17.3 Roadmap of mAb drug development from research to commercialization





478
Y. Ding and M. Marino
17.3.1 Cell Line Development: TheFoundation
ofBiologics Development
17.3.1.1 Antibody DNA Sequence andGene Construction
Figure 17.4 illustrates a ow diagram for a typical mAb cell line development (CLD) process. The gene sequence of a mAb candidate can be identied and deter­mined by Xenomouse hybridoma (e.g., Herceptin), phage display (e.g., Humira), transgenic mouse (e.g., Stelara), or single B-cell (e.g., HIV neutralization antibody) [18, 22]. The hybridoma technique, which has been the most widely used approach, has led to the majority of mAbs (48 out of 80mAbs) approved on the market [18,
23]. The antibody heavy chain and light chain variable (VH and VL) region cDNA
sequence can be generated by reverse transcription polymerase chain reaction (RT-PCR) from the isolated mRNA [24]. The determined variable region from each gene can be humanized by complementarity-determining region (CDR)-grafting and codon optimization followed by the assessment of afnity, functional potency, and stability of the mAb [24].
In addition to hybridoma technology, antibody phage display (APD) has been also used for therapeutic antibody discovery and development [25]. The APD approach is based on the pioneer work from Smith (1985) and Parmley (1988) for peptide expression followed by John McCafferty and Gregory Winter [2628] for mAb engineering. The APD approach includes DNA library construction (e.g., mRNA, RT-PCR, cDNA), phagemid generation, phage display, and genetic analysis (Figs.17.5 and 17.6).
The aim of antibody gene sequencing and construction is to determine heavy chain and light chain gene sequence, which is genetically stable with optimal afn­ity, specicity, stability, immunogenicity, and developability properties. It is the foundation for the development of all biologics and a critical step, which enables USP development and manufacturing (Fig.17.7).



Fig. 17.4 Flow diagram for mAb cell line development










17 CMC Considerations for Continuous Bioprocess Design, Development…
479
.Phage display
.CDR-graing.Hybridoma
.Transgenec mice .Single B cell
VHand V
.Anity, .Potency .Genec stability .Developability
L
Sewuence
determinaon
Codon
opmizaon
Humanizaon
Vector
construcon
.Promoter .Enhancer .Metabolic marker .Anbiocs marker
Fig. 17.5 Key considerations for mAb gene sequencing and vector construction




   


  



  
Fig. 17.6 Clone selection procedure and key considerations
17.3.1.2 Clone Selection
Once the mAb gene sequences including the signal peptide sequence for the heavy chain and light chains are determined, each sequence is synthesized and subcloned into an expression vector (Fig.17.4). The vector contains the promoter/enhancer for mRNA transcription, translation, maturation, and selective markers (Fig.17.5). The optimal expression vector and host cell line are crucial for the target mAb gene expression, cell culture process development, and manufacturing [29].
There are different types of expression vectors currently used in the industry. For example, CHOZN® GS/-with ubiquitous chromatin opening elements (UCOE®) can minimize gene silencing and mutation for high productivity (e.g., 3–10g/L titer) (Millipore Sigma). The pXC Multigene vector is designed for expressing