· Paul J. Flory, “Principles of polymer chemistry”, Cornell university press(1953)
· Robert J. Young and Peter A. Lovell, “Introduction to Polymers(3rd)”, CRC press
· CAS, “Understanding the nanotechnology in COVID-19 vaccines”,
· https://www.cas.org/resource/blog/understanding-nanotechnology-covid-19-vaccines
· berthub.eu, “Reverse Engineering the source code of the BioNTech/Pfizer SARS-CoV-2 Vaccine”,
· https://berthub.eu/articles/posts/reverse-engineering-source-code-of-the-biontech-pfizer-vaccine/
· “Exploring the Supply Chain of the Pfizer/BioNTech and Moderna COVID-19 vaccines”,
· https://blog.jonasneubert.com/2021/01/10/exploring-the-supply-chain-of-the-pfizer-biontech-and-moderna-covid-19-vaccines/
· 동아사이언스, “mRNA는 어떻게 백신으로 개발되었고 무엇을 더 할 수 있는가”,
· http://dongascience.donga.com/news.php?idx=43509
· Linares-Fernández, S., Lacroix, C., Exposito, J.-Y., & Verrier, B., “Tailoring mRNA Vaccine to Balance Innate/Adaptive Immune Response”, Trends in Molecular Medicine(2019),
· https://sci-hub.se/10.1016/j.molmed.2019.10.002
· 조선일보, “화이자 백신의 비밀 공개 됐다… 60일 제조 공정의 모든 것”,
· https://www.chosun.com/economy/science/2021/05/03/KEGAAQOQ2FFFXLRLGVAKD5NCLM/
· CDC, “COVID-19 전파 경로”,
· https://korean.cdc.gov/coronavirus/2019-ncov/prevent-getting-sick/how-covid-spreads.html
· HIT News, “코로나19, 바이러스벡터 백신·RNA 백신의 차이점은?”,
· http://www.hitnews.co.kr/news/articleView.html?idxno=32120
· 위키피디아, “RNA 백신”,
· https://ko.wikipedia.org/wiki/RNA_%EB%B0%B1%EC%8B%A0 Wellcome, “Seven vital questions about RNA Covid-19 vaccines”,
· https://wellcome.org/news/seven-vital-questions-about-rna-covid-19-vaccines-pfizer-biontech-moderna
· Renee C. Ryals,Siddharth Patel,Chris Acosta,Madison McKinney,Mark E. Pennesi,Gaurav Sahay, “The effects of PEGylation on LNP based mRNA delivery to the eye”, PLOS ONE(2020),
· https://journals.plos.org/plosone/article?id=10.1371/journal.pone.0241006
· 위키피디아, “코로나19 범유행”,
· https://ko.wikipedia.org/wiki/%EC%BD%94%EB%A1%9C%EB%82%9819_%EB%B2%94%EC%9C%A0%ED%96%89#%EC%9B%90%EC%9D%B8
· BBC, “코로나 백신: 6가지 질문으로 알아보는 백신의 모든 것”,
· https://www.bbc.com/korean/features-55761667
· 위키피디아, “중화 항체”,
· https://ko.wikipedia.org/wiki/%EC%A4%91%ED%99%94_%ED%95%AD%EC%B2%B4
· RESEAT, “의약품의 Pegylation 효과”,
· https://www.reseat.or.kr/portal/cmmn/file/fileDown.do?menuNo=200019&atchFileId=ed2fb7c12494490f90a43
· 93c79423e41&fileSn=1&bbsId=(18) 강인규, 이진호, 박기동, 김수현, 나재운, 한동근, 노인섭, “의료용 고분자의 현황과 미래”, Polymer Science and Technology(2016),
· https://www.cheric.org/PDF/PST/PT27/PT27-5-0544.pdf
· RESEAT, “생체 응용을 위한 고분자 Smart 소재”,
· https://www.reseat.or.kr/portal/cmmn/file/fileDown.do?menuNo=200019&atchFileId=8b6a95599e9441e9b523feb857fc7694&fileSn=1&bbsId=
· 위키피디아, “Pegylation”,
· https://en.wikipedia.org/wiki/PEGylation
· Üzgün, S., Nica, G., Pfeifer, C., Bosinco, M., Michaelis, K., Lutz, J.-F., … Rudolph, C., “PEGylation Improves Nanoparticle Formation and Transfection Efficiency of Messenger RNA”, Pharmaceutical Research(2011),
· https://sci-hub.se/10.1007/s11095-011-0464-z
· Wu, J., Zhao, C., Lin, W., Hu, R., Wang, Q., Chen, H., … Zheng, J., “Binding characteristics between polyethylene glycol (PEG) and proteins in aqueous solution”, Journal of Materials Chemistry B(2014),
· https://sci-hub.se/https://doi.org/10.1039/C4TB00253A
· 롯데케미칼, “PEG”,
· https://www.lottechem.com/kor/prdt-intro/prdt-detail/C207/view.do?prdtCd=C333
· KCA, “이슈 추적, 진실은 이렇다! <폴리에틸렌글라이콜(PEG)>편”,
· https://kcia.or.kr/pedia/sub03/sub03_01.php?type=view&no=296
· 김진구, “약물전달시스템으로서 폴리에틸렌 글리콜 기반 세바스산 디아크릴레이트 마이크로젤 개발”, Polymer(2015),
· https://www.cheric.org/PDF/PK/PK39/PK39-4-0677.pdf
· KiSTi, “음이온성 지질을 포함한 지질나노입자의 제조 및 물리적 특성”,
· http://society.kisti.re.kr/sv/SV_svjscj03L.do?method=popup&jats=JCGMDC_2008_v52n3_266
· David C. Litzinger, Antoinette M.J. Buiting, Nico van Rooijen, Leaf Huanga, “Effect of liposome size on the circulation time and intraorgan distribution of amphipathic poly(ethylene glycol)-containing liposomes”, ScienceDirect(1994),
· https://www.sciencedirect.com/science/article/abs/pii/0005273694900388?via%3Dihub
· 이정은, 김은혜, 임덕휘, 정석현, 정규성, 신병철, “음이온성 지질을 포함한 지질나노입자의 제조 및 물리적 특성”, Journal of Korean Chemical Society(2008),
· https://www.koreascience.or.kr/article/JAKO200802727132911.pdf
· Seki, J., Sonoke, S., Saheki, A., Fukui, H., Sasaki, H., & Mayumi, T., “A nanometer lipid emulsion, lipid nano-sphere (LNS®), as a parenteral drug carrier for passive drug targeting”, International Journal of Pharmaceutics(2004),
· https://sci-hub.se/https://doi.org/10.1016/j.ijpharm.2003.12.022
· ScienceDirect, “Pegylation”,
· https://www.sciencedirect.com/topics/pharmacology-toxicology-and-pharmaceutical-science/pegylation
· 이상곤, “암 나노기술: 현대 암 생물학 시대에서 수동, 능동적 약물 표적화의 영향”, BRIC,
· https://www.ibric.org/myboard/read.php?Board=report&id=2371
· 오준용, 심유정, 양경석, 유자형, “나노메디신에서 단백질 코로나 효과”, 고분자 과학과 기술(2020),
· https://www.cheric.org/PDF/PST/PT31/PT31-2-0129.pdf
· 김범상, “약물 전달시스템(DDS)과 바이오센서 분야에서 PEG를 포함한 지능형 고분자 하이드로젤의 응용”,Bioin(2006),
· https://www.bioin.or.kr/board.do?cmd=view&bid=tech&num=2096
· IBS, “코로나19 과학 리포트 2”,
· https://www.ibs.re.kr/cop/bbs/BBSMSTR_000000001003/selectBoardArticle.do?nttId=19602
· Duncan, R., “The dawning era of polymer therapeutics”, Nature Reviews Drug Discovery(2003),
· https://sci-hub.se/https://www.nature.com/articles/nrd1088
· 오은주, 양정아, 양승윤, 김진곤, 한세광, “단백질 의약품의 약물전달시스템”, Polymer Science and Technology(2007),
· https://www.cheric.org/PDF/PST/PT18/PT18-5-0444.pdf(37) 이환규, “고분자 기반 약물전달체의 구조적 특성, 지질막 상호작용 및 메커니즘 규명을 위한 분자모델링 연구”, Polymer Science and Technology(2014),
· https://www.cheric.org/PDF/PST/PT25/PT25-6-0514.pdf
· 곽승화, “약물전달시스템의 최신 연구 동향”, BRIC(2019),
· https://www.bioin.or.kr/board.do?cmd=view&bid=tech&num=291105
· Mishra, P., Nayak, B., & Dey, R. K., “PEGylation in anti-cancer therapy: An overview”, Asian Journal of Pharmaceutical Sciences(2016),
· https://sci-hub.se/https://doi.org/10.1016/j.ajps.2015.08.011
· 동아사이언스, “전문가들 화이자·모더나 백신 부작용 원인으로 PEG 성분 지목”,
· http://dongascience.donga.com/news.php?idx=42593
· 김유경, 이선민, 김단비, 노강민, 오근상, 조성훈, 최은표, 김규표, 허강무, “암 치료를 위한 Poly(ethylene glycol)-Doxorubicin/SPION 자성 나노입자의 제조 및 특성분석”, Polymer(2018),
· https://www.cheric.org/PDF/PK/PK42/PK42-6-1059.pdf
· 김현철, “고분자를 이용한 약물전달시스템(DDS) 연구동향”,
· https://www.bioin.or.kr/fileDown.do?seq=1866
· 위키피디아, “독소루비신”,
· https://ko.wikipedia.org/wiki/%EB%8F%85%EC%86%8C%EB%A3%A8%EB%B9%84%EC%8B%A0
· 권익찬, “나노입자를 이용한 약물전달 기술”, News & Information for chemical engineers(2010),
· https://www.cheric.org/PDF/NICE/NI28/NI28-2-0177.pdf
· 배진우, 박기동, “이중 리간드를 이용한 암 표적지향의 최근 연구동향”, Biomaterials Research(2012),
· https://www.ksbm.or.kr/pub/16%20(3)%20112-115.pdf
· 김지선, 이정유, 오미화, 조성덕, 남윤성, “약물, 유전자, 진단성분의 생체 내 전달을 위한 마이셀 및 나노에멀젼”, Polymer Science and Technology,
· https://www.cheric.org/PDF/PST/PT23/PT23-2-0174.pdf
· 약사공론, “독소루비신 성분제제, 간질성 폐렴 이상반응 추가”,
· https://www.kpanews.co.kr/academy/show.asp?search_cate=10&idx=539
· RESEAT, “임상시험 중이거나 항암제로 사용되는 PEG 접합체”,
· https://www.reseat.or.kr/portal/cmmn/file/fileDown.do?menuNo=200019&atchFileId=ed4f3a6951174c6a8d4ea41c9523adf9&fileSn=1&bbsId=
· Bailon, P., Palleroni, A., Schaffer, C. A., Spence, C. L., Fung, W.-J., Porter, J. E., … Graves, M., “Rational Design of a Potent, Long-Lasting Form of Interferon: A 40 kDa Branched Polyethylene Glycol-Conjugated Interferon α-2a for the Treatment of Hepatitis C”, Bioconjugate Chemistry(2001),
· https://sci-hub.se/10.1021/bc000082g
· PEDIAA, “What is the Difference Between Peginterferon Alfa 2A and 2B”,
· https://pediaa.com/what-is-the-difference-between-peginterferon-alfa-2a-and-2b/Rajender Reddy, K., Modi, M. W., & Pedder, S., “Use of peginterferon alfa-2a (40 KD) (Pegasys®) for the treatment of hepatitis C”, Advanced Drug Delivery Reviews(2002),
· https://sci-hub.se/https://doi.org/10.1016/S0169-409X(02)00028-5
· “Pegylation of Interferon Alfa: Structural and Pharmacokinetic Properties”, Seminars in Liver Disease(2003),
· https://sci-hub.se/10.1055/s-2003-41635
· Peter L. Turecek, Mary J. Bossard, Freddy Schoetens, Inge A. Ivens, “PEGylation of Biopharmaceuticals: A Review of Chemistry and Nonclinical Safety Information of Approved Drugs”, Journal of Pharmaceutical Sciences(2016),
· https://jpharmsci.org/article/S0022-3549(15)00130-6/pdf “Peginterferon Alfa-2b”,
· https://www.pmda.go.jp/files/000223160.pdf
· 위키피디아, “Peginterferon alfa-2b”,
· https://en.wikipedia.org/wiki/Peginterferon_alfa-2b
· Michael J Grace, David Cutler, “Pegylating IFNs at His-34 improves the in vitro antiviral activity through the JAK/STAT pathway”, Antiviral Chemistry & Chemotherapy,https://www.intmedpress.com/servefile.cfm?suid=ec319bbb-559e-4120-ae98-db2aee5d0fe5
· “Pancreatic islet xenotransplantation: Barriers and prospects”,
· https://www.researchgate.net/figure/Cognate-versus-noncognate-interactions-with-donor-target-cells-Cognate-refers-to-a_fig1_10656969
· 류원석, 이성준, 최원규, 이상섭, 이지열, “PVA 겔(gel)”, News & Information for chemical engineers(2002),
· https://www.cheric.org/PDF/NICE/NI20/NI20-2-0143.pdf
· 오세행, 이진호, 임천수, “생체적합성 폴리비닐알콜계 하이드로겔의 제조방법”,
· https://patents.google.com/patent/KR101091575B1/ko
· 권순범, 이항렬, “다양한 성분을 함유한 하이드로겔의 상업적 이용”, 바이오산업연구(2019),
· http://www.ejbb.org/archive/view_article?pid=jbb-7-0-12
· 위키피디아, “Polydimethylsiloxane”,
· https://en.wikipedia.org/wiki/Polydimethylsiloxane
· 위키피디아, “Direct process”,
· https://en.wikipedia.org/wiki/Direct_process
· “The Müller-Rochow Synthesis of Chloromethylsilanes”,
· https://chemiedidaktik.uni-wuppertal.de/fileadmin/Chemie/chemiedidaktik/disido/en/info/m_fact/mrochow.htm