Literature DB >> 20359513

Physicochemical parameters affecting liposomal bisphosphonates bioactivity for restenosis therapy: internalization, cell inhibition, activation of cytokines and complement, and mechanism of cell death.

Hila Epstein-Barash1, Dikla Gutman, Ela Markovsky, Galit Mishan-Eisenberg, Nickolay Koroukhov, Janos Szebeni, Gershon Golomb.   

Abstract

Partial inactivation and transient depletion of monocytes/macrophages by liposomal bisphosphonates (LIP-BPs) is widely experimented in various inflammatory disorders including restenosis. Previous studies on activation of cytokines by LIP-BPs are limited to certain cell lines. Moreover, the correlation between in vitro and in vivo studies and complement (C) activation has not been reported. We report here a comprehensive study on the bioactivity of LIP-BPs on various cells' internalization and proliferation, mechanism of cell death, cytokines (in vitro and in vivo) and C activation (in the rat, rabbit and pig). The role of the following parameters has been determined i) drug type (clodronate/alendronate); ii) vesicles size (60-800nm); iii) charge (neutral/negative/ positive); and iv) cell culture type (various cell lines and primary cultures). It was found that monocyte/macrophage inhibition and cytokine activation depend on the cell type, with a limited correlation to the bioactivity obtained in the rat and rabbit models of restenosis. Negatively charged liposomes (85+/-20nm) effectively depleted rabbit's monocytes (67% depletion), with a minor activation of cytokines and no C activation. It is concluded that cell culture studies are insufficient for assessing cytokine activation, and that by controlling LIP-BP properties (size, charge and drug type) optimal bioactivity could be achieved. Copyright 2010 Elsevier B.V. All rights reserved.

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Year:  2010        PMID: 20359513     DOI: 10.1016/j.jconrel.2010.03.011

Source DB:  PubMed          Journal:  J Control Release        ISSN: 0168-3659            Impact factor:   9.776


  16 in total

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4.  The role of monocyte subpopulations in vascular injury following partial and transient depletion.

Authors:  Etty Grad; Ksenia Zolotarevsky; Haim D Danenberg; Mirjam M Nordling-David; Dikla Gutman; Gershon Golomb
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Review 5.  Contrast ultrasound and targeted microbubbles: diagnostic and therapeutic applications for angiogenesis.

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Review 6.  Monocytes and macrophages as nanomedicinal targets for improved diagnosis and treatment of disease.

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Review 7.  Monocyte-mediated drug delivery systems for the treatment of cardiovascular diseases.

Authors:  Gil Aizik; Etty Grad; Gershon Golomb
Journal:  Drug Deliv Transl Res       Date:  2018-08       Impact factor: 4.617

8.  Targeted liposomal drug delivery to monocytes and macrophages.

Authors:  Ciara Kelly; Caroline Jefferies; Sally-Ann Cryan
Journal:  J Drug Deliv       Date:  2010-10-26

9.  Boiling-induced nanoparticles and their constitutive proteins from Isatis indigotica Fort. root decoction: Purification and identification.

Authors:  Jianwu Zhou; Jie Liu; Dai Lin; Guanzhen Gao; Huiqin Wang; Jingke Guo; Pingfan Rao; Lijing Ke
Journal:  J Tradit Complement Med       Date:  2016-10-20

10.  In vitro potency, in vitro and in vivo efficacy of liposomal alendronate in combination with γδ T cell immunotherapy in mice.

Authors:  Naomi O Hodgins; Wafa' T Al-Jamal; Julie T-W Wang; Ana C Parente-Pereira; Mao Liu; John Maher; Khuloud T Al-Jamal
Journal:  J Control Release       Date:  2016-09-21       Impact factor: 9.776

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