Complex Macromolecular Systems I

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Poly ethylene glycol in drug delivery: pros and cons as well as potential alternatives.


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Samad, A. Liposomal drug delivery systems: an update review. Pattni, B. New developments in liposomal drug delivery. Allen, T. Liposomal drug delivery systems: from concept to clinical applications. Sercombe, L. Advances and challenges of liposome assisted drug delivery. Helm, F. Liposomal conjugates for drug delivery to the central nervous system. Pharmaceutics 7 , 27—42 Astruc, D. Introduction to nanomedicine. Molecules 21 , 1—6 Yang, S. Formulating protein therapeutics into particulate forms.

Bogdansky, S. Elzoghby, A. Albumin-based nanoparticles as potential controlled release drug delivery systems. Release , — Gradishar, W.

Albumin-bound paclitaxel: a next generation taxane. Bader, R. Traverso, G. Perspective: special delivery for the gut. Nature , S19 Wong, P. Mechanisms of drug release in nanotherapeutic delivery systems. Data mining as a guide for the construction of cross-linked nanoparticles with low immunotoxicity via control of polymer chemistry and supramolecular assembly.

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Evolution of macromolecular complexity in drug delivery systems

Delplace, V. Degradable vinyl polymers for biomedical applications. Salvador-Morales, C. Immunocompatibility properties of lipid—polymer hybrid nanoparticles with heterogeneous surface functional groups. Biomaterials 30 , — Langer, R. Present and future applications of biomaterials in controlled drug delivery systems.

Biomaterials 2 , — Drug delivery and targeting. Nature , 5—10 Sinha, V. Bioadsorbable polymers for implantable therapeutic systems. Drug Dev. Polymer conjugates as anticancer nanomedicines. Cancer 6 , — CRC, Liechty, W. Polymers for drug delivery systems. Polymer therapeutics-prospects for 21st century: the end of the beginning.

Kurniasih, I. Dendritic nanocarriers based on hyperbranched polymers. Sharma, A. Designing dendrimers and miktoarm polymer based multi-tasking nanocarriers for efficient medical therapy. Molecules 20 , — Nanomedicines targeting the tumor environment. Cancer J. Epps, T.

Organized molecular and macromolecular complex systems - ICS

Block copolymers: controlling nanostructure to generate functional materials — synthesis, characterization, and engineering. Schluter, D. Theato, P. Du, Y. Biomaterials 33 , — Nederberg, F. Simple approach to stabilized micelles employing miktoarm terpolymers and stereocomplexes with application in paclitaxel delivery. Biomacromolecules 10 , — Franc, G. Click methodologies: efficient, simple and greener routes to design dendrimers.

Chang, W. Michael addition polymerization of trifunctional amine and acrylic monomer: a versatile platform for development of biomaterials. Biomacromolecules 17 , — Arseneault, M. Recent advances in click chemistry applied to dendrimer synthesis. Brandl, F.

Table of Contents

The Diels—Alder reaction: a powerful tool for the design of drug delivery systems and biomaterials. Devaraj, N. Biomedical applications of tetrazine cycloadditions. Yang, K. Bioorthogonal imaging of aurora kinase A in live cells. Castonguay, A.

Thermosensitive dendrimer formulation for drug delivery at physiologically relevant temperatures. Killops, K. Cai, L. Telodendrimer nanocarrier for co-delivery of paclitaxel and cisplatin: a synergistic combination nanotherapy for ovarian cancer treatment.

What is MACROMOLECULAR CROWDING? What does MACROMOLECULAR CROWDING mean?

Biomaterials 37 , — Hunter, A. Smart polymers in drug delivery: a biological perspective, Polym. Batycky, R. A theoretical model of erosion and macromolecular drug release from biodegrading microspheres. Brazel, C. Modeling of drug release from swellable polymers.

References

Xu, X. Multifunctional envelope-type siRNA delivery nanoparticle platform for prostate cancer therapy. ACS Nano 11 , — Ultra-pH-responsive and tumor-penetrating nanoplatform for targeted siRNA delivery with robust anti-cancer efficacy. Moghimi, S. Long-circulating and target specific nanoparticles: theory to practice.