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1

Reis, Castilho Leda dos, ed. Animal cell technology: From biopharmaceuticals to gene therapy. Taylor & Francis Group, 2008.

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2

Reis, Castilho Leda dos, ed. Animal cell technology: From biopharmaceuticals to gene therapy. Taylor & Francis Group, 2008.

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3

S, Ozturk Sadettin, and Hu Wei-Shou 1951-, eds. Cell culture technology for pharmaceutical and cell-based therapies. Taylor & Francis, 2006.

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4

service), SpringerLink (Online, ed. Trends in Stem Cell Biology and Technology. Humana Press, 2009.

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5

service), SpringerLink (Online, ed. Cell Therapy: CGMP Facilities and Manufacturing. Springer-Verlag US, 2009.

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6

C, Hyde, National Co-ordinating Centre for HTA (Great Britain), and Health Technology Assessment Programme, eds. Fludarabine as second-line therapy for B cell chronic lymphocytic leukaemia: A technology assessment. Core Research on behalf of the NCCHTA, 2002.

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7

Prakash, S. Artificial Cells, Cell Engineering and Therapy. Elsevier Science & Technology, 2007.

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8

Artificial cells, cell engineering and therapy. CRC, 2007.

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9

Animal Cell Technology: From Biopharmaceuticals to Gene Therapy. Taylor & Francis, 2008.

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10

Gee, Adrian. Cell Therapy: CGMP Facilities and Manufacturing. Springer, 2008.

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11

Gee, Adrian. Cell Therapy: CGMP Facilities and Manufacturing. Springer, 2014.

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12

Gee, Adrian. Cell Therapy: CGMP Facilities and Manufacturing. Springer International Publishing AG, 2021.

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13

Animal Cell Technology: From Biopharmaceuticals to Gene Therapy. CRC Press LLC, 2008.

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14

Butler, Mike, Leda Castilho, Angela Moraes, and Elisabeth Augusto. Animal Cell Technology: From Biopharmaceuticals to Gene Therapy. Taylor & Francis Group, 2008.

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15

Butler, Mike, Leda Castilho, Angela Moraes, and Elisabeth Augusto. Animal Cell Technology: From Biopharmaceuticals to Gene Therapy. Taylor & Francis Group, 2008.

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16

Butler, Mike, Leda Castilho, Angela Moraes, and Elisabeth Augusto. Animal Cell Technology: From Biopharmaceuticals to Gene Therapy. CRC Press LLC, 2008.

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17

Butler, Mike, Leda Castilho, Angela Moraes, and Elisabeth Augusto. Animal Cell Technology: From Biopharmaceuticals to Gene Therapy. CRC Press LLC, 2008.

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18

Animal Cell Technology: From Biopharmaceuticals to Gene Therapy. CRC Press LLC, 2008.

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19

Hu, Wei-Shou, and Sadettin Ozturk. Cell Culture Technology for Pharmaceutical and Cell-Based Therapies. Taylor & Francis Group, 2005.

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20

Hu, Wei-Shou, and Sadettin S. Ozturk. Cell Culture Technology for Pharmaceutical and Cell-Based Therapies. Taylor & Francis Group, 2008.

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21

Hu, Wei-Shou, and Sadettin Ozturk. Cell Culture Technology for Pharmaceutical and Cell-Based Therapies. Taylor & Francis Group, 2005.

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22

Zander, Axel R., Wolfram Ostertag, and Boris V. Afanasiev. Gene Technology: Stem Cell and Leukemia Research. Springer, 2012.

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23

Zander, Axel R. Gene Technology: Stem Cell and Leukemia Research. Springer, 2011.

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24

Grosveld, Frank, Axel R. Zander, Wolfram Ostertag, and Boris V. Afanasiev. Gene Technology: Stem Cell and Leukemia Research. Springer London, Limited, 2013.

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25

Gene Technology: Stem Cell and Leukemia Research (Nato a S I Series Series H, Cell Biology). Springer-Verlag Telos, 1996.

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26

(Editor), Sadettin Ozturk, and Wei-Shou Hu (Editor), eds. Cell Culture Technology for Pharmaceutical and Cell-Based Therapies (Biotechnology and Bioprocessing Series). CRC, 2005.

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27

Baharvand, Hossein. Trends in Stem Cell Biology and Technology. Humana, 2016.

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28

Steinhoff, Gustav. Regenerative Medicine - from Protocol to Patient: 2. Stem Cell Science and Technology. Springer London, Limited, 2016.

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29

Steinhoff, Gustav. Regenerative Medicine - from Protocol to Patient: 2. Stem Cell Science and Technology. Springer, 2016.

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30

Steinhoff, Gustav. Regenerative Medicine - from Protocol to Patient: 2. Stem Cell Science and Technology. Springer, 2018.

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31

Nat, Roxana, and Andreas Eigentler. Cell Culture, iPS Cells and Neurodegenerative Diseases. Oxford University Press, 2016. http://dx.doi.org/10.1093/med/9780190233563.003.0013.

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Somatic reprogramming technology, which enables the conversion of adult human non-neural cells into neurons, has progressed rapidly in recent years. The derivation of patient-specific induced pluripotent stem (iPS) cells has become routine. The inherent broad differentiation potential of iPS cells makes possible the generation of diverse types of human neurons. This constitutes a remarkable step in facilitating the development of more appropriate and comprehensive preclinical human disease models, as well as for high throughput drug screenings and cell therapy. This chapter reviews recent prog
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32

Goldstein, Aaron S. Biomaterials for Cell Delivery. Taylor & Francis Group, 2020.

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33

McCann, Shaun R. Molecules, genes, and gene therapy. Oxford University Press, 2016. http://dx.doi.org/10.1093/med/9780198717607.003.0009.

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The twenty-first century has brought many innovations in haematology, with improved diagnostic technology, which may inform treatment choices for malignant diseases, and a better understanding of the genetics and/or epigenetics underlying many diseases. Unfortunately, the aetiology of most of these diseases still eludes us, and some common diseases such as sickle cell disease await simple, inexpensive, and widely available curative treatment. For reasons that are often obscure, some diseases have become fashionable and attract large research financial backing, whereas some do not. With the adv
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34

Goldstein, Aaron S. Biomaterials for Cell Delivery: Vehicles in Regenerative Medicine. Taylor & Francis Group, 2018.

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35

Goldstein, Aaron S. Biomaterials for Cell Delivery: Vehicles in Regenerative Medicine. Taylor & Francis Group, 2018.

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36

Goldstein, Aaron S. Biomaterials for Cell Delivery: Vehicles in Regenerative Medicine. Taylor & Francis Group, 2018.

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37

Goldstein, Aaron S. Biomaterials for Cell Delivery: Vehicles in Regenerative Medicine. Taylor & Francis Group, 2018.

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38

Biomaterials for Cell Delivery: Vehicles in Regenerative Medicine. Taylor & Francis Group, 2018.

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39

Bakhtiar, Syeda Marriam, and Erum Dilshad, eds. Omics Technologies for Clinical Diagnosis and Gene Therapy: Medical Applications in Human Genetics. BENTHAM SCIENCE PUBLISHERS, 2022. http://dx.doi.org/10.2174/97898150795171220101.

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Genetic disorders have been the focus of scientists for a long time. The emergence of next-generation sequencing techniques has ushered a new era in genetics and several developments have occurred in human genetics. The scientific perspective has also been widened with omics technologies that allow researchers to analyze genetic sequences and their expression products. An integrated approach is being used not only for diagnosis but also for disease management and therapeutic purposes. This book highlights emerging areas of omics technology and its application in the diagnosis and management of
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40

Tallacchini, Mariachiara. Medical Technologies and EU Law: The Evolution of Regulatory Approaches and Governance. Oxford University Press, 2017. http://dx.doi.org/10.1093/acprof:oso/9780198807216.003.0002.

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The regulatory evolution of medical technologies in the EU offers a unique perspective with regard to highlighting significant elements of both European science policy and the development of European institutions, especially with regard to the passage from their (primarily) economic to their political phases. Since the early 1990s, while establishing a market for biotechnology, the European Communities have been developing some policy-related visions of technoscience and its potential risks, while at the same time framing the concept of European citizenship through European values and rights.
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41

Barker, Richard. The supply of new medicine—unlimited? Oxford University Press, 2013. http://dx.doi.org/10.1093/med/9780199600663.003.0002.

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Chapter 1 describes the supply of new medical technology which exploits the huge advances we are making in bioscience, the build-up a profound understanding of how the beautiful molecular machines of the living cell actually work, and how they link together in the almost unimaginably complex system that is our body, and asks what fresh pharmaceutical innovations are on the horizon? Will gene and cell therapy reach the diseases that drugs cannot reach? Is ‘Personalized medicine’ practical? What will converging technologies—therapeutics, diagnostics, informatics, nanotechnology—bring us?
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42

Hengge, Ulrich R. Gene Technology and Gene Therapy in Dermatology (Supplement Issue: Cells Tissues Organs 2002). Not Avail, 2002.

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43

Fehse, Boris, Ferdinand Hucho, Sina Bartfeld, et al., eds. Fünfter Gentechnologiebericht. Nomos Verlagsgesellschaft mbH & Co. KG, 2021. http://dx.doi.org/10.5771/9783748927242.

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In the ‘Fifth Gene Technology Report’, renowned experts provide an overview of current developments and their applications in the dynamically evolving research field of gene and biotechnologies. They examine, among other topics, genetic diagnostics, somatic gene therapy, the development of vaccines, stem cell and organoid research, green gene technology, synthetic biology, gene drives, genome editing, epigenetics and single cell analysis. In addition to reporting on the current state of affairs in this field, the authors also discuss society’s perception of gene technologies and ethical and le
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44

Gouw, Arvin M., and Ted Peters, eds. CRISPR Revolution in Science, Religion, and Ethics. Bloomsbury Publishing Plc, 2025. https://doi.org/10.5040/9798216171232.

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This collection of original essays by scientists, theologians, religious studies scholars, and ethicists offers an authoritative, illuminating, and thought-provoking overview of the CRISPR controversy. Genetic science at times ignites explosions of public controversy. In the early 1990s, the Human Genome Project, along withJurassic Park, frightened the world with genetic determinism. The cloning controversy of 1997 and the stem cell controversy of 1998 prompted bitter moral stand-offs. The fuse has just been lit for the next explosion: the CRISPR controversy.The CRISPR Revolution in Science, R
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45

Spinal Cord Injury: Education for Patients and the Public. Exon Publications, 2025. https://doi.org/10.36255/spinal-cord-injury.

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Spinal cord injury is a serious condition that affects the body’s ability to send and receive signals between the brain and the rest of the body. This article provides a detailed guide on spinal cord injury, including its causes, symptoms, diagnosis, treatment, and long-term management. It begins by explaining what spinal cord injury is and how it impacts movement, sensation, and overall health. The article discusses how common the condition is, highlighting risk factors such as trauma from accidents, falls, and genetic factors like variations in the NG2 and SOX9 genes that may influence nerve
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46

Dietz, Volker, and Nick S. Ward, eds. Oxford Textbook of Neurorehabilitation. Oxford University Press, 2020. http://dx.doi.org/10.1093/med/9780198824954.001.0001.

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In the new edition of the Oxford Textbook of Neurorehabilitation all chapters have been updated to reflect advances in knowledge in the field of neurorehabilitation. It will be supplemented by additional chapters that reflect novel developments in the field of neurorehabilitation. During recent years there has been a strong evolution in the field of vocational rehabilitation with the aim of helping people after an injury of the nervous system to overcome the barriers and return to employment. A new chapter on self-management strategies deals with building confidence in individuals to manage th
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47

Biologically-Responsive Hybrid Biomaterials: A Reference for Material Scientists and Bioengineers. World Scientific Publishing Co Pte Ltd, 2010.

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48

Biologically-responsive hybrid biomaterials: A reference for material scientists and bioengineers. World Scientific, 2010.

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