nr |
titel |
auteur |
tijdschrift |
jaar |
jaarg. |
afl. |
pagina('s) |
type |
1001 |
Improving the efficacy of inhaled drugs in cystic fibrosis: Challenges and emerging drug delivery strategies
|
d'Angelo, Ivana |
|
2014 |
82-83 |
C |
p. 92-111 20 p. |
artikel |
1002 |
Improving vascularization of engineered bone through the generation of pro-angiogenic effects in co-culture systems
|
Unger, Ronald E. |
|
2015 |
82-83 |
C |
p. 116-125 10 p. |
artikel |
1003 |
Influencing neuroplasticity in stroke treatment with advanced biomaterials-based approaches
|
Obermeyer, J.M. |
|
|
82-83 |
C |
p. 204-218 |
artikel |
1004 |
Ingestible devices for studying the gastrointestinal physiology and their application in oral biopharmaceutics
|
Weitschies, Werner |
|
|
82-83 |
C |
p. |
artikel |
1005 |
Ingestion-time differences in the pharmacodynamics of hypertension medications: Systematic review of human chronopharmacology trials
|
Hermida, Ramón C. |
|
|
82-83 |
C |
p. 200-213 |
artikel |
1006 |
Inhalation delivery technology for genome-editing of respiratory diseases
|
Chow, Michael Y.T. |
|
|
82-83 |
C |
p. 217-228 |
artikel |
1007 |
Inhalation of repurposed drugs to treat pulmonary hypertension
|
Gessler, Tobias |
|
2018 |
82-83 |
C |
p. 34-44 |
artikel |
1008 |
Inhaled anti-infective chemotherapy for respiratory tract infections: Successes, challenges and the road ahead
|
Velkov, Tony |
|
2015 |
82-83 |
C |
p. 65-82 18 p. |
artikel |
1009 |
Inhaled antimicrobial chemotherapy for respiratory tract infections: successes, challenges and the road ahead
|
Chan, Hak-Kim |
|
2015 |
82-83 |
C |
p. v-vii nvt p. |
artikel |
1010 |
Inhaled antimicrobial therapy – Barriers to effective treatment
|
Weers, Jeffry |
|
2015 |
82-83 |
C |
p. 24-43 20 p. |
artikel |
1011 |
Inhaled drug delivery for the targeted treatment of asthma
|
Boboltz, Allison |
|
|
82-83 |
C |
p. |
artikel |
1012 |
Inhaled formulations and pulmonary drug delivery systems for respiratory infections
|
Zhou, Qi (Tony) |
|
2015 |
82-83 |
C |
p. 83-99 17 p. |
artikel |
1013 |
Inhaled RNA drugs to treat lung diseases: Disease-related cells and nano–bio interactions
|
Zhang, Mengjun |
|
|
82-83 |
C |
p. |
artikel |
1014 |
Injectable formulations of poly(lactic acid) and its copolymers in clinical use
|
Jain, Anjali |
|
2016 |
82-83 |
C |
p. 213-227 |
artikel |
1015 |
Injectable network biomaterials via molecular or colloidal self-assembly
|
Sahoo, Jugal Kishore |
|
|
82-83 |
C |
p. 185-207 |
artikel |
1016 |
Injectable systems for long-lasting insulin therapy
|
Niloy, Kumar Kulldeep |
|
|
82-83 |
C |
p. |
artikel |
1017 |
Innovative approaches to optimizing the delivery of vancomycin in individual patients
|
Pai, Manjunath P. |
|
2014 |
82-83 |
C |
p. 50-57 8 p. |
artikel |
1018 |
Inorganic nanoparticles as scaffolds for bioorthogonal catalysts
|
Hirschbiegel, Cristina-Maria |
|
|
82-83 |
C |
p. |
artikel |
1019 |
IN.PACT™ Admiral™ drug-coated balloon: Durable, consistent and safe treatment for femoropopliteal peripheral artery disease
|
Peterson, Susan |
|
2017 |
82-83 |
C |
p. 69-77 9 p. |
artikel |
1020 |
Insights into incretin-based therapies for treatment of diabetic dyslipidemia
|
Stemmer, Kerstin |
|
|
82-83 |
C |
p. 34-53 |
artikel |
1021 |
Insights into the key roles of epigenetics in matrix macromolecules-associated wound healing
|
Piperigkou, Zoi |
|
|
82-83 |
C |
p. 16-36 |
artikel |
1022 |
Insights into the use of genetically modified decellularized biomaterials for tissue engineering and regenerative medicine
|
Zhu, Danji |
|
|
82-83 |
C |
p. |
artikel |
1023 |
In silico methods for predicting drug–drug interactions with cytochrome P-450s, transporters and beyond
|
Ai, Ni |
|
2015 |
82-83 |
C |
p. 46-60 15 p. |
artikel |
1024 |
In silico T cell epitope identification for SARS-CoV-2: Progress and perspectives
|
Sohail, Muhammad Saqib |
|
|
82-83 |
C |
p. 29-47 |
artikel |
1025 |
In situ activation of therapeutics through bioorthogonal catalysis
|
Wang, Wenjie |
|
|
82-83 |
C |
p. |
artikel |
1026 |
In situ cellular hitchhiking of nanoparticles for drug delivery
|
Udofa, Edidiong |
|
|
82-83 |
C |
p. |
artikel |
1027 |
In situ forming injectable hydrogels for drug delivery and wound repair
|
Dimatteo, Robert |
|
|
82-83 |
C |
p. 167-184 |
artikel |
1028 |
Instructive microenvironments in skin wound healing: Biomaterials as signal releasing platforms
|
Castaño, Oscar |
|
|
82-83 |
C |
p. 95-117 |
artikel |
1029 |
Insulin delivery systems combined with microneedle technology
|
Jin, Xuan |
|
|
82-83 |
C |
p. 119-137 |
artikel |
1030 |
Integrated modeling of biomarkers, survival and safety in clinical oncology drug development
|
Liu, Han |
|
|
82-83 |
C |
p. |
artikel |
1031 |
Integrated pharmacokinetic-pharmacodynamic and agent-based modelling in drug development: Current status and future perspectives
|
Yates, James W.T. |
|
|
82-83 |
C |
p. |
artikel |
1032 |
Integrating chemoradiation and molecularly targeted therapy
|
Wahl, Daniel R. |
|
2017 |
82-83 |
C |
p. 74-83 10 p. |
artikel |
1033 |
Integrating microneedles and sensing strategies for diagnostic and monitoring applications: The state of the art
|
Pei, Shihao |
|
|
82-83 |
C |
p. |
artikel |
1034 |
Integrating nanomedicine into clinical radiotherapy regimens
|
DuRoss, Allison N. |
|
|
82-83 |
C |
p. 35-56 |
artikel |
1035 |
Integration of biomimicry and nanotechnology for significantly improved detection of circulating tumor cells (CTCs)
|
Myung, Ja Hye |
|
|
82-83 |
C |
p. 36-47 |
artikel |
1036 |
Integration of mesenchymal stem cells with nanobiomaterials for the repair of myocardial infarction
|
Han, Jin |
|
2015 |
82-83 |
C |
p. 15-28 14 p. |
artikel |
1037 |
Integration of personalized drug delivery systems into digital health
|
Raijada, Dhara |
|
|
82-83 |
C |
p. |
artikel |
1038 |
Integrins in wound healing, fibrosis and tumor stroma: High potential targets for therapeutics and drug delivery
|
Schnittert, Jonas |
|
|
82-83 |
C |
p. 37-53 |
artikel |
1039 |
Interaction between high-density lipoproteins and inflammation: Function matters more than concentration!
|
Nazir, Sumra |
|
|
82-83 |
C |
p. 94-119 |
artikel |
1040 |
Interaction of 2D nanomaterial with cellular barrier: Membrane attachment and intracellular trafficking
|
Miao, Li |
|
|
82-83 |
C |
p. |
artikel |
1041 |
Interactions between nanoparticles and lymphatic systems: Mechanisms and applications in drug delivery
|
Tang, Yisi |
|
|
82-83 |
C |
p. |
artikel |
1042 |
Interactions between nanoparticles and pathological changes of vascular in Alzheimer’s disease
|
Lei, Ting |
|
|
82-83 |
C |
p. |
artikel |
1043 |
Interest of extracellular vesicles in regards to lipid nanoparticle based systems for intracellular protein delivery
|
Le Saux, Sarah |
|
|
82-83 |
C |
p. |
artikel |
1044 |
Interference of layered double hydroxide nanoparticles with pathways for biomedical applications
|
Jing, Guoxin |
|
|
82-83 |
C |
p. |
artikel |
1045 |
Intervertebral disc regeneration: From cell therapy to the development of novel bioinspired endogenous repair strategies
|
Clouet, Johann |
|
2019 |
82-83 |
C |
p. 306-324 |
artikel |
1046 |
Intracellular delivery of colloids: Past and future contributions from microinjection
|
Tiefenboeck, Peter |
|
2018 |
82-83 |
C |
p. 3-15 |
artikel |
1047 |
Intracellular spatiotemporal metabolism in connection to target engagement
|
Zhang, Jingwei |
|
|
82-83 |
C |
p. |
artikel |
1048 |
Intradermal and transdermal drug delivery using microneedles – Fabrication, performance evaluation and application to lymphatic delivery
|
Sabri, Akmal H. |
|
|
82-83 |
C |
p. 195-215 |
artikel |
1049 |
Intranasal and inhaled delivery systems for targeting circadian dysfunction in neurodegenerative disorders, perspective and future outlook
|
Ryan, Rhearne |
|
|
82-83 |
C |
p. |
artikel |
1050 |
Intranasal drug delivery: The interaction between nanoparticles and the nose-to-brain pathway
|
Chen, Yaoxing |
|
|
82-83 |
C |
p. |
artikel |
1051 |
Intranasal NAP (Davunetide): Neuroprotection and circadian rhythmicity
|
Galushkin, Artur |
|
|
82-83 |
C |
p. |
artikel |
1052 |
Intraperitoneal aerosolized drug delivery: Technology, recent developments, and future outlook
|
Rahimi-Gorji, Mohammad |
|
|
82-83 |
C |
p. 105-114 |
artikel |
1053 |
Intrathecal delivery and its applications in leptomeningeal disease
|
Khang, Minsoo |
|
|
82-83 |
C |
p. |
artikel |
1054 |
Intrathecal delivery of Macromolecules: Clinical status and emerging technologies
|
Ajeeb, Rana |
|
|
82-83 |
C |
p. |
artikel |
1055 |
Intrathecal drug delivery in the era of nanomedicine
|
Fowler, M.J. |
|
|
82-83 |
C |
p. 77-95 |
artikel |
1056 |
Intra-tumoral bacteria in breast cancer and intervention strategies
|
Hou, Ting |
|
|
82-83 |
C |
p. |
artikel |
1057 |
Intratumoral fate of functional nanoparticles in response to microenvironment factor: Implications on cancer diagnosis and therapy
|
Peng, Jinrong |
|
|
82-83 |
C |
p. 37-67 |
artikel |
1058 |
Intravital microscopy for real-time monitoring of drug delivery and nanobiological processes
|
Momoh, Jeffrey |
|
|
82-83 |
C |
p. |
artikel |
1059 |
Intrinsic cancer vaccination
|
Yang, Yoosoo |
|
|
82-83 |
C |
p. 2-22 |
artikel |
1060 |
Introducing article-based publishing (ABP) and Virtual Special Issue (VSI)
|
|
|
|
82-83 |
C |
p. A1 |
artikel |
1061 |
Investigation of endosome and lysosome biology by ultra pH-sensitive nanoprobes
|
Wang, Chensu |
|
2017 |
82-83 |
C |
p. 87-96 10 p. |
artikel |
1062 |
In vitro and ex vivo models for evaluating vaginal drug delivery systems
|
Shapiro, Rachel L. |
|
|
82-83 |
C |
p. |
artikel |
1063 |
In vitro and ex vivo models in inhalation biopharmaceutical research — advances, challenges and future perspectives
|
Selo, Mohammed Ali |
|
|
82-83 |
C |
p. |
artikel |
1064 |
In vitro and ex vivo models to study drug delivery barriers in the posterior segment of the eye
|
Peynshaert, Karen |
|
2018 |
82-83 |
C |
p. 44-57 |
artikel |
1065 |
In vitro cancer cell–ECM interactions inform in vivo cancer treatment
|
Holle, Andrew W. |
|
2016 |
82-83 |
C |
p. 270-279 10 p. |
artikel |
1066 |
In vitro cardiac tissue models: Current status and future prospects
|
Mathur, Anurag |
|
2016 |
82-83 |
C |
p. 203-213 11 p. |
artikel |
1067 |
In vitro digestion models to evaluate lipid based drug delivery systems; present status and current trends
|
Berthelsen, Ragna |
|
2019 |
82-83 |
C |
p. 35-49 |
artikel |
1068 |
In-vitro 3D modelling for charged particle therapy – Uncertainties and opportunities
|
Thiagarajan, Anuradha |
|
|
82-83 |
C |
p. |
artikel |
1069 |
“In vitro” 3D models of tumor-immune system interaction
|
Hirt, Christian |
|
2014 |
82-83 |
C |
p. 145-154 10 p. |
artikel |
1070 |
In vitro, ex vivo and in vivo methods of lung absorption for inhaled drugs
|
Sakagami, Masahiro |
|
|
82-83 |
C |
p. 63-74 |
artikel |
1071 |
In vitro, in silico and integrated strategies for the estimation of plasma protein binding. A review
|
Lambrinidis, George |
|
2015 |
82-83 |
C |
p. 27-45 19 p. |
artikel |
1072 |
In vitro-in vivo correlation of cascade impactor data for orally inhaled pharmaceutical aerosols
|
Chow, Michael Yee Tak |
|
|
82-83 |
C |
p. |
artikel |
1073 |
In vitro – in vivo correlation of intranasal drug deposition
|
Le Guellec, S. |
|
|
82-83 |
C |
p. 340-352 |
artikel |
1074 |
In vitro-in vivo correlation of pharmaceutical aerosols
|
Hickey, Anthony J. |
|
|
82-83 |
C |
p. |
artikel |
1075 |
In vitro-in vivo correlations (IVIVCs) of deposition for drugs given by oral inhalation
|
Newman, Stephen P. |
|
|
82-83 |
C |
p. 135-147 |
artikel |
1076 |
In vitro microbial culture models and their application in drug development
|
Vyawahare, Saurabh |
|
2014 |
82-83 |
C |
p. 217-224 8 p. |
artikel |
1077 |
In vitro microenvironments to study breast cancer bone colonisation
|
Taubenberger, Anna V. |
|
2014 |
82-83 |
C |
p. 135-144 10 p. |
artikel |
1078 |
In vitro modeling of the prostate cancer microenvironment
|
Ellem, Stuart J. |
|
2014 |
82-83 |
C |
p. 214-221 8 p. |
artikel |
1079 |
In vitro models of tumor vessels and matrix: Engineering approaches to investigate transport limitations and drug delivery in cancer
|
Seo, Bo Ri |
|
2014 |
82-83 |
C |
p. 205-216 12 p. |
artikel |
1080 |
In vitro models to evaluate ingestible devices: Present status and current trends
|
O'Farrell, Connor |
|
|
82-83 |
C |
p. |
artikel |
1081 |
In vitro transcribed mRNA for expression of designer nucleases: Advantages as a novel therapeutic for the management of chronic HBV infection
|
Ely, Abdullah |
|
|
82-83 |
C |
p. 134-146 |
artikel |
1082 |
In vivo delivery of miRNAs for cancer therapy: Challenges and strategies
|
Chen, Yunching |
|
2015 |
82-83 |
C |
p. 128-141 14 p. |
artikel |
1083 |
In vivo deposition of poorly soluble drugs
|
Lou, Zhaohuan |
|
|
82-83 |
C |
p. |
artikel |
1084 |
In vivo fate and intracellular trafficking of vaccine delivery systems
|
Lee, Jaiwoo |
|
|
82-83 |
C |
p. |
artikel |
1085 |
In vivo models of mucin biosynthesis and function
|
Syed, Zulfeqhar A. |
|
|
82-83 |
C |
p. |
artikel |
1086 |
In vivo models to evaluate ingestible devices: Present status and current trends
|
Stamatopoulos, Konstantinos |
|
|
82-83 |
C |
p. |
artikel |
1087 |
In vivo reprogramming of immune cells: Technologies for induction of antigen-specific tolerance
|
Pearson, Ryan M. |
|
2017 |
82-83 |
C |
p. 240-255 |
artikel |
1088 |
Iron oxide nanoparticles: Diagnostic, therapeutic and theranostic applications
|
Dadfar, Seyed Mohammadali |
|
2019 |
82-83 |
C |
p. 302-325 |
artikel |
1089 |
Isolation and identification of bacteria by means of Raman spectroscopy
|
Pahlow, Susanne |
|
2015 |
82-83 |
C |
p. 105-120 16 p. |
artikel |
1090 |
Jet injectors: Perspectives for small volume delivery with lasers
|
Schoppink, Jelle |
|
|
82-83 |
C |
p. |
artikel |
1091 |
Key players in the immune response to biomaterial scaffolds for regenerative medicine
|
Chung, Liam |
|
2017 |
82-83 |
C |
p. 184-192 |
artikel |
1092 |
Killing two birds or more with one stone
|
Heo, Chan Yeong |
|
2016 |
82-83 |
C |
p. 1-2 2 p. |
artikel |
1093 |
Label-free cytokine micro- and nano-biosensing towards personalized medicine of systemic inflammatory disorders
|
Chen, Pengyu |
|
2015 |
82-83 |
C |
p. 90-103 14 p. |
artikel |
1094 |
Lack of predictive tools for conventional and targeted cancer therapy: Barriers to biomarker development and clinical translation
|
Batis, Nikolaos |
|
|
82-83 |
C |
p. |
artikel |
1095 |
Large-scale production of human pluripotent stem cell derived cardiomyocytes
|
Kempf, Henning |
|
2016 |
82-83 |
C |
p. 18-30 13 p. |
artikel |
1096 |
Laser ablation: Heating up the anti-tumor response in the intracranial compartment
|
Lerner, Emily C. |
|
|
82-83 |
C |
p. |
artikel |
1097 |
Lessons from patient-derived xenografts for better in vitro modeling of human cancer
|
Choi, Stephen Yiu Chuen |
|
2014 |
82-83 |
C |
p. 222-237 16 p. |
artikel |
1098 |
Lessons learned from intervertebral disc pathophysiology to guide rational design of sequential delivery systems for therapeutic biological factors
|
Frapin, Leslie |
|
|
82-83 |
C |
p. 49-71 |
artikel |
1099 |
Let's get small (and smaller): Combining zebrafish and nanomedicine to advance neuroregenerative therapeutics
|
White, David T. |
|
|
82-83 |
C |
p. 344-359 |
artikel |
1100 |
Let’s talk about sex: Differences in drug therapy in males and females
|
Madla, Christine M. |
|
|
82-83 |
C |
p. |
artikel |
1101 |
Letter to the editor
|
Furka, Árpád |
|
|
82-83 |
C |
p. 151 |
artikel |
1102 |
Leveraging advances in immunopathology and artificial intelligence to analyze in vitro tumor models in composition and space
|
Leong, Tze Ker Matthew |
|
|
82-83 |
C |
p. |
artikel |
1103 |
Leveraging macrophages for cancer theranostics
|
Liu, Lu |
|
|
82-83 |
C |
p. |
artikel |
1104 |
Leveraging the interplay of nanotechnology and neuroscience: Designing new avenues for treating central nervous system disorders
|
Smith, Elizabeth S. |
|
|
82-83 |
C |
p. 181-203 |
artikel |
1105 |
Leveraging the neurosurgical operating room for therapeutic development in NeuroOncology
|
Lowe, Stephen R. |
|
|
82-83 |
C |
p. |
artikel |
1106 |
Ligand density on nanoparticles: A parameter with critical impact on nanomedicine
|
Alkilany, Alaaldin M. |
|
|
82-83 |
C |
p. 22-36 |
artikel |
1107 |
Light and drug delivery-based antimicrobial therapies in the fight against infectious diseases
|
Dai, Tianhong |
|
|
82-83 |
C |
p. |
artikel |
1108 |
Light in evaluation of molecular diffusion in tissues: Discrimination of pathologies
|
Oliveira, Luís R. |
|
|
82-83 |
C |
p. |
artikel |
1109 |
Light-responsive nanomedicine for biophotonic imaging and targeted therapy
|
Son, Jihwan |
|
2019 |
82-83 |
C |
p. 133-147 |
artikel |
1110 |
Lights out for Superbugs: Is antimicrobial blue light a potential approach for future infection Control?
|
Ozdemir, Gizem D. |
|
|
82-83 |
C |
p. |
artikel |
1111 |
Light-triggered photodynamic nanomedicines for overcoming localized therapeutic efficacy in cancer treatment
|
Choi, Jiwoong |
|
|
82-83 |
C |
p. |
artikel |
1112 |
Limiting angiogenesis to modulate scar formation
|
Korntner, Stefanie |
|
2019 |
82-83 |
C |
p. 170-189 |
artikel |
1113 |
Linking autoantigen properties to mechanisms of immunity
|
Griffin, J. Daniel |
|
|
82-83 |
C |
p. 105-116 |
artikel |
1114 |
Lipid-based carriers for pulmonary products: Preclinical development and case studies in humans
|
Cipolla, David |
|
2014 |
82-83 |
C |
p. 53-80 28 p. |
artikel |
1115 |
Lipid-based microbubbles and ultrasound for therapeutic application
|
Omata, Daiki |
|
|
82-83 |
C |
p. 236-244 |
artikel |
1116 |
Lipid based nanocarriers for effective drug delivery and treatment of diabetes associated liver fibrosis
|
Salunkhe, Shubham A. |
|
|
82-83 |
C |
p. 394-415 |
artikel |
1117 |
Lipid-based nanoparticle technologies for liver targeting
|
Böttger, Roland |
|
|
82-83 |
C |
p. 79-101 |
artikel |
1118 |
Lipid efflux mechanisms, relation to disease and potential therapeutic aspects
|
Castaño, David |
|
|
82-83 |
C |
p. 54-93 |
artikel |
1119 |
Lipid in the midst of metabolic remodeling – Therapeutic implications for the failing heart
|
Nguyen, T. Dung |
|
|
82-83 |
C |
p. 120-132 |
artikel |
1120 |
Lipid nanoparticle formulations for targeting leukocytes with therapeutic RNA in liver fibrosis
|
Bartneck, Matthias |
|
|
82-83 |
C |
p. 70-88 |
artikel |
1121 |
Lipid nanoparticle-mediated drug delivery to the brain
|
Khare, Purva |
|
|
82-83 |
C |
p. |
artikel |
1122 |
Lipid nanoparticles for nucleic acid delivery: Current perspectives
|
Samaridou, Eleni |
|
|
82-83 |
C |
p. 37-63 |
artikel |
1123 |
Lipid nanoparticles for RNA delivery: Self-assembling vs driven-assembling strategies
|
Nele, Valeria |
|
|
82-83 |
C |
p. |
artikel |
1124 |
Lipid nanoparticles for targeted delivery of anticancer therapeutics: Recent advances in development of siRNA and lipoprotein-mimicking nanocarriers
|
Yaghmur, Anan |
|
|
82-83 |
C |
p. |
artikel |
1125 |
Lipid nanoparticles (LNPs) for in vivo RNA delivery and their breakthrough technology for future applications
|
Jeong, Michaela |
|
|
82-83 |
C |
p. |
artikel |
1126 |
Lipid nanoparticles strategies to modify pharmacokinetics of central nervous system targeting drugs: Crossing or circumventing the blood–brain barrier (BBB) to manage neurological disorders
|
Correia, A.C. |
|
|
82-83 |
C |
p. |
artikel |
1127 |
Lipid nanoparticle technology for therapeutic gene regulation in the liver
|
Witzigmann, Dominik |
|
|
82-83 |
C |
p. 344-363 |
artikel |
1128 |
“Lipidomics”: Mass spectrometric and chemometric analyses of lipids
|
Wu, Zhuojun |
|
|
82-83 |
C |
p. 294-307 |
artikel |
1129 |
Lipids and cancer: Emerging roles in pathogenesis, diagnosis and therapeutic intervention
|
Butler, Lisa M. |
|
|
82-83 |
C |
p. 245-293 |
artikel |
1130 |
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Pharmacokinetics, pharmacodynamics and safety of aptamers
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Kovacevic, Katarina D. |
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2018 |
82-83 |
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1527 |
Pharmacological and physical vessel modulation strategies to improve EPR-mediated drug targeting to tumors
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Ojha, Tarun |
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2017 |
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Photodynamic and antibiotic therapy in combination against bacterial infections: efficacy, determinants, mechanisms, and future perspectives
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Photomedicine based on heme-derived compounds
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Photonic and magnetic materials for on-demand local drug delivery
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Armenia, Ilaria |
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Phototheranostics for multifunctional treatment of cancer with fluorescence imaging
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Yin, Xiaoran |
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Phototherapy and optical waveguides for the treatment of infection
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Wang, Dingbowen |
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Photo-triggered polymer nanomedicines: From molecular mechanisms to therapeutic applications
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Beauté, Louis |
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2019 |
82-83 |
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Physical and chemical profiles of nanoparticles for lymphatic targeting
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Ke, Xiyu |
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Physical and mechanical properties of PLA, and their functions in widespread applications — A comprehensive review
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Farah, Shady |
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2016 |
82-83 |
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Physical chemistry of supersaturated solutions and implications for oral absorption
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Taylor, Lynne S. |
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2016 |
82-83 |
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Physical drug delivery enhancement for aged skin, UV damaged skin and skin cancer: Translation and commercialization
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Yamada, Miko |
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Physical energy for drug delivery; poration, concentration and activation
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Lakshmanan, Shanmugamurthy |
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2014 |
82-83 |
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Physically-triggered nanosystems based on two-dimensional materials for cancer theranostics
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Ji, Ding-Kun |
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2019 |
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1540 |
Physically-triggered nanosystems for therapy and diagnosis
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Wilhelm, Claire |
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2019 |
82-83 |
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Physical methods for enhancing drug absorption from the gastrointestinal tract
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Luo, Zhi |
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Physical stimuli-responsive vesicles in drug delivery: Beyond liposomes and polymersomes
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Kauscher, Ulrike |
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2019 |
82-83 |
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Physical triggering strategies for drug delivery
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Sun, Tao |
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Physiologically based pharmacokinetic modelling to guide drug delivery in older people
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Chetty, Manoranjenni |
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2018 |
82-83 |
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Physiological models for in vivo imaging and targeting the lymphatic system: Nanoparticles and extracellular vesicles
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Olmeda, David |
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Phytonanomaterials as therapeutic agents and drug delivery carriers
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Xie, Ying |
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Placental control of drug delivery
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Al-Enazy, Sanaalarab |
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2017 |
82-83 |
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1548 |
PLA composites: From production to properties
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Murariu, Marius |
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2016 |
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1549 |
PLA micro- and nano-particles
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Lee, Byung Kook |
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2016 |
82-83 |
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Plant-derived nanotherapeutic systems to counter the overgrowing threat of resistant microbes and biofilms
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Asghar, Sajid |
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Plant virus-based materials for biomedical applications: Trends and prospects
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Eiben, Sabine |
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2019 |
82-83 |
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Playing hide and seek with poorly tasting paediatric medicines: Do not forget the excipients
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Walsh, Jennifer |
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2014 |
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Point-, line-, and plane-shaped cellular constructs for 3D tissue assembly
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Morimoto, Yuya |
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2015 |
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1554 |
Poly(α-hydroxy acid)s and poly(α-hydroxy acid-co-α-amino acid)s derived from amino acid
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Basu, Arijit |
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2016 |
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1555 |
Poly (lactic acid)-based biomaterials for orthopaedic regenerative engineering
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Narayanan, Ganesh |
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2016 |
82-83 |
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p. 247-276 |
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1556 |
Poly(lactic acid) based hydrogels
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Basu, Arijit |
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2016 |
82-83 |
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p. 192-205 |
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1557 |
Poly(lactic acid) blends in biomedical applications
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Saini, P. |
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2016 |
82-83 |
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1558 |
Poly(lactic acid) for delivery of bioactive macromolecules
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James, Roshan |
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2016 |
82-83 |
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1559 |
Poly(lactic acid)—Mass production, processing, industrial applications, and end of life
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Castro-Aguirre, E. |
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2016 |
82-83 |
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1560 |
Poly(lactic acid) nanofibrous scaffolds for tissue engineering
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Santoro, Marco |
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2016 |
82-83 |
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p. 206-212 |
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1561 |
Polylactic acid (PLA) controlled delivery carriers for biomedical applications
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Tyler, Betty |
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2016 |
82-83 |
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p. 163-175 |
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Poly(lactic acid) stereocomplexes: A decade of progress
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Tsuji, Hideto |
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2016 |
82-83 |
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1563 |
Polylactides in additive biomanufacturing
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Poh, Patrina S.P. |
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2016 |
82-83 |
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p. 228-246 |
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1564 |
Polylactides—Methods of synthesis and characterization
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Pretula, Julia |
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2016 |
82-83 |
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1565 |
Polymer- and lipid-based nanocarriers for ocular drug delivery: Current status and future perspectives
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Han, Haijie |
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Polymer antidotes for toxin sequestration
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Weisman, Adam |
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2015 |
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Polymer-based drug delivery systems under investigation for enzyme replacement and other therapies of lysosomal storage disorders
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Placci, Marina |
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Polymer-based nanocarriers for vaginal drug delivery
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das Neves, José |
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2015 |
82-83 |
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p. 53-70 18 p. |
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Polymer based sustained drug delivery to the ocular posterior segment: barriers and future opportunities for the treatment of neovascular pathologies
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Polymeric carriers for enhanced delivery of probiotics
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Asgari, Shadi |
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1571 |
Polymeric drug delivery systems by additive manufacturing
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Borandeh, Sedigheh |
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p. 349-373 |
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Polymeric in situ forming depots for long-acting drug delivery systems
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Polymeric long-acting drug delivery systems (LADDS) for treatment of chronic diseases: Inserts, patches, wafers, and implants
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Polymeric micelles for the delivery of poorly soluble drugs: From nanoformulation to clinical approval
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Hwang, Duhyeong |
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1575 |
Polymeric microneedles for transdermal protein delivery
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Ye, Yanqi |
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p. 106-118 |
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1576 |
Polymeric nano- and microparticulate drug delivery systems for treatment of biofilms
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Birk, Stine Egebro |
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p. 30-52 |
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1577 |
Polymeric vehicles for nucleic acid delivery
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Piotrowski-Daspit, Alexandra S. |
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82-83 |
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p. 119-132 |
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1578 |
Polymer nanomedicines
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Kopeček, Jindřich |
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82-83 |
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p. 40-64 |
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1579 |
Polymers in cell encapsulation from an enveloped cell perspective
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de Vos, Paul |
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2014 |
82-83 |
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p. 15-34 20 p. |
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Polymers in pharmaceutical additive manufacturing: A balancing act between printability and product performance
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Govender, Rydvikha |
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Polymorphic phase transitions: Macroscopic theory and molecular simulation
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Anwar, Jamshed |
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2017 |
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p. 47-70 24 p. |
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Polypharmacology approaches for brain disorders aimed to enhance brain permeability and circadian clock targeting
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Kampasis, Dionysis |
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Polyplex designs for improving the stability and safety of RNA therapeutics
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Uchida, Satoshi |
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Polysaccharide hydrogel platforms as suitable carriers of liposomes and extracellular vesicles for dermal applications
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Pourtalebi Jahromi, Leila |
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Porcine genome engineering for xenotransplantation
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Niu, Dong |
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p. 229-245 |
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Positron emission tomography and nanotechnology: A dynamic duo for cancer theranostics
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Goel, Shreya |
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2017 |
82-83 |
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Post-inhalation cough with therapeutic aerosols: Formulation considerations
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Sahakijpijarn, Sawittree |
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p. 127-141 |
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1588 |
Potential and development of inhaled RNAi therapeutics for the treatment of pulmonary tuberculosis
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Man, Dede K.W. |
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2016 |
82-83 |
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p. 21-32 12 p. |
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1589 |
Potential of stem cell treatment in detrusor dysfunction
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Andersson, Karl-Erik |
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2015 |
82-83 |
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1590 |
Potentials of ionic liquids to overcome physical and biological barriers
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Beaven, Elfa |
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Power of mitochondrial drug delivery systems to produce innovative nanomedicines
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Yamada, Yuma |
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p. 187-209 |
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1592 |
Practical guidelines for the characterization and quality control of pure drug nanoparticles and nano-cocrystals in the pharmaceutical industry
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Peltonen, Leena |
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2018 |
82-83 |
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1593 |
Precise subcellular targeting approaches for organelle-related disorders
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Shim, Gayong |
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Precision monitoring of immunotherapies in solid organ and hematopoietic stem cell transplantation
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DiLoreto, Rose |
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2017 |
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1595 |
Preclinical and clinical development of siRNA-based therapeutics
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Ozcan, Gulnihal |
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2015 |
82-83 |
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p. 108-119 12 p. |
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1596 |
Preclinical assessments of vaginal microbicide candidate safety and efficacy
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Fernández-Romero, José A. |
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2015 |
82-83 |
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p. 27-38 12 p. |
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Preclinical models and technologies to advance nanovaccine development
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Peres, Carina |
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p. 148-182 |
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1598 |
Preclinical safety and efficacy models for pulmonary drug delivery of antimicrobials with focus on in vitro models
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Hittinger, Marius |
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2015 |
82-83 |
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p. 44-56 13 p. |
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1599 |
Preclinical testing of drug delivery systems to bone
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van Griensven, Martijn |
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2015 |
82-83 |
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p. 151-164 14 p. |
artikel |
1600 |
Predicting bioavailability of monoclonal antibodies after subcutaneous administration: Open innovation challenge
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Sánchez-Félix, Manuel |
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p. 66-77 |
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1601 |
Prediction of cytochrome P450 mediated metabolism
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Olsen, Lars |
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2015 |
82-83 |
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p. 61-71 11 p. |
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Prediction of drug–ABC-transporter interaction — Recent advances and future challenges
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Montanari, Floriane |
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2015 |
82-83 |
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p. 17-26 10 p. |
artikel |
1603 |
Preface
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Juliano, R.L. |
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2015 |
82-83 |
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p. 1-2 2 p. |
artikel |
1604 |
Preface
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Ghandehari, Hamid |
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2014 |
82-83 |
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artikel |
1605 |
Preface
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Thiagarajan, Giridhar |
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2017 |
82-83 |
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p. 1- 1 p. |
artikel |
1606 |
Preface
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Bunt, Craig |
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2018 |
82-83 |
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p. 1-2 |
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1607 |
Preface: Additive manufacturing in pharmaceutical product design
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Rantanen, Jukka |
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Preface: A new era of RNA-based therapies
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Hwa Kim, Sun |
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Preface: Engineering of pharmaceutical cocrystals, salts and polymorphs: Advances and Challenges
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Douroumis, Dennis |
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2017 |
82-83 |
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Preface: Image-assisted organoid research and application
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Yoo, Hyuk Sang |
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Preface in special theme: Functional inorganic nanomaterials for cutting-edge theranostic applications
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Xing, Bengang |
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Preface: Molecular Mechanisms, Novel Modes of Regulation, and Therapeutic Strategies
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You, Guofeng |
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2017 |
82-83 |
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p. 1-2 2 p. |
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1613 |
Preface: Nanoformulations for combination or cascade anticancer therapy
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Zhang, Qiang |
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2017 |
82-83 |
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p. 1-2 2 p. |
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1614 |
Preface: Pharmaceutical applications of Raman spectroscopy — From diagnosis to therapeutics
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Popp, Jürgen |
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2015 |
82-83 |
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p. 1-2 2 p. |
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1615 |
Preface: Phyto-derived nanomedicines for therapeutics, imaging and drug delivery
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Qiao, Hongzhi |
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Preface: The engineering behind a dry powder inhaler: From experiments to computations
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Kourmatzis, Agisilaos |
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Prevention of diabetes-associated fibrosis: Strategies in FcRn-targeted nanosystems for oral drug delivery
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1618 |
Principles and applications of sono-optogenetics
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Yang, Fan |
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Probing organoid metabolism using fluorescence lifetime imaging microscopy (FLIM): The next frontier of drug discovery and disease understanding
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Barroso, Margarida |
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Probing the relevance of 3D cancer models in nanomedicine research
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Leong, David T. |
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2014 |
82-83 |
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p. 95-106 12 p. |
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1621 |
Probiotic engineering strategies for the heterologous production of antimicrobial peptides
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Mejía-Pitta, Adriana |
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Prodrug approaches for the development of a long-acting drug delivery systems
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Chien, Shin-Tian |
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1623 |
Prodrugs in medicinal chemistry and enzyme prodrug therapies
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Walther, Raoul |
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2017 |
82-83 |
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p. 65-77 |
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1624 |
Production of pure drug nanocrystals and nano co-crystals by confinement methods
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Fontana, Flavia |
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2018 |
82-83 |
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Profiles and technological requirements of urogenital probiotics
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Nader-Macías, María Elena Fátima |
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2015 |
82-83 |
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p. 84-104 21 p. |
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1626 |
Programmability and biomedical utility of intrinsically-disordered protein polymers
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Giraldo-Castaño, Maria Camila |
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Progress and challenges towards CRISPR/Cas clinical translation
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Rosenblum, Daniel |
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1628 |
Progress and opportunities for enhancing the delivery and efficacy of checkpoint inhibitors for cancer immunotherapy
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Francis, David M. |
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2017 |
82-83 |
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p. 33-42 |
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1629 |
Progress in cell-based therapies for tendon repair
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Gaspar, Diana |
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2015 |
82-83 |
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p. 240-256 17 p. |
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1630 |
Progress in tumor-associated macrophage (TAM)-targeted therapeutics
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Ngambenjawong, Chayanon |
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2017 |
82-83 |
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p. 206-221 |
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1631 |
Progress, obstacles, and limitations in the use of stem cells in organ-on-a-chip models
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Wnorowski, Alexa |
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2019 |
82-83 |
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1632 |
Progress of engineered bacteria for tumor therapy
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Fan, Jin-Xuan |
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1633 |
Progress of tumor-resident intracellular bacteria for cancer therapy
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Bao, Peng |
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1634 |
Progress on the pathological tissue microenvironment barrier-modulated nanomedicine
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Han, Han |
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1635 |
Prophylactic vaccine delivery systems against epidemic infectious diseases
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Pan, Chao |
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1636 |
Prospects of coupled iron-based nanostructures in preclinical antibacterial therapy
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Han, Jingjing |
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1637 |
Prospects of magnetically based approaches addressing inflammation in tendon tissues
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Vinhas, Adriana |
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1638 |
Proteases in cancer drug delivery
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Vandooren, Jennifer |
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2016 |
82-83 |
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1639 |
Protein and polypeptide mediated delivery to the eye
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Attia, Sara Aly |
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Protein corona: Friend or foe? Co-opting serum proteins for nanoparticle delivery
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Kim, Woojun |
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Protein encapsulation of nanocatalysts: A feasible approach to facilitate catalytic theranostics
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Jin, Duo |
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Protein-engineered biomaterials for cartilage therapeutics and repair
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Haq-Siddiqi, Nada A. |
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82-83 |
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1643 |
Protein stability — An underappreciated but critical need for drug delivery systems
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Cicerone, Marcus |
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2015 |
82-83 |
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p. 1- 1 p. |
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1644 |
Protein stability in pulmonary drug delivery via nebulization
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Hertel, Sebastian P. |
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2015 |
82-83 |
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p. 79-94 16 p. |
artikel |
1645 |
Proton therapy – Present and future
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Mohan, Radhe |
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2017 |
82-83 |
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p. 26-44 19 p. |
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1646 |
Publisher’s note
|
|
|
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82-83 |
C |
p. 1 |
artikel |
1647 |
Publisher’s note
|
|
|
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82-83 |
C |
p. 1 |
artikel |
1648 |
Publisher’s Note: Thank you Prof Hamid Ghandehari
|
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82-83 |
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1649 |
Pulmonary delivery nanomedicines towards circumventing physiological barriers: Strategies and characterization approaches
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Wang, Wenhao |
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82-83 |
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1650 |
Pulmonary drug delivery to older people
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Wallin, Martin |
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2018 |
82-83 |
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p. 50-61 |
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1651 |
Purified mucins in drug delivery research
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Marczynski, Matthias |
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82-83 |
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1652 |
Radiation-assisted strategies provide new perspectives to improve the nanoparticle delivery to tumor
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Zhang, Dongxiao |
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Radiation effects on the tumor microenvironment: Implications for nanomedicine delivery
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Stapleton, Shawn |
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p. 119-130 12 p. |
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Radioimmunotherapy of cancer with high linear energy transfer (LET) radiation delivered by radionuclides emitting α-particles or Auger electrons
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Aghevlian, Sadaf |
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2017 |
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p. 102-118 17 p. |
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1655 |
Radiotherapy for Cancer: Present and Future
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Allen, Christine |
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2017 |
82-83 |
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Raman imaging of drug delivery systems
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Raman microscopy for cellular investigations — From single cell imaging to drug carrier uptake visualization
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Kann, Birthe |
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p. 71-90 20 p. |
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1658 |
Raman spectroscopy for medical diagnostics — From in-vitro biofluid assays to in-vivo cancer detection
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