Literature DB >> 8339289

Increased microvascular permeability contributes to preferential accumulation of Stealth liposomes in tumor tissue.

N Z Wu1, D Da, T L Rudoll, D Needham, A R Whorton, M W Dewhirst.   

Abstract

Stealth liposomes have recently emerged as a promising antitumor drug delivery system, yet no studies have been reported to examine their dynamic behavior at the microcirculatory level. In this investigation, we have used in vivo fluorescence videomicroscopy to study the decay in plasma concentration and the interstitial accumulation of Stealth and conventional liposomes in tumor and granulating tissue microcirculatory preparations. Fluorescently labeled Stealth or conventional liposomes were injected i.v. into rats bearing dorsal skinflap window chambers, some of which contained a vascularized mammary adenocarcinoma. After injection, fluorescent light intensities arising from liposomes within blood vessels and the interstitium were measured over time. These measurements were used to derive plasma pharmacokinetics and vascular permeability coefficients for each liposome species in both tumor and granulating normal tissues. Within the first 90 min after injection, Stealth liposome accumulation in the tumor interstitium was 3-4-fold that for conventional liposomes. The percentage of administered liposomes remaining in the circulation at the end of 90 min was 60.2% for Stealth and 20.4% for conventional liposomes. Tumor vascular permeability was 3.42 +/- 0.78 x 10(-7)cm/s for Stealth and 1.75 x 0.38 x 10(-7)cm/s for conventional liposomes. In normal granulating tissues permeability for the 2 constructs was equivalent at 0.8-0.9 x 10(-7)cm/s. In conclusion, preferential accumulation of Stealth liposomes in tumors was attributable to a combination of slower plasma clearance and higher vascular permeability relative to conventional liposomes. Our method of combining in vivo microscopy with a tumor microcirculatory model provides a unique approach to study quantitatively the delivery of liposomes to tumor tissues, since it can be used to study the process in real time at the microcirculatory level.

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Year:  1993        PMID: 8339289

Source DB:  PubMed          Journal:  Cancer Res        ISSN: 0008-5472            Impact factor:   12.701


  55 in total

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2.  Liposome-mediated therapy of intracranial brain tumors in a rat model.

Authors:  U S Sharma; A Sharma; R I Chau; R M Straubinger
Journal:  Pharm Res       Date:  1997-08       Impact factor: 4.200

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4.  Immunoliposomal delivery of 213Bi for alpha-emitter targeting of metastatic breast cancer.

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Authors:  Zeljko Vujaskovic; Dong W Kim; Ellen Jones; Lan Lan; Linda McCall; Mark W Dewhirst; Oana Craciunescu; Paul Stauffer; Vlayka Liotcheva; Allison Betof; Kimberly Blackwell
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6.  Mathematical spatio-temporal model of drug delivery from low temperature sensitive liposomes during radiofrequency tumour ablation.

Authors:  Astrid Gasselhuber; Matthew R Dreher; Ayele Negussie; Bradford J Wood; Frank Rattay; Dieter Haemmerich
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7.  Nanoshell-mediated near-infrared thermal therapy of tumors under magnetic resonance guidance.

Authors:  L R Hirsch; R J Stafford; J A Bankson; S R Sershen; B Rivera; R E Price; J D Hazle; N J Halas; J L West
Journal:  Proc Natl Acad Sci U S A       Date:  2003-11-03       Impact factor: 11.205

Review 8.  Liposomal drug formulations. Rationale for development and what we can expect for the future.

Authors:  T M Allen
Journal:  Drugs       Date:  1998-11       Impact factor: 9.546

9.  Structure and phase behavior of lipid suspensions containing phospholipids with covalently attached poly(ethylene glycol).

Authors:  A K Kenworthy; S A Simon; T J McIntosh
Journal:  Biophys J       Date:  1995-05       Impact factor: 4.033

10.  Range and magnitude of the steric pressure between bilayers containing phospholipids with covalently attached poly(ethylene glycol).

Authors:  A K Kenworthy; K Hristova; D Needham; T J McIntosh
Journal:  Biophys J       Date:  1995-05       Impact factor: 4.033

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