171
Views
36
CrossRef citations to date
0
Altmetric
Research Article

Development and characterization of amphotericin B bearing emulsomes for passive and active macrophage targeting

Research paper

&
Pages 206-217 | Received 04 Oct 2006, Accepted 03 Jan 2007, Published online: 08 Oct 2008

Keep up to date with the latest research on this topic with citation updates for this article.

Read on this site (7)

Hibah M. Aldawsari, Shaimaa M. Badr-Eldin, Nourah Y. Assiri, Nabil A. Alhakamy, Anna Privitera, Filippo Caraci & Giuseppe Caruso. (2022) Surface-tailoring of emulsomes for boosting brain delivery of vinpocetine via intranasal route: in vitro optimization and in vivo pharmacokinetic assessment. Drug Delivery 29:1, pages 2671-2684.
Read now
Sachin Yadav & Swati Gupta. (2015) Development and in vitro characterization of docetaxel-loaded ligand appended solid fat nanoemulsions for potential use in breast cancer therapy. Artificial Cells, Nanomedicine, and Biotechnology 43:2, pages 93-102.
Read now
Kaisar Raza, Om Prakash Katare, Arvind Setia, Amit Bhatia & Bhupinder Singh. (2013) Improved therapeutic performance of dithranol against psoriasis employing systematically optimized nanoemulsomes. Journal of Microencapsulation 30:3, pages 225-236.
Read now
Swati Gupta, Ajay Pal & Suresh P Vyas. (2010) Drug delivery strategies for therapy of visceral leishmaniasis. Expert Opinion on Drug Delivery 7:3, pages 371-402.
Read now
Swati Gupta, Anuradha Dube & Suresh P. Vyas. (2007) Antileishmanial efficacy of amphotericin B bearing emulsomes against experimental visceral leishmaniasis. Journal of Drug Targeting 15:6, pages 437-444.
Read now

Articles from other publishers (29)

Shivam Singh, Kunal Khurana, Shikha Baghel Chauhan & Indu Singh. (2023) Emulsomes: new lipidic carriers for drug delivery with special mention to brain drug transport. Future Journal of Pharmaceutical Sciences 9:1.
Crossref
Mohammed Asadullah Jahangir, Dibyalochan Mohanty, Amarendranath Choudhury & Syed Sarim Imam. 2023. Multifunctional And Targeted Theranostic Nanomedicines. Multifunctional And Targeted Theranostic Nanomedicines 49 76 .
Lohitha Gujjari, Hamed Kalani, Sai Kiran Pindiprolu, Bhanu Prakash Arakareddy & Ganesh Yadagiri. (2022) Current challenges and nanotechnology-based pharmaceutical strategies for the treatment and control of malaria. Parasite Epidemiology and Control 17, pages e00244.
Crossref
Zeynep Islek, Mehmet Hikmet Ucisik, Elif Keskin, Bilgesu Onur Sucu, Ana G. Gomes‐Alves, Ana M. Tomás, Mustafa Guzel & Fikrettin Sahin. (2022) Antileishmanial Activity of BNIPDaoct- and BNIPDanon-loaded Emulsomes on Leishmania infantum Parasites. Frontiers in Nanotechnology 3.
Crossref
Priyadarshi Aparajay & Abhimanyu Dev. (2022) Functionalized niosomes as a smart delivery device in cancer and fungal infection. European Journal of Pharmaceutical Sciences 168, pages 106052.
Crossref
Anushka Tyagi, Atul Pathak, Yashwant V. Pathak & Swati Gupta. 2022. Macrophage Targeted Delivery Systems. Macrophage Targeted Delivery Systems 225 252 .
Mahima Gupta, Atul Pathak, Yashwant V. Pathak & Swati Gupta. 2022. Macrophage Targeted Delivery Systems. Macrophage Targeted Delivery Systems 3 29 .
Mehmet Hikmet ÜÇIŞIK. (2021) Replacement of Extrusion by Temperature-Controlled Ultrasonication in Emulsome Production. European Journal of Science and Technology.
Crossref
Hibah M. Aldawsari, Osama A. A. Ahmed, Nabil A. Alhakamy, Thikryat Neamatallah, Usama A. Fahmy & Shaimaa M. Badr-Eldin. (2021) Lipidic Nano-Sized Emulsomes Potentiates the Cytotoxic and Apoptotic Effects of Raloxifene Hydrochloride in MCF-7 Human Breast Cancer Cells: Factorial Analysis and In Vitro Anti-Tumor Activity Assessment. Pharmaceutics 13:6, pages 783.
Crossref
Mohammad Imani & Azam Dehghan. 2020. Nanobiotechnology in Diagnosis, Drug Delivery, and Treatment. Nanobiotechnology in Diagnosis, Drug Delivery, and Treatment 295 357 .
Shabi Parvez, Ganesh Yadagiri, Mallikarjuna Rao Gedda, Aakriti Singh, Om Prakash Singh, Anurag Verma, Shyam Sundar & Shyam Lal Mudavath. (2020) Modified solid lipid nanoparticles encapsulated with Amphotericin B and Paromomycin: an effective oral combination against experimental murine visceral leishmaniasis. Scientific Reports 10:1.
Crossref
Rakhi Chaudhary & Barkha Singhal. 2020. Intelligent Nanomaterials for Drug Delivery Applications. Intelligent Nanomaterials for Drug Delivery Applications 61 84 .
Satyanarayan Pattnaik, Kalpana Swain, Satya Prakash Singh & Anup Kumar Sirbaiya. 2020. Nanoengineered Biomaterials for Advanced Drug Delivery. Nanoengineered Biomaterials for Advanced Drug Delivery 163 180 .
. 2017. Carrier‒Mediated Dermal Delivery. Carrier‒Mediated Dermal Delivery 281 322 .
Niranjan G. Kotla, Bhargavi Chandrasekar, Peadar Rooney, Gandhi Sivaraman, Aitor Larrañaga, K. Vijaya Krishna, Abhay Pandit & Yury Rochev. (2017) Biomimetic Lipid-Based Nanosystems for Enhanced Dermal Delivery of Drugs and Bioactive Agents. ACS Biomaterials Science & Engineering 3:7, pages 1262-1272.
Crossref
Tan Dinh, Qamar Zia, Swaleha Zubair, Paul Stapleton, Ruchi Singh, Mohammad Owais & Satyanarayana Somavarapu. (2017) Novel biodegradable poly(gamma-glutamic acid)–amphotericin B complexes show promise as improved amphotericin B formulations. Nanomedicine: Nanotechnology, Biology and Medicine 13:5, pages 1773-1783.
Crossref
Lalit Kumar, Shivani Verma, Bhuvaneshwar Vaidya & Neelesh K. Mehra. 2017. Nanostructures for Antimicrobial Therapy. Nanostructures for Antimicrobial Therapy 293 324 .
Naseem Akhtar & Riaz A. Khan. (2016) Liposomal systems as viable drug delivery technology for skin cancer sites with an outlook on lipid-based delivery vehicles and diagnostic imaging inputs for skin conditions'. Progress in Lipid Research 64, pages 192-230.
Crossref
Xiaodan Zhou & Zhipeng Chen. (2015) Preparation and performance evaluation of emulsomes as a drug delivery system for silybin. Archives of Pharmacal Research 38:12, pages 2193-2200.
Crossref
Mehmet H Ucisik, Seta Küpcü, Bernhard Schuster & Uwe B Sleytr. (2013) Characterization of CurcuEmulsomes: nanoformulation for enhanced solubility and delivery of curcumin. Journal of Nanobiotechnology 11:1, pages 37.
Crossref
Philippe M. Loiseau & Gillian Barratt. 2013. Drug Resistance in Leishmania Parasites. Drug Resistance in Leishmania Parasites 321 350 .
Abeer H. A. Mohamed-Ahmed, Claire Ginn, Simon L. Croft & Stephen Brocchini. 2013. Fundamentals of Pharmaceutical Nanoscience. Fundamentals of Pharmaceutical Nanoscience 429 464 .
Abeer H.A. Mohamed-Ahmed, Stephen Brocchini & Simon L. Croft. (2012) Recent advances in development of amphotericin B formulations for the treatment of visceral leishmaniasis. Current Opinion in Infectious Diseases 25:6, pages 695-702.
Crossref
Swati Gupta & Pankaj Kumar. (2012) Drug Delivery Using Nanocarriers: Indian Perspective. Proceedings of the National Academy of Sciences, India Section B: Biological Sciences 82:S1, pages 167-206.
Crossref
Dinesh Kumar, Deepak Sharma, Gurmeet Singh, Mankaran Singh & Mahendra Singh Rathore. (2012) Lipoidal Soft Hybrid Biocarriers of Supramolecular Construction for Drug Delivery. ISRN Pharmaceutics 2012, pages 1-14.
Crossref
Ashkan Dehsorkhi, Valeria Castelletto, Ian W. Hamley & Peter J. F. Harris. (2011) Multiple hydrogen bonds induce formation of nanoparticles with internal microemulsion structure by an amphiphilic copolymer. Soft Matter 7:21, pages 10116.
Crossref
Arash Falamarzian & Afsaneh Lavasanifar. (2010) Optimization of the hydrophobic domain in poly(ethylene oxide)-poly(ɛ-caprolactone) based nano-carriers for the solubilization and delivery of Amphotericin B. Colloids and Surfaces B: Biointerfaces 81:1, pages 313-320.
Crossref
Ahmed M. Galal, Waseem Gul, Desmond Slade, Samir A. Ross, Shixia Feng, Melinda G. Hollingshead, Michael C. Alley, Gurmeet Kaur & Mahmoud A. ElSohly. (2009) Synthesis and evaluation of dihydroartemisinin and dihydroartemisitene acetal dimers showing anticancer and antiprotozoal activity. Bioorganic & Medicinal Chemistry 17:2, pages 741-751.
Crossref
Sarabjeet Singh Suri, Hicham Fenniri & Baljit Singh. (2007) Nanotechnology-based drug delivery systems. Journal of Occupational Medicine and Toxicology 2:1.
Crossref

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.