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1.
J Med Chem ; 62(21): 9541-9559, 2019 11 14.
Article in English | MEDLINE | ID: mdl-31593466

ABSTRACT

Novel nanoparticle-drug conjugates (NDCs) containing diverse, clinically relevant anticancer drug payloads (docetaxel, cabazitaxel, and gemcitabine) were successfully generated and tested in drug discovery studies. The NDCs utilized structurally varied linkers that attached the drug payloads to a ß-cyclodextrin-PEG copolymer to form self-assembled nanoparticles. In vitro release studies revealed a diversity of release rates driven by linker structure-activity relationships (SARs). Improved in vivo pharmacokinetics (PK) for the cabazitaxel (CBTX) NDCs with glycinate-containing (1c) and hexanoate-containing linkers (2c) were demonstrated, along with high and sustained tumor levels (>168 h of released drug in tumor tissues). This led to potent efficacy and survival in both taxane- and docetaxel-resistant in vivo anticancer mouse efficacy models. Overall, the CBTX-hexanoate NDC 2c (CRLX522), demonstrated optimal and improved in vivo PK (plasma and tumor) and efficacy profile versus those of the parent drug, and the results support the potential therapeutic use of CRLX522 as a new anticancer agent.


Subject(s)
Drug Carriers/chemistry , Drug Design , Nanoparticles/chemistry , Polyethylene Glycols/chemistry , Taxoids/chemistry , Taxoids/pharmacology , beta-Cyclodextrins/chemistry , Animals , Antineoplastic Agents/chemistry , Antineoplastic Agents/pharmacokinetics , Antineoplastic Agents/pharmacology , Male , Melanoma, Experimental/pathology , Mice , Taxoids/pharmacokinetics , Tissue Distribution
2.
Chem Soc Rev ; 36(3): 507-31, 2007 Mar.
Article in English | MEDLINE | ID: mdl-17325789

ABSTRACT

An ideal therapeutic agent for bone diseases should act solely on bone tissue with no pharmacological activity at other anatomical sites. Current therapeutic agents, however, do not usually display a preferential affinity to bones and non-specifically distribute throughout the body after administration. Attempts to design bone-specific agents have relied on engineering a desired therapeutic agent with bone-seeking molecules so that the latter delivers the therapeutic agents specifically to bones. In this critical review, we summarize the latest attempts to engineer bone-seeking therapeutic agents based on formulating therapeutic agents with bisphosphonates, a class of compounds with high affinity to biological apatite. We first provide a relevant summary of the structure of bone mineral and bisphosphonates, highlighting the mode of interaction between these two entities. The use of bisphosphonates in the diagnosis of bone diseases is then presented, since this application helps us to understand the bone-carrier properties of bisphosphonates under physiological conditions. A summary of recent attempts to formulate bisphosphonates with traditional therapeutic agents to restrict their activities to bone tissues is then provided, with special emphasis on the structure-function relationships of the engineered compounds. Finally, attempts to use bisphosphonates to deliver macromolecular therapeutics (i.e., proteins) are summarized, based on recent data from the authors' lab. The collective research into bone-seeking medicinal agents is progressively laying the foundation for next-generation 'magic bullets' that display desirable activities at the disease sites with no undesirable activity on other organ systems. (164 references.).


Subject(s)
Bone Density Conservation Agents , Bone Diseases/drug therapy , Diphosphonates/chemistry , Drug Carriers/chemistry , Drug Design , Anti-Bacterial Agents/chemistry , Bone Density Conservation Agents/administration & dosage , Bone Density Conservation Agents/chemistry , Bone Density Conservation Agents/therapeutic use , Bone Diseases/diagnosis , Bone Diseases/metabolism , Molecular Structure , Photochemotherapy , Proteins/chemistry
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